Time-Related User Interfaces
Efficient watch face management methods on electronic devices address inefficiencies by using segmented display and adaptive text selection, enhancing user experience and power conservation.
Patent Information
- Application Number
- JP2024156798
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-05-06
- Filing Date
- 2024-09-10
- Publication Date
- 2026-02-25
- Estimated Expiration
- 2042-05-13
AI Technical Summary
Existing techniques for managing watch faces on electronic devices are cumbersome and inefficient, often requiring multiple key presses and consuming excessive time and energy, particularly in battery-operated devices.
Implementing faster and more efficient methods and interfaces for managing watch faces by simultaneously displaying media items with foreground and background elements segmented based on depth information, and dynamically selecting system text based on context, including features like rotating input mechanisms and adaptive display of time and city names.
Enhances user efficiency and satisfaction by reducing cognitive burden and conserving power in battery-operated devices, while providing intuitive and adaptive watch face management.
Smart Images

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Figure 0007820461000003
Abstract
Description
CROSS-REFERENCE TO RELATED APPLICATIONS
[0001] This application claims priority to U.S. Patent Application No. 17 / 738,940, entitled "Time-Related User Interface," filed May 6, 2022, U.S. Provisional Application No. 63 / 197,447, entitled "Time-Related User Interface," filed June 6, 2021, and U.S. Provisional Application No. 63 / 188,801, entitled "Time-Related User Interface," filed May 14, 2021, the entire contents of which are incorporated herein by reference. [Technical Field]
[0002] The present disclosure relates generally to computer user interfaces, and more particularly to techniques for managing watch faces. [Background technology]
[0003] Smart watch devices and other personal electronic devices allow users to manipulate the appearance of the watch face. Users can select various options to control how the watch face appears. Summary of the Invention
[0004] However, some techniques for managing watch faces using electronic devices are generally cumbersome and inefficient. For example, some existing techniques use complex and time-consuming user interfaces that may involve multiple key presses or strokes. Existing techniques take longer than necessary, wasting the user's time and the device's energy. This latter consideration is particularly important in battery-operated devices.
[0005] Thus, the present technology provides electronic devices with faster and more efficient methods and interfaces for managing watch faces. Such methods and interfaces optionally complement or replace other methods for managing watch faces. Such methods and interfaces reduce the cognitive burden on users and create a more efficient human-machine interface. For battery-operated computing devices, such methods and interfaces conserve power and increase the time between battery charges.
[0006] According to some embodiments, a method is described that is executed on a computer system in communication with a display generation component and one or more input devices. The method includes receiving, via the one or more input devices, input corresponding to a request to display a user interface based on media items, and, in response to receiving the input, displaying, via the display generation component, the user interface, wherein displaying the user interface includes simultaneously displaying the media items including a background element and a foreground element segmented from the background element based on depth information, and system text displayed in front of the background element and behind the foreground element, the system text having content that is dynamically selected based on a context of the computer system.
[0007] According to some embodiments, a non-transitory computer-readable storage medium is described that stores one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices, the one or more programs including instructions for receiving, via the one or more input devices, an input corresponding to a request to display a user interface based on a media item, and instructions for displaying, via the display generation component, the user interface in response to receiving the input, the user interface including simultaneously displaying the media item including a background element and a foreground element segmented from the background element based on depth information, and system text displayed in front of the background element and behind the foreground element, the system text having content dynamically selected based on a context of the computer system.
[0008] According to some embodiments, a temporary computer-readable storage medium is described that stores one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices, the one or more programs including instructions for receiving, via the one or more input devices, an input corresponding to a request to display a user interface based on a media item, and instructions for displaying, via the display generation component, the user interface in response to receiving the input, the user interface including simultaneously displaying the media item including a background element and a foreground element segmented from the background element based on depth information, and system text displayed in front of the background element and behind the foreground element, the system text having content dynamically selected based on a context of the computer system.
[0009] According to some embodiments, a computer system is described that includes one or more processors in communication with a display generation component and one or more input devices, and a memory that stores one or more programs configured to be executed by the one or more processors, the one or more programs including instructions for receiving, via the one or more input devices, an input corresponding to a request to display a user interface based on a media item, and instructions for displaying, via the display generation component, the user interface in response to receiving the input, the user interface including simultaneously displaying the media item including a background element and a foreground element segmented from the background element based on depth information, and system text displayed in front of the background element and behind the foreground element, the system text having content dynamically selected based on a context of the computer system.
[0010] According to some embodiments, a computer system is described, the computer system being in communication with a display generation component and one or more input devices. The method includes means for receiving, via the one or more input devices, an input corresponding to a request to display a user interface based on media items, and means for displaying, via the display generation component, the user interface in response to receiving the input, the user interface including simultaneously displaying the media items including a background element and a foreground element segmented from the background element based on depth information, and system text displayed in front of the background element and behind the foreground element, the system text having content dynamically selected based on a context of the computer system.
[0011] According to some embodiments, a computer program product is described that includes one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices, the one or more programs including instructions for receiving, via the one or more input devices, an input corresponding to a request to display a user interface based on a media item, and instructions for displaying, via the display generation component, the user interface in response to receiving the input, the user interface including simultaneously displaying the media item including a background element and a foreground element segmented from the background element based on depth information, and system text displayed in front of the background element and behind the foreground element, the system text having content dynamically selected based on a context of the computer system.
[0012] According to some embodiments, a method is described that is performed in a computer system in communication with a display generation component and one or more input devices. The method includes receiving, via one or more input devices, a request to display a clock face; and, in response to receiving the request to display the clock face, displaying, via a display generation component, a clock face including names of one or more different cities, wherein the displaying includes simultaneously displaying a current time display in a current time zone associated with the computer system and the names of the one or more different cities, the one or more different cities including a first city, and displaying the names of the one or more cities includes displaying the name of the first city, wherein, in accordance with a determination that the computer system is associated with the first time zone, the name of the first city is displayed in a first position on the clock face with text oriented such that a bottom of the characters of the first city name is closer to the current time display than an top of the characters of the first city name is closer to the current time display, and in accordance with a determination that the computer system is associated with a second time zone different from the first time zone, the name of the first city is displayed in a second position on the clock face with text oriented such that a top of the characters of the first city name is closer to the current time display than an bottom of the characters of the first city name is closer to the current time display.
[0013] According to some embodiments, a non-transitory computer-readable storage medium is described. The non-transitory computer-readable storage medium stores one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices, the one or more programs including instructions for receiving, via the one or more input devices, a request to display a clock face, and, in response to receiving the request to display the clock face, instructions for displaying, via the display generation component, a clock face including names of one or more different cities, wherein displaying includes simultaneously displaying a current time display in a current time zone associated with the computer system, the names of the one or more different cities, and the names of the one or more different cities. The cities to be associated include a first city, and displaying the names of the one or more cities includes displaying the name of the first city, and in accordance with a determination that the computer system is associated with a first time zone, the name of the first city is displayed at a first position on the clock face with text oriented such that a bottom of the characters of the first city name is closer to the current time display than a top of the characters of the first city name is closer to the current time display, and in accordance with a determination that the computer system is associated with a second time zone different from the first time zone, the name of the first city is displayed at a second position on the clock face with text oriented such that a top of the characters of the first city name is closer to the current time display than a bottom of the characters of the first city name is closer to the current time display.
[0014] According to some embodiments, a transient computer-readable storage medium is described. The transient computer-readable storage medium stores one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices, the one or more programs including instructions for receiving, via the one or more input devices, a request to display a clock face, and, in response to receiving the request to display the clock face, instructions for displaying, via the display generation component, a clock face including names of one or more different cities, wherein displaying includes simultaneously displaying a current time display in a current time zone associated with the computer system, the names of the one or more different cities, and the names of the one or more different cities. The cities to be associated include a first city, and displaying the names of the one or more cities includes displaying the name of the first city, and in accordance with a determination that the computer system is associated with a first time zone, the name of the first city is displayed at a first position on the clock face with text oriented such that a bottom of the characters of the first city name is closer to the current time display than a top of the characters of the first city name is closer to the current time display, and in accordance with a determination that the computer system is associated with a second time zone different from the first time zone, the name of the first city is displayed at a second position on the clock face with text oriented such that a top of the characters of the first city name is closer to the current time display than a bottom of the characters of the first city name is closer to the current time display.
[0015] According to some embodiments, a computer system is described that includes one or more processors in communication with a display generation component and one or more input devices, and a memory storing one or more programs configured to be executed by the one or more processors, the one or more processors including instructions for receiving, via the one or more input devices, a request to display a clock face, and instructions for displaying, via the display generation component, a clock face including names of one or more different cities in response to receiving the request to display the clock face, the displaying including simultaneously displaying a current time display in a current time zone associated with the computer system, the names of the one or more different cities, and the names of the one or more different cities. The cities to be selected include a first city, and displaying the names of the one or more cities includes displaying the name of the first city, and in accordance with a determination that the computer system is associated with a first time zone, the name of the first city is displayed at a first position on the clock face with text oriented such that a bottom of the characters of the first city name is closer to the current time display than a top of the characters of the first city name is closer to the current time display, and in accordance with a determination that the computer system is associated with a second time zone different from the first time zone, the name of the first city is displayed at a second position on the clock face with text oriented such that a top of the characters of the first city name is closer to the current time display than a bottom of the characters of the first city name is closer to the current time display.
[0016] According to some embodiments, a computer system is described that is in communication with a display generation component and one or more input devices. The computer system includes means for receiving a request to display a clock face via one or more input devices, and means for, in response to receiving the request to display the clock face, displaying, via a display generation component, a clock face including names of one or more different cities, wherein the displaying includes simultaneously displaying a current time display in a current time zone associated with the computer system and the names of the one or more different cities, the one or more different cities including a first city, and displaying the names of the one or more cities includes displaying the name of the first city, wherein, in accordance with a determination that the computer system is associated with the first time zone, the name of the first city is displayed at a first position on the clock face with text oriented such that a bottom of the characters of the first city name is closer to the current time display than a top of the characters of the first city name is closer to the current time display, and in accordance with a determination that the computer system is associated with a second time zone different from the first time zone, the name of the first city is displayed at a second position on the clock face with text oriented such that a top of the characters of the first city name is closer to the current time display than a bottom of the characters of the first city name is closer to the current time display.
[0017] According to some embodiments, a computer program product is described that includes one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices, the one or more programs including instructions for receiving, via the one or more input devices, a request to display a clock face, and, in response to receiving the request to display the clock face, instructions for displaying, via the display generation component, a clock face including names of one or more different cities, wherein the displaying includes simultaneously displaying a current time display in a current time zone associated with the computer system and the names of the one or more different cities, wherein the one or more different cities are a first city. and displaying the names of the one or more cities includes displaying a name of a first city, wherein, in accordance with a determination that the computer system is associated with a first time zone, the name of the first city is displayed at a first position on the clock face with text oriented such that a bottom of the characters of the first city name is closer to the current time display than an top of the characters of the first city name is closer to the current time display, and in accordance with a determination that the computer system is associated with a second time zone different from the first time zone, the name of the first city is displayed at a second position on the clock face with text oriented such that a top of the characters of the first city name is closer to the current time display than an bottom of the characters of the first city name is closer to the current time display.
[0018] According to some embodiments, a method is described, the method being executed on a computer system in communication with a display generating component, the method including: displaying, via the display generating component, a first user interface including an analog watch face while the computer system is in a first state; while the computer system is in the first state, displaying the analog watch face includes simultaneously displaying a time indicator indicating a current time on the analog watch face and time indicators displayed around the analog watch face, the time indicators including a first hour indicator displayed in a first size and a second hour indicator displayed in a second size different from the first size; and after displaying the analog watch face with the first hour indicator displayed in the first size and the second hour indicator displayed in the second size, detecting a request to display an analog clock face while the computer system is in a second state different from the first state; and displaying a first user interface updated to reflect the second state, the first user interface including a display of the analog clock face, in response to detecting the change in the state of the computer system, wherein displaying the analog clock face while the computer system is in the second state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed in a third size different from the first size and a second hour indicator displayed in a fourth size different from the second size.
[0019] According to some embodiments, a non-transitory computer-readable storage medium is described, the non-transitory computer-readable storage medium storing one or more programs configured to be executed by one or more processors of a computer system, the computer system being in communication with a display generation component, the one or more programs including instructions for displaying, via the display generation component, a first user interface including an analog clock face while the computer system is in a first state, wherein displaying the analog clock face while the computer system is in the first state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed at a first size and a second hour indicator displayed at a second size different from the first size; and instructions for detecting a request to display the analog clock face while the computer system is in a second state different from the first state, after displaying the analog clock face with the second time indicator displayed at a third size and the second time indicator displayed at a second size; and instructions for displaying a first user interface updated to reflect the second state, including the display of the analog clock face, in response to detecting the change in the state of the computer system, wherein displaying the analog clock face while the computer system is in the second state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed at a third size different from the first size and a second hour indicator displayed at a fourth size different from the second size.
[0020] According to some embodiments, a temporary computer-readable storage medium is described, the temporary computer-readable storage medium storing one or more programs configured to be executed by one or more processors of a computer system, the computer system being in communication with a display generation component, the one or more programs including instructions for displaying, via the display generation component, a first user interface including an analog clock face while the computer system is in a first state, wherein displaying the analog clock face while the computer system is in the first state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed at a first size and a second hour indicator displayed at a second size different from the first size; and instructions for detecting a request to display the analog clock face while the computer system is in a second state different from the first state, after displaying the analog clock face with the second time indicator displayed at a third size and the second time indicator displayed at a second size; and instructions for displaying a first user interface updated to reflect the second state, including the display of the analog clock face, in response to detecting the change in the state of the computer system, wherein displaying the analog clock face while the computer system is in the second state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed at a third size different from the first size and a second hour indicator displayed at a fourth size different from the second size.
[0021] According to some embodiments, a computer system is described that includes one or more processors in communication with a display generation component and a memory storing one or more programs configured to be executed by the one or more processors, the one or more programs including instructions for displaying, via the display generation component, a first user interface including an analog watch face while the computer system is in a first state, wherein displaying the analog watch face while the computer system is in the first state includes simultaneously displaying a time indicator indicating the current time on the analog watch face and time indicators displayed around the analog watch face, the time indicators including a first time indicator displayed at a first size and a second time indicator displayed at a second size different from the first size; and instructions for detecting a request to display the analog clock face while the computer system is in a second state different from the first state after displaying the analog clock face with the first time indicator at a first size and the second time indicator at a second size; and instructions for displaying a first user interface updated to reflect the second state, the first user interface including the display of the analog clock face, in response to detecting the change in the state of the computer system, wherein displaying the analog clock face while the computer system is in the second state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed at a third size different from the first size and a second hour indicator displayed at a fourth size different from the second size.
[0022] According to some embodiments, a computer system is described, the computer system being in communication with a display generation component, the computer system including means for displaying, via the display generation component, a first user interface including an analog watch face while the computer system is in a first state, wherein displaying the analog watch face while the computer system is in the first state includes simultaneously displaying a time indicator indicating the current time on the analog watch face and time indicators displayed around the analog watch face, the time indicators including a first hour indicator displayed in a first size and a second hour indicator displayed in a second size different from the first size; and after displaying the analog watch face with the first hour indicator displayed in the first size and the second hour indicator displayed in the second size, the computer The computer system includes means for detecting a request to display an analog clock face while the system is in a second state different from the first state; and means for displaying a first user interface updated to reflect the second state, including a display of the analog clock face, in response to detecting a change in the state of the computer system, wherein displaying the analog clock face while the computer system is in the second state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed in a third size different from the first size and a second hour indicator displayed in a fourth size different from the second size.
[0023] According to some embodiments, a computer program product is described. The computer program product includes one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component, the one or more programs including instructions for displaying, via the display generation component, a first user interface including an analog clock face while the computer system is in a first state, wherein displaying the analog clock face while the computer system is in the first state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed at a first size and a second hour indicator displayed at a second size different from the first size; and instructions for displaying the first hour indicator at the first size and a second hour indicator displayed at a second size different from the first size. The method includes instructions for detecting a request to display the analog clock face while the computer system is in a second state different from the first state after displaying the time indicator at a second size, and instructions for displaying a first user interface updated to reflect the second state, the first user interface including the display of the analog clock face, in response to detecting a change in the state of the computer system, the first user interface including the display of the analog clock face, the first user interface updated to reflect the second state, the first user interface including the display of the analog clock face, wherein displaying the analog clock face while the computer system is in the second state includes simultaneously displaying a time indicator indicating the current time on the analog clock face and time indicators displayed around the analog clock face, the time indicators including a first hour indicator displayed at a third size different from the first size and a second hour indicator displayed at a fourth size different from the second size.
[0024] According to some embodiments, a method is described that is executed on a computer system in communication with a display generating component and one or more input devices, including a rotatable input mechanism. The method includes displaying a selection user interface via the display generating component, detecting rotation of the rotatable input mechanism about a rotation axis while displaying the selection user interface, displaying a graphical representation of the selection focus that changes as the selection focus moves among a plurality of selectable objects in response to detecting the rotation of the rotatable input mechanism, detecting a press input on the rotatable input mechanism after changing the selection focus through the plurality of selectable objects, and selecting one of the plurality of selectable objects in response to detecting the press input, including selecting the first selectable object if the press input is detected in accordance with a determination that a first selectable object of the plurality of selectable objects had selection focus, and selecting a second selectable object if the press input is detected in accordance with a determination that a second selectable object of the plurality of selectable objects, different from the first selectable object, had selection focus.
[0025] According to some embodiments, a non-transitory computer-readable storage medium is described. A non-transitory computer-readable storage medium stores one or more programs configured to be executed by one or more processors of a computer system, the computer system being in communication with a display generation component and one or more input devices including a rotatable input mechanism, the one or more programs including, via the display generation component, instructions for displaying a selection user interface; instructions for detecting rotation of the rotatable input mechanism about a rotation axis while displaying the selection user interface; instructions for displaying a graphical representation of the selection focus that changes as the selection focus moves among a plurality of selectable objects in response to detecting the rotation of the rotatable input mechanism; instructions for detecting a press input on the rotatable input mechanism after changing the selection focus through the plurality of selectable objects; and instructions for selecting one of the plurality of selectable objects in response to detecting the press input, the instructions including selecting the first selectable object in accordance with a determination that a first selectable object of the plurality of selectable objects had selection focus, if the press input is detected, and selecting a second selectable object in accordance with a determination that a second selectable object different from the first selectable object had selection focus among the plurality of selectable objects in response to detecting the press input.
[0026] According to some embodiments, a temporary computer-readable storage medium is described. A temporary computer-readable storage medium stores one or more programs configured to be executed by one or more processors of a computer system, the computer system being in communication with a display generation component and one or more input devices including a rotatable input mechanism, the one or more programs including, via the display generation component, instructions for displaying a selection user interface; instructions for detecting rotation of the rotatable input mechanism about a rotation axis while displaying the selection user interface; instructions for displaying a graphical representation of the selection focus that changes as the selection focus moves among a plurality of selectable objects in response to detecting the rotation of the rotatable input mechanism; instructions for detecting a press input on the rotatable input mechanism after changing the selection focus through the plurality of selectable objects; and instructions for selecting one of the plurality of selectable objects in response to detecting the press input, the instructions including selecting the first selectable object in accordance with a determination that a first selectable object of the plurality of selectable objects had selection focus, if the press input is detected, and selecting a second selectable object in accordance with a determination that a second selectable object different from the first selectable object had selection focus among the plurality of selectable objects in response to detecting the press input.
[0027] According to some embodiments, a computer system is described. The computer system includes one or more processors in communication with a display generation component and one or more input devices including a rotatable input mechanism; and a memory storing one or more programs configured to be executed by the one or more processors, the one or more processors including, via the display generation component, instructions for displaying a selection user interface; instructions for detecting rotation of the rotatable input mechanism about a rotation axis while displaying the selection user interface; instructions for displaying a graphical representation of the selection focus that changes as the selection focus moves among a plurality of selectable objects in response to detecting the rotation of the rotatable input mechanism; instructions for detecting a press input on the rotatable input mechanism after changing the selection focus through the plurality of selectable objects; and instructions for selecting one of the plurality of selectable objects in response to detecting the press input, the instructions including selecting the first selectable object in accordance with a determination that a first selectable object of the plurality of selectable objects had selection focus if the press input is detected, and selecting a second selectable object in accordance with a determination that a second selectable object different from the first selectable object had selection focus among the plurality of selectable objects if the press input is detected.
[0028] According to some embodiments, a computer system is described that communicates with a display generation component and one or more input devices including a rotatable input mechanism. The computer system includes, via the display generation component, means for displaying a selection user interface, means for detecting rotation of the rotatable input mechanism about a rotation axis while displaying the selection user interface, means for displaying a graphical representation of the selection focus that changes as the selection focus moves among a plurality of selectable objects in response to detecting the rotation of the rotatable input mechanism, means for detecting a press input on the rotatable input mechanism after changing the selection focus through the plurality of selectable objects, and means for selecting one of the plurality of selectable objects in response to detecting the press input, including selecting the first selectable object in accordance with a determination that a first selectable object of the plurality of selectable objects had selection focus if the press input is detected, and selecting a second selectable object in accordance with a determination that a second selectable object different from the first selectable object had selection focus if the press input is detected.
[0029] According to some embodiments, a computer program product is described, the computer program product including one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices including a rotatable input mechanism, the one or more programs including instructions for displaying, via the display generation component, a selection user interface, instructions for detecting rotation of the rotatable input mechanism about a rotation axis while displaying the selection user interface, instructions for displaying a graphical representation of the selection focus that changes as the selection focus moves among a plurality of selectable objects in response to detecting the rotation of the rotatable input mechanism, instructions for detecting a press input on the rotatable input mechanism after changing the selection focus through the plurality of selectable objects, and instructions responsive to detecting the press input, including selecting a first selectable object in accordance with a determination that a first selectable object of the plurality of selectable objects had selection focus if the press input was detected, and selecting a second selectable object in accordance with a determination that a second selectable object different from the first selectable object had selection focus among the plurality of selectable objects in accordance with the detection of the press input.
[0030] According to some embodiments, a method is described that is executed on a computer system in communication with a display generation component and one or more input devices. The method includes detecting, via the one or more input devices, an input corresponding to a request to display an editing user interface, and, in response to detecting the input, displaying the editing user interface via the display generation component, where displaying the editing user interface includes simultaneously displaying a media item including a background element and a foreground element segmented from the background element based on depth information, and system text, where the system text is displayed in a first layer arrangement relative to the foreground element based on the depth information, and the foreground element of the media item is displayed in a first position relative to the system text, detecting user input directed to the editing user interface, and, in response to detecting the user input directed to the editing user interface, updating the system text displayed in a second layer arrangement relative to the foreground element segmented based on the depth information for the media item in accordance with a determination that the user input is a first type of user input, and updating the media item such that the foreground element of the media item is displayed in a second position relative to the system text, different from the first position, in accordance with a determination that the user input is a second type of user input different from the first type of user input.
[0031] According to some embodiments, a non-transitory computer-readable storage medium is described that stores one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices, the one or more programs including instructions for detecting, via the one or more input devices, an input corresponding to a request to display an editing user interface, and, in response to detecting the input, instructions for displaying, via the display generation component, the editing user interface, wherein displaying the editing user interface includes simultaneously displaying a media item including a background element and a foreground element segmented from the background element based on depth information, and system text, the system text being segmented relative to the foreground element based on the depth information. instructions for detecting user input directed to the editing user interface; and, in response to detecting the user input directed to the editing user interface, updating the system text displayed in a second layer arrangement relative to the segmented foreground elements based on the depth information for the media item in accordance with a determination that the user input is a first type of user input; and, in accordance with a determination that the user input is a second type of user input different from the first type of user input, updating the media item such that the foreground elements of the media item are displayed in a second position relative to the system text, different from the first position.
[0032] According to some embodiments, a temporary computer-readable storage medium is described that stores one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices, the one or more programs including instructions for detecting, via the one or more input devices, an input corresponding to a request to display an editing user interface, and, in response to detecting the input, instructions for displaying, via the display generation component, the editing user interface, wherein displaying the editing user interface includes simultaneously displaying a media item including a background element and a foreground element segmented from the background element based on depth information, and system text, the system text being segmented relative to the foreground element based on the depth information. instructions for detecting user input directed at the editing user interface; and, in response to detecting the user input directed at the editing user interface, instructions for updating the system text displayed in a second layer arrangement relative to the segmented foreground elements based on the depth information for the media item in accordance with a determination that the user input is a first type of user input, and updating the media item in accordance with a determination that the user input is a second type of user input different from the first type of user input, such that the foreground elements of the media item are displayed in a second position relative to the system text, different from the first position.
[0033] According to some embodiments, a computer system configured to communicate with a display generation component and one or more input devices is described. The computer system includes one or more processors and a memory storing one or more programs configured to be executed by the one or more processors, the one or more programs including instructions for detecting, via the one or more input devices, an input corresponding to a request to display an editing user interface, and instructions for displaying, via the display generation component, the editing user interface in response to detecting the input, the editing user interface including simultaneously displaying a media item including a background element and a foreground element segmented from the background element based on depth information, and system text, the system text being displayed in a first layer position relative to the foreground element based on the depth information. The system includes instructions for displaying a foreground element of a media item in a first position relative to the system text, instructions for detecting user input directed to the editing user interface, and instructions for, in response to detecting the user input directed to the editing user interface, updating the system text displayed in a second layer arrangement relative to the segmented foreground element based on the depth information for the media item in accordance with a determination that the user input is a first type of user input, and updating the media item such that the foreground element of the media item is displayed in a second position relative to the system text that is different from the first position in accordance with a determination that the user input is a second type of user input that is different from the first type of user input.
[0034] According to some embodiments, a computer system configured to communicate with a display generation component and one or more input devices is described, the computer system including: means for detecting, via the one or more input devices, an input corresponding to a request to display an editing user interface; means for displaying, via the display generation component, the editing user interface in response to detecting the input, wherein displaying the editing user interface includes simultaneously displaying a media item including a background element and a foreground element segmented from the background element based on depth information, and system text, the system text being displayed in a first layer arrangement relative to the foreground element based on the depth information, and the foreground element of the media item being displayed in a first position relative to the system text; means for detecting user input directed to the editing user interface; and means for updating, in response to detecting the user input directed to the editing user interface, the system text being displayed in a second layer arrangement relative to the foreground element segmented based on the depth information for the media item in accordance with a determination that the user input is a first type of user input, and updating the media item such that the foreground element of the media item is displayed in a second position relative to the system text, different from the first position, in accordance with a determination that the user input is a second type of user input different from the first type of user input.
[0035] According to some embodiments, a computer program product is described that includes one or more programs configured to be executed by one or more processors of a computer system in communication with a display generation component and one or more input devices. The one or more programs include instructions for detecting, via one or more input devices, input corresponding to a request to display an editing user interface; and instructions for displaying the editing user interface via a display generation component in response to detecting the input, wherein displaying the editing user interface includes simultaneously displaying a media item including a background element and a foreground element segmented from the background element based on depth information, and system text, wherein the system text is displayed in a first layer arrangement relative to the foreground element based on the depth information, and the foreground element of the media item is displayed in a first position relative to the system text; instructions for detecting user input directed to the editing user interface; and instructions for updating, in response to detecting the user input directed to the editing user interface, the system text displayed in a second layer arrangement relative to the foreground element segmented based on the depth information for the media item in accordance with a determination that the user input is a first type of user input, and updating the media item so that the foreground element of the media item is displayed in a second position relative to the system text, different from the first position, in accordance with a determination that the user input is a second type of user input different from the first type of user input.
[0036] Executable instructions to perform these functions are optionally contained in a non-transitory computer-readable storage medium or other computer program product configured for execution by one or more processors. Executable instructions to perform these functions are optionally contained in a transitory computer-readable storage medium or other computer program product configured for execution by one or more processors.
[0037] Thus, devices are provided with faster and more efficient methods and interface for managing watch faces, thereby increasing the effectiveness, efficiency, and user satisfaction of such devices. Such methods and interface interfaces can complement or replace other methods for managing watch faces. [Brief explanation of the drawings]
[0038] For a better understanding of the various described embodiments, reference should be made to the following Detailed Description of the Invention in conjunction with the following drawings, in which like reference numerals refer to corresponding parts throughout:
[0039] [Figure 1A] FIG. 1 is a block diagram illustrating a portable multifunction device with a touch-sensitive display in accordance with some embodiments.
[0040] [Figure 1B] FIG. 2 is a block diagram illustrating exemplary components for event processing according to some embodiments.
[0041] [Figure 2] FIG. 1 illustrates a portable multifunction device with a touch screen in accordance with some embodiments.
[0042] [Figure 3] FIG. 1 is a block diagram of an exemplary multifunction device having a display and a touch-sensitive surface in accordance with some embodiments.
[0043] [Figure 4A] 1 illustrates an exemplary user interface for a menu of applications on a portable multifunction device in accordance with some embodiments.
[0044] [Figure 4B]1 illustrates an exemplary user interface for a multifunction device having a touch-sensitive surface that is separate from the display in accordance with some embodiments.
[0045] [Figure 5A] 1 illustrates a personal electronic device according to some embodiments.
[0046] [Figure 5B] FIG. 1 is a block diagram illustrating a personal electronic device according to some embodiments.
[0047] [Figure 5C] 1 illustrates example components of a personal electronic device having a touch-sensitive display and intensity sensor according to some embodiments. [Figure 5D] 1 illustrates example components of a personal electronic device having a touch-sensitive display and intensity sensor according to some embodiments.
[0048] [Figure 5E] FIG. 1 illustrates exemplary components and a user interface of a personal electronic device, according to some embodiments. [Figure 5F] FIG. 1 illustrates exemplary components and a user interface of a personal electronic device, according to some embodiments. [Figure 5G] FIG. 1 illustrates exemplary components and a user interface of a personal electronic device, according to some embodiments. [Figure 5H] FIG. 1 illustrates exemplary components and a user interface of a personal electronic device, according to some embodiments.
[0049] [Figure 6A] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6B]10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6C] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6D] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6E] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6F] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6G] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6H] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6I] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6J] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6K] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6L] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6M]10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6N] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6O] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6P] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6Q] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6R] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6S] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6T] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items. [Figure 6U] 10 illustrates an exemplary user interface for managing watch faces based on depth data of previously captured media items.
[0050] [Figure 7] FIG. 10 is a flow diagram illustrating a method for managing watch faces based on depth data of previously captured media items.
[0051] [Figure 8A]1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8B] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8C] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8D] , [Figure 8D-CONT] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8E] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8F] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8G] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8H] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8I] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8J] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8K] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8L] 1 illustrates an exemplary user interface for managing clock faces based on geographic data. [Figure 8M] 1 illustrates an exemplary user interface for managing clock faces based on geographic data.
[0052] [Figure 9] FIG. 1 is a flow diagram illustrating a method for managing clock faces based on geographic data.
[0053] [Figure 10A] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10B] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10C] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10D] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10E] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10F] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10G] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10H] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10I] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10J] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10K] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10L] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10M]1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10N] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10O] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10P] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10Q] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10R] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10S] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10T] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10U] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10V] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system. [Figure 10W] 1 illustrates an exemplary user interface for managing clock faces based on state information of a computer system.
[0054] [Figure 11] FIG. 1 is a flow diagram illustrating a method for managing a clock face based on state information of a computer system.
[0055] [Figure 12A] 1 illustrates an exemplary user interface related to time management. [Figure 12B] 1 illustrates an exemplary user interface related to time management. [Figure 12C] 1 illustrates an exemplary user interface related to time management. [Figure 12D] 1 illustrates an exemplary user interface related to time management. [Figure 12E] 1 illustrates an exemplary user interface related to time management. [Figure 12F] 1 illustrates an exemplary user interface related to time management. [Figure 12G] 1 illustrates an exemplary user interface related to time management. [Figure 12H] 1 illustrates an exemplary user interface related to time management. [Figure 12I] 1 illustrates an exemplary user interface related to time management. [Figure 12J] 1 illustrates an exemplary user interface related to time management. [Figure 12K] 1 illustrates an exemplary user interface related to time management. [Figure 12L] 1 illustrates an exemplary user interface related to time management. [Figure 12M] 1 illustrates an exemplary user interface related to time management. [Figure 12N] 1 illustrates an exemplary user interface related to time management. [Figure 12O] 1 illustrates an exemplary user interface related to time management. [Figure 12P] 1 illustrates an exemplary user interface related to time management. [Figure 12Q] 1 illustrates an exemplary user interface related to time management. [Figure 12R] 1 illustrates an exemplary user interface related to time management. [Figure 12S] 1 illustrates an exemplary user interface related to time management. [Figure 12T] 1 illustrates an exemplary user interface related to time management. [Figure 12U] 1 illustrates an exemplary user interface related to time management. [Figure 12V] 1 illustrates an exemplary user interface related to time management. [Figure 12W] 1 illustrates an exemplary user interface related to time management.
[0056] [Figure 13] FIG. 1 is a flow diagram illustrating a method relating to a user interface for time management.
[0057] [Figure 14A] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14B] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14C] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14D] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14E] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14F] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14G] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14H] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14I] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14J] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14K] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14L] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14M] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14N] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14O] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14P] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14Q] 1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items. [Figure 14R]1 illustrates an exemplary user interface for editing a user interface based on depth data of previously captured media items.
[0058] [Figure 15] 1 is a flow diagram illustrating a method relating to editing a user interface based on depth data of previously captured media items. DETAILED DESCRIPTION OF THE INVENTION
[0059] The following description sets forth example methods, parameters, etc. However, it should be recognized that such description is not intended as a limitation on the scope of the present disclosure, but rather is provided as a description of example embodiments.
[0060] There is a need for an electronic device that provides an efficient method and interface for managing a watch face. For example, there is a need for a device that enables an intuitive and efficient way to display a watch face based on previously captured media items including depth data. There is also a need for a device that enables an intuitive and efficient way to display a watch face that includes information based on geographic location data, for example. There is also a need for a device that enables an intuitive and efficient way to display a watch face that convincingly shows the current time, for example. There is also a need for a device that allows adjusting and changing the background and complications of a watch face in an intuitive and efficient way. Such technology reduces the cognitive burden on a user managing a watch face and increases productivity. Furthermore, such technology can reduce processor and battery power that would otherwise be wasted on redundant user input.
[0061] Below, FIGS. 1A-1B, 2, 3, 4A-4B, and 5A-5H provide descriptions of example devices for performing techniques for managing event notifications.
[0062] 6A-6U illustrate exemplary user interfaces for managing watch faces based on depth data of previously captured media items. FIG. 7 is a flow diagram illustrating a method for managing watch faces based on depth data of previously captured media items, according to some embodiments. The user interfaces of FIGS. 6A-6U are used to illustrate processes described below, including the process of FIG. 7.
[0063] 8A-8M show example user interfaces for managing clock faces based on geographic data. FIG. 9 is a flow diagram illustrating a method for managing clock faces based on geographic data, according to some embodiments. The user interfaces of FIGS. 8A-8M are used to illustrate processes described below, including the process of FIG. 9.
[0064] 10A-10W illustrate exemplary user interfaces for managing clock faces based on computer system state information. FIG. 11 is a flow diagram illustrating a method for managing clock faces based on computer system state information, according to some embodiments. The user interfaces of FIGS. 10A-10W are used to illustrate processes described below, including the process of FIG. 11.
[0065] 12A-12W illustrate exemplary user interfaces related to time management. FIG. 13 is a flow diagram illustrating a method related to a user interface for time management. The user interfaces of FIGS. 12A-12W are used to illustrate processes described below, including the process of FIG. 13.
[0066] 14A-14R illustrate exemplary user interfaces for editing a user interface based on depth data of previously captured media items. The user interfaces of FIGS. 14A-14R are used to illustrate processes described below, including the process of FIG. 15.
[0067] Furthermore, for methods described herein in which one or more steps are contingent on one or more conditions being satisfied, it should be understood that the described method can be repeated in multiple iterations, such that over the course of the iterations, all of the conditions on which the method steps are contingent are satisfied in different iterations of the method. For example, if a method requires performing a first step if a condition is satisfied and a second step if the condition is not satisfied, one skilled in the art will understand that the steps recited in the claim are repeated in a particular order until the conditions are satisfied and then no longer satisfied. Thus, a method described with one or more steps that depend on one or more conditions being satisfied can be rewritten as a method that is repeated until each condition recited in the method is satisfied. However, this is not required for system or computer-readable medium claims in which the system or computer-readable medium includes instructions for performing a contingent operation based on the satisfaction of a corresponding one or more conditions, and thus it can be determined whether a contingency is satisfied without explicitly repeating the method steps until all of the conditions on which the method steps are contingent are satisfied. Those skilled in the art will also understand that, as with methods that include contingency steps, the system or computer-readable storage medium may repeat the steps of the method as many times as necessary to ensure that all contingency steps are performed.
[0068] In the following description, terms such as "first" and "second" are used to describe various elements, but these elements should not be limited by these terms. In some embodiments, these terms are used to distinguish one element from another. For example, a first touch can be referred to as a second touch, and similarly, a second touch can be referred to as a first touch, without departing from the scope of various described embodiments. In some embodiments, a first touch and a second touch are two separate references to the same touch. Although a first touch and a second touch are both touches, they are not the same touch.
[0069] The terminology used in the description of the various embodiments set forth herein is for the purpose of describing particular embodiments only and is not intended to be limiting. In the description of the various embodiments set forth and in the appended claims, the singular forms "a," "an," and "the" are intended to include the plural forms as well, unless the context clearly dictates otherwise. Also, as used herein, the term "and / or" should be understood to refer to and include any and all possible combinations of one or more of the associated listed items. It will be further understood that the terms "includes," "including," "comprises," and / or "comprising," as used herein, specify the presence of stated features, integers, steps, operations, elements, and / or components, but do not exclude the presence or addition of one or more other features, integers, steps, operations, elements, components, and / or groups thereof.
[0070] The term "if" is interpreted, optionally, depending on the context, to mean "when" or "upon," or "in response to determining" or "in response to detecting." Similarly, the phrases "if it is determined" or "if [a stated condition or event] is detected" are interpreted, optionally, depending on the context, to mean "upon determining" or "in response to determining," or "upon detecting [the stated condition or event]" or "in response to detecting [the stated condition or event]."
[0071] Embodiments of electronic devices, user interfaces for such devices, and associated processes for using such devices are described. In some embodiments, the device is a portable communication device, such as a mobile phone, that also includes other functions, such as PDA and / or music player functions. Exemplary embodiments of portable multifunction devices include, but are not limited to, the iPhone®, iPod Touch®, and iPad® devices from Apple Inc. of Cupertino, California. Optionally, other portable electronic devices, such as a laptop computer or tablet computer having a touch-sensitive surface (e.g., a touchscreen display and / or touchpad), are also used. It should also be understood that in some embodiments, the device is not a portable communication device, but rather a desktop computer having a touch-sensitive surface (e.g., a touchscreen display and / or touchpad). In some embodiments, the electronic device is a computer system in communication (e.g., via wired communication, via wireless communication) with a display generation component. The display generation component is configured to provide a visual output, such as a display via a CRT display, a display via an LED display, or a display via image projection. In some embodiments, the display generation component is integrated with the computer system. In some embodiments, the display generation component is separate from the computer system. As used herein, "displaying" content includes displaying content (e.g., video data rendered or decoded by display controller 156) by transmitting data (e.g., image data or video data) over a wired or wireless connection to an integrated or external display generation component to visually generate the content.
[0072] In the following discussion, electronic devices are described that include a display and a touch-sensitive surface. However, it should be understood that the electronic device optionally includes one or more other physical user-interface devices, such as a physical keyboard, a mouse, and / or a joystick.
[0073] The device typically supports a variety of applications such as one or more of a drawing application, a presentation application, a word processing application, a website creation application, a disc authoring application, a spreadsheet application, a gaming application, a telephone application, a video conferencing application, an email application, an instant messaging application, a training support application, a photo management application, a digital camera application, a digital video camera application, a web browsing application, a digital music player application, and / or a digital video player application.
[0074] Various applications running on the device optionally use at least one common physical user-interface device, such as a touch-sensitive surface. One or more features of the touch-sensitive surface and corresponding information displayed on the device are optionally adjusted and / or changed for each application and / or within individual applications. In this way, the common physical architecture of the device (such as the touch-sensitive surface) optionally supports various applications with user interfaces that are intuitive and transparent to the user.
[0075] Attention is now directed to embodiments of portable devices with touch-sensitive displays. FIG. 1A is a block diagram illustrating portable multifunction device 100 having touch-sensitive display system 112, according to some embodiments. Touch-sensitive display 112 may conveniently be referred to as a "touch screen" and may also be known or referred to as a "touch-sensitive display system." Device 100 includes memory 102 (optionally including one or more computer-readable storage media), memory controller 122, one or more processing units (CPUs) 120, peripherals interface interface 118, RF circuitry 108, audio circuitry 110, speaker 111, microphone 113, input / output (I / O) subsystem 106, other input control devices 116, and external port 124. Device 100 optionally includes one or more optical sensors 164. Device 100 optionally includes one or more contact intensity sensors 165 that detect the intensity of a contact on device 100 (e.g., a touch-sensitive surface, such as touch-sensitive display system 112 of device 100). Device 100 optionally includes one or more tactile output generators 167 that generate tactile output on device 100 (e.g., generate tactile output on a touch-sensitive surface such as touch-sensitive display system 112 of device 100 or touchpad 355 of device 300). These components optionally communicate via one or more communication buses or signal lines 103.
[0076] As used herein and in the claims, the term “intensity” of a contact on a touch-sensitive surface refers to the force or pressure (force per unit area) of a contact (e.g., a finger contact) on the touch-sensitive surface, or a proxy for the force or pressure of a contact on the touch-sensitive surface. The intensity of a contact has a range of values that includes at least four distinct values and more typically includes hundreds (e.g., at least 256) distinct values. The intensity of a contact is optionally determined (or measured) using various techniques and various sensors or combinations of sensors. For example, one or more force sensors under or adjacent to the touch-sensitive surface are optionally used to measure force at various points on the touch-sensitive surface. In some implementations, force measurements from multiple force sensors are combined (e.g., weighted averaged) to determine an estimated force of the contact. Similarly, a pressure-sensitive tip of a stylus is optionally used to determine the pressure of the stylus on the touch-sensitive surface. Alternatively, the size and / or change in the contact area detected on the touch-sensitive surface, the capacitance and / or change in the capacitance of the touch-sensitive surface proximate the contact, and / or the resistance and / or change in the capacitance of the touch-sensitive surface proximate the contact are optionally used as a surrogate for the force or pressure of the contact on the touch-sensitive surface. In some implementations, the surrogate measure of the force or pressure of the contact is used directly to determine whether an intensity threshold is exceeded (e.g., the intensity threshold is described in units corresponding to the surrogate measure). In some implementations, the surrogate measure of the contact force or pressure is converted to an estimate of the force or pressure, and the estimate of the force or pressure is used to determine whether an intensity threshold is exceeded (e.g., the intensity threshold is a pressure threshold measured in units of pressure). Using contact intensity as an attribute of user input allows users to access additional device functionality (e.g., on a touch-sensitive display) and / or receive user input (e.g., via a touch-sensitive display, touch-sensitive surface, or physical / mechanical controls such as knobs or buttons) that may not otherwise be accessible to users on devices of reduced size that have limited footprint for displaying affordances.
[0077] As used herein and in the claims, the term “tactile output” refers to a physical displacement of a device relative to a previous position of the device, a physical displacement of a component of the device (e.g., a touch-sensitive surface) relative to another component of the device (e.g., a housing), or a displacement of a component relative to the center of mass of the device, that will be detected by a user with the user's sense of touch. For example, in a situation where a device or a component of a device is in contact with a touch-sensitive surface of a user (e.g., the fingers, palm, or other part of the user's hand), the tactile output produced by the physical displacement will be interpreted by the user as a tactile sensation corresponding to a perceived change in a physical property of the device or a component of the device. For example, movement of a touch-sensitive surface (e.g., a touch-sensitive display or trackpad) is optionally interpreted by the user as a “downclick” or “upclick” of a physical actuator button. In some cases, a user feels a tactile sensation such as a “downclick” or “upclick” even when there is no movement of a physical actuator button associated with the touch-sensitive surface that is physically pressed (e.g., displaced) by the user's action. As another example, movement of a touch-sensitive surface is optionally interpreted or perceived by a user as "roughness" of the touch-sensitive surface, even if there is no change in the smoothness of the touch-sensitive surface. While such user interpretation of touch depends on the user's personal sensory perception, there are many sensory perceptions of touch that are common to the majority of users. Thus, when a tactile output is described as corresponding to a particular sensory perception of a user (e.g., "upclick," "downclick," "roughness"), unless otherwise specified, the generated tactile output corresponds to a physical displacement of the device, or a component of the device, that produces the described sensory perception for a typical (or average) user.
[0078] It should be understood that device 100 is only one example of a portable multifunction device, and that device 100 optionally has more or fewer components than those shown, optionally combines two or more components, or optionally has a different configuration or arrangement of its components. The various components shown in Figure 1A are implemented in hardware, software, or a combination of both hardware and software, including one or more signal processing circuits and / or application specific integrated circuits.
[0079] Memory 102 optionally includes high-speed random access memory, and optionally includes non-volatile memory, such as one or more magnetic disk storage devices, flash memory devices, or other non-volatile solid-state memory devices. Memory controller 122 optionally controls access to memory 102 by other components of device 100.
[0080] Peripheral interface 118 may be used to couple input and output peripherals of the device to CPU 120 and memory 102. One or more processors 120 operate or execute various software programs (e.g., computer programs (e.g., including instructions)) and / or instruction sets stored in memory 102 to perform various functions and process data for device 100. In some embodiments, peripheral interface 118, CPU 120, and memory controller 122 are optionally implemented on a single chip, such as chip 104. In some other embodiments, they are optionally implemented on separate chips.
[0081] RF (radio frequency) circuitry 108 transmits and receives RF signals, also called electromagnetic signals. RF circuitry 108 converts electrical signals to electromagnetic signals or electromagnetic signals to electrical signals and communicates with communication networks and other communication devices via electromagnetic signals. RF circuitry 108 optionally includes well-known circuitry for performing these functions, including, but not limited to, an antenna system, an RF transceiver, one or more amplifiers, a tuner, one or more oscillators, a digital signal processor, a CODEC chipset, a subscriber identity module (SIM) card, memory, etc. RF circuitry 108 optionally communicates via wireless communication with networks, such as the Internet, also called the World Wide Web (WWW), an intranet, and / or wireless networks, such as cellular telephone networks, wireless local area networks (LANs) and / or metropolitan area networks (MANs), and with other devices. RF circuitry 108 optionally includes well-known circuitry for detecting near field communication (NFC) fields, such as by short-range radios. Wireless communication optionally includes, but is not limited to, Global System for Mobile Communications (GSM), Enhanced Data GSM Environment (EDGE), high-speed downlink packet access (HSDPA), high-speed uplink packet access (HSUPA), Evolution, Data-Only (EV-DO), HSPA, HSPA+, Dual-Cell HSPA (DC-HSPA), Long Term Evolution (LTE), and other standards.evolution (LTE), near field communications (NFC), wideband code division multiple access (W-CDMA), code division multiple access (CDMA), time division multiple access (TDMA), Bluetooth, Bluetooth Low Energy (BTLE), Wireless Fidelity (Wi-Fi) (e.g., IEEE 802.11a, IEEE 802.11b, IEEE 802.11g, IEEE 802.11n, and / or IEEE 802.11ac), voice over Internet Protocol (VoIP), Wi-MAX, protocols for email (e.g., Internet message access protocol (IMAP) and / or post office protocol (POP)), instant messaging (e.g., extensible messaging and presence protocol), The present invention may use any of a number of communication standards, protocols, and technologies, including the Session Initiation Protocol for Instant Messaging and Presence Leveraging Extensions (XMPP), the Session Initiation Protocol for Instant Messaging and Presence Leveraging Extensions (SIMPLE), the Instant Messaging and Presence Service (IMPS), and / or the Short Message Service (SMS), or any other suitable communication protocol, including communication protocols not yet developed as of the filing date of this application.
[0082] Audio circuit 110, speaker 111, and microphone 113 provide an audio interface between a user and device 100. Audio circuit 110 receives audio data from peripherals interface 118, converts the audio data into electrical signals, and transmits the electrical signals to speaker 111. Speaker 111 converts the electrical signals into sound waves audible to humans. Audio circuit 110 also receives electrical signals converted from sound waves by microphone 113. Audio circuit 110 converts the electrical signals into audio data and transmits the audio data to peripherals interface 118 for processing. The audio data is optionally retrieved from and / or transmitted to memory 102 and / or RF circuit 108 by peripherals interface 118. In some embodiments, audio circuit 110 also includes a headset jack (e.g., 212 in FIG. 2 ). The headset jack provides an interface between the audio circuitry 110 and a detachable audio input / output peripheral, such as an output-only headphone or a headset with both an output (e.g., a single-ear or double-ear headphone) and an input (e.g., a microphone).
[0083] I / O subsystem 106 couples input / output peripherals on device 100, such as touchscreen 112 and other input control devices 116, to peripheral interface 118. I / O subsystem 106 optionally includes display controller 156, optical sensor controller 158, depth camera controller 169, intensity sensor controller 159, haptic feedback controller 161, and one or more input controllers 160 for other input or control devices. One or more input controllers 160 receive / send electrical signals from / to other input control devices 116. Other input control devices 116 optionally include physical buttons (e.g., push buttons, rocker buttons, etc.), dials, slider switches, joysticks, click wheels, etc. In some embodiments, input controller(s) 160 are optionally coupled to any (or none) of a keyboard, an infrared port, a USB port, and a pointer device such as a mouse. The one or more buttons (e.g., 208 in FIG. 2 ) optionally include up / down buttons for volume control of speaker 111 and / or microphone 113. The one or more buttons optionally include push buttons (e.g., 206 in FIG. 2 ). In some embodiments, the electronic device is a computer system in communication with one or more input devices (e.g., via wireless communication over wired communication). In some embodiments, the one or more input devices include a touch-sensitive surface (e.g., a trackpad as part of a touch-sensitive display). In some embodiments, the one or more input devices include one or more camera sensors (e.g., one or more optical sensors 164 and / or one or more depth camera sensors 175), such as for tracking user gestures (e.g., hand gestures and / or air gestures) as input. In some embodiments, the one or more input devices are integrated with the computer system. In some embodiments, the one or more input devices are separate from the computer system.In some embodiments, an air gesture is a gesture that is detected without the user touching an input element that is part of the device (or independent of an input element that is part of the device) and is based on detected movement of a part of the user's body, including movement of the user's body relative to an absolute reference (e.g., the angle of the user's arm relative to the ground, or the distance of the user's hand relative to the ground), movement of the user's body relative to another part of the user's body (e.g., movement of the user's hand relative to the user's shoulder, movement of the user's other hand relative to one of the user's hands, and / or movement of the user's fingers relative to another finger or part of the user's hand), and / or absolute movement of a part of the user's body (e.g., a tap gesture that includes movement of the hand in a predetermined pose by a predetermined amount and / or speed, or a shake gesture that includes rotation of a part of the user's body at a predetermined speed or amount).
[0084] A quick press of a push button optionally unlocks the touchscreen 112 or optionally initiates the process of unlocking the device using gestures on the touchscreen, as described in U.S. Patent Application Serial No. 11 / 322,549, filed December 23, 2005, "Unlocking a Device by Performing Gestures on an Unlock Image," U.S. Patent No. 7,657,849, which is incorporated herein by reference in its entirety. A longer press of a push button (e.g., 206) optionally turns power on or off to the device 100. The functionality of one or more of the buttons is optionally customizable by the user. The touchscreen 112 is used to implement virtual or soft buttons and one or more soft keyboards.
[0085] Touch-sensitive display 112 provides an input and output interface between the device and a user. Display controller 156 receives and / or sends electrical signals to touchscreen 112. Touchscreen 112 displays visual output to the user. This visual output optionally includes graphics, text, icons, animation, and any combination thereof (collectively "graphics"). In some embodiments, some or all of the visual output optionally corresponds to user interface objects.
[0086] Touchscreen 112 has a touch-sensitive surface, sensor, or set of sensors that accepts input from a user based on haptic and / or tactile contact. Touchscreen 112 and display controller 156 (along with any associated modules and / or instruction sets in memory 102) detects contacts (and any movement or cessation of contact) on touchscreen 112 and translates the detected contacts into interactions with user interface objects (e.g., one or more softkeys, icons, web pages, or images) displayed on touchscreen 112. In an exemplary embodiment, the point of contact between touchscreen 112 and the user corresponds to the user's finger.
[0087] Touchscreen 112 optionally uses LCD (liquid crystal display), LPD (light emitting polymer display), or LED (light emitting diode) technology, although other display technologies are used in other embodiments. Touchscreen 112 and display controller 156 optionally use any of a number of now known or later developed touch sensing technologies to detect contact and any movement or disruption thereof, including, but not limited to, capacitive, resistive, infrared, and surface acoustic wave technologies, as well as other proximity sensor arrays or other elements that determine one or more points of contact with touchscreen 112. In an exemplary embodiment, projected mutual capacitance sensing technology is used, such as that found in the iPhone® and iPod Touch® from Apple Inc. of Cupertino, California.
[0088] The touch-sensitive display in some embodiments of touchscreen 112 is optionally similar to the multi-touch-sensing touchpad described in U.S. Patent Nos. 6,323,846 (Westerman et al.), 6,570,557 (Westerman et al.), and / or 6,677,932 (Westerman), and / or U.S. Patent Application Publication No. 2002 / 0015024 A1, each of which is incorporated by reference herein in its entirety. However, touchscreen 112 displays visual output from device 100, whereas touch-sensitive touchpads do not provide visual output.
[0089] The touch-sensitive display in some embodiments of touch screen 112 is described in the following applications: (1) U.S. patent application Ser. No. 11 / 381,313, filed May 2, 2006, entitled "Multipoint Touch Surface Controller," (2) U.S. patent application Ser. No. 10 / 840,862, filed May 6, 2004, entitled "Multipoint Touchscreen," (3) U.S. patent application Ser. No. 10 / 903,964, filed July 30, 2004, entitled "Gestures For Touch Sensitive Input Devices," (4) U.S. patent application Ser. No. 11 / 048,264, filed January 31, 2005, entitled "Gestures For Touch Sensitive Input Devices," and (5) U.S. patent application Ser. No. 11 / 038,590, filed January 18, 2005, entitled "Mode-Based Graphical User Interfaces For Touch Sensitive Input Devices." No. 11 / 228,758, filed September 16, 2005, entitled "Virtual Input Device Placement On A Touch Screen User Interface," (7) U.S. Patent Application No. 11 / 228,700, filed September 16, 2005, entitled "Operation Of A Computer With A Touch Screen Interface," (8) U.S. Patent Application No. 11 / 228,737, filed September 16, 2005, entitled "Activating Virtual Keys Of A Touch-Screen Virtual Keyboard," and (9) U.S. Patent Application No. 11 / 367,749, filed March 3, 2006, entitled "Multi-Functional Hand-Held Device," all of which are incorporated herein by reference in their entireties.
[0090] Touchscreen 112 optionally has a video resolution greater than 100 dpi. In some embodiments, the touchscreen has a video resolution of approximately 160 dpi. A user optionally contacts touchscreen 112 using any suitable object or accessory, such as a stylus, a finger, or the like. In some embodiments, the user interface is designed to operate primarily using finger-based contact and gestures, which may not be as precise as stylus-based input due to the larger contact area of a finger on the touchscreen. In some embodiments, the device translates the coarse finger input into precise pointer / cursor positions or commands to perform the action desired by the user.
[0091] In some embodiments, in addition to the touchscreen, device 100 optionally includes a touchpad for activating or deactivating certain functions. In some embodiments, the touchpad is a touch-sensitive area of the device that, unlike the touchscreen, does not display visual output. The touchpad is optionally a touch-sensitive surface separate from touchscreen 112 or an extension of the touch-sensitive surface formed by the touchscreen.
[0092] Device 100 also includes a power system 162 that provides power to the various components. Power system 162 optionally includes a power management system, one or more power sources (e.g., battery, alternating current (AC)), a recharging system, power failure detection circuitry, power converters or inverters, power status indicators (e.g., light emitting diodes (LEDs)), and any other components associated with generating, managing, and distributing electrical power within a portable device.
[0093] Device 100 also optionally includes one or more optical sensors 164. FIG. 1A shows an optical sensor coupled to optical sensor controller 158 in I / O subsystem 106. Optical sensor 164 optionally includes a charge-coupled device (CCD) or a complementary metal-oxide semiconductor (CMOS) phototransistor. Optical sensor 164 receives light from the environment projected through one or more lenses and converts the light into data representing an image. Optical sensor 164 optionally works in conjunction with imaging module 143 (also called a camera module) to capture still images or video. In some embodiments, the optical sensor is located on the back side of device 100 opposite touchscreen display 112 on the front of the device, so that the touchscreen display can be used as a viewfinder for capturing still images and / or video. In some embodiments, the optical sensor is located on the front of the device so that an image of a user is optionally captured for video conferencing while the user views other video conference participants on the touchscreen display. In some embodiments, the position of the optical sensor 164 can be changed by the user (e.g., by rotating the lens and sensor within the device housing), so that a single optical sensor 164 is used for both video conferencing and capturing still images and / or video, along with a touchscreen display.
[0094] Device 100 also optionally includes one or more depth camera sensors 175. FIG. 1A shows a depth camera sensor coupled to depth camera controller 169 in I / O subsystem 106. Depth camera sensor 175 receives data from the environment and creates a three-dimensional model of an object (e.g., a face) in a scene from a viewpoint (e.g., the depth camera sensor). In some embodiments, in conjunction with imaging module 143 (also referred to as a camera module), depth camera sensor 175 is optionally used to determine a depth map of different portions of an image captured by imaging module 143. In some embodiments, a depth camera sensor is located on the front of device 100 to obtain images of the user with depth information for videoconferences and to capture selfie images with depth map data while the user views other videoconference participants on a touchscreen display. In some embodiments, depth camera sensor 175 is located on the back of the device, or on the back and front of device 100. In some embodiments, the position of the depth camera sensor 175 can be changed by the user (e.g., by rotating the lens and sensor within the device housing), so that the depth camera sensor 175 is used for both video conferencing and capturing still images and / or video, in conjunction with a touchscreen display.
[0095] In some embodiments, a depth map (e.g., a depth map image) contains information (e.g., values) about the distance of objects in a scene from a viewpoint (e.g., a camera, light sensor, depth camera sensor). In one embodiment of a depth map, each depth pixel defines a position on the Z axis of the viewpoint where its corresponding two-dimensional pixel is located. In some embodiments, a depth map is made up of pixels, each defined by a value (e.g., 0 to 255). For example, a value of "0" represents a pixel located furthest in a "3D" scene, and a value of "255" represents a pixel located closest to the viewpoint (e.g., a camera, light sensor, depth camera sensor) in the "3D" scene. In other embodiments, a depth map represents the distance between objects in a scene and the plane of the viewpoint. In some embodiments, a depth map contains information about the relative depth of various features of an object of interest as seen by a depth camera (e.g., the relative depth of the eyes, nose, mouth, and ears on a user's face). In some embodiments, the depth map contains information that allows the device to determine the contours of the target object in the z direction.
[0096] Device 100 also optionally includes one or more contact intensity sensors 165. FIG. 1A shows a contact intensity sensor coupled to intensity sensor controller 159 in I / O subsystem 106. Contact intensity sensor 165 optionally includes one or more piezoresistive strain gauges, capacitive force sensors, electric force sensors, piezoelectric force sensors, optical force sensors, capacitive touch-sensitive surfaces, or other intensity sensors (e.g., sensors used to measure the force (or pressure) of a contact on a touch-sensitive surface). Contact intensity sensor 165 receives contact intensity information (e.g., pressure information, or a proxy for pressure information) from the environment. In some embodiments, at least one contact intensity sensor is juxtaposed with or proximate to the touch-sensitive surface (e.g., touch-sensitive display system 112). In some embodiments, at least one contact intensity sensor is located on the back of device 100, opposite touchscreen display 112, which is located on the front of device 100.
[0097] Device 100 also optionally includes one or more proximity sensors 166. Figure 1A shows proximity sensor 166 coupled to peripherals interface 118. Alternatively, proximity sensor 166 is optionally coupled to input controller 160 within I / O subsystem 106. Proximity sensor 166 optionally functions as described in U.S. patent application Ser. Nos. 11 / 241,839, "Proximity Detector In Handheld Device," 11 / 240,788, "Proximity Detector In Handheld Device," 11 / 620,702, "Using Ambient Light Sensor To Augment Proximity Sensor Output," 11 / 586,862, "Automated Response To And Sensing Of User Activity In Portable Devices," and 11 / 638,251, "Methods And Systems For Automatic Configuration Of Peripherals," which are incorporated herein by reference in their entireties. In some embodiments, the proximity sensor turns off and disables touchscreen 112 when the multifunction device is placed near the user's ear (e.g., when the user is making a phone call).
[0098] Device 100 also optionally includes one or more tactile output generators 167. FIG. 1A shows tactile output generators coupled to haptic feedback controller 161 in I / O subsystem 106. Tactile output generator 167 optionally includes one or more electroacoustic devices, such as speakers or other audio components, and / or electromechanical devices that convert energy into linear motion, such as motors, solenoids, electroactive polymers, piezoelectric actuators, electrostatic actuators, or other tactile output generating components (e.g., components that convert electrical signals into tactile output on the device). Contact intensity sensor 165 receives tactile feedback generation instructions from haptic feedback module 133 and generates a tactile output on device 100 that can be sensed by a user of device 100. In some embodiments, at least one tactile output generator is juxtaposed with or proximate to a touch-sensitive surface (e.g., touch-sensitive display system 112) and generates a tactile output, optionally by moving the touch-sensitive surface vertically (e.g., in / out of the surface of device 100) or horizontally (e.g., back and forth in the same plane as the surface of device 100). In some embodiments, at least one tactile output generator sensor is located on the back of device 100, opposite touchscreen display 112, which is located on the front of device 100.
[0099] Device 100 also optionally includes one or more accelerometers 168. FIG. 1A shows accelerometer 168 coupled to peripherals interface 118. Alternatively, accelerometer 168 is optionally coupled to input controller 160 in I / O subsystem 106. Accelerometer 168 optionally functions as described in U.S. Patent Application Publication No. 20050190059, "Acceleration-based Theft Detection System for Portable Electronic Devices," and U.S. Patent Application Publication No. 20060017692, "Methods And Apparatuses For Operating A Portable Device Based On An Accelerometer," both of which are incorporated herein by reference in their entireties. In some embodiments, information is displayed on the touchscreen display in portrait or landscape orientation based on an analysis of data received from the one or more accelerometers. In addition to accelerometer(s) 168, device 100 optionally includes a magnetometer and a GPS (or GLONASS or other global navigation system) receiver for obtaining information about the location and orientation (e.g., vertical or horizontal) of device 100.
[0100] In some embodiments, software components stored in memory 102 include operating system 126, communication module (or instruction set) 128, touch / motion module (or instruction set) 130, graphics module (or instruction set) 132, text input module (or instruction set) 134, Global Positioning System (GPS) module (or instruction set) 135, and applications (or instruction set) 136. Additionally, in some embodiments, memory 102 (FIG. 1A) or 370 (FIG. 3) stores device / global internal state 157, as shown in FIGS. 1A and 3. Device / global internal state 157 includes one or more of: active application state indicating which applications, if any, are currently active; display state indicating which applications, views, or other information occupy various regions of touchscreen display 112; sensor state including information obtained from the device's various sensors and input control devices 116; and location information regarding the device's location and / or orientation.
[0101] Operating system 126 (e.g., Darwin, RTXC, LINUX, UNIX, OS X, iOS, WINDOWS, or an embedded operating system such as VxWorks) includes various software components and / or drivers that control and manage general system tasks (e.g., memory management, storage device control, power management, etc.) and facilitate communication between various hardware and software components.
[0102] Communications module 128 facilitates communication with other devices via one or more external ports 124 and also includes various software components for processing data received by RF circuitry 108 and / or external port 124. External port 124 (e.g., Universal Serial Bus (USB), FIREWIRE, etc.) is adapted to couple to other devices directly or indirectly via a network (e.g., the Internet, wireless LAN, etc.). In some embodiments, the external port is a multi-pin (e.g., 30-pin) connector that is the same as, similar to, and / or compatible with the 30-pin connector used on iPod® (trademark of Apple Inc.) devices.
[0103] Contact / motion module 130, optionally in conjunction with display controller 156, detects contact with touchscreen 112 and other touch-sensing devices (e.g., a touchpad or physical click wheel). Contact / motion module 130 includes various software components for performing various operations related to contact detection, such as determining whether contact occurs (e.g., detecting a finger-down event), determining the intensity of the contact (e.g., the force or pressure of the contact, or a surrogate for the force or pressure of the contact), determining whether there is contact movement and tracking the movement across the touch-sensitive surface (e.g., detecting one or more finger-drag events), and determining whether the contact has ceased (e.g., detecting a finger-up event or an interruption of the contact). Contact / motion module 130 receives contact data from the touch-sensitive surface. Determining the movement of the contact, as represented by the series of contact data, optionally includes determining the speed (magnitude), velocity (magnitude and direction), and / or acceleration (change in magnitude and / or direction) of the contact. These actions are optionally applied to a single contact (e.g., a single finger contact) or multiple simultaneous contacts (e.g., "multi-touch" / multiple finger contacts). In some embodiments, contact / motion module 130 and display controller 156 detect contacts on the touchpad.
[0104] In some embodiments, contact / motion module 130 uses a set of one or more intensity thresholds to determine whether an action has been performed by a user (e.g., to determine whether a user has “clicked” on an icon). In some embodiments, at least a subset of the intensity thresholds are determined according to software parameters (e.g., the intensity thresholds are not determined by the activation threshold of a particular physical actuator, but can be adjusted without modifying the physical hardware of device 100). For example, the mouse “click” threshold of a trackpad or touchscreen display can be set to any of a wide range of predefined thresholds without modifying the trackpad or touchscreen display hardware. Additionally, in some implementations, a user of the device is provided with a software setting to adjust one or more of the set of intensity thresholds (e.g., by adjusting individual intensity thresholds and / or by adjusting multiple intensity thresholds at once via a system-level click “intensity” parameter).
[0105] Contact / motion module 130 optionally detects gesture input by a user. Different gestures on the touch-sensitive surface have different contact patterns (e.g., different movements, timing, and / or intensities of detected contacts). Thus, gestures are optionally detected by detecting particular contact patterns. For example, detecting a finger tap gesture includes detecting a finger down event, followed by detecting a finger up (lift off) event at the same position (or substantially the same position) as the finger down event (e.g., the position of an icon). As another example, detecting a finger swipe gesture on the touch-sensitive surface includes detecting a finger down event, followed by one or more finger drag events, followed by detecting a finger up (lift off) event.
[0106] Graphics module 132 includes various known software components that render and display graphics on touchscreen 112 or other display, including components that modify the visual impact (e.g., brightness, transparency, saturation, contrast, or other visual properties) of the displayed graphics. As used herein, the term "graphic" includes any object that can be displayed to a user, including, but not limited to, text, web pages, icons (such as user interface objects including soft keys), digital images, video, animation, etc.
[0107] In some embodiments, graphics module 132 stores data representing graphics to be used. Each graphic is optionally assigned a corresponding code. Graphics module 132 receives one or more codes specifying the graphics to be displayed, including coordinate data and other graphic property data, as needed, from an application or the like, and then generates screen image data to output to display controller 156.
[0108] The tactile feedback module 133 includes various software components for generating instructions used by the tactile output generator(s) 167 to generate tactile outputs at one or more locations on the device 100 in response to a user's interaction with the device 100.
[0109] Text input module 134 is optionally a component of graphics module 132 and provides a soft keyboard for entering text in various applications (e.g., contacts 137, email 140, IM 141, browser 147, and any other application requiring text input).
[0110] The GPS module 135 determines the location of the device and provides this information for use within various applications (e.g., to the phone 138 for use in location-based dialing, to the camera 143 as picture / video metadata, and to applications that provide location-based services such as a weather widget, a local yellow pages widget, and a maps / navigation widget).
[0111] Application 136 optionally includes the following modules (or sets of instructions), or a subset or superset thereof: • a contacts module 137 (sometimes called an address book or contact list); ●Telephone module 138, ●Videoconferencing module 139, ● an email client module 140; ● Instant messaging (IM) module 141, ●Training support module 142, camera module 143 for still images and / or video; ● Image management module 144; ●Video player module, ●Music player module, ● Browser module 147, ●Calendar module 148, • A widget module 149 optionally including one or more of a weather widget 149-1, a stock price widget 149-2, a calculator widget 149-3, an alarm clock widget 149-4, a dictionary widget 149-5, and other widgets obtained by the user, and a user-created widget 149-6; a widget creator module 150 for creating user-created widgets 149-6; ● Search module 151, A video and music player module 152 that integrates a video player module and a music player module; ● Memo module 153, Map module 154, and / or ●Online video module 155.
[0112] Examples of other applications 136 optionally stored in memory 102 include other word processing applications, other image editing applications, drawing applications, presentation applications, JAVA-enabled applications, encryption, digital rights management, voice recognition, and voice duplication.
[0113] Contacts module 137, along with touch screen 112, display controller 156, contact / motion module 130, graphics module 132, and text input module 134, is optionally used to manage an address book or contact list (e.g., stored in memory 102 or in the application internal state 192 of contacts module 137 in memory 370), including adding name(s) to the address book, deleting name(s) from the address book, associating phone number(s), email address(es), street address(es), or other information with names, associating images with names, categorizing and sorting names, providing phone numbers or email addresses to initiate and / or facilitate communication by phone 138, videoconferencing module 139, email 140, or IM 141, etc. used to manage the address book or contact list.
[0114] Telephone module 138, in conjunction with RF circuitry 108, audio circuitry 110, speaker 111, microphone 113, touchscreen 112, display controller 156, contact / motion module 130, graphics module 132, and text input module 134, is optionally used to enter a series of characters corresponding to a telephone number, access one or more telephone numbers in contacts module 137, modify entered telephone numbers, dial individual telephone numbers, place calls, and disconnect and hang up when the call is complete. As previously mentioned, wireless communication optionally uses any of a number of communication standards, protocols, and technologies.
[0115] Videoconferencing module 139 includes executable instructions to cooperate with RF circuitry 108, audio circuitry 110, speaker 111, microphone 113, touchscreen 112, display controller 156, optical sensor 164, optical sensor controller 158, touch / motion module 130, graphics module 132, text input module 134, contacts module 137, and telephone module 138 to initiate, conduct, and end a videoconference between a user and one or more other participants according to the user's commands.
[0116] Email client module 140, in conjunction with RF circuitry 108, touch screen 112, display controller 156, contact / motion module 130, graphics module 132, and text input module 134, contains executable instructions for composing, sending, receiving, and managing emails in response to user commands. In conjunction with image management module 144, email client module 140 greatly facilitates the creation and sending of emails with still or video images captured by camera module 143.
[0117] Instant messaging module 141 includes executable instructions, in conjunction with RF circuitry 108, touchscreen 112, display controller 156, contact / motion module 130, graphics module 132, and text input module 134, to enter a series of characters corresponding to an instant message, modify previously entered characters, send individual instant messages (e.g., using Short Message Service (SMS) or Multimedia Message Service (MMS) protocols for telephony-based instant messaging, or XMPP, SIMPLE, or IMPS for Internet-based instant messaging), receive instant messages, and view received instant messages. In some embodiments, sent and / or received instant messages optionally include graphics, photos, audio files, video files, and / or other attachments, such as those supported by MMS and / or Enhanced Messaging Service (EMS). As used herein, "instant messaging" refers to both telephony-based messages (e.g., messages sent using SMS or MMS) and Internet-based messages (e.g., messages sent using XMPP, SIMPLE, or IMPS).
[0118] In conjunction with the RF circuitry 108, touchscreen 112, display controller 156, contact / motion module 130, graphics module 132, text input module 134, GPS module 135, map module 154, and music player module, the training support module 142 includes executable instructions to create workouts (e.g., with time, distance, and / or calorie burn goals), communicate with training sensors (sports devices), receive training sensor data, calibrate sensors used to monitor workouts, select and play music for workouts, and display, store, and transmit workout data.
[0119] Camera module 143, in conjunction with touchscreen 112, display controller 156, optical sensor(s) 164, optical sensor controller 158, contact / motion module 130, graphics module 132, and image management module 144, includes executable instructions to capture and store still images or video (including video streams) in memory 102, modify characteristics of still images or video, or delete still images or video from memory 102.
[0120] Image management module 144 includes executable instructions for arranging, modifying (e.g., editing), or otherwise manipulating, labeling, deleting, presenting (e.g., in a digital slideshow or album), and storing still and / or video images in conjunction with touchscreen 112, display controller 156, contact / motion module 130, graphics module 132, text input module 134, and camera module 143.
[0121] Browser module 147, in conjunction with RF circuitry 108, touch screen 112, display controller 156, contact / motion module 130, graphics module 132, and text input module 134, contains executable instructions for browsing the Internet according to user commands, including retrieving, linking to, receiving, and displaying web pages or portions thereof, as well as attachments and other files linked to web pages.
[0122] The calendar module 148 includes executable instructions to cooperate with the RF circuitry 108, the touch screen 112, the display controller 156, the contact / motion module 130, the graphics module 132, the text input module 134, the email client module 140, and the browser module 147 to create, display, modify, and store calendars and data associated with the calendars (e.g., calendar items, to-do lists, etc.) according to user instructions.
[0123] Widget module 149, in conjunction with RF circuitry 108, touchscreen 112, display controller 156, touch / motion module 130, graphics module 132, text input module 134, and browser module 147, optionally provides mini-applications (e.g., weather widget 149-1, stock price widget 149-2, calculator widget 149-3, alarm clock widget 149-4, and dictionary widget 149-5) downloaded and used by a user, or mini-applications created by a user (e.g., user-created widget 149-6). In some embodiments, a widget includes an HTML (Hypertext Markup Language) file, a CSS (Cascading Style Sheets) file, and a JavaScript file. In some embodiments, a widget includes an XML (Extensible Markup Language) file and a JavaScript file (e.g., Yahoo! Widgets).
[0124] The widget creator module 150, in conjunction with the RF circuitry 108, the touch screen 112, the display controller 156, the contact / motion module 130, the graphics module 132, the text input module 134, and the browser module 147, is optionally used by a user to create a widget (e.g., turn a user-specified portion of a web page into a widget).
[0125] The search module 151 includes executable instructions for working in conjunction with the touch screen 112, the display controller 156, the contact / motion module 130, the graphics module 132, and the text input module 134 to search for text, music, sound, images, video, and / or other files in the memory 102 that match one or more search criteria (e.g., one or more user-specified search terms) in accordance with a user's commands.
[0126] Video and music player module 152 includes executable instructions that, in conjunction with touchscreen 112, display controller 156, contact / motion module 130, graphics module 132, audio circuitry 110, speaker 111, RF circuitry 108, and browser module 147, enable a user to download and play pre-recorded music and other sound files stored in one or more file formats, such as MP3 or AAC files, as well as executable instructions for displaying, presenting, or otherwise playing videos (e.g., on touchscreen 112 or on an external display connected via external port 124). In some embodiments, device 100 optionally includes the functionality of an MP3 player, such as an iPod (a trademark of Apple Inc.).
[0127] The notes module 153 includes executable instructions for working with the touch screen 112, the display controller 156, the contact / motion module 130, the graphics module 132, and the text input module 134 to create and manage notes, to-do lists, and the like according to user commands.
[0128] Map module 154, in conjunction with RF circuitry 108, touchscreen 112, display controller 156, contact / motion module 130, graphics module 132, text input module 134, GPS module 135, and browser module 147, is used to receive, display, modify, and store maps and data associated with maps (e.g., driving directions, data regarding businesses and other points of interest at or near a particular location, and other location-based data), optionally in accordance with user instructions.
[0129] Online video module 155, in conjunction with touchscreen 112, display controller 156, contact / motion module 130, graphics module 132, audio circuitry 110, speaker 111, RF circuitry 108, text input module 134, email client module 140, and browser module 147, contains instructions that enable a user to access, browse for, receive (e.g., by streaming and / or downloading), and play (e.g., on the touchscreen or on an external display connected via external port 124) particular online videos, send emails with links to particular online videos, and otherwise manage online videos in one or more file formats, such as H.264. In some embodiments, instant messaging module 141 is used to send links to particular online videos, rather than email client module 140. For additional description of online video applications, see U.S. Provisional Patent Application No. 60 / 936,562, filed June 20, 2007, entitled "Portable Multifunction Device, Method, and Graphical User Interface for Playing Online Videos," and U.S. Patent Application No. 11 / 968,067, filed December 31, 2007, entitled "Portable Multifunction Device, Method, and Graphical User Interface for Playing Online Videos," the contents of which are incorporated herein by reference in their entireties.
[0130] The above-identified modules and applications each correspond to a set of executable instructions that perform one or more of the functions and methods described herein (e.g., the computer-implemented methods and other information processing methods described herein). These modules (e.g., sets of instructions) need not be implemented as respective software programs (e.g., computer programs (e.g., including instructions)), procedures, or modules; thus, in various embodiments, various subsets of these modules are optionally combined or otherwise reconfigured. For example, a video player module is optionally combined with a music player module into a single module (e.g., video and music player module 152 of FIG. 1A). In some embodiments, memory 102 optionally stores a subset of the above-identified modules and data structures. Additionally, memory 102 optionally stores additional modules and data structures not described above.
[0131] In some embodiments, device 100 is a device in which operation of a predetermined set of functions on the device is performed solely via a touchscreen and / or touchpad. Using the touchscreen and / or touchpad as the primary input control device for operation of device 100 optionally reduces the number of physical input control devices (push buttons, dials, etc.) on device 100.
[0132] The set of predefined functions performed only through the touchscreen and / or touchpad optionally includes navigation between user interfaces. In some embodiments, the touchpad, when touched by a user, navigates device 100 to a main menu, home menu, or root menu from any user interface displayed on device 100. In such embodiments, a "menu button" is implemented using the touchpad. In some other embodiments, the menu button is a physical push button or other physical input control device rather than a touchpad.
[0133] 1B is a block diagram illustrating exemplary components for event processing, according to some embodiments. In some embodiments, memory 102 (FIG. 1A) or 370 (FIG. 3) includes an event sorter 170 (e.g., within operating system 126) and a separate application 136-1 (e.g., any of applications 137-151, 155, 380-390 described above).
[0134] Event sorter 170 receives the event information and determines which application 136-1 to deliver the event information to and application view 191 for application 136-1. Event sorter 170 includes event monitor 171 and event dispatcher module 174. In some embodiments, application 136-1 includes application internal state 192 that indicates the current application view(s) that are displayed on touch-sensitive display 112 when the application is active or running. In some embodiments, device / global internal state 157 is used by event sorter 170 to determine which application(s) are currently active, and application internal state 192 is used by event sorter 170 to determine which application(s) are currently active, and application internal state 192 is used by event sorter 170 to determine which application view(s) to deliver the event information to.
[0135] In some embodiments, application internal state 192 includes additional information such as one or more of resume information to be used when application 136-1 resumes execution, user interface state information indicating or ready to display information being displayed by application 136-1, state cues that allow the user to return to a previous state or view of application 136-1, and redo / undo cues of previous actions taken by the user.
[0136] Event monitor 171 receives event information from peripherals interface 118. The event information includes information about sub-events (e.g., a user touch as part of a multi-touch gesture on touch-sensitive display 112). Peripherals interface 118 transmits information it receives from I / O subsystem 106 or sensors such as proximity sensor 166, accelerometer(s) 168, and / or microphone 113 (via audio circuitry 110). Information that peripherals interface 118 receives from I / O subsystem 106 includes information from touch-sensitive display 112 or a touch-sensitive surface.
[0137] In some embodiments, event monitor 171 sends requests to peripherals interface 118 at predetermined intervals. In response, peripherals interface 118 transmits event information. In other embodiments, peripherals interface 118 transmits event information only when there is a significant event (e.g., receipt of an input above a predetermined noise threshold and / or for more than a predetermined duration).
[0138] In some embodiments, the event sorter 170 also includes a hit view determination module 172 and / or an active event recognizer determination module 173 .
[0139] Hit view determination module 172 provides software procedures that determine where a sub-event occurred within one or more views when touch-sensitive display 112 displays more than one view. A view consists of the controls and other elements that a user can see on the display.
[0140] Another aspect of a user interface associated with an application is the set of views, sometimes referred to herein as application views or user interface windows, in which information is displayed and touch-based gestures occur. The application views (of individual applications) in which touches are detected optionally correspond to programmatic levels within the application's programmatic or view hierarchy. For example, the lowest-level view in which a touch is detected is optionally referred to as the hit view, and the set of events that are recognized as appropriate inputs is optionally determined based at least in part on the hit view of the initial touch that initiates the touch gesture.
[0141] Hit view determination module 172 receives information related to sub-events of a touch-based gesture. When an application has multiple views organized in a hierarchy, hit view determination module 172 identifies the hit view as the lowest view in the hierarchy that should process the sub-events. In most situations, the hit view is the lowest-level view in which an initiating sub-event occurs (e.g., the first sub-event in a series of sub-events that form an event or potential event). Once a hit view is identified by hit view determination module 172, the hit view typically receives all sub-events related to the same touch or input source as the touch or input source identified as the hit view.
[0142] Active event recognizer determination module 173 determines which view(s) in the view hierarchy should receive a particular sequence of sub-events. In some embodiments, active event recognizer determination module 173 determines that only the hit view should receive a particular sequence of sub-events. In other embodiments, active event recognizer determination module 173 determines that all views that contain the physical location of the sub-events are actively participating views, and therefore determines that all actively participating views should receive a particular sequence of sub-events. In other embodiments, even if a touch sub-event is completely confined to the area associated with one particular view, views higher in the hierarchy still remain actively participating views.
[0143] Event dispatcher module 174 dispatches event information to event recognizers (e.g., event recognizer 180). In embodiments that include active event recognizer determination module 173, event dispatcher module 174 delivers event information to the event recognizers determined by active event recognizer determination module 173. In some embodiments, event dispatcher module 174 stores event information in an event queue, which is retrieved by individual event receivers 182.
[0144] In some embodiments, operating system 126 includes event sorter 170. Alternatively, application 136-1 includes event sorter 170. In still other embodiments, event sorter 170 is a stand-alone module or is part of another module stored in memory 102, such as contact / motion module 130.
[0145] In some embodiments, application 136-1 includes multiple event handlers 190 and one or more application views 191, each containing instructions for processing touch events that occur within a separate view of the application's user interface. Each application view 191 of application 136-1 includes one or more event recognizers 180. Typically, an individual application view 191 includes multiple event recognizers 180. In other embodiments, one or more of the event recognizers 180 are part of a separate module, such as a user interface kit or a higher-level object from which application 136-1 inherits methods and other properties. In some embodiments, individual event handlers 190 include one or more of data updater 176, object updater 177, GUI updater 178, and / or event data 179 received from event sorter 170. Event handler 190 optionally utilizes or invokes data updater 176, object updater 177, or GUI updater 178 to update application internal state 192. Alternatively, one or more of the application views 191 include one or more respective event handlers 190. Also, in some embodiments, one or more of the data updater 176, the object updater 177, and the GUI updater 178 are included in individual application views 191.
[0146] A separate event recognizer 180 receives event information (e.g., event data 179) from event sorter 170 and identifies events from the event information. Event recognizer 180 includes an event receiver 182 and an event comparator 184. In some embodiments, event recognizer 180 also includes metadata 183 and at least a subset of event delivery instructions 188 (optionally including sub-event delivery instructions).
[0147] The event receiver 182 receives event information from the event sorter 170. The event information includes information about a sub-event, e.g., a touch or a movement of a touch. Depending on the sub-event, the event information also includes additional information, such as the location of the sub-event. When the sub-event involves a movement of a touch, the event information also optionally includes the speed and direction of the sub-event. In some embodiments, the event includes a rotation of the device from one orientation to another (e.g., from portrait to landscape or vice versa), and the event information includes corresponding information about the current orientation of the device (also called the device's posture).
[0148] The event comparator 184 compares the event information with predefined event or sub-event definitions and determines the event or sub-event, or determines or updates the state of the event or sub-event, based on the comparison. In some embodiments, the event comparator 184 includes an event definition 186. The event definition 186 includes definitions of events (e.g., a predefined set of sub-events), such as Event 1 (187-1) and Event 2 (187-2). In some embodiments, sub-events within Events (187-1 and / or 187-2) include, for example, touch start, touch end, touch movement, touch cancellation, and multiple touches. In one example, the definition for Event 1 (187-1) is a double tap on a displayed object. The double tap includes, for example, a first touch on a displayed object relative to a predetermined phase (touch start), a first lift-off (touch end) relative to the predetermined phase, a second touch on a displayed object relative to the predetermined phase (touch start), and a second lift-off (touch end) relative to the predetermined phase. In another example, a definition of event 2 (187-2) is a drag on a displayed object. Drag includes, for example, a touch (or contact) on the displayed object to a predetermined stage, a movement of the touch across the touch-sensitive display 112, and a lift-off of the touch (touch end). In some embodiments, the event also includes information about one or more associated event handlers 190.
[0149] In some embodiments, event definition 186 includes definitions of events for individual user interface objects. In some embodiments, event comparator 184 performs a hit test to determine which user interface objects are associated with the sub-event. For example, if a touch is detected on touch-sensitive display 112 in an application view in which three user interface objects are displayed on touch-sensitive display 112, event comparator 184 performs a hit test to determine which of the three user interface objects is associated with the touch (sub-event). If each displayed object is associated with a separate event handler 190, event comparator 184 uses the results of the hit test to determine which event handler 190 to activate. For example, event comparator 184 selects the event handler associated with the sub-event and object that triggers the hit test.
[0150] In some embodiments, the definition of an individual event 187 also includes a delay action that delays delivery of the event information until it is determined whether a set of sub-events corresponds to the event recognizer's event type.
[0151] If the individual event recognizer 180 determines that the sequence of sub-events does not match any of the events in the event definition 186, the individual event recognizer 180 enters an event disabled, event failed, or event finished state, after which it ignores the next sub-event of the touch-based gesture. In this situation, any other event recognizers that remain active for the hit view continue to track and process sub-events of the ongoing touch gesture.
[0152] In some embodiments, individual event recognizers 180 include metadata 183 with configurable properties, flags, and / or lists that indicate to actively participating event recognizers how the event delivery system should perform sub-event delivery. In some embodiments, metadata 183 includes configurable properties, flags, and / or lists that indicate how event recognizers interact with each other or how event recognizers are allowed to interact with each other. In some embodiments, metadata 183 includes configurable properties, flags, and / or lists that indicate how sub-events are delivered to various levels in the view or programmatic hierarchy.
[0153] In some embodiments, an individual event recognizer 180 activates an event handler 190 associated with an event when one or more specific sub-events of the event are recognized. In some embodiments, the individual event recognizer 180 delivers event information associated with the event to the event handler 190. Activating the event handler 190 is separate from sending (and postponing sending) sub-events to the individual hit view. In some embodiments, the event recognizer 180 pops a flag associated with the recognized event, and the event handler 190 associated with the flag catches the flag and performs a predetermined process.
[0154] In some embodiments, the event delivery instructions 188 include sub-event delivery instructions that deliver event information about a sub-event without activating an event handler. Instead, the sub-event delivery instructions deliver the event information to an event handler associated with a set of sub-events or to an actively participating view. The event handler associated with the set of sub-events or the actively participating view receives the event information and performs a predetermined process.
[0155] In some embodiments, data updater 176 creates and updates data used by application 136-1. For example, data updater 176 updates phone numbers used by contacts module 137 or stores video files used by a video player module. In some embodiments, object updater 177 creates and updates objects used by application 136-1. For example, object updater 177 creates new user interface objects or updates the positions of user interface objects. GUI updater 178 updates the GUI. For example, GUI updater 178 prepares display information and sends the display information to graphics module 132 for display on the touch-sensitive display.
[0156] In some embodiments, event handler(s) 190 include or have access to data updater 176, object updater 177, and GUI updater 178. In some embodiments, data updater 176, object updater 177, and GUI updater 178 are included in a single module of an individual application 136-1 or application view 191. In other embodiments, they are included in two or more software modules.
[0157] It should be understood that the foregoing description of event processing of a user's touch on a touch-sensitive display also applies to other forms of user input for operating multifunction device 100 using input devices, although not all of them are initiated on a touchscreen. For example, mouse movements and mouse button presses, contact movements such as tapping, dragging, scrolling on a touchpad, optionally coordinated with single or multiple keyboard presses or holds, pen stylus input, device movement, verbal commands, detected eye movements, biometric input, and / or any combination thereof, optionally utilize as inputs corresponding to sub-events that define the event to be recognized.
[0158] FIG. 2 illustrates portable multifunction device 100 having touchscreen 112, according to some embodiments. The touchscreen optionally displays one or more graphics within user interface (UI) 200. In this embodiment, as well as other embodiments described below, a user may select one or more of the graphics by performing a gesture on the graphics, for example, using one or more fingers 202 (not drawn to scale) or one or more styluses 203 (not drawn to scale). In some embodiments, selection of one or more graphics is performed when the user breaks contact with the one or more graphics. In some embodiments, the gesture optionally includes one or more taps, one or more swipes (left to right, right to left, upward and / or downward), and / or rolling (right to left, left to right, upward and / or downward) of a finger in contact with device 100. In some implementations or situations, accidental contact with a graphic does not select the graphic, for example, if the gesture corresponding to selection is a tap, a swipe gesture sweeping over an application icon optionally does not select the corresponding application.
[0159] Device 100 also optionally includes one or more physical buttons, such as a "home" button or menu button 204. As previously mentioned, menu button 204 is optionally used to navigate to any application 136 within a set of applications running on device 100. Alternatively, in some embodiments, the menu button is implemented as a soft key within a GUI displayed on touchscreen 112.
[0160] In some embodiments, device 100 includes touchscreen 112, menu button 204, pushbutton 206 for powering the device on / off and locking the device, volume control button(s) 208, subscriber identity module (SIM) card slot 210, headset jack 212, and external docking / charging port 124. Pushbutton 206 is optionally used to power the device on / off by pressing and holding the button down for a predetermined period of time, to lock the device by pressing and releasing the button before the predetermined time has elapsed, and / or to unlock the device or initiate the unlocking process. In alternative embodiments, device 100 also accepts verbal input via microphone 113 to activate or deactivate certain functions. Device 100 also optionally includes one or more contact intensity sensors 165 for detecting the intensity of a contact on touchscreen 112 and / or one or more tactile output generators 167 for generating a tactile output for a user of device 100.
[0161] FIG. 3 is a block diagram of an exemplary multifunction device having a display and a touch-sensitive surface, according to some embodiments. Device 300 need not be portable. In some embodiments, device 300 is a laptop computer, a desktop computer, a tablet computer, a multimedia player device, a navigation device, an educational device (such as a child's learning toy), a gaming system, or a control device (e.g., a home or commercial controller). Device 300 typically includes one or more processing units (CPUs) 310, one or more network or other communication interfaces 360, memory 370, and one or more communication buses 320 interconnecting these components. Communication bus 320 optionally includes circuitry (sometimes called a chipset) that interconnects and controls communication between system components. Device 300 includes input / output (I / O) interface 330, including display 340, which is typically a touchscreen display. I / O interface 330 also optionally includes a keyboard and / or mouse (or other pointing device) 350 and a touchpad 355, a tactile output generator 357 that generates tactile output on device 300 (e.g., similar to tactile output generator(s) 167 described above with reference to FIG. 1A ), and sensors 359 (e.g., light, acceleration, proximity, touch-sensing, and / or contact intensity sensors similar to contact intensity sensor(s) 165 described above with reference to FIG. 1A ). Memory 370 includes high-speed random-access memory such as DRAM, SRAM, DDR RAM, or other random-access solid-state memory devices, and optionally includes non-volatile memory such as one or more magnetic disk storage devices, optical disk storage devices, flash memory devices, or other non-volatile solid-state storage devices. Memory 370 optionally includes one or more storage devices located remotely from CPU(s) 310.In some embodiments, memory 370 stores programs, modules, and data structures similar to, or a subset of, programs, modules, and data structures stored in memory 102 of portable multifunction device 100 (FIG. 1A). Additionally, memory 370 optionally stores additional programs, modules, and data structures not present in memory 102 of portable multifunction device 100. For example, memory 370 of device 300 optionally stores drawing module 380, presentation module 382, word processing module 384, website creation module 386, disk authoring module 388, and / or spreadsheet module 390, whereas memory 102 of portable multifunction device 100 (FIG. 1A) optionally does not store these modules.
[0162] Each of the above-identified elements of FIG. 3 is optionally stored in one or more of the memory devices mentioned above. Each of the above-identified modules corresponds to an instruction set that performs the functions described above. The above-identified modules or computer programs (e.g., including an instruction set or instructions) need not be implemented as separate software programs (e.g., computer programs (e.g., including instructions)), procedures, or modules; thus, in various embodiments, various subsets of these modules are optionally combined or otherwise reconfigured. In some embodiments, memory 370 optionally stores a subset of the above-identified modules and data structures. Additionally, memory 370 optionally stores additional modules and data structures not described above.
[0163] Attention is now optionally directed to user interface embodiments, for example, as implemented on portable multifunction device 100.
[0164] 4A shows an exemplary user interface for a menu of applications on portable multifunction device 100, according to some embodiments. A similar user interface is optionally implemented on device 300. In some embodiments, user interface 400 includes the following elements, or a subset or superset thereof: signal strength indicator(s) 402 for wireless communication(s), such as cellular and Wi-Fi signals; ●Time 404, ●Bluetooth indicator 405, ● Battery status indicator 406, Tray 408 with icons of frequently used applications, such as: An icon 416 for the phone module 138, labeled "Phone," optionally including an indicator 414 of the number of missed calls or voicemail messages; icon 418 of the email client module 140, labeled "Mail," optionally including an indicator 410 of the number of unread emails; ○ An icon 420 for the browser module 147, labeled "Browser"; and ○ An icon 422 for the video and music player module 152, also called the iPod (trademark of Apple Inc.) module 152, labeled "iPod"; and ● Icons of other applications, such as: ○ Icon 424 of IM module 141, labeled "Messages"; ○ Icon 426 of the calendar module 148, labeled "Calendar" ○ Icon 428 of the image management module 144, labeled "Photos" ○ An icon 430 of the camera module 143, labeled "camera"; ○ Icon 432 of the online video module 155, labeled "Online Video"; Icon 434 of Stock Price Widget 149-2, labeled "Stock Price" ○ Icon 436 of the map module 154, labeled "Map"; Icon 438 of weather widget 149-1, labeled "Weather" ○ Icon 440 of alarm clock widget 149-4, labeled "Clock" ○ Icon 442 of Training Support Module 142, labeled "Training Support"; ○ An icon 444 of the Notes module 153 labeled "Notes," and A settings application or module icon 446 labeled "Settings" that provides access to settings for the device 100 and its various applications 136.
[0165] Note that the icon labels shown in FIG. 4A are merely exemplary. For example, icon 422 of video and music player module 152 is labeled "Music" or "Music Player." Other labels are optionally used for various application icons. In some embodiments, the label for an individual application icon includes the name of the application that corresponds to the individual application icon. In some embodiments, the label of a particular application icon is different from the name of the application that corresponds to that particular application icon.
[0166] 4B shows an example user interface on a device (e.g., device 300 of FIG. 3 ) that has touch-sensitive surface 451 (e.g., tablet or touchpad 355 of FIG. 3 ) that is separate from display 450 (e.g., touchscreen display 112). Device 300 also optionally includes one or more contact intensity sensors (e.g., one or more of sensors 359) that detect the intensity of a contact on touch-sensitive surface 451, and / or one or more tactile output generators 357 that generate a tactile output for a user of device 300.
[0167] Although some of the following examples are given with reference to input on touchscreen display 112 (which combines a touch-sensitive surface and a display), in some embodiments, the device detects input on a touch-sensitive surface that is separate from the display, as shown in FIG. 4B . In some embodiments, the touch-sensitive surface (e.g., 451 in FIG. 4B ) has a primary axis (e.g., 452 in FIG. 4B ) that corresponds to a primary axis (e.g., 453 in FIG. 4B ) on the display (e.g., 450). According to these embodiments, the device detects contact with touch-sensitive surface 451 (e.g., 460 and 462 in FIG. 4B ) at locations that correspond to respective locations on the display (e.g., in FIG. 4B , 460 corresponds to 468 and 462 corresponds to 470). In this way, user input (e.g., contacts 460 and 462 and their movement) detected by the device on the touch-sensitive surface (e.g., 451 in FIG. 4B ) is used by the device to operate a user interface on the display (e.g., 450 in FIG. 4B ) of the multifunction device when the touch-sensitive surface is separate from the display. It should be understood that similar methods are optionally used for the other user interfaces described herein.
[0168] Additionally, while the following examples are given primarily with reference to finger input (e.g., finger contact, finger tap gesture, finger swipe gesture), it should be understood that in some embodiments, one or more of the finger inputs are replaced with input from another input device (e.g., mouse-based input or stylus input). For example, a swipe gesture is optionally replaced by a mouse click (e.g., instead of a contact) followed by movement of a cursor along the path of the swipe (e.g., instead of movement of the contact). As another example, a tap gesture is optionally replaced by a mouse click (e.g., instead of detecting a contact and then ceasing contact detection) while the cursor is positioned over the location of the tap gesture. Similarly, it should be understood that when multiple user inputs are detected simultaneously, multiple computer mice are optionally used simultaneously, or a mouse and finger contacts are optionally used simultaneously.
[0169] FIG. 5A shows an exemplary personal electronic device 500. Device 500 includes a main body 502. In some embodiments, device 500 can include some or all of the functionality described with respect to devices 100 and 300 (e.g., FIGS. 1A-4B ). In some embodiments, device 500 has a touch-sensitive display screen 504, hereafter touchscreen 504. Alternatively, or in addition to touchscreen 504, device 500 has a display and a touch-sensitive surface. Similar to devices 100 and 300, in some embodiments, touchscreen 504 (or the touch-sensitive surface) optionally includes one or more intensity sensors that detect the intensity of contact (e.g., touches) being applied. The one or more intensity sensors of touchscreen 504 (or the touch-sensitive surface) can provide output data representing the intensity of the touch. The user interface of device 500 can respond to touches based on their intensity, meaning that touches of different intensities can invoke different user interface actions on device 500.
[0170] For exemplary techniques for detecting and processing touch intensity, see, for example, related applications International Patent Application No. PCT / US2013 / 040061, filed May 8, 2013, published as WO 2013 / 169849, entitled "Device, Method, and Graphical User Interface for Displaying User Interface Objects Corresponding to an Application," and International Patent Application No. PCT / US2013 / 069483, filed November 11, 2013, published as WO 2014 / 105276, entitled "Device, Method, and Graphical User Interface for Transitioning Between Touch Input to Display Output Relationships," each of which is incorporated herein by reference in its entirety.
[0171] In some embodiments, device 500 has one or more input mechanisms 506 and 508. Input mechanisms 506 and 508, if included, may be physical. Examples of physical input mechanisms include push buttons and rotatable mechanisms. In some embodiments, device 500 has one or more attachment mechanisms. Such attachment mechanisms, if included, may allow device 500 to be attached to, for example, hats, eyewear, earrings, necklaces, shirts, jackets, bracelets, watch bands, chains, pants, belts, shoes, wallets, backpacks, etc. These attachment mechanisms allow device 500 to be worn by a user.
[0172] FIG. 5B illustrates an exemplary personal electronic device 500. In some embodiments, device 500 can include some or all of the components described with respect to FIGS. 1A, 1B, and 3. Device 500 has a bus 512 operably coupling an I / O section 514 to one or more computer processors 516 and memory 518. I / O section 514 can be connected to a display 504, which can have touch-sensing components 522 and, optionally, an intensity sensor 524 (e.g., a contact intensity sensor). Additionally, I / O section 514 can be connected to a communication unit 530 that receives application and operating system data using Wi-Fi, Bluetooth, near field communication (NFC), cellular, and / or other wireless communication technologies. Device 500 can include input mechanisms 506 and / or 508. Input mechanism 506 is optionally, for example, a rotatable input device or a depressible and rotatable input device. In some embodiments, input mechanism 508 is optionally a button.
[0173] In some embodiments, input mechanism 508 is optionally a microphone. Personal electronic device 500 optionally includes various sensors, such as a GPS sensor 532, an accelerometer 534, an orientation sensor 540 (e.g., a compass), a gyroscope 536, a motion sensor 538, and / or combinations thereof, all of which may be operably connected to I / O section 514.
[0174] The memory 518 of the personal electronic device 500 may include one or more non-transitory computer-readable storage media for storing computer-executable instructions that, when executed by one or more computer processors 516, can cause the computer processors to perform the techniques described below, including processes 700, 900, 1100, and 1300 (FIGS. 7, 9, 11, and 13). A computer-readable storage medium may be any medium that can tangibly contain or store computer-executable instructions used by or in connection with an instruction execution system, apparatus, or device. In some embodiments, the storage medium is a transient computer-readable storage medium. In some embodiments, the storage medium is a non-transitory computer-readable storage medium. Non-transitory computer-readable storage media may include, but are not limited to, magnetic storage devices, optical storage devices, and / or semiconductor storage devices. Examples of such storage devices include magnetic disks, optical disks based on CDs, DVDs, or Blu-ray technology, and persistent solid-state memory such as flash and solid-state drives. Personal electronic device 500 is not limited to the components and configuration of FIG. 5B and may include other or additional components in multiple configurations.
[0175] As used herein, the term "affordance" refers to a user-interactive graphic user interface object optionally displayed on the display screen of device 100, 300, and / or 500 (FIGS. 1A, 3, and 5A-5H). For example, images (e.g., icons), buttons, and text (e.g., hyperlinks) each optionally constitute an affordance.
[0176] As used herein, the term “focus selector” refers to an input element that indicates the current portion of the user interface with which the user is interacting. In some implementations involving a cursor or other location marker, the cursor acts as the “focus selector,” such that when input (e.g., a press input) is detected on a touch-sensitive surface (e.g., touchpad 355 of FIG. 3 or touch-sensitive surface 451 of FIG. 4B) while the cursor is positioned over a particular user interface element (e.g., a button, window, slider, or other user interface element), the particular user interface element is adjusted according to the detected input. In some implementations involving a touchscreen display that allows direct interaction with user interface elements on the touchscreen display (e.g., touch-sensitive display system 112 of FIG. 1A or touchscreen 112 of FIG. 4A), a detected contact on the touchscreen acts as the “focus selector,” such that when input (e.g., a press input by contact) is detected at the location of a particular user interface element (e.g., a button, window, slider, or other user interface element) on the touchscreen display, the particular user interface element is adjusted according to the detected input. In some implementations, focus is moved from one region of the user interface to another region of the user interface without a corresponding cursor movement or contact movement on the touchscreen display (e.g., by using the tab key or arrow keys to move focus from one button to another), and in these implementations, the focus selector moves to follow the movement of focus between various regions of the user interface. Regardless of the specific form the focus selector takes, the focus selector is generally a user interface element (or contact on a touchscreen display) that is controlled by the user to communicate the user's intended interaction with the user interface (e.g., by indicating to the device the element of the user interface through which the user intends to interact).For example, the position of a focus selector (e.g., cursor, touch, or selection box) over an individual button while a press input is detected on a touch-sensitive surface (e.g., a touchpad or touchscreen) indicates that the user intends to activate that individual button (and not other user interface elements shown on the device's display).
[0177] As used herein and in the claims, the term "characteristic intensity" of a contact refers to a characteristic of that contact based on one or more intensities of the contact. In some embodiments, the characteristic intensity is based on a plurality of intensity samples. The characteristic intensity is optionally based on a predetermined number of intensity samples, i.e., a set of intensity samples collected during a predetermined time period (e.g., 0.05, 0.1, 0.2, 0.5, 1, 2, 5, 10 seconds) associated with a predetermined event (e.g., after detecting the contact, before detecting lift-off of the contact, before or after detecting the start of contact movement, before detecting the end of the contact, before or after detecting an increase in the intensity of the contact, and / or before or after detecting a decrease in the intensity of the contact). The characteristic intensity of the contact is optionally based on one or more of the maximum intensity of the contact, the mean intensity of the contact, the average intensity of the contact, the top 10 percentile intensity of the contact, half the maximum intensity of the contact, 90 percent of the maximum intensity of the contact, etc. In some embodiments, the duration of the contact is used in determining the characteristic intensity (e.g., when the characteristic intensity is an average of the intensity of the contact over time). In some embodiments, the characteristic intensity is compared to a set of one or more intensity thresholds to determine whether an action is performed by the user. For example, the set of one or more intensity thresholds optionally includes a first intensity threshold and a second intensity threshold. In this example, a contact having a characteristic intensity that does not exceed the first threshold results in a first action, a contact having a characteristic intensity above the first intensity threshold but not above the second intensity threshold results in a second action, and a contact having a characteristic intensity above the second threshold results in a third action. In some embodiments, the comparison between the characteristic intensity and the one or more thresholds is not used to determine whether to perform the first action or the second action, but rather to determine whether to perform one or more actions (e.g., whether to perform an individual action or to refrain from performing an individual action).
[0178] Attention is now directed to embodiments of user interfaces (“UIs”) and related processes implemented on an electronic device such as portable multifunction device 100, device 300, or device 500.
[0179] According to some embodiments, Figures 6A-6U show exemplary user interfaces for managing watch faces based on previously captured media item depth data. The user interfaces in those figures are used to illustrate processes described below, including the process of Figure 7.
[0180] 6A shows computer 600 with display 602 turned off. Computer system 600 includes rotatable and depressible input mechanism 604. In some embodiments, computer system 600 optionally includes one or more features of device 100, device 300, or device 500. In some embodiments, computer system 600 is a tablet, phone, laptop, desktop, camera, etc. In some embodiments, inputs described below can optionally be replaced with alternative inputs, such as press inputs and / or rotation inputs received via rotatable and depressible input mechanism 604.
[0181] In some embodiments, the computer system 600 activates and displays the watch user interface 606 in response to inputs such as tap inputs, wrist lift inputs, press inputs, and / or rotation inputs received via the rotatable and pressable input mechanism 604.
[0182] 6B , computer system 600 displays watch user interface 606 including background element 606a, system text 606b, foreground element 606c, and complication 606d1. In one embodiment, foreground element 606c and background element 606a correspond to portions of a portrait media item (e.g., a photograph) that is divided into at least two layers based on depth data for the media items, such that foreground element 606c is based on a first layer of media items and background element 606a is based on a second layer of media items that is different from the first layer of media items. In some embodiments, computer system 600 segments the media items into the first and second layers based on a determination that the first layer of media items and the second layer of media items were at different distances from the camera sensor at the time the media items including the depth data were captured.
[0183] In FIG. 6B , the watch user interface 606 is based on an image including depth data indicating that a foreground element 606c was closer to the camera sensor than a background element 606a at the time the image was captured. The computer system 600 generates and displays the watch user interface 606 based on the image depth data by stacking elements of the watch user interface 606 to indicate a field of depth (FOD). For example, FIG. 6B shows that the background element 606a is below (e.g., over) system text 606b, which is below a foreground element 606c that is below a complication 606d1. Thus, the watch user interface 606 includes elements displayed in a simulated stack, such that each element is displayed at a different simulated (e.g., virtual) distance from the display 602. For example, in FIG. 6B , the complication 606d1 has the smallest simulated distance from the display 602, and the background element 606a has the greatest simulated distance from the display 602. In some embodiments, computer system 600 creates and / or generates watch user interface 606 without user input specifying the layering or virtual stacking order of elements of an image with depth data. In some embodiments, elements of the watch user interface are displayed in a different arrangement or virtual stacking order. For example, in some embodiments, computer system 600 generates and / or displays a watch user interface based on an image with depth data, where complications (e.g., 606d1, 640d, etc.) are displayed below (e.g., behind) foreground elements (e.g., 606c, 640c), such as in FIG. 6Q, described below. In some embodiments, computer system 600 generates and / or displays a watch user interface based on an image with depth data, where system text (e.g., 606b, 642b, etc.) is displayed above (e.g., in front of) foreground elements (e.g., 606c, 642c, etc.), such as in FIG. 6R, described below.
[0184] 6B, system text 606b includes a lock icon 606b1 indicating that computer system 600 is currently in a locked state. In some embodiments, when computer system 600 is in a locked state, functionality of computer system 600 is limited. System text 606b further includes date 606b2 indicating the current date (e.g., month, day, and / or year) and current time 606b3 indicating the current time of day (e.g., hour, minute, and / or second).
[0185] FIG. 6C illustrates a computer system 600 displaying a watch user interface 606 with a simulated parallax visual effect. In FIG. 6C, the computer 600 is a watch worn on a wrist 608. In FIG. 6C, the relative positions of elements of the watch user interface 606, including background element 606a, system text 606b, and foreground element 606c, are adjusted based on the rotation angle of the wrist 608. For example, the upper part of FIG. 6C illustrates that when the wrist 608 is at a first rotation angle, the foreground element 606c is displayed at an angle that significantly obscures the system text 606b. However, the lower part of FIG. 6C illustrates that when the wrist 608 is at a second rotation angle different from the first rotation angle, the relative positions of the elements of the watch user interface 606 are adjusted based on the change in the angle of the wrist 608 so that the foreground element 606c does not obscure the system text 606b. In some embodiments, the magnitude of the change in position of the elements of the watch user interface 606 is significantly based on the rotation angle of the user's wrist.
[0186] In some embodiments, the relative positions of elements of watch user interface 606 are constrained within a range, and a change in wrist position beyond a threshold amount (e.g., beyond a threshold angle) does not cause elements of watch user interface 606 to update beyond the threshold amount. In some embodiments, the magnitude of the simulated parallax visual effect is not as significant as that shown in FIG. 6C . In some embodiments, some elements of the watch user interface are affected by wrist rotation (e.g., move based on wrist rotation), while other elements maintain fixed positions within watch user interface 606. For example, in some embodiments, the simulated parallax visual effect is applied to foreground elements (e.g., 606c) and background elements (e.g., 606a), but not to system text (e.g., 606b) or complications (e.g., 606d1, 606d2).
[0187] 6D shows watch user interface 606 displayed with a simulated dolly zoom animation (e.g., an animation in which a simulated camera moves closer to or farther away from a subject while adjusting the zoom to keep the subject size the same, creating the visual effect of the background increasing in size and detail, or the foreground increasing in size relative to the background). In some embodiments, when computer system 600 first displays watch user interface 606 (e.g., after quitting an application, after selecting watch user interface 606 via a watch face selection mode, after waking from sleep, after initially powering on, after unlocking computer system 600, etc.), it displays watch user interface 606 with the dolly zoom animation. The top of FIG. 6D shows computer system 600 displaying watch user interface 606 with a dolly zoom effect, where initially, background element 606a of watch user interface 606 is displayed with a simulated first zoom level applied. 6D shows a second portion of the dolly zoom animation, where background element 606a is updated to appear at a second simulated zoom level that is different from the first simulated zoom level. In some embodiments, computer system 600 automatically displays the simulated dolly zoom animation on watch user interface 606 and, after playing the simulated animation, maintains the second simulated zoom level applied to background element 606a after the animation is displayed.
[0188] In some embodiments, the simulated dolly zoom applies gradual zoom levels to the background element 606a while maintaining the simulated zoom level applied to the foreground element 606c. In some embodiments, displaying the simulated dolly zoom animation includes initially applying a minimum amount of simulated zoom effect (e.g., the lowest magnification level) to the background element 606a. Over the course of the simulated dolly zoom animation, the simulated zoom effect applied to the background element 606a is updated such that a greater amount of simulated zoom effect is applied to the background element 606a of the watch user interface 606 at the end of the simulated dolly zoom animation. In some embodiments, displaying the simulated dolly zoom animation includes initially applying a maximum amount of simulated zoom effect (e.g., the highest magnification level) to the background element 606a. Over the course of the simulated dolly zoom animation, the simulated zoom effect applied to the background element 606a is updated such that a lesser amount of simulated zoom effect is applied to the background element (e.g., 606a as shown in FIG. 6A ) of the watch user interface 606 at the end of the simulated dolly zoom animation.
[0189] 6E, computer system 600 displays watch user interface 606, with system text 606b updated to appear without lock icon 606b1, indicating computer system 600 is not in a locked state. In some embodiments, computer system 600 transitions from a locked state to an unlocked state in response to a sequence of user inputs received via one or more input mechanisms in communication with computer system 600. In some embodiments, computer system 600 transitions from a locked state to an unlocked state in response to multiple tap inputs received at computer system 600 corresponding to the entry of a passcode. In some embodiments, computer system 600 transitions from a locked state to an unlocked state in response to a press input received at rotatable and depressible input mechanism 604. In some embodiments, computer system 600 transitions from a locked state to an unlocked state in response to a sequence of one or more user inputs received via a computer system other than computer system 600 in communication with computer system 600, such as a paired phone (e.g., computer system 660). In some embodiments, the computer system 600 transitions from a locked state to an unlocked state in response to a wrist-raise gesture.
[0190] In Figure 6E, computer system 600 detects a press and hold input 650a on watch user interface 606. In Figure 6F, in response to detecting press and hold input 650a, computer system 600 displays selection user interface 610a. Selection user interface 610a includes representation 618a, which is a graphical representation of watch user interface 606. Representation 618a includes elements of watch user interface 606, including background elements 606a, system text 606b, foreground elements 606c, and complication 606d1. In some embodiments, representation 618a is a static representation of watch user interface 606 and includes current time 606b3 with text indicating a time other than the current time and complication 606d1 with information other than real-time data.
[0191] Selection user interface 610a includes a share user-interactive graphic user interface object 614 that, when selected, causes computer system 600 to display a user interface related to sending and / or sharing information related to watch user interface 606 with another computer system (e.g., a phone, a watch, a tablet, etc.). Selection user interface 610a further includes an edit user-interactive graphic user interface object 616 that, when selected, causes computer system 600 to display an edit user interface for editing the appearance of watch user interface 606. Selection user interface 610a further includes a watch face indicator 612a that includes a visual and / or textual indicator indicating the name of the watch user interface currently centered on selection user interface 610a. In FIG. 6F , watch face indicator 612a indicates that the title of the currently displayed watch user interface 606, represented by representation 618a in selection user interface 610a, is “Portrait.”
[0192] Selection user interface 610a further includes at least portions of representation 607a and representation 607b, which represent watch user interfaces other than watch user interface 606. In some embodiments, in response to receiving a swipe input on display 602 and / or a rotation input via rotatable and depressible input mechanism 604, the computer system displays representation 607a or 607b in the center of selection user interface 610a, with a more complete view of each representation than shown in FIG.
[0193] In Figure 6F, computer system 600 detects tap input 650b on edit user interactive graphic user interface object 616. In Figure 6G, in response to detecting tap input 650b, computer system 600 displays edit user interface 620a1. Edit user interface 620a1 includes representation 618b1 representing watch user interface 606. In some embodiments, representation 618b1 is substantially identical to representation 618a. In some embodiments, representation 618b1 closely matches representation 618a, but is displayed at a different size than representation 618a. In Figure 6G, representation 618b1 includes elements of the watch user interface of 606, including background elements 606a, system text 606b, foreground elements 606c, and complications 606d1.
[0194] Edit user interface 620a1 includes an appearance indicator 624a that includes a visual and / or textual representation of the appearance of watch user interface 606 currently selected for editing. In Figure 6G, appearance indicator 624a indicates that the appearance of watch user interface 606 currently selected for editing is a "style."
[0195] Edit user interface 620a1 further includes selection indicator 622a1 that includes a visual and / or textual representation of a currently selected option for the editable appearance of watch user interface 606. In FIG. 6G, selection indicator 622a1 indicates that the currently selected “Style” option for watch user interface 606 is “Classic.”
[0196] Edit user interface 620a1 further includes position indicator 626a1. Position indicator 626a1 includes a graphical representation of the number of selectable options for the editable appearance of watch user interface 606 currently being edited and the position of the currently selected option within the list of selectable options. For example, position indicator 626a1 indicates that the currently selected option "Classic" for the "Style" appearance of watch user interface 606 is at the top of a list of at least two possible options for the "Style" appearance of watch user interface 606.
[0197] In FIG. 6G, computer system 600 detects rotational input 638a via rotatable and depressible input mechanism 604. In FIG. 6H, in response to detecting rotational input 638a, computer system 600 displays editing user interface 620a2. In some embodiments, computer system 600 displays editing user interface 620a2 in response to a swipe input (e.g., a downward swipe input on display 602) received while editing user interface 620a1 is displayed. Editing user interface 620a2 includes representation 618b2 representing an edited representation of watch user interface 606 including current time 606b3 in system text 606b displayed in a font (e.g., the font used in FIGS. 6B-6G) different from the font previously used to display current time 606b3. In FIG. 6H, the "style" appearance of watch face 606 is edited to display in a "modern" style instead of a "classic" style. Thus, selection indicator 622a2 indicates that the currently selected "Style" option of watch user interface 606 is "Modern," and position indicator 626a2 indicates that the position within the selectable options for the "Style" appearance of watch user interface 606 has been updated.
[0198] In Figure 6H, computer system 600 detects swipe input 650c in editing user interface 620a2. In Figure 61, in response to detecting swipe input 650c, computer system 600 displays editing user interface 620b1, which includes representation 618c1 of watch user interface 606. Editing user interface 620b1 further includes appearance indicator 624b, which indicates that editing user interface 620b1 is for editing the position of system text 606b.
[0199] Edit user interface 620b1 further includes selection indicator 622b1 that includes a visual and / or textual representation of a currently selected option for the editable appearance of watch user interface 606. In Figure 61, selection indicator 622b1 indicates that the currently selected "Position" option for watch user interface 606 is "Top." Accordingly, representation 618c1 includes system text 606b that is displayed toward the top of display 602.
[0200] Edit user interface 620b1 further includes position indicator 626b1. Position indicator 626b1 includes a graphical representation of the number of selectable options for the editable appearance of watch user interface 606 currently being edited and the position of the currently selected option within the list of selectable options. For example, position indicator 626b1 indicates that the currently selected option "top" for "position" of system text 606b is at the top of a list of at least two possible options for the "position" appearance of system text 606b.
[0201] In Figure 6I, computer system 600 detects rotation input 638b via rotatable and depressible input mechanism 604. In Figure 6J, in response to detecting rotation input 638b, computer system 600 displays editing user interface 620b2 including representation 618c2. Representation 618c2 substantially matches representation 618c1, except that it repositions system text 606b so that it is now displayed near the bottom of display 602 because system text 606b is near the bottom of representation 618c2. Editing user interface 620b2 further includes appearance indicator 624b that indicates that editing user interface 620b2 is a user interface for editing the position of system text 606b.
[0202] Edit user interface 620b2 further includes a selection indicator 622b2 that includes a visual and / or textual representation of a currently selected option for the editable appearance of watch user interface 606. In Figure 6J, selection indicator 622b2 indicates that the currently selected "Position" option for system text 606b is "Bottom."
[0203] Edit user interface 620b2 further includes position indicator 626b2. Position indicator 626b2 includes a graphical representation of the number of selectable options for the editable appearance of watch user interface 606 currently being edited and the position of the currently selected option within the list of selectable options. For example, position indicator 626b2 indicates that the currently selected option "bottom" for "position" of watch user interface 606 is lower than the position of the selectable option "top," as shown by position indicator 626b1 in FIG. 6I.
[0204] In Figure 6I, computer system 600 detects swipe input 650d in editing user interface 620b1. In Figure 6K, in response to detecting swipe input 650d, computer system 600 displays editing user interface 620c1 that includes representation 618d1. Representation 618d1 substantially matches representation 618c1. Editing user interface 620c1 further includes appearance indicator 624c that indicates that editing user interface 620c1 is a user interface for editing the color of the appearance of watch user interface 606.
[0205] Edit user interface 620c1 further includes selection indicator 622c1 that includes a visual and / or textual representation of a currently selected color option for the appearance of watch user interface 606. In some embodiments, the currently selected color option is applied to elements of system text 606b. In some embodiments, the currently selected color option is applied to some elements of system text 606b (e.g., current time 606b3) but not other elements (e.g., date 606b2 and / or lock icon 606b1). In FIG. 6K, selection indicator 622c1 indicates that the currently selected “color” option for watch user interface 606 is “orange.”
[0206] Edit user interface 620c1 further includes a color options indicator 628 that includes various selectable color options. Selected color 628a includes a visual indicator around the currently selected color that provides a visual and / or graphic indication of the selected color and its position within color options indicator 628.
[0207] In Figure 6K, computer system 600 detects swipe input 650e on editing user interface 620c1. In Figure 6L, in response to detecting swipe input 650e, computer system 600 displays editing user interface 620d1 including representation 618e1. Representation 618e1 is substantially identical to representation 618d1, except that it is displayed at a larger size and applies blur and / or dimming effects to elements of representation 618d1 that are not currently being edited (e.g., elements other than complications of watch user interface 606). Editing user interface 620d1 further includes appearance indicator 624d that indicates that editing user interface 620d1 is a user interface for editing complications displayed with watch user interface 606.
[0208] In Figure 6L, computer system 600 detects tap input 650f on complication 606d1. In Figure 6M, in response to detecting tap input 650f, computer system 600 displays edit user interface 620d2 including multiple selectable complication options displayed in watch user interface 606.
[0209] FIG. 6M includes complication options that can be selected to be displayed in watch user interface 606. In some embodiments, the selectable complications are organized into categories based on the associated functions and applications associated with the selectable complications. Editing user interface 620d2 includes category 632a that includes visual and / or textual indications indicating that complications under category 632a are related to "heart rate." Editing user interface 620d2 further includes category 632b that includes visual and / or textual indications indicating that complications under category 632b are related to "weather." In some embodiments, a category may include multiple complications, in which case multiple complications associated with a particular category are displayed below the text and / or visual indications associated with the category. In some embodiments, editing user interface 620d2 is initially displayed with the complication selected from the previous user interface centered and / or with the selected complication selected. In some embodiments, the computer system navigates from one complication option to another (e.g., moves the focus selection) by scrolling via a swipe input in the editing user interface 620d2 and / or via a rotational input via the rotatable and depressible input mechanism 604.
[0210] Editing user interface 620d2 further includes a cancel user-interactive graphic user interface object 630 that, when selected, causes computer system 600 to stop displaying editing user interface 620d2 and display editing user interface 620d1. Editing user interface 620d2 further includes an off-user-interactive graphic user interface object 634 that, when selected, edits watch user interface 606 to be displayed without complications (e.g., without 606d1 or 606d2).
[0211] Edit user interface 620d2 further includes a position indicator 626c, which includes a graphical representation of the number of selectable options for the complication displayed in watch user interface 606 and the position of the complication within the list of selectable complication options that currently have the focus selection. For example, in FIG. 6M, position indicator 626c indicates the relative position of complication 606d2 within the list of selectable complication options displayed in watch user interface 606.
[0212] In Figure 6M, computer system 600 detects tap input 650g and press input 636a on complication 606d2 via the rotatable and depressible input mechanism while complication 606d2 has the focus selection. In Figure 6N, in response to detecting tap input 650g or press input 636a, computer system 600 displays editing user interface 620d3 including representation 618e2. Representation 618e2 is substantially identical to representation 618e1, except that the complication options have been edited so that representation 618e2 includes complication 606d2, which is a heart rate complication, instead of complication 606d1, which is a weather complication.
[0213] In Figure 6M, computer system 600 detects press input 636b via rotatable and pressable input mechanism 604. In Figure 6O, in response to press input 636b, computer system 600 displays selection user interface 610b, which is substantially similar to selection user interface 610a, except that selection user interface 610b includes representation 618f, which includes the edits to watch user interface 606 made in Figures 6G-6N. In particular, representation 618f differs from representation 618a in that current time 606b3 is displayed in a different font, and representation 618f includes complication 606d2 instead of complication 606d1.
[0214] In Figure 6O, computer system 600 detects tap input 650h and press input 636c on representation 618f via rotatable and depressible input mechanism 604. In Figure 6P, in response to detecting tap input 650h or press input 636c, computer system 600 displays watch user interface 638, including background element 606a, system text 606b displayed in a different font than used for watch user interface 606 of Figure 6A, foreground element 606c, and complication 606d2.
[0215] In Figure 6Q, computer system 600 displays watch user interface 640. In some embodiments, computer system 600 transitions from displaying watch user interface 638 to displaying watch user interface 640 in response to an input (e.g., a tap input on watch user interface 638). In some embodiments, computer system 600 transitions from displaying watch user interface 638 to displaying watch user interface 640 based on the passage of time (e.g., system text 606b indicates that the current time in Figure 6P is 10:09, while system text 640b indicates that the current time in Figure 6Q is 3:08). In some embodiments, computer system 600 transitions from displaying watch user interface 638 to displaying watch user interface 640 in response to a wrist-raise gesture.
[0216] Watch user interface 640 includes background element 640a, system text 640b, foreground element 640c, and complication 640d. Similar to user interface 606, the elements of watch user interface 640 are displayed arranged in a virtual stack. The elements of watch user interface 640 are arranged such that background element 640a is below system text 640b, which is below complication 640d, which is below foreground element 640c. Notably, the virtual arrangement of having a foreground element (e.g., 640c) in front of (e.g., overlaying) a complication (e.g., 640d) differs from watch user interface 606.
[0217] In some embodiments, when a computer system generates and / or creates a watch user interface, such as watch user interface 640, based on an image with depth data, computer system 600 virtually arranges layers according to a determination that the layers can be displayed in a particular order without a particular overlying layer obscuring a layer below it by more than a threshold amount. For example, in some embodiments, a foreground element (e.g., 640c) is arranged in front of (e.g., overlaying) a complication (e.g., 640) according to a determination that the foreground element does not obscure the complication by more than a threshold amount (e.g., 1 / 5 of the complication, 1 / 6 of the complication, etc.).
[0218] The above-described process for overlaying foreground elements over complications can also be applied to overlaying foreground elements over system text. For example, as described below with respect to FIG. 6R, computer system 600 can generate a watch user interface based on a media item having depth data, and the foreground elements can be placed below the system text pursuant to a determination that the media item does not have enough space to generate and / or display the watch user interface based on the media item, and the system text can be placed below the foreground elements such that the system text is not obscured by more than a threshold amount.
[0219] In Figure 6R, computer system 600 displays watch user interface 642. In some embodiments, computer system 600 transitions from displaying watch user interface 640 to displaying watch user interface 642 in response to an input (e.g., a tap input on watch user interface 640). In some embodiments, computer system 600 transitions from displaying watch user interface 640 to displaying watch user interface 642 based on the passage of time (e.g., system text 640b indicates that the current time in Figure 6Q is 3:08, while system text 642b indicates that the current time in Figure 6R is 9:01). In some embodiments, computer system 600 transitions from displaying watch user interface 640 to displaying watch user interface 642 in response to a wrist-raise gesture.
[0220] Watch user interface 642 includes background element 642a, system text 642b, foreground element 642c, and complication 642d. Similar to watch user interface 606 and watch user interface 640, the elements of watch user interface 642 are virtually arranged as layers. In watch user interface 642, the elements of watch user interface 640 are arranged in a virtual stack such that background element 642a is below foreground element 640c, which is below system text 642b and complication 642d1. Notably, the arrangement, with a foreground element (e.g., 640c) virtually arranged below system text 642b, differs from watch user interface 606.
[0221] In some embodiments, when a computer system generates a watch user interface, such as watch user interface 642, based on media with depth data, the computer system 600 arranges elements of the watch user interface in a virtual stack according to a determination that the layers can be displayed in a particular order without a particular layer positioned above obscuring a layer positioned below by more than a threshold amount. For example, in some embodiments, a foreground element (e.g., 642c) is arranged in front of (e.g., overlaying) system text (e.g., 642b) according to a determination that the foreground element does not obscure more than a threshold amount of the system text (e.g., 1 / 5 of the system text, 1 / 6 of the system text, etc.).
[0222] 6R, pursuant to a determination that the media item does not have enough space to generate a watch user interface, computer system 600 generates and displays watch user interface 642, with system text 642b positioned below foreground elements 642c such that system text 642b is not obscured or blocked by foreground elements 642c by more than a threshold amount. Accordingly, computer system 600 generates watch user interface 642 having elements of watch user interface 642 arranged in a virtual stack such that the foreground elements are below system text 642b.
[0223] 6S-6U illustrate user interfaces for enabling and displaying a user interface using media items with depth data via computer system 660, which communicates wirelessly with computer system 600. In some embodiments, computer system 600 and computer system 660 are logged into the same user account. In some embodiments, computer system 600 and computer system 660 are paired. In some embodiments, computer system 660 optionally includes one or more functions of device 100, device 300, or device 500. In some embodiments, computer system 660 is a tablet, phone, laptop, desktop, camera, etc.
[0224] In FIG. 6S, computer system 660 displays, via display 662, a my watch user interface 675a that includes options for editing watch user interfaces that can be displayed via computer system 600. My watch user interface 675a includes a back-user interactive graphic user interface 644 that, when selected, causes computer system 660 to display a user interface for selecting which computer system (e.g., watch) to configure via computer system 660. My watch user interface 675a includes a watch name 646 that indicates that the watch currently selected to be configured via computer system 660 is Jane's watch. In FIG. 6S, computer system 600 corresponds to Jane's watch. My watch user interface 675a further includes a search bar 664 that, when selected, allows searching among multiple selectable watch user interfaces available via computer system 600 for configuration via computer system 660.
[0225] My watch user interface 675a further includes a header 647 that includes a visual and / or textual indication that the representation of a watch face displayed thereunder corresponds to a watch face available to (e.g., stored in local memory of) computer system 600 (e.g., Jane's watch). My watch user interface 675a includes representations of multiple watch faces available to computer system 600, including a watch user interface representation 648 titled "Meridian," a watch user interface representation 652 titled "Portrait," which corresponds to watch user interface 642 displayed via computer system 600, and a watch user interface representation 654 titled "Motion."
[0226] My watch user interface 675a further includes an options region 666. Options region 666 includes a plurality of selectable options for configuring various functions of computer system 600. Options region 666 includes a notification user-interactive graphic user interface object 666a that, when selected, causes computer system 660 to display a user interface for editing notification settings for computer system 600. Options region 666 further includes a display user-interactive graphic user interface object 666b that, when selected, causes computer system 660 to display a user interface including options for editing display and brightness settings for computer system 600.
[0227] My watch user interface 675a further includes selectable options for displaying, via computer system 660, user interfaces other than my watch user interface 675a that are related to configuration functions of computer system 600. For example, my watch user interface 675a includes a gallery of watch faces user-interactive graphic user interface object 656 that, when selected, causes computer system 660 to display a user interface for showing additional watch user interfaces available on computer system 600. My watch user interface 675a further includes a discover user-interactive graphic user interface object 658 that, when selected, causes computer system 660 to display a user interface for obtaining additional watch user interfaces to computer system 600 that have not yet been downloaded to computer system 600. My watch user interface 675a further includes a gallery of watch faces user-interactive graphic user interface object 654 that corresponds to my watch user interface 675a and that, when selected, causes computer system 660 to display my watch user interface 675a.
[0228] In Figure 6S, computer system 600 displays watch user interface 642, which maintains the functionality of watch user interface 642 described and illustrated in Figure 6R, as previously described. In Figure 6S, computer system 660 detects tap input 650i in representation 652a, which corresponds to watch user interface 642 displayed on computer system 600.
[0229] 6T, in response to detecting tap input 650i, computer system 660 displays watch user interface 675b, which includes additional options for configuring how watch user interface 642 is displayed via computer system 600. My watch user interface 675b includes a back user-interactive graphic user interface 671 that, when selected, causes computer system 660 to display my watch user interface 675a. My watch user interface 675b further includes a watch face name 676 indicating that the name of the watch user interface currently selected to be configured via computer system 660 is “Portrait.” My watch face user interface 675b includes a share user-interactive graphic user interface object 669 that, when selected, causes computer system 660 to display a user interface related to sending and / or sharing information related to watch user interface 642 with another device (e.g., another computer system).
[0230] My watch user interface 675b further includes representation 652a, which is a representation of the watch user interface currently displayed on computer system 600 (e.g., watch user interface 642). In some embodiments, representation 652a is a live preview of the currently selected configuration selected for display via computer system 600. Thus, in some embodiments, representation 652a is updated in response to input received via computer system 660, such that selecting an option in my watch face user interface 675b updates both representation 652a displayed by computer system 660 and watch user interface 642 displayed by 600. The watch user interface further includes description 674, which includes a text description of the feature of the watch user interface currently selected for editing (e.g., a "portrait" watch user interface corresponding to watch user interface 642).
[0231] My watch user interface 675b further includes a color area 668 for selecting a color in which the appearance of watch user interface 642 will be displayed via computer system 600. Color area 668a includes a selected color 668a that indicates the currently selected color in which the appearance of watch user interface 642 will be displayed. In some embodiments, the appearance affected by the color selection includes system text 642b. In this manner, watch user interface 675b can be used to edit the color of the appearance of watch user interface 642 in a manner similar to the color editing process described above with respect to editing user interface 620c1.
[0232] The watch user interface 675b further includes an options region 670 containing selectable options for editing the appearance of the watch user interface 642. The options region 670 includes a content header 670a indicating that the options included in the region 670 below the header 670a are for editing the content of the currently selected watch user interface (e.g., 642). The region 670 further includes an album user-interactive graphic user interface object 670b that, when selected, configures a “portrait” watch user interface to be displayed using media items with depth data from the selected media item’s album. A selection indicator 672 is displayed as a check mark in the album user-interactive graphic user interface object 670b to indicate that the watch user interface 642 is currently configured to be displayed using an album of media items. The album name user-interactive graphic user interface object 670c1 contains the title of the album from which media items are selected, including the depth data that the computer system 600 uses to generate the watch user interface. 6T, album name user-interactive graphical user interface object 670c1 indicates that the media items having depth data used to generate watch user interface 642 are currently selected from the album titled "Spring." Region 670 further includes photo user-interactive graphical user interface object 670d that, when selected, configures the "portrait" watch user interface (e.g., 642) to be displayed using media items having depth data from computer system 600 and / or photo albums accessible by computer system 600.Region 670 further includes a dynamic user-interactive graphic user interface object 670e that, when selected, configures the “Portrait” watch user interface (e.g., 642) to be displayed using media items with depth data from new and / or updated media items and / or media items with depth data that becomes newly available via computer system 600 and / or computer system 660.
[0233] In Figure 6U, computer system 660 displays my watch user interface 675c. In Figure 6U, in my watch user interface 675c, album name user-interactive graphic user interface object 670c1 is replaced with album name user-interactive graphic user interface object 670c2, which indicates that the album of media items containing the depth data from which the "portrait" watch user interface was generated has been updated from "spring" to "summer." Accordingly, representation 652a is replaced with representation 652b, which corresponds to watch user interface 680 displayed via 600.
[0234] Watch user interface 680 is generated and displayed by computer system 600 based on media items having depth data selected from the album titled "Summer" instead of the previously selected album titled "Spring." In some embodiments, in response to a sequence of user inputs received at computer system 660, including a tap input on album's name user-interactive graphical user interface object 670c1, computer system 660 transitions from watch user interface 675b to watch user interface 675c, and computer system 600 transitions from displaying watch user interface 642 to displaying watch user interface 680. Thus, in FIG. 6U , while my watch user interface 675b is displayed, in response to a sequence of one or more user inputs received through computer system 660, including a tap input on album's name 670c1, computer system 600 displays watch user interface 680, including background element 680a, system text 680b, foreground object 680c, and complication 680d.
[0235] 6S-6U thus illustrate that a watch user interface displayed via computer system 600 may be updated and / or configured via input received at a computer system that is in wireless communication with (e.g., paired with) computer system 600. Additionally, Figures 6S-6U demonstrate that the source of media items having depth data for generating a watch user interface for display via computer system 600 may be manually edited and / or configured via computer system 660 (e.g., a computer system in wireless communication with computer system 600).
[0236] 7 is a flow diagram illustrating a method for managing a watch face based on depth data of previously captured media items using a computer system, according to some embodiments. Method 700 is performed on a computer system (e.g., 100, 300, 500, 600) (e.g., smart watch, wearable electronic device, smartphone, desktop computer, laptop, tablet) in communication with display generation components and one or more input devices (e.g., display controller, touch-sensitive display system, rotatable input mechanism, touch-sensitive surface). Operations in method 700 are optionally combined, the order of operations is optionally changed, and operations are optionally omitted.
[0237] As described below, method 700 provides an intuitive way to manage a watch face based on depth data of previously captured media items. The method reduces the cognitive burden on a user managing a watch face based on depth data of previously captured media items, thereby creating a more efficient human-machine interface. For battery-powered computing devices, allowing a user to manage a watch face based on depth data of previously captured media items more quickly and efficiently conserves power and extends the time between battery charges.
[0238] In some embodiments, the watch face described in method 700 may be displayed and / or edited in the manner described below with respect to method 1500 (e.g., FIG. 15) and / or in the manner described below with respect to FIGS. 14A-14R.
[0239] A computer system (e.g., 600) receives (702) input via one or more input devices corresponding to a request to display a user interface based on a media item (e.g., a lift-to-launch gesture, a tap gesture, a digital crown rotation gesture, etc.).
[0240] In response to receiving the input, the computer system, via a display generation component, displays (704) a user interface (e.g., 606) (e.g., a watch user interface, a wake-up screen, a watch face, a lock screen). Displaying the user interface includes simultaneously displaying a media item (706) (e.g., a photo, a video, a GIF, an animation) including a background element (e.g., 606a shown in FIG. 6B ) and a foreground element (e.g., 606c shown in FIG. 6B ) segmented from the background element based on depth information and system text (e.g., 606b shown in FIG. 6B ) (708) (e.g., a first time, a current date), the system text displayed in front of (e.g., visually overlaying or in a position corresponding to a portion of) the background element and behind (e.g., at least partially visually overlaid with) the foreground element, with content dynamically selected based on the context of the computer system. In some embodiments, the media item includes depth data (e.g., data for segmenting foreground elements from one or more background elements, data indicating that the foreground elements were less than a threshold distance away from one or more cameras when the media was captured and that the background elements were more than a threshold distance away from one or more cameras when the media was captured, or a dataset related to the distance between two objects in the media, a dataset including the relative distance between a camera sensor and at least a first object and a second object that were in the field of view of the camera sensor when the media was captured, multiple layers, etc.). In some embodiments, the background and foreground elements are selected (in some embodiments, automatically) based on the depth data (e.g., pursuant to a determination that the background element is located behind the foreground element).Automatically creating a user interface (e.g., 606 shown in FIG. 6B ) and displaying the user interface includes simultaneously displaying a media item including a background element, a foreground element segmented from the background element based on depth information, and system text, the system text being displayed in front of and behind the background element, with content dynamically selected based on the context of the computer system, allowing the user interface to be displayed without requiring multiple inputs from a user to configure the user interface (e.g., configuring the user interface by manually dividing the media item into segmented elements and / or selecting which elements of the media item are to be foreground elements and which elements of the media item are to be background elements). Performing an operation without requiring further user input when a set of conditions is met improves device usability and makes the user-device interface more efficient (e.g., by assisting in displaying the user interface by determining that the media item includes a background element and a foreground element segmented from the background element based on depth information), further allowing the user to use the device more quickly and efficiently, thereby reducing power usage and extending the device's battery life.
[0241] In some embodiments, in response to a determination that the input was received in a first context (e.g., a first time, a first date, a first time zone), the computer system (e.g., 600) displays a first content in system text (e.g., 606b shown in FIG. 6B) (e.g., a first time, a first date). In some embodiments, in response to a determination that the input was received in a second context (e.g., a second time, a second date, a second time zone), the computer system displays a second content (e.g., 640b shown in FIG. 6Q) (e.g., a second time, a second date) that differs from the first content in the system text. Displaying system text with different content in response to different contexts provides visual feedback regarding the context of the computer system. Providing improved feedback may improve device usability and result in a more efficient user-device interface (e.g., by assisting a user in quickly and easily viewing information regarding the context of the computer system), further reducing power usage and extending the device's battery life by allowing a user to use the device more quickly and efficiently.
[0242] In some embodiments, a computer system (e.g., 600) detects a change in the computer system's context (e.g., a change in time, a change in date, a change in time zone). In some embodiments, in response to detecting a change in the computer system's context, the computer system updates system text (e.g., 606b shown in FIG. 6B ) based at least in part on the change in context. In some embodiments, updating the system text includes revising the system text to display different content. Updating the system text based on a change in the computer system's context provides improved visual feedback by allowing the computer system to display context-specific system text to quickly and easily inform the user of current context information. Providing improved feedback improves device usability and provides a more efficient user-device interface (e.g., by helping the user quickly and easily view context information), further reducing power usage and extending the device's battery life by allowing the user to use the device more quickly and efficiently.
[0243] In some embodiments, the media item-based user interface is a watch face (e.g., 606 shown in FIG. 6B) (e.g., a watch face that displays the time and includes one or more watch complications). Displaying the user interface as a watch face provides improved visual feedback by allowing a user to quickly and easily access information provided by the user interface within the watch face. Providing improved feedback improves device usability, makes the user-device interface more efficient (e.g., by helping the user quickly and easily access information contained in the user interface), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently.
[0244] In some embodiments, the user interface (e.g., 606 shown in FIG. 6B ) is a screen (e.g., a wake-up screen or a lock screen) of a computer system (e.g., 600) (e.g., a smartphone, tablet, personal computer, television) that is initially displayed when the computer system transitions from a low-power state (e.g., shown in FIG. 6A ) (e.g., an off state, a sleep state, a low-power mode, a battery saver mode, an eco mode) to a higher-power state (e.g., an active state, an on state, a normal (e.g., non-low-power) mode). Initially displaying the user interface when the computer system transitions from a low-power state to a higher-power state provides improved visual feedback by allowing a user to quickly and easily access information when the computer system transitions from a low-power state to a higher-power state (e.g., upon waking). Providing improved feedback improves device usability and provides a more efficient user-device interface (e.g., by helping the user access information provided in the user interface), further reducing power usage and extending the device's battery life by allowing the user to use the device more quickly and efficiently.
[0245] In some embodiments, the user interface is a lock screen (e.g., 606 shown in FIG. 6A ) (e.g., when authentication (e.g., biometric authentication, passcode authentication) is required to unlock the computer system). In some embodiments, the lock screen includes a prompt (e.g., instructions) to provide information for unlocking the device. Displaying the user interface as a lock screen provides improved visual feedback by allowing a user to quickly and easily access information provided in the user interface while restricting access to other functions of the device based on the device's lock state. Providing improved visual feedback improves device usability, makes the user-device interface more efficient (e.g., by helping the user access information contained in the user interface while the device is in a locked state), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently. Furthermore, displaying the user interface as a lock screen user interface improves device security while maintaining functionality by allowing the user to view information contained in the user interface when other functions of the computer system are not enabled because the device is in a locked state.
[0246] In some embodiments, displaying system text (e.g., 606b shown in FIG. 6B ) includes displaying the current time (e.g., 606b3 shown in FIG. 6B ) (e.g., current time, time in current time zone) and / or current date in the system text. In some embodiments, the text is continuously updated over time to reflect the current time. In some embodiments, the text is aligned with and / or intended to reflect Coordinated Universal Time using an offset based on the currently selected time zone. Displaying a user interface (e.g., 606 shown in FIG. 6B ) includes displaying system text including the current time and / or current date, enabling the user interface to include information about the current activity state of the computer system, which provides improved visual feedback by allowing a user to quickly and efficiently view current activity state information. Providing improved visual feedback improves device usability, makes the user-device interface more efficient (e.g., by helping a user quickly determine the date / time), and further reduces power usage and extends the device's battery life by allowing a user to use the device more quickly and efficiently.
[0247] In some embodiments, system text (e.g., 606b shown in FIG. 6B ) is at least partially obscured by foreground elements (e.g., 606c shown in FIG. 6B ). Displaying the system text and being at least partially obscured by the foreground elements of the media item allows elements displayed in the user interface (e.g., 606 shown in FIG. 6B ) (e.g., system text and / or foreground elements) to be displayed at a larger size without reducing the functionality and / or readability of the system text, which provides improved visual feedback by allowing a user to easily and efficiently view the content of the system text (e.g., in a larger font for improved readability) and display foreground elements of the media item at a larger size to more clearly view the foreground elements. Providing improved feedback improves device usability and makes the user-device interface more efficient (e.g., by helping the user view foreground elements and system text at a larger size without compromising readability), further reducing power usage and extending the device's battery life by allowing the user to use the device more quickly and efficiently.
[0248] In some embodiments, the media includes photos and / or videos. Displaying a user interface that includes system text (e.g., 606b shown in FIG. 6B) and media items, where the media items are photos and / or videos, provides improved visual feedback by allowing a user to easily and efficiently view the photos and / or videos while simultaneously displaying the system text. Providing improved feedback improves device usability and makes the user-device interface more efficient (e.g., by helping the user make appropriate inputs and reducing user errors when operating / interacting with the device), which in turn reduces power usage and improves the device's battery life by allowing the user to use the device more quickly and efficiently.
[0249] In some embodiments, displaying the user interface (e.g., 606 shown in FIG. 6B) includes displaying an animation. In some embodiments, the animation includes a change in appearance of one or more elements of the user interface over time based at least in part on the depth information. In some embodiments, the animation includes displaying a foreground element having a first set of characteristics and a background element having a second set of characteristics different from the first set of characteristics. Displaying the animation includes a change in appearance of one or more elements of the user interface over time based at least in part on the depth information of the media item, and displaying the animation provides improved visual feedback regarding which portions of the media item are background elements (e.g., 606a shown in FIG. 6B) and which portions of the media item are foreground elements (e.g., 606c shown in FIG. 6B). Providing improved feedback improves device usability and provides a more efficient user-device interface (e.g., by visually distinguishing between various elements of the media item), further reducing power usage and extending the device's battery life by allowing the user to use the device more quickly and efficiently.
[0250] In some embodiments, the animation includes a simulated rack focus effect. In some embodiments, the rack focus effect includes blurring background elements (e.g., 606a shown in FIG. 6B ). In some embodiments, the rack focus effect includes reducing the blur (e.g., bringing into focus) foreground elements (e.g., 606c shown in FIG. 6B ). In some embodiments, the rack focus effect includes blurring background elements while reducing the blur of foreground elements. Displaying an animation of a media item that includes a simulated rack focus effect provides improved visual feedback regarding which portions of the media item are background elements and which portions of the media item are foreground elements. Providing improved feedback improves device usability and allows a more efficient user-device interface (e.g., by visually distinguishing between various elements of a media item), further reducing power usage and extending the device's battery life by allowing a user to use the device more quickly and efficiently.
[0251] In some embodiments, the animation includes a simulated dolly zoom effect. In some embodiments, the dolly zoom effect includes displaying an animation in which a simulated camera moves closer to or further away from a foreground element (e.g., 606c shown in FIG. 6D ) while adjusting the zoom to keep the size of the foreground element (e.g., 606c) the same, creating the visual effect of the background (e.g., 606a shown in FIG. 6D ) increasing in size and detail, or the foreground increasing in size relative to the background. In some embodiments, the dolly zoom effect includes updating a simulated zoom effect applied to a background element (e.g., 606a) while maintaining a constant zoom level for the foreground element (e.g., 606c). In some embodiments, the dolly zoom effect includes zooming out a background element (e.g., 606a) while maintaining a simulated zoom level applied to the foreground element (e.g., 606c). In some embodiments, the dolly zoom effect includes zooming in on a background element (e.g., 606a) while maintaining a simulated zoom level applied to a foreground element (e.g., 606c). Displaying an animation of a media item that includes a simulated dolly zoom effect provides improved visual feedback regarding which portions of the media item are background elements and which portions of the media item are foreground elements (e.g., 606c). Providing improved visual feedback may improve device usability, provide a more efficient user-device interface (e.g., by visually identifying various elements of a media item), and further reduce power usage and extend the device's battery life by allowing a user to use the device more quickly and efficiently.
[0252] In some embodiments, the animation includes a parallax effect (e.g., as shown in FIG. 6C ). In some embodiments, the parallax effect includes updating the position at which a foreground element (e.g., 606c shown in FIG. 6C ) is displayed relative to a background element (e.g., 606a shown in FIG. 6C ). In some embodiments, the parallax effect includes translating the foreground element on the display at a first rate and translating the background element on the display at a second rate different from the first rate. Displaying an animation of a media item that includes a parallax effect provides improved visual feedback regarding which portions of the media item are background elements and which portions of the media item are foreground elements. Providing improved feedback improves device usability and allows a more efficient user-device interface (e.g., by visually distinguishing between various elements of a media item), further reducing power usage and extending the device's battery life by allowing a user to use the device more quickly and efficiently.
[0253] In some embodiments, a computer system (e.g., 600) detects an activity (e.g., a manipulation of the computer system, e.g., caused by a user of the computer system (e.g., a wrist tilt gesture)) (e.g., shown in FIG. 6C ) while the computer system is in a high power state (e.g., an active state, an on state, a normal (e.g., non-low power) mode). In some embodiments, in response to detecting the activity, the computer system, via a display generation component, displays a user interface with a simulated parallax effect having a direction and / or magnitude determined based on the direction and / or magnitude of the activity. In some embodiments, the parallax effect is based at least in part on the extent and / or direction of the activity. In some embodiments, displaying a user interface with a simulated parallax effect (e.g., 606 shown in FIG. 6C ) includes displaying media items with a simulated panning effect, where foreground elements are shown to move faster than background elements as the field of view pans. In some embodiments, while the computer system is in a low power state (e.g., off state, sleep state, low power mode, battery saver mode, eco mode), the user interface is not displayed with a parallax effect in response to detected motion. Displaying an animation of a media item with a parallax effect in response to motion provides improved visual feedback regarding which portions of the media item are background elements and which portions of the media item are foreground elements. Providing improved feedback improves device usability, provides a more efficient user-device interface (e.g., by visually identifying various elements of a media item), and further allows the user to use the device more quickly and efficiently, thereby reducing power usage and extending the device's battery life.
[0254] In some embodiments, a computer system (e.g., 600), via a display generation component, displays an editing user interface (e.g., 620a1) for editing a first complication (e.g., 606d1 shown in FIG. 6B) of a user interface (e.g., 606 shown in FIG. 6B). In some embodiments, a complication refers to any watch face feature other than those used to indicate the hours and minutes of a time (e.g., clock hands or hour / minute indications). In some embodiments, a complication provides data obtained from an application. In some embodiments, a complication includes an affordance that, when selected, launches a corresponding application. In some embodiments, a complication is displayed in a fixed, predefined location on the display. In some embodiments, a complication occupies a respective location in a specific region of the watch face (e.g., bottom right, bottom left, top right, and / or top left). In some embodiments, while displaying the editing user interface, the computer system receives a first sequence of one or more user inputs (e.g., touch inputs, rotation inputs, press inputs) via one or more input devices. In some embodiments, in response to receiving a first sequence of one or more user inputs, the computer system edits a first complication (e.g., as shown in FIGS. 6L-6N). In some embodiments, the complication includes information from a first application, and editing the complication includes editing the complication to display different information from the first application. In some embodiments, editing the complication includes editing the complication to display different information from a second application that is different from the first application. Editing the first complication in response to receiving a sequence of one or more user inputs while the editing user interface is displayed allows a user to easily and intuitively edit the first complication.Providing improved control options can improve device usability, provide a more efficient user-device interface (e.g., by assisting users in providing appropriate input and reducing user errors when operating / interacting with the device), and enable users to use the device more quickly and efficiently, thereby reducing power usage and extending the device's battery life.
[0255] In some embodiments, system text (e.g., 606b shown in FIG. 6B) displayed in a user interface (e.g., 606 shown in FIG. 6B) is displayed in a first font. In some embodiments, after displaying the user interface including the system text displayed in the first font, the computer system receives a request to edit the user interface (e.g., touch input, rotate input, press input) (e.g., shown in FIG. 6F) via one or more input devices. In some embodiments, in response to receiving the request to edit the user interface, the computer system displays, via the display generation component, an editing user interface (e.g., 620a1) for editing the user interface. In some embodiments, while displaying the editing user interface, the computer system receives a second sequence of one or more user inputs (e.g., touch input, rotate input, press input) (e.g., shown in FIGS. 6G-6H) via one or more input devices. In some embodiments, in response to receiving the second sequence of one or more user inputs, the computer system selects a second font for the system text. In some embodiments, after selecting the second font for the system text, the computer system displays the user interface. In some embodiments, the system text displayed in the user interface is displayed in a second font that is different from the first font (e.g., as shown in FIG. 6P). In some embodiments, updating the user interface to display the system text in the second font that is different from the first font includes updating the user interface to stop displaying the system text in the first font. Editing the font in which the system text is displayed in response to receiving a second sequence of one or more user inputs while the editing user interface is displayed allows a user to edit the font simply and intuitively.Providing improved control options can improve device usability, provide a more efficient user-device interface (e.g., by assisting users in providing appropriate input and reducing user errors when operating / interacting with the device), and enable users to use the device more quickly and efficiently, thereby reducing power usage and extending the device's battery life.
[0256] In some embodiments, system text (e.g., 606b shown in FIG. 6B ) displayed in the user interface (e.g., 606) is displayed in a first color. In some embodiments, after displaying the user interface with the system text displayed in the first color, the computer system receives a second request to edit the user interface via one or more input devices. In some embodiments, in response to receiving the second request to edit the user interface, the computer system displays an editing user interface (e.g., 620c1) for editing the user interface via the display generation component. In some embodiments, while displaying the editing user interface, the computer system receives a third sequence of one or more user inputs (e.g., touch input, rotate input, press input) via the one or more input devices. In some embodiments, in response to receiving the third sequence of one or more user inputs, the computer system selects a second color for the system text. In some embodiments, after selecting the second color for the system text, the computer system displays the user interface such that the system text displayed in the user interface is displayed in a second color different from the first color. In some embodiments, updating the user interface to display the system text in the second color different from the first font includes updating the user interface to stop displaying the system text in the first color. Editing the color that system text is displayed in response to receiving a third sequence of one or more user inputs while the editing user interface is displayed allows the user to easily and intuitively edit the color. Providing improved control options improves device usability and makes the user-device interface more efficient (e.g., by assisting the user in providing appropriate input and reducing user errors when operating / interacting with the device), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently.
[0257] In some embodiments, a computer system (e.g., 600) detects that a predetermined condition has been met (e.g., a predetermined amount of time has passed, a user input (e.g., a tap, on the wrist) has been detected). In some embodiments, in response to detecting that the predetermined condition has been met, the computer system displays a user interface (e.g., 606 shown in FIG. 6B). In some embodiments, the user interface is based on a second media item instead of the media item (e.g., shown in FIG. 6Q). In some embodiments, displaying the user interface includes simultaneously displaying the second media item (including a second background element and a second foreground element segmented from the second background element based on depth information) and system text (e.g., 640b shown in FIG. 6Q). In some embodiments, the system text includes simultaneously displaying system text in front of the second background element (e.g., 640a) and behind the second foreground element (e.g., 640c) and including content that is dynamically selected based on the context of the computer system (e.g., shown in FIG. 6Q). In some embodiments, the predetermined condition is met when the computer detects input (e.g., tap input, rotation input, and / or motion) via one or more input devices. In some embodiments, the predetermined condition is met when the computer system changes state (e.g., from a low power state to a high power state, from an off state to an on state, or from a sleep state to a wake state). In some embodiments, the second media item is automatically selected. In some embodiments, the second media item includes depth data. In some embodiments, the second media item includes a second background element and a second foreground element. Conditionally ceasing display of the media item and causing display of a user interface based on the second media item based on whether the predetermined condition is met allows an operation to be performed by a particular device without requiring further user input.Performing an operation without further user input when a set of conditions is met improves the usability of the device, makes the user-device interface more efficient (e.g., by helping to display a user interface based on updated media items when certain conditions are met), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently.
[0258] In some embodiments, a computer system (e.g., 600, 660), via a display generation component, displays a media selection user interface (e.g., 675b) including a set of media items (e.g., shown in FIG. 6S) (e.g., from a media library of the computer system). In some embodiments, the computer system receives, via one or more input devices, a fourth sequence of one or more user inputs (e.g., touch inputs, rotation inputs, press inputs) corresponding to a selection of a third media item. In some embodiments, in response to receiving a fourth sequence of one or more user inputs (e.g., touch inputs, rotation inputs, press inputs) corresponding to a selection of a subset of the set of media items that includes the third media item, the computer system displays the user interface. In some embodiments, the user interface is based on the third media item. In some embodiments, the computer system generates the set of eligible media items based at least in part on characteristics of the media items (e.g., availability of depth information, shape of the depth information, presence of a particular type of interest (e.g., face, pet, favorite person)), and location of interest (e.g., face, pet, significant foreground element) within the media items. In some embodiments, the set of media items is a subset of a larger set of media items (e.g., a photo album) accessible to (e.g., stored on) the computer system. Displaying a user interface based on the third media item in response to receiving a fourth sequence of one or more user inputs corresponding to the selection of the third media item allows a user to easily and intuitively edit the user interface displayed based on the selected media item. Providing improved control options improves device usability, makes the user-device interface more efficient (e.g., by assisting the user in selecting media items on which the user interface is based), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently.
[0259] In some embodiments, in accordance with a determination that the plurality of media items includes at least one media item that satisfies a first set of predetermined criteria (e.g., availability of depth information, shape of depth information, presence of a particular type of point of interest (e.g., face, pet, favorite person), presence of a position of a point of interest (e.g., face, pet, important foreground element) in the media), the computer system adds one or more media items that meet the first set of predetermined criteria to a subset of media items selected for use in the user interface (e.g., 606). In some embodiments, in accordance with a determination that the plurality of media items does not include at least one media item that meets the first set of predetermined criteria, the computer system stops adding media items to the subset of media items selected for use in the user interface. In some embodiments, determining that the plurality of media items includes at least one media item that meets the first set of criteria includes the computer system evaluating the plurality of media items available (e.g., accessible) to determine whether a media item in the plurality of media items meets the first set of predetermined criteria. In some embodiments, after adding one or more media items that meet the first set of predetermined criteria to the subset of media items, the user interface is displayed. In some embodiments, as part of displaying the user interface, the computer system automatically selects (e.g., without user input) a fourth media item from the subset of media items selected for use in the user interface, and after selecting the fourth media item from the subset of media items selected for use in the user interface, the computer system displays the fourth media item, and displays a user interface including the media items, the media items being automatically selected based on a determination regarding a set of characteristics of the media items, to provide a user with a user interface based on the media items without the user having to select the media items to display the user interface based on the media items.Taking action when a set of conditions is met without requiring further user input enhances the usability of the device, makes the user-device interface more efficient (e.g., by assisting the user in providing appropriate inputs when operating / interacting with the device and reducing user errors), and also reduces power usage and improves the device's battery life by allowing the user to use the device more quickly and efficiently.
[0260] In some embodiments, the determination regarding the characteristics of the set of media items includes determining that displaying system text behind foreground elements does not obscure more than a threshold amount of the system text (e.g., 606b). In some embodiments, the determination includes determining that the media items include a portion above the foreground elements (e.g., at the top of the media items) that is large enough that the system text can be displayed without obscuring it more than a threshold amount. A user interface is displayed based on the media items, and the media items are selected based on whether displaying system text behind foreground elements of the media items obscures it more than a threshold amount to provide a user interface based on the media items to a user, without requiring the user to select the media items to present the user interface (e.g., 640) based on the media items, and without unduly obscuring the system text (e.g., to maximize readability and / or legibility). Performing an operation without requiring further user input when a set of conditions is met improves device usability, provides a more efficient user-device interface (e.g., by providing a user interface with readable system text behind foreground elements of media items), and further reduces power usage and extends the device's battery life by allowing a user to use the device more quickly and efficiently.
[0261] In some embodiments, following a determination that the fifth media item (e.g., photo, video, GIF, animation) satisfies a first set of predetermined criteria, the computer system (e.g., 600), via a display generation component, displays a second user interface (e.g., 640 shown in FIG. 6Q) based on the fifth media item (e.g., a watch user interface, a wake-up screen, a watch face, a lock screen). As part of displaying the second user interface, the computer system simultaneously displays the fifth media item including a third background element and a third foreground element segmented from the third background element based on depth information and system text (e.g., a first time of day, a current date). In some embodiments, the system text is displayed in front of (e.g., visually overlaying or in a position corresponding to a portion of) the third background element and behind (e.g., at least partially visually overlaying) the third foreground element, and includes content dynamically selected based on a third context of the computer system (e.g., 640 shown in FIG. 6Q). In some embodiments, in accordance with a determination that the fifth media item does not satisfy the first set of predetermined criteria, the computer system displays a second user interface via a display generation component. In some embodiments, as part of displaying the second user interface, the computer system simultaneously displays the fifth media item including a third background element and a third foreground element segmented from the background element based on the depth information and the system text. In some embodiments, the system text is displayed in front of (e.g., visually overlaying or in a position corresponding to a portion of) the third background element and in the third foreground element, and includes content that is dynamically selected based on a third context of the computer system (e.g., 642 shown in FIG. 6R). Determining whether to display the system text in front of or behind the foreground element of the media item based on the predetermined criteria provides a user with a media item-based user interface, where the position of the system text is selected based on the criteria without the user having to select a position for the system text.Taking action when a set of conditions is met without requiring further user input enhances the usability of the device, makes the user-device interface more efficient (e.g., by assisting the user in providing appropriate inputs when operating / interacting with the device and reducing user errors), and also reduces power usage and improves the device's battery life by allowing the user to use the device more quickly and efficiently.
[0262] In some embodiments, in accordance with a determination that the fifth media item meets the first set of predetermined criteria, the computer system (e.g., 600) displays system text (e.g., 640b shown in FIG. 6Q) at the top (e.g., top) of the second user interface. In some embodiments, in accordance with a determination that the fifth media item does not meet the first set of predetermined criteria, the computer system displays system text (e.g., 642b) at the bottom (e.g., bottom) of the second user interface (e.g., 642 shown in FIG. 6S). Displaying the second user interface including system text at either the top or bottom of the user interface based on whether the fifth media item meets the first set of predetermined criteria provides the user with a media item-based user interface, and the portion of the second user interface where the system text is displayed is determined automatically without the user having to select a location for the system text. Performing an operation without further user input when a set of conditions is met improves device usability, provides a more efficient user-device interface (e.g., by selecting a preferred portion of a media item for displaying system text), and allows the user to use the device more quickly and efficiently, thereby reducing power usage and extending the device's battery life.
[0263] In some embodiments, as part of displaying the user interface, the computer system simultaneously displays a second complication (e.g., 606d2 shown in FIG. 6P). In some embodiments, the second complication is displayed in front of (e.g., visually overlaying or in a position corresponding to a portion of) the foreground element (e.g., 606c). In some embodiments, a complication refers to any watch face feature other than those used to indicate the hours and minutes of a time (e.g., clock hands or hour / minute indications). In some embodiments, a complication provides data obtained from an application. In some embodiments, a complication includes an affordance that, when selected, launches a corresponding application. In some embodiments, a complication is displayed in a fixed, predefined location on the display. In some embodiments, the complications occupy specific regions of the watch face (e.g., bottom right, bottom left, top right, and / or top left). Displaying the second complication in front of the foreground element provides improved visual feedback by allowing the user to view the second complication without it being visually obscured by the foreground element of the media item, which provides visual feedback that the second complication can be selected while the foreground element is displayed. Providing improved feedback improves usability of the device and makes the user-device interface more efficient (e.g., by helping the user make appropriate inputs and reducing user errors when operating / interacting with the device), which further reduces power usage and improves the device's battery life by allowing the user to use the device more quickly and efficiently.
[0264] In some embodiments, as part of displaying a user interface (e.g., 640), the computer system (e.g., 600) simultaneously displays a third complication (e.g., 640d). In some embodiments, the third complication is displayed behind (e.g., at least partially visually overlaying) a foreground element (e.g., 640c shown in FIG. 6S). In some embodiments, a complication refers to any watch face feature other than those used to indicate the hours and minutes of a time (e.g., clock hands or hour / minute indications). In some embodiments, a complication provides data obtained from an application. In some embodiments, a complication includes an affordance that, when selected, launches a corresponding application. In some embodiments, a complication is displayed in a fixed, predefined location on the display. In some embodiments, the complications occupy specific regions of the watch face (e.g., bottom right, bottom left, top right, and / or top left). Displaying the second complication behind the foreground element provides improved visual feedback by visually highlighting the foreground element of the media item while maintaining the display of the second complication. Providing improved feedback improves usability of the device and makes the user-device interface more efficient (e.g., by helping the user make appropriate inputs and reducing user errors when operating / interacting with the device), which in turn reduces power usage and improves the device's battery life by allowing the user to use the device more quickly and efficiently.
[0265] It should be noted that the process details described above with respect to method 700 (e.g., FIG. 7) can be applied in a similar manner to the methods described below with reference to methods 900, 1100, and 1300. For example, method 700 optionally includes one or more features of the various methods described above with reference to method 900. For example, a device can use as a watch user interface either a user interface including a time display based on geographic data as described with reference to FIGS. 8A-8M or a watch user interface as described with reference to FIGS. 6A-6U. As another example, the watch user interface described with reference to FIGS. 6A-6U can include hour digits that are updated based on the current time, as described with reference to method 1100 and with reference to FIGS. 10A-10W. Further, for example, method 1300 optionally includes one or more features of the various methods described above with reference to method 700. For example, the watch user interfaces of FIGS. 6A-6U can be created or edited via a watch user interface updating and selection process as described with reference to FIGS. 12A-12W. Further, for example, method 1500 optionally includes one or more features of the various methods described above with reference to method 700. For example, the watch user interface of Figures 6A-6U can be initially edited via a second computer system, as described with reference to Figures 14A-14R. For the sake of brevity, these details will not be repeated below.
[0266] 8A-8M show example user interfaces for managing clock faces based on geographic data, and are used to illustrate processes described below, including the process of FIG.
[0267] 8A shows computer system 800 displaying watch user interface 816a via display 802. Computer system 800 includes rotatable and depressible input mechanism 804. In some embodiments, computer system 800 optionally includes one or more functions of device 100, device 300, or device 500. In some embodiments, computer system 800 is a tablet, phone, laptop, desktop, camera, etc. In some embodiments, inputs described below can optionally be replaced with alternative inputs, such as press inputs and / or rotation inputs received via rotatable and depressible input mechanism 804.
[0268] 8A includes a location indicator 814a indicating that computer system 800 is located in San Francisco, which is in Pacific Standard Time. In some embodiments, functionality of watch user interface 816a corresponds to and / or is based on a determination that computer system 800 is located in a particular location and / or a particular time zone, as further described below.
[0269] Wristwatch user interface 816a includes multiple portions, including portion 820a, which includes a circular dial with location names (e.g., cities, countries, islands, regions, etc.) displayed around the periphery of the circular dial. The various location names include name 820a1 (Los Angeles), name 820a2 (Dubai), name 820a3 (Beijing), and name 820a4 (Mexico). The locations within portion 820a at which the location names are displayed and the orientation at which the location names are displayed correspond to geographic data indicating the current location and / or time zone in which computer system 800 is located. In FIG. 8A , Los Angeles is displayed at the bottom center of portion 820a based on a determination that computer system 800 is located in San Francisco (indicated by location indicator 814a), which is in Pacific Standard Time. In FIG. 8A , portion 820a includes location names corresponding to locations representing different time zones. In some embodiments, computer system 800 displays a location name corresponding to the time zone in which computer system 800 is located in a central position at the bottom of portion 820a (e.g., name 820a1, Los Angeles, is shown in FIG. 8A ). In some embodiments, the location name corresponding to the time zone in which computer system 800 is located is different from the actual city in which computer system 800 is located (e.g., Los Angeles represents San Francisco). In some embodiments, following a determination that the location of computer system 800 has changed and / or that computer system 800 has moved from a first time zone to another time zone, computer system 800 updates the position and / or orientation of the location name displayed in portion 820a.
[0270] Wristwatch user interface 816a further includes indicator 815 that includes a graphical indicator of a location name corresponding to the location of computer system 800. In some embodiments, indicator 815 includes a graphical indicator of an hour digit included in portion 820b that corresponds to the current time in the time zone in which computer system 800 is located. In watch user interface 816a, indicator 815 includes an arrow centered at the bottom of portion 820a indicating that the hour digit included in portion 820b that corresponds to the current time in Los Angeles is 10 (e.g., approximately 10:00 AM in Los Angeles).
[0271] Wristwatch user interface 816a further includes portion 820b, which includes a circular dial including multiple hour digits corresponding to the hours of the day. In watch user interface 816a, portion 820b includes multiple hour digits ranging from 1 to 24, each digit corresponding to a different hour that makes up the 24 hours of the day. In some embodiments, portion 820b includes 12-hour digits instead of 24-hour digits. In some embodiments, portion 820b includes multiple overlapping hour digits (e.g., two 8s) and / or omits certain hour digits (e.g., no 7) to account for observance of daylight saving time in different time zones and / or cities or countries. In some embodiments, following a determination that the date corresponds to a period during which daylight saving time is in effect, computer system 800 updates the hour digits included in portion 820b to omit at least one hour digit and / or repeat at least one hour digit.
[0272] In some embodiments, the relative positions of the location name in portion 820a and the hour number in portion 820b roughly indicate the time of day at the location corresponding to the location name displayed adjacent to the hour number. For example, in FIG. 8A , name 820a2, Dubai, has the hour number "22" displayed in the center, indicating that the current time in Dubai corresponds to the hour number "22" (e.g., approximately 10:00 PM). Name 820a4, Mexico, has the hour number "5" displayed in the center, indicating that the current time in Mexico City corresponds to the hour number "5" (e.g., approximately 5:00 AM).
[0273] Wristwatch user interface 816a further includes portion 820c, which includes a circular area of watch user interface 816a including a time display 826 including analog clock hands, the position of which represents the current time (hours, minutes, seconds, etc.). Portion 820c further includes map 824a, which includes at least a partial view of an animated map and / or globe. In some embodiments, map 824a includes an animated map and / or globe view including a representation of the location (e.g., a city, country, island, region, etc.) of computer system 800 (e.g., San Francisco, the region corresponding to Pacific Standard Time, etc.). Portion 820c includes terminator line 822, which includes a visual and / or graphic animation representing the distinction between day and night. In some embodiments, terminator line 822 is displayed on map 824a to indicate portions of the animated map and / or globe that are currently in nighttime and / or portions of the animated map and / or globe that are currently in daytime. In some embodiments, the terminator line 822 is updated over time to reflect the passage of time and / or the movement of the Earth.
[0274] Computer system 800 displays the names of the locations in an orientation that makes the names of the locations more readable. For example, in watch user interface 816a, name 820a1, Los Angeles, is oriented so that the top of the letters of name 820a1 appear closer to the clock display 826 than the bottom of the letters of name 820a1. Similarly, name 820a4, Mexico, is oriented so that the top of the letters of name 820a4 appear closer to the clock display 826 than the bottom of the letters of name 820a4. However, name 820a2, Dubai, and name 820a3, Beijing, are displayed so that the bottom of the letters appear closer to the clock display 826 than the top of the letters. In some embodiments, the orientation in which the names of the locations are displayed is updated based on geographic data associated with the location of computer system 800.
[0275] Wristwatch user interface 816a further includes a lock icon 818, which indicates that computer system 800 is currently in a locked state. In some embodiments, when computer system 800 is in a locked state, the functionality of computer system 800 is limited. Wristwatch user interface 816a includes multiple complications, including complication 806, complication 808, complication 810, and complication 812. In some embodiments, complications (806, 808, 810, 812) include information from applications available (e.g., installed) on computer system 800. In some embodiments, complications (806, 808, 810, 812) update over time to display the latest information (e.g., from the application associated with the complication). In some embodiments, selecting a complication (806, 808, 810, 812) causes computer system 800 to launch the application corresponding to the selected complication.
[0276] FIG. 8B shows computer system 800 at different times and different locations. FIG. 8B includes location indicator 814b indicating that computer system 800 is located in Abu Dhabi, which is in Gulf Standard Time. In FIG. 8B, computer system 800 displays watch user interface 816b. Watch user interface 816b includes portion 820a, and the names of locations displayed within portion 820a are updated. For example, name 820a1 of Los Angeles was displayed at the center of the bottom of portion 820a in watch user interface 816a, but name 820a1 is displayed at the center of the top of portion 820a in watch user interface 816b. Name 820a2 of Dubai was displayed at the center of the top of portion 820a in 816a, but name 820a2 is displayed at the center of the bottom of portion 820a in watch user interface 816b. The locations where name 820a4 Mexico and name 820a3 Beijing are displayed are also updated in watch user interface 816b.
[0277] The orientation in which the names of some of the locations are displayed is also updated in watch user interface 816b. In watch user interface 816a, Los Angeles with name 820a1 is displayed with an orientation such that the top of the letters of name 820a1 is closer to clock display 826 than the bottom of the letters of name 820a1. In watch user interface 816b, Los Angeles with name 820a1 is displayed with an orientation such that the bottom of the letters of name 820a1 is closer to clock display 826 than the top of the letters of name 820a1. Similarly, in watch user interface 816a, Dubai with name 820a2 is displayed with an orientation such that the bottom of the letters of name 820a2 is closer to clock display 826 than the top of the letters of name 820a1. In watch user interface 816b, Dubai with name 820a2 is displayed with an orientation such that the top of the letters of name 820a2 is closer to clock display 826 than the bottom of the letters of name 820a2. The orientations in which names 820a3, Beijing, and 820a4, Mexico, are displayed have also been updated.
[0278] Wristwatch user interface 816b includes indicator 815 that includes a graphical indicator of a location name that corresponds to geographic data associated with the location of the computer system. Indicator 815 further includes a graphical indicator of an hour digit included in portion 820b that corresponds to the current time in the time zone in which computer system 800 is located. In watch user interface 816b, indicator 815 includes an arrow centered at the bottom of portion 820a indicating that the hour digit included in portion 820b that corresponds to the current time in Dubai is 12.
[0279] Wristwatch user interface 816a further includes portion 820b including a circular dial including a plurality of hour digits corresponding to the hours of the day. In watch user interface 816b, portion 820b includes a plurality of hour digits ranging from 1 to 24, each digit corresponding to a different hour that makes up the 24 hours of the day.
[0280] Wristwatch user interface 816b further includes portion 820c, which includes a circular area of watch user interface 816b including a time display 826 including analog clock hands, the position of which represents the current time (hours, minutes, seconds, etc.). Portion 820c further includes map 824a, which includes at least a partial view of an animated map and / or globe. In some embodiments, map 824a includes an animated map and / or globe view including a representation of the location (e.g., city, country, island, region, etc.) of computer system 800 (e.g., Dubai, a region corresponding to Gulf Standard Time, etc.). Portion 820c includes terminator line 822, which includes a visual and / or graphic animation representing the distinction between day and night. In some embodiments, terminator line 822 is displayed on map 824a to indicate portions of the animated map and / or globe that are currently in nighttime and / or portions of the animated map and / or globe that are currently in daytime.
[0281] Wristwatch user interface 816b further includes a lock icon 818, which indicates that computer system 800 is currently in a locked state. In some embodiments, when computer system 800 is in a locked state, the functionality of computer system 800 is limited. Wristwatch user interface 816b includes multiple complications, including complication 806, complication 808, complication 810, and complication 812. In some embodiments, complications (806, 808, 810, 812) include information from applications available (e.g., installed) on computer system 800. In some embodiments, complications (806, 808, 810, 812) update over time to display the most current information. In some embodiments, selecting a complication (806, 808, 810, 812) causes computer system 800 to launch the application corresponding to the selected complication.
[0282] FIG. 8C shows computer system 800 at a different time and a different location. FIG. 8C includes location indicator 814c indicating that computer system 800 is located in Ireland, which is in Irish Standard Time. In FIG. 8C, computer system 800 displays watch user interface 816c. Watch user interface 816c includes portion 820a, and the location names displayed within portion 820a are updated. Name 820a1 of Los Angeles is displayed at the center of the bottom of portion 820a in watch user interface 816a and at the center of the top of portion 820a in watch user interface 816b, while name 820a1 is displayed to the left of portion 820a in watch user interface 816c. Name 820a2 is displayed at the center of the top of portion 820a in watch user interface 816a and at the center of the bottom of portion 820a in watch user interface 816b, while name 820a2 is displayed to the right of portion 820a in watch user interface 816c. The locations of Mexico with name 820a4a and Beijing with name 820a3 are also updated in the watch user interface 816c.
[0283] The orientation in which the names of some of the locations are displayed is also updated in watch user interface 816c. In watch user interface 816a, Los Angeles with name 820a1 is displayed with an orientation such that the top of the letters of name 820a1 is closer to clock display 826 than the bottom of the letters of name 820a1, and in watch user interface 816b, Los Angeles with name 820a1 is displayed with an orientation such that the bottom of the letters of name 820a1 is closer to clock display 826 than the top of the letters of name 820a1. In watch user interface 816a, Dubai with name 820a2 is displayed with an orientation such that the bottom of the letters of name 820a2 is closer to clock display 826 than the top of the letters of name 820a1, and in watch user interface 816b, Dubai with name 820a2 is displayed with an orientation such that the top of the letters of name 820a2 is closer to clock display 826 than the bottom of the letters of name 820a2. In watch user interface 816c, both name 820a1, Los Angeles, and name 820a2, Dubai, are displayed in the same orientation, with the bottom of the letters closer to the clock display 826 than the top of the letters. The orientation of some location names is maintained across time zone transitions. For example, name 820a4, Mexico, is displayed in both watch user interfaces 816b and 816c, with the bottom of the letters closer to the clock display 826. In some embodiments, computer system 800 reverses the orientation in which a particular location name is displayed pursuant to a determination that the position within portion 820a in which the location name was moved has changed by more than a threshold amount. In some embodiments, computer system 800 reverses the orientation in which a particular city name is displayed pursuant to a determination that the angle at which the name is displayed based on the updated time zone has changed by more than a threshold amount.
[0284] Wristwatch user interface 816c further includes indicator 815, which includes a graphical indicator of a location name corresponding to the location of computer system 800. Indicator 815 further includes a graphical indicator of an hour digit included in portion 820b corresponding to the current time in the time zone in which computer system 800 is located. In watch user interface 816c, indicator 815 includes an arrow centered at the bottom of portion 820a indicating that the hour digit included in portion 820b corresponding to the current time in London is 2 (e.g., approximately 2:00 AM in London).
[0285] Wristwatch user interface 816c further includes portion 820b including a circular dial including a plurality of hour digits corresponding to the hours of the day. In watch user interface 816c, portion 820b includes a plurality of hour digits ranging from 1 to 24, each digit corresponding to a different hour that makes up the 24 hours of the day.
[0286] Wristwatch user interface 816c further includes portion 820c, which includes a circular area of watch user interface 816c including a time display 826 including analog clock hands, the position of which represents the current time (hours, minutes, seconds, etc.). Portion 820c further includes map 824a, which includes at least a partial view of an animated map and / or globe. In some embodiments, map 824a includes an animated map and / or globe view including a representation of the location (e.g., city, country, island, region, etc.) of computer system 800 (e.g., Ireland, the region corresponding to Irish Standard Time, etc.). Portion 820c includes terminator line 822, which includes a visual and / or graphic animation representing the distinction between day and night. In some embodiments, terminator line 822 is displayed on map 824a to indicate portions of the animated map and / or globe that are currently in nighttime and / or portions of the animated map and / or globe that are currently in daytime.
[0287] Wristwatch user interface 816b further includes a lock icon 818, which indicates that computer system 800 is currently in a locked state. In some embodiments, when computer system 800 is in a locked state, the functionality of computer system 800 is limited. Wristwatch user interface 816b includes multiple complications, including complication 806, complication 808, complication 810, and complication 812. In some embodiments, complications (806, 808, 810, 812) include information from applications available (e.g., installed) on computer system 800. In some embodiments, complications (806, 808, 810, 812) update over time to display the most current information. In some embodiments, selecting a complication (806, 808, 810, 812) causes computer system 800 to launch the application corresponding to the selected complication.
[0288] FIG. 8D illustrates that, in some embodiments, the computer system rotates and displays portion 820a in a different time zone in response to a rotational input received via rotatable and depressible input mechanism 804. In some embodiments, the rotational input can change the currently selected time zone such that the watch user interface is displayed according to the first time zone instead of the second time zone. FIG. 8D illustrates computer system 800 displaying watch user interface 816d displayed according to selected Pacific Standard Time, as indicated by position indicator 814d. While watch user interface 816d is displayed, computer system 800 receives rotational input 860a via rotatable and depressible input mechanism 804, and in response to receiving rotational input 860a, computer system 800 displays watch user interface 816e, which is an updated display of watch user interface 816d displayed according to selected Gulf Standard Time, as indicated by position indicator 814e. While watch user interface 816e is displayed, computer system 800 receives rotational input 860b via rotatable and depressible input mechanism 804, and in response to receiving rotational input 860b, computer system 800 displays watch user interface 816f, which is an updated representation of watch user interface 816e displayed according to the selected Irish Standard Time, as indicated by position indicator 814f. In some embodiments, while watch user interface 816f is displayed, computer system 800 receives rotational input 860c via rotatable and depressible input mechanism 804, and in response to receiving rotational input 860c, computer system 800 displays watch user interface 816d, which is an updated representation of watch user interface 816f displayed according to the selected Pacific Standard Time, as indicated by position indicator 814f. In some embodiments, the selected time zone continues to update in response to the rotational input received via rotatable and depressible input mechanism 804. In some embodiments, computer system 800 cycles through a limited number of time zone options in a set order.
[0289] 8D , computer system 600 displays a watch user interface (e.g., 816d, 816e, 816f) without lock icon 818, indicating that computer system 800 is not in a locked state. In some embodiments, computer system 800 transitions from a locked state to an unlocked state in response to a sequence of user input received via one or more input mechanisms in communication with computer system 800. In some embodiments, computer system 800 transitions from a locked state to an unlocked state in response to a plurality of tap inputs received at computer system 800 corresponding to the entry of a passcode. In some embodiments, computer system 800 transitions from a locked state to an unlocked state in response to a press input received at rotatable and depressible input mechanism 604. In some embodiments, computer system 800 transitions from a locked state to an unlocked state in response to a sequence of one or more user inputs received via a computer system other than computer system 800 in communication with computer system 800, such as a paired phone. In some embodiments, computer system 800 transitions from a locked state to an unlocked state in response to a wrist-raise gesture. In some embodiments, computer system 800 does not update the watch user interface displayed via display 802 to correspond to different time zones in response to receiving rotational input via rotatable and depressible input mechanism 804 while computer system 800 is in a locked state, as shown in FIG. 8D .
[0290] 8E shows computer system 800 displaying watch user interface 816g consistent with watch user interface 816a. Watch user interface 816g includes portion 830c, which includes a circular region of watch user interface 816g including a time display 826 including analog clock hands, the position of which represents the current time (hours, minutes, seconds, etc.). Portion 820c further includes map 824a, which includes at least a partial view of an animated map and / or globe. In some embodiments, map 824a includes an animated map and / or globe view including a representation of the location (e.g., city, country, island, region, etc.) of computer system 800 (e.g., San Francisco, the region corresponding to Pacific Standard Time, etc.). Portion 820c includes terminator line 822, which includes a visual and / or graphic animation representing the distinction between day and night. In some embodiments, terminator line 822 is displayed on map 824a to indicate portions of the animated map and / or globe that are currently nighttime and / or portions of the animated map and / or globe that are currently daytime. In Figure 8E, computer system 800 detects input 850a (e.g., a tap input) on map 824a.
[0291] In FIG. 8F , in response to receiving input 850a, computer system 800 displays watch user interface 816h, which is an updated version of watch user interface 816g in which map 824a has been replaced with map 824b. In some embodiments, map 824b is an enlarged version of map 824a. In some embodiments, map 824b includes a city-level view of a location corresponding to the location name currently indicated by indicator 815. In FIG. 8F , indicator 815 indicates location name 820a1, Los Angeles. Thus, map 824b includes a city view of at least a portion of a map of Los Angeles. In some embodiments, the transition from the display of map 824a shown in watch user interface 816g to the display of map 824b shown in wrist user interface 816h includes an animation, which represents a rotating globe and / or a zoom-in animation transitioning from map 824a to map 824b.
[0292] 8G illustrates computer system 800 displaying a watch user interface 816i that matches watch user interface 816a. In particular, using watch user interface 816a as an example, watch user interface 816a further includes portion 820c, which includes a circular region of watch user interface 816i that includes a time display 826 including analog clock hands, the position of which represents the current time (hours, minutes, seconds, etc.). Portion 820c further includes map 824a, which includes at least a partial view of an animated map and / or globe. In some embodiments, map 824a includes an animated map and / or globe view that includes a representation of the location of computer system 800 (e.g., a city, country, island, region, etc.). Portion 820c includes terminator line 822, which includes a visual and / or graphic animation that represents the distinction between day and night. In some embodiments, terminator line 822 is displayed on map 824a to indicate portions of the animated map and / or globe that are currently nighttime and / or portions of the animated map and / or globe that are currently daytime. In Figure 8G, computer system 800 detects input 850b (e.g., a press and hold input) on watch user interface 816i.
[0293] 8H , in response to receiving input 850b, computer system 800 displays selection user interface 842a. Selection user interface 842a is a user interface for selecting a watch user interface to be displayed by computer system 800. Selection user interface 842a includes representation 844b1, which is a representation of watch user interface 816i, and includes various functions of watch user interface 816i. In some embodiments, representation 844b1 is a static representation of watch user interface 816i and includes a time display other than the current time and / or a complication that includes information other than real-time updates.
[0294] Selection user interface 842a further includes representations 844a and 844b corresponding to watch user interfaces other than watch user interface 816i. Selection user interface 842a includes a share user-interactive graphic user interface object 825 that, when selected, causes computer system 800 to display a user interface related to sending and / or sharing information related to watch user interface 816i to another device (e.g., another computer system). Selection user interface 842a further includes an edit user-interactive graphic user interface object 828 that, when selected, causes computer system 800 to display an edit user interface for editing the appearance of watch user interface 816i. Selection user interface 842a further includes a watch face indicator 846 that includes a visual and / or textual representation of the name of the watch user interface currently centered on selection user interface 842a. In Figure 8H, the clock face indicator 846 indicates that the currently displayed watch user interface 816i, represented by representation 844b1 in the selection user interface 842a, is titled "World Clock." In Figure 8H, the computer system detects an input 850c (e.g., a tap input) in the edit user interactive graphic user interface object 828.
[0295] In Figure 8I, in response to detecting input 850c, computer system 800 displays editing user interface 848a1. Editing user interface 848a1 includes appearance indicator 854 that includes a visual and / or textual representation of the appearance of watch user interface 816i currently selected for editing. In Figure 8I, appearance indicator 854 indicates that the appearance of watch user interface 816i currently selected for editing is a "style."
[0296] Edit user interface 848a1 further includes a selection indicator 852a that includes a visual and / or textual representation of a currently selected option for the editable appearance of watch user interface 816i. In Figure 81, selection indicator 852a indicates that the currently selected "Style" option for watch user interface 816i is "Analog."
[0297] Edit user interface 848a1 further includes a position indicator 856a. Position indicator 856a includes a graphical representation of the number of selectable options for the editable appearance of watch user interface 816i currently being edited and the position of the currently selected option within the list of selectable options. For example, position indicator 856a indicates that the currently selected option "Style" for the "Style" appearance of watch user interface 816i is at the top of a list of at least two possible options for the "Analog" appearance of watch user interface 816i.
[0298] Editing user interface 848a1 includes representation 844d indicating that the watch user interface currently being edited is the watch user interface corresponding to representation 844d, i.e., watch user interface 816i. Representation 844d corresponds to watch user interface 816i and includes functionality of watch user interface 816i, including portion 820c including a circular region of clock user interface 816a including a time display 826 including analog clock hands, the position of which represents the time (hours, minutes, seconds, etc.). In some embodiments, in representation 844d, the time indicated by representation 826 (e.g., by the position of the analog clock hands) is a fixed time and / or different from the current time. In FIG. 8I , computer system 1200 detects rotational input 860d via rotatable and depressible input mechanism 804.
[0299] In FIG. 8J, in response to receiving rotation input 860d, computer system 800 displays editing user interface 848a2, which is an edited version of editing user interface 848a1, and representation 844d no longer includes time display 826 but instead includes time display 858, which includes a digital display of the time without analog clock hands.
[0300] Edit user interface 848a2 further includes a selection indicator 852b that includes a visual and / or textual representation of a currently selected option for the editable appearance of watch user interface 816i. In Figure 8J, selection indicator 852a indicates that the currently selected "Style" option for watch user interface 816i is "Digital."
[0301] Editing user interface 848a2 further includes position indicator 856b. Position indicator 856b includes an updated version of position indicator 856a, where a change in position indicator 856b relative to position indicator 856a indicates that the currently selected “Style” option has changed (e.g., from “Analog” to “Digital”). In FIG. 8J, computer system 800 receives press input 870a via rotatable and pressable input mechanism 804.
[0302] In Figure 8K, in response to receiving press input 870a, computer system 800 displays selection user interface 842b. Figure 8K shows an edited representation of watch user interface 816i in the selection user interface. Selection user interface 842b is identical to selection user interface 842a except that representation 844b1 is replaced with representation 844b2. Representation 844b2 includes time display 858 (e.g., a digital representation of the time) instead of time display 826, which includes analog watch hands. In Figure 8K, computer system 800 detects press input 870b via depressible and rotatable input mechanism 804.
[0303] 8L, in response to detecting press input 870b, computer system 800 displays watch user interface 816j, which is identical to watch user interface 816i, except that watch user interface 816j includes time display 858, which includes a digital display of the time, in portion 820c instead of time display 826, which includes analog clock hands.
[0304] In FIG. 8M, computer system 800 displays watch user interface 816k including time display 826, with analog hands displayed to extend beyond the edge of portion 820c. In FIG. 8M, the analog hands of time display 826 are displayed to extend to the edge of portion 820a. In some embodiments, the analog hands are displayed to extend further or shorter than shown in FIG. 8M. In some embodiments, the analog hands at least partially obscure at least one hour digit included in portion 820b. In some embodiments, the analog hands at least partially obscure at least one position name in portion 820a. In some embodiments, the length of the hands included in time display 826 is an editable aspect of the watch user interface.
[0305] 9 is a flow diagram illustrating a method for managing a clock face based on geographic data using a computer system, according to some embodiments. The method (900) is performed on a computer system (e.g., 800) (e.g., a smart watch, a wearable electronic device, a smartphone, a desktop computer, a laptop, a tablet) that communicates with a display generation component (802) and one or more input devices (e.g., a display controller, a touch-sensitive display system). In some embodiments, the computer system communicates with one or more input devices (e.g., a rotatable input mechanism, a touch-sensitive surface, etc.). Operations in method 900 are optionally combined, the order of operations is optionally changed, and operations are optionally omitted.
[0306] As described below, method 900 provides an intuitive way to manage clock faces based on geographic data. The method reduces the cognitive burden on a user to manage clock faces based on geographic data, thereby creating a more efficient human-machine interface. For battery-powered computing devices, allowing a user to more quickly and efficiently manage clock faces based on geographic data conserves power and extends the time between battery charges.
[0307] The computer system receives 902 a request (e.g., tap input, swipe, on-wrist, press input) via one or more input devices to display a clock face (e.g., 816a).
[0308] In response to a request to display a clock face, a computer system (e.g., 800), via a display generation component (e.g., 802), displays (904) a clock face (e.g., 816a) including names of one or more different cities (e.g., 820a1, 820a2, 820a3, and 820a4 shown in FIG. 8A ). Displaying the clock face includes simultaneously displaying (906) a current time display (e.g., 826 shown in FIG. 8A ) in a current time zone associated with the computer system and names (908) of one or more different cities (e.g., surrounding at least a portion of the current time display in the current time zone). In some embodiments, the current time display is updated continuously or periodically over time to reflect the current time (e.g., the time in the current time zone). In some embodiments, the current time display is aligned with and / or intended to reflect Universal Coordinated Time adjusted using an offset based on the currently selected time zone.
[0309] The one or more different cities include a first city (e.g., 820a5 shown in FIG. 8A ), and displaying the names of the one or more cities includes displaying the name of the first city, and (910) pursuant to determining that the computer system is associated with a first time zone (e.g., 814a) (e.g., the current time zone is the first time zone), the name of the first city (e.g., 820a5 shown in FIG. 8A ) is displayed such that a bottom of the letters of the first city's name is closer to the current time zone (e.g., 820a5 shown in FIG. 8A ) than an top of the letters of the first city's name is closer to the current time zone (e.g., 820a5 shown in FIG. 8A ). In accordance with a determination that the computer system is associated with a second time zone (e.g., 814b) different from the first time zone (e.g., the current time zone is the second time zone), (912) the name of a first city (e.g., 820a5 shown in FIG. 8B) is displayed in a second position on the clock face with text oriented such that the top of the letters of the name of the first city is closer to the current time display than the bottom of the letters of the name of the first city is closer to the current time display. In some embodiments, the clock face includes at least one complication (e.g., 812 shown in FIG. 8A). In some embodiments, a complication refers to any clock face feature other than those used to indicate hours and minutes of a time (e.g., clock hands or hour / minute indication). In some embodiments, a complication provides data obtained from an application. In some embodiments, a complication includes an affordance that, when selected, launches a corresponding application. In some embodiments, complications appear in fixed, predefined locations on the display. In some embodiments, complications occupy specific areas of the watch face (e.g., bottom right, bottom left, top right, and / or top left). In some embodiments, complications are editable (e.g., to display data corresponding to various applications available on the computer system).Conditionally displaying a city name in a first location in a first orientation (e.g., 820a5 shown in FIG. 8A ) or a second location in a second orientation (e.g., 820a2 shown in FIG. 8B ) based on whether the computer system is associated with a first time zone (e.g., 814a) or a second time zone (e.g., 814b) provides the user with relevant information about the context of the computer system without requiring additional user input and improves the readability of the city name by maintaining the city name in the correct orientation rather than rotating it around the dial and displaying it upside down. Performing an operation without requiring further user input when a set of conditions is met improves device usability, provides a more efficient user-device interface (e.g., by helping the user determine whether the first city name represents the current time zone associated with the computer system), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently. Furthermore, selecting an orientation of the city name text in accordance with a determination that the computer system is associated with a particular time zone reduces the number of inputs required to display the city name in that orientation because the user is no longer required to manually select between different city name text orientations. Reducing the number of inputs required to perform operations enhances device usability and makes the user-device interface more efficient (e.g., by assisting the user in making appropriate inputs when operating / interacting with the device and reducing user errors), as well as reducing device power usage and improving battery life by allowing the user to use the device more quickly and efficiently.
[0310] In some embodiments, the one or more cities include a second city (e.g., 820a6 shown in FIG. 8A ), and displaying the name of the one or more cities includes simultaneously displaying the name of the second city (e.g., 820a6 shown in FIG. 8A ) and the name of the first city (e.g., 820a5 shown in FIG. 8A ), and (910) pursuant to a determination that the computer system (e.g., 800) is associated with a first time zone (e.g., 814a) (e.g., the current time zone is the first time zone), the name of the second city (e.g., 814a6 shown in FIG. 8A ) is displayed such that a bottom of the character of the second city name is closer to the current time zone. In accordance with a determination that the computer system is associated with a second time zone (e.g., 814b) that is different from the first time zone (e.g., the current time zone is the second time zone), the name of the second city (e.g., 814a6 shown in FIG. 8B) is displayed in a fourth position on the clock face with text oriented such that the bottom of the letters of the name of the second city are closer to the current time zone than the top of the letters of the name of the second city are closer to the current time zone. Conditionally displaying the name of the second city in the third position in the first orientation or the fourth position in the second orientation based on whether the computer system is associated with the first time zone or the second time zone provides the user with relevant information regarding the context of the computer system without requiring additional user input. Performing an operation without further user input when a set of conditions is met improves usability of the device, provides a more efficient user-device interface (e.g., by assisting the user in determining whether the name of a second city represents the current time zone associated with the computer system), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently.
[0311] In some embodiments, the one or more cities include a third city (e.g., 820a3 shown in FIG. 8A ), and as part of displaying the names of the one or more cities, the computer system (e.g., 800) simultaneously displays the name of the third city (e.g., 820a3 shown in FIG. 8A ), the name of the first city (e.g., 820a5 shown in FIG. 8A ), and the name of the second city (e.g., 820a61 shown in FIG. 8A ). In some embodiments, pursuant to a determination that the computer system is associated with a first time zone (e.g., 814a) (e.g., the current time zone is the first time zone), the computer system displays the name of the third city (e.g., 820a3 shown in FIG. 8A ) in a fifth position on the clock face with text oriented such that the bottom of the letters of the third city's name are closer to the current time display than the top of the letters of the third city's name are closer to the current time display (e.g., 826 shown in FIG. 8A ). In some embodiments, pursuant to a determination that the computer system is associated with a second time zone (e.g., 814b) different from the first time zone (e.g., the current time zone is the second time zone), the computer system displays the third city (e.g., 820a3 shown in FIG. 8B ) in a sixth position on the clock face with text oriented such that the top of the letters of the third city's name is closer to the current time display than the bottom of the letters of the third city's name is closer to the current time display. Conditionally displaying the name of the third city in the fifth position in the first orientation or the sixth position in the second orientation based on whether the computer system is associated with the first time zone or the second time zone provides the user with relevant information about the context of the computer system without requiring additional user input. Performing an operation without requiring further user input when a set of conditions is met improves device usability, provides a more efficient user-device interface (e.g., by helping the user determine whether the name of the third city represents the current time zone associated with the computer system), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently.
[0312] In some embodiments, the one or more cities include a fourth city (e.g., 820a2 shown in FIG. 8A ), and as part of displaying the names of the one or more cities, the computer system (e.g., 800) simultaneously displays the name of the fourth city (e.g., 820a2 shown in FIG. 8A ), the name of the first city (e.g., 820a5 shown in FIG. 8A ), the name of the second city (e.g., 820a6 shown in FIG. 8A ), and the name of the third city (e.g., 820a3 shown in FIG. 8A ). In some embodiments, pursuant to a determination that the computer system (e.g., 800) is associated with a first time zone (e.g., 814a) (e.g., the current time zone is the first time zone), the computer system displays the name of the fourth city (e.g., 820a2 shown in FIG. 8A ) in a seventh position on the clock face with text oriented such that the bottom of the letters of the fourth city name are closer to the current time indication than the top of the letters of the fourth city name are closer to the current time indication (e.g., 826 shown in FIG. 8A ). In some embodiments, pursuant to a determination that the computer system is associated with a second time zone (e.g., 814b) different from the first time zone (e.g., the current time zone is the second time zone), the computer system displays the name of the fourth city (e.g., 820a2 shown in FIG. 8B ) in an eighth position on the clock face with text oriented such that the top of the letters of the fourth city's name is closer to the current time display than the bottom of the letters of the fourth city's name is closer to the current time display. Conditionally displaying the name of the fourth city in either the seventh position in the first orientation or the eighth position in the second orientation based on whether the computer system is associated with the first time zone or the second time zone provides the user with relevant information about the context of the computer system without requiring additional user input. Performing an operation without requiring further user input when a set of conditions is met improves device usability, provides a more efficient user-device interface (e.g., by helping the user determine whether the name of the fourth city represents the current time zone associated with the computer system), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently.
[0313] In some embodiments, following a determination that the computer system (e.g., 800) is associated with a third time zone (e.g., 814c) different from the first time zone and the second time zone (e.g., the current time zone is the third time zone), the computer system displays the name of the first city with text oriented such that the tops of the letters of the first city's name are closer to the current time display (e.g., 826 shown in FIG. 8C) than the bottoms of the letters of the first city's name are closer to the current time display. In some embodiments, following a determination that the computer system is associated with a third time zone (e.g., 814c) (e.g., the current time zone is the third time zone), the computer system displays the name of the second city (e.g., 820a6 shown in FIG. 8C) with text oriented such that the tops of the letters of the second city's name are closer to the current time display than the bottoms of the letters of the second city's name are closer to the current time display. Conditionally displaying the name of a first city in the same orientation as the name of a second city provides a user with relevant information about the context of the computer system without requiring additional user input. Performing an operation without requiring further user input when a set of conditions is met improves device usability, provides a more efficient user-device interface (e.g., by displaying information about which cities correspond to which time zones), and further reduces power usage and extends the device's battery life by allowing a user to use the device more quickly and efficiently.
[0314] In some embodiments, the one or more cities include a third city (e.g., 820a3 shown in FIG. 8A ), and as part of displaying the names of the one or more cities, the computer system (e.g., 800) simultaneously displays the name of the third city (e.g., 820a3 shown in FIG. 8A ), the name of the first city (e.g., 820a5 shown in FIG. 8A ), and the name of the second city (e.g., 820a6 shown in FIG. 8A ). In some embodiments, pursuant to a determination that the computer system is associated with a first time zone (e.g., 814a) (e.g., the current time zone is the first time zone), the computer system displays the name of the third city (e.g., 820a3 shown in FIG. 8A ) in a fifth position on the clock face with text oriented such that the bottom of the letters of the third city's name are closer to the current time display than the top of the letters of the third city's name are closer to the current time display (e.g., 826 shown in FIG. 8A ). In some embodiments, following a determination that the computer system is associated with a second time zone (e.g., 814b) different from the first time zone (e.g., the current time zone is the second time zone), the computer system displays the name of the third city (e.g., 820a3 shown in FIG. 8B) in a sixth position on the clock face with text oriented such that the tops of the letters in the name of the third city are closer to the current time display than the bottoms of the letters in the name of the third city are closer to the current time display. In some embodiments, following a determination that the computer system is associated with a third time zone (e.g., 814c) (e.g., the current time zone is the third time zone), the computer system displays the name of the third city (e.g., 820a3 shown in FIG. 8C) with text oriented such that the bottoms of the letters in the name of the third city are closer to the current time display than the tops of the letters in the name of the third city are closer to the current time display. Conditionally displaying the name of the first city in the same orientation as the name of the second city while displaying the name of the third city in a different orientation provides the user with relevant information about the context of the computer system (e.g., the relative time zones of the first city, the second city, and the third city) without requiring additional user input.Performing an action without further user input when a set of conditions is met improves the usability of the device, makes the user-device interface more efficient (e.g., by displaying information about which cities correspond to which time zones), and further reduces power usage and extends the device's battery life by allowing the user to use the device more quickly and efficiently.
[0315] In some embodiments, the orientation in which the names of the one or more different cities are displayed is maintained while the current time zone associated with the computer system is maintained (e.g., as shown in FIGS. 8B-8C , the orientation of name 820a4 is maintained so that the bottom of the letters is closer to the current time display than the top of the letters). In some embodiments, the computer system ignores the change in the orientation in which the names of the one or more different cities are displayed so long as the computer system is in the same time zone. Maintaining the orientation in which the names of the one or more different cities are displayed while the current time zone associated with the computer system is maintained provides visual feedback to the user that the current time zone associated with the computer system is changing. Providing improved visual feedback to the user improves system usability and makes the computer system more efficient (e.g., by assisting the user in proper input and reducing user errors when operating / interacting with the system), further reducing power usage and extending the device's battery life by allowing the user to use the system more quickly and efficiently.
[0316] In some embodiments, a first location on the clock face where the name of the first city (e.g., 820a5 shown in FIG. 8A ) is displayed indicates the current time in the first city (e.g., the current time in Moscow) (e.g., the current time in the time zone associated with the first city) relative to the current time in the current time zone associated with the computer system (e.g., 814a) (e.g., the current time in the time zone associated with the computer system). In some embodiments, the current time in the time zone associated with the first city (e.g., 820a5 shown in FIG. 8A ) is different from the current time in the time zone associated with the computer system (e.g., 826 shown in FIG. 8A ). The first location on the clock face where the name of the first city is displayed indicates the current time in the first city relative to the current time in the current time zone associated with the computer system, providing visual feedback to the user regarding the relative times between the current time in the first city and the current time in the cu...
Claims
1. 1. A method comprising:
1. A computer system in communication with a display generating component and one or more input devices including a rotatable input mechanism, comprising: displaying a selection user interface via the display generation component; detecting a rotation of the rotatable input mechanism about a rotation axis while displaying the selection user interface; In response to detecting the rotation of the rotatable input mechanism, displaying a graphical representation of the selection focus that changes as the selection focus moves among a plurality of selectable objects; detecting a press input on the rotatable input mechanism after changing selection focus through the plurality of selectable objects and while simultaneously displaying representations of one or more other selectable objects of the plurality of selectable objects; selecting one of the plurality of selectable objects in response to detecting the pressing input; The selecting comprises: If the press input is detected, in response to a determination that a first selectable object of the plurality of selectable objects has selection focus, selecting a first selectable object that was displayed simultaneously with first representations of the one or more other selectable objects of the plurality of selectable objects when the press input is detected; and ceasing to display the first representation of the one or more other selectable objects of the plurality of selectable objects; If the pressing input is detected, in accordance with a determination that a second selectable object, different from the first selectable object, among the plurality of selectable objects has selection focus, selecting, upon detecting the press input, a second selectable object that was displayed simultaneously with second representations of the one or more other selectable objects of the plurality of selectable objects; and ceasing to display the second representation of the one or more other selectable objects of the plurality of selectable objects; and Including, method.
2. The method of claim 1 , wherein selection focus is indicated by the location of a selectable object within the selection user interface.
3. displaying, via the display generation component, a visual display corresponding to the selectable object having selection focus; The method of claim 1 further comprising:
4. detecting a swipe input while displaying the selection user interface; In response to detecting the swipe input, changing selection focus from a third selectable object to a fourth selectable object; The method of claim 1 further comprising:
5. Detecting a tap input; selecting one of the plurality of selectable objects in response to detecting the tap input, 2. The method of claim 1, further comprising: performing a first operation comprising selecting a third selectable object in accordance with a determination that the tap input was on a discrete portion of a third selectable object.
6. selecting one of the plurality of selectable objects in response to detecting the tap input, performing a second operation different from the first operation in response to a determination that the tap input was on a fourth selectable object different from the discrete portion of the third selectable object; The method of claim 5 further comprising:
7. displaying a first watch face; While displaying the first watch face, detect a first user input corresponding to a user request to select a watch face, and in response to detecting the first user input, displaying the selection user interface, the selection user interface being a watch face selection user interface; visually distinguishing the first watch face to indicate a watch face selection user interface for the first watch; While displaying the watch face selection user interface, Detecting a second user input, and visually distinguishing a dial face of the second wristwatch that is different from the dial face of the first wristwatch in response to detecting the second user input; Detecting a second pressing input on the rotatable input mechanism while displaying the second watch face; In response to detecting the second pressing input, selecting a second watch face as a currently selected watch face for the computer system; The method of claim 1 further comprising:
8. displaying a third watch face; receiving, via the one or more input devices, a first sequence of one or more user inputs corresponding to a request to edit the third watch face while displaying the third watch face; in response to receiving the first sequence of one or more user inputs; Entering the watch face editing mode of the computer system; visually distinguishing an element of the third watch face for editing, the visually distinguished element being a first selectable option of the visually distinguished element of the third watch face; While the computer system is in the watch face editing mode, receiving a second sequence of one or more user inputs via the one or more input devices, and displaying second selectable options for the visually distinct elements of the third watch face in response to receiving the second sequence of one or more user inputs; detecting a third press input on the rotatable input mechanism while displaying the second selectable option for the visually distinct element of the third watch face; and selecting the second selectable option for the visually distinct element of the third watch face in response to detecting the third pressing input; The method of claim 1 further comprising:
9. Displaying a fourth watch face; receiving, while displaying the fourth watch face, a third sequence of one or more user inputs via the one or more input devices corresponding to a request to edit the fourth watch face; in response to receiving the third sequence of one or more user inputs; Entering the watch face editing mode of the computer system; visually distinguishing complications on the fourth watch face for editing; While the computer system is in the watch face editing mode, displaying a first complication option for said complication; receiving a fourth sequence of one or more user inputs via the one or more input devices, and displaying a second complication option in response to receiving the fourth sequence of one or more user inputs; detecting a fourth press input on the rotatable input mechanism while displaying the second complication option; and selecting the second complication option in response to detecting the fourth press input; The method of claim 1 further comprising:
10. detecting a fifth press of the rotatable input mechanism after selecting the second complication option; and selecting, by the computer system, a dial face of the fourth watch for display in response to detecting the fifth pressing input; The method of claim 9 further comprising:
11. fifth, displaying a watch face; while displaying the fifth watch face, receiving a fifth sequence of one or more user inputs via the one or more input devices corresponding to a request to transmit the fifth watch face to a recipient; displaying a recipient selection user interface in response to receiving the fifth sequence of one or more user inputs; While the recipient selection user interface is displayed, Displays the name of the recipient that has selection focus, detecting a sixth pressing input on the rotatable input mechanism; In response to detecting the sixth pressing input, transmitting information associated with the dial face of the fifth wristwatch to the recipient; The method of claim 1 further comprising:
12. displaying, via the display generation component, a watch face gallery user interface for showing selectable watch faces included in a gallery of watch faces for the computer system; The method of claim 1 further comprising:
13. displaying the selection user interface, the selection user interface being the watch face selection user interface; displaying a watch face generation affordance while displaying the watch face selection user interface; receiving a third user input via the one or more input devices corresponding to a watch face generation affordance of the watch; In response to receiving the third user input, displaying a watch face gallery user interface to show selectable watch faces; and The method of claim 12 further comprising:
14. said watch face gallery user interface for showing selectable watch faces comprising: The expression of the dial of the sixth watch, a third selectable option for displaying additional information related to the sixth watch face; and and a fourth selectable option for adding the sixth watch face to the gallery of watch faces on the computer system.
15. displaying a graphical element corresponding to a seventh watch face while displaying the watch face gallery user interface for showing selectable watch faces; and receiving a fourth user input via the one or more input devices; In response to receiving the fourth user input, displaying additional information regarding the seventh watch face in response to a determination that the fourth user input corresponds to a tap on the graphical element corresponding to the seventh watch face; adding the seventh watch face to the gallery of watch faces of the computer system in accordance with determining that the fourth user input corresponds to a seventh press input on the rotatable input mechanism; The method of claim 12 further comprising:
16. The watch face gallery user interface for showing selectable watch faces includes an affordance for returning to a previously displayed user interface, and the method includes: receiving input corresponding to a selection of the affordance to return to the previously displayed user interface; 16. The method of claim 15, further comprising: in response to receiving the input corresponding to a selection of the affordance to return to the previously displayed user interface, displaying the previously displayed user interface via the display generation component.
17. while displaying the watch face gallery user interface to show selectable watch faces, simultaneously displaying a second graphical element corresponding to an eighth watch face and an affordance for adding the eighth watch face to the watch face gallery for the computer system; receiving a fifth user input via the one or more input devices; In response to receiving the fifth user input, adding the eighth watch face to the gallery of watch faces of the computer system in accordance with determining that the fifth user input is a second tap input at the affordance for adding the eighth watch face to the gallery of watch faces for the computer system; adding the eighth watch face to the gallery of watch faces of the computer system in accordance with determining that the fifth user input corresponds to an eighth press input on the rotatable input mechanism; and The method of claim 12 further comprising:
18. detecting a sixth user input while displaying the watch face gallery user interface to show selectable watch faces; In response to detecting the sixth user input, displaying a third graphical representation of the selection focus that changes as the selection focus moves among a plurality of second selectable objects; The method of claim 12 further comprising:
19. 13. The method of claim 12, wherein the watch face gallery user interface for showing selectable watch faces includes a third graphical element corresponding to a single watch face and a fourth graphical element corresponding to multiple watch faces.
20. 20. The method of claim 19, wherein the third graphic element corresponding to a single watch face includes a background of a first color and the fourth graphic element corresponding to multiple watch faces includes a background of a second color different from the first color.
21. receiving, via the one or more input devices, a selection of the fourth graphical element corresponding to a plurality of watch faces; displaying a plurality of watch faces that are individually selectable for addition to the gallery of watch faces for the computer system in response to receiving a selection of the fourth graphical element corresponding to a plurality of watch faces; 20. The method of claim 19 further comprising:
22. receiving a watch user interface selection via the one or more input devices; displaying, via the display generation component, a watch face editing user interface in response to receiving the selection of the watch user interface, the watch face editing user interface including a representation of a watch user interface layout including a time area for displaying a current time and one or more complication areas for displaying complications in the watch user interface; detecting, while displaying the watch face editing user interface, a sequence of one or more inputs via the one or more input devices, the sequence including a seventh user input directed to a complication area of the one or more complication areas; changing which complications are assigned to the complication areas of the watch user interface in response to detecting the sequence of one or more inputs including the seventh user input directed to one of the one or more complication areas; The method of claim 1 further comprising:
23. Displaying a notification corresponding to the availability of the watch face; receiving, via the one or more input devices, an eighth user input corresponding to the notification that a ninth watch face is available; and In response to receiving the eighth user input, displaying a user interface for adding a watch face associated with the notification corresponding to the availability of the ninth watch face to the gallery of watch faces for the computer system; The method of claim 1 further comprising:
24. While the computer system displays the face of the tenth watch via the display generation component and while the computer system is in an unlocked state, receiving a communication from a remote computer; In response to receiving the communication from the remote server, displaying the notification corresponding to the availability on the ninth watch face; 24. The method of claim 23, further comprising:
25. A computer program causing a computer to carry out the method according to any one of claims 1 to 24.
26. 1. A computer system comprising: a memory for storing a computer program according to claim 25; 1. A computer system comprising: one or more processors, the computer system in communication with a display generating component and one or more input devices including a rotatable input mechanism.
27. 1. A computer system configured to communicate with a display generating component and one or more input devices including a rotatable input mechanism, comprising: A computer system comprising means for carrying out the method according to any one of claims 1 to 24.
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