Wearable electronic device and control method of wearable electronic device
The wearable electronic device addresses the inconvenience of checking notifications by using wrist rotation to dynamically change display areas, allowing easy access to unconfirmed information through overlapping multi-layers.
Patent Information
- Application Number
- PCT/KR2025/099034
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-03-14
- Filing Date
- 2025-01-16
- Publication Date
- 2025-08-07
AI Technical Summary
Users of wearable electronic devices face inconvenience in checking desired notifications and information due to the need to individually swipe through multiple layers or pages to find unconfirmed notifications and recommended information.
A wearable electronic device with a sensor and display system that changes the display area based on the rotational direction of the wrist, allowing unconfirmed notifications and recommended information to be displayed in overlapping multi-layers that transform and shift based on wrist rotation, facilitating easy access.
Enables users to easily view unconfirmed notifications and recommended information by rotating their wrist, simplifying the process of checking multiple layers without manual swiping, enhancing user experience.
Smart Images

Figure KR2025099034_07082025_PF_FP_ABST
Abstract
Description
Wearable electronic device and method for controlling the wearable electronic device
[0001] Various embodiments of the present invention disclose a wearable electronic device and a method for controlling the wearable electronic device.
[0002] The use of wearable electronic devices (e.g., watches) that users can wear on their bodies (e.g., wrists) is increasing, and various functions are being provided to such wearable electronic devices.
[0003] The wearable electronic device may be attached to a part of the user's body or detached from the user's body using a strap.
[0004] The above wearable electronic device can be linked with other electronic devices (e.g., smartphones) to provide various services to users.
[0005] The above information may be provided as background information to aid in understanding the present disclosure. No claim or determination is made as to whether any of the above is applicable as prior art in connection with the present disclosure.
[0006] A wearable electronic device (e.g., a watch) can be paired with an electronic device (e.g., a smartphone) and display various information provided from the electronic device on a display.
[0007] For example, a wearable electronic device can display notifications received through a designated application in separate layers (e.g., pages) when a user swipes to the right while touching the display. For example, a wearable electronic device can display widgets set by the user in separate layers (e.g., pages) when a user swipes to the left while touching the display.
[0008] Users of wearable electronic devices may find it inconvenient to have to individually check each layer (e.g., page) by swiping left or right on the display to check desired information among notifications received through a designated application and set widgets.
[0009] Various embodiments of the present invention may provide a wearable electronic device capable of displaying unconfirmed notifications and / or recommended information in the form of multiple layers (e.g., multiple pages or glance views) on a display area of a display corresponding to a user's field of view based on a rotational direction of a wrist wearing the wearable electronic device, and a method of controlling the wearable electronic device.
[0010] Various embodiments of the present invention may provide a wearable electronic device and a control method of the wearable electronic device, which can change a display area of at least one of multiple layers including unconfirmed notifications and / or recommended information from a first display area of the display to a second display area or display it in an extended form (e.g., glance view) based on a rotational direction of a wrist wearing the wearable electronic device.
[0011] The technical problems to be achieved in the present disclosure are not limited to the technical problems mentioned above, and other technical problems not mentioned will be clearly understood by a person having ordinary skill in the technical field to which the present invention pertains from the description below.
[0012] According to one embodiment of the present invention, a wearable electronic device may include a sensor, a display including a first display area and a second display area, a memory including one or more recording media storing instructions, and at least one processor including a processing circuit. According to one embodiment, the instructions, when individually or collectively executed by the at least one processor, may cause the wearable electronic device to display a first multi-layer having a first size in which at least a portion of a first layer corresponding to a first unconfirmed notification and a second layer corresponding to a second unconfirmed notification overlap, in the second display area, and to transform the first multi-layer into a second multi-layer having a second size based on detection of rotation of the wearable electronic device in a first direction using the sensor, and to change a display area of at least one layer of the transformed second multi-layers from the second display area to the first display area and display the changed second multi-layer.
[0013] A method for controlling a wearable electronic device according to one embodiment of the present invention may include an operation in which the wearable electronic device displays a first multi-layer having a first size, in which at least a portion of a first layer corresponding to a first unconfirmed notification and a second layer corresponding to a second unconfirmed notification overlap, in a second display area. According to one embodiment, the method may include an operation in which the wearable electronic device uses a sensor to determine that the wearable electronic device is rotated in a first direction. According to one embodiment, the method may include an operation in which the first multi-layer is transformed into a second multi-layer having a second size based on the rotation of the wearable electronic device in the first direction. According to one embodiment, the method may include an operation in which the display area of at least one layer of the transformed second multi-layer is changed from the second display area to the first display area and displayed.
[0014] A non-transitory computer-readable recording medium storing instructions that, when individually or collectively executed by at least one processor of a wearable electronic device according to one embodiment of the present invention, cause the at least one processor to perform at least one operation, may execute an operation of displaying a first multi-layer having a first size in which at least a portion of a first layer corresponding to a first unconfirmed notification and a second layer corresponding to a second unconfirmed notification overlap, in a second display area of a display, an operation of confirming, using a sensor, that the wearable electronic device is rotated in a first direction, an operation of transforming the first multi-layer into a second multi-layer having a second size based on the rotation of the wearable electronic device in the first direction, and an operation of changing a display area of at least one layer of the transformed second multi-layer from the second display area to the first display area and displaying it.
[0015] According to one embodiment, a method for controlling a wearable electronic device may be performed using a non-transitory computer-readable storage medium storing one or more programs. According to one embodiment, the one or more programs may include instructions and / or commands that are executed when executed by a processor of the wearable electronic device.
[0016] According to various embodiments of the present invention, based on the rotational direction of the wrist wearing the wearable electronic device, unconfirmed notifications and / or recommended information are provided in the form of multi-layers (e.g., multi-page or glance view) in a display area of a display corresponding to the user's field of view, thereby allowing the user to easily check unconfirmed notifications and / or recommended information.
[0017] In addition, various effects may be provided, either directly or indirectly, through this document.
[0018] In connection with the description of the drawings, the same or similar reference numerals may be used for the same or similar components.
[0019] FIG. 1A is a block diagram of an electronic device within a network environment according to various embodiments of the present invention.
[0020] FIG. 1b is a block diagram of a display module according to various embodiments of the present invention.
[0021] FIG. 2A is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention is rotated in a first direction while being worn on a user's left wrist.
[0022] FIG. 2b is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention is rotated in a first direction while being worn on a user's right wrist.
[0023] FIG. 3A is a diagram schematically illustrating a first multi-layer displayed in a second display area of a display of a wearable electronic device according to one embodiment of the present invention.
[0024] FIG. 3b is a schematic diagram illustrating a second multi-layer displayed on a display of a wearable electronic device according to one embodiment of the present invention.
[0025] FIG. 4A is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention is rotated in a second direction while being worn on a user's left wrist.
[0026] FIG. 4b is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention is rotated in a second direction while being worn on a user's right wrist.
[0027] FIG. 5A is a diagram schematically illustrating a first multi-layer displayed in a first display area of a display of a wearable electronic device according to one embodiment of the present invention.
[0028] FIG. 5b is a schematic diagram illustrating a second multi-layer displayed on a display of a wearable electronic device according to one embodiment of the present invention.
[0029] FIG. 6 is a block diagram schematically showing the configuration of a wearable electronic device according to one embodiment of the present invention.
[0030] FIG. 7A is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention displays a specific icon on a display when the device is rotated in a first direction.
[0031] FIG. 7b is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention displays a specific icon on a display when the device is rotated in a second direction.
[0032] FIG. 8A is a schematic diagram illustrating a first multi-layer of a wearable electronic device according to one embodiment of the present invention.
[0033] FIG. 8b is a schematic diagram illustrating a second multi-layer that is deformed based on a wearable electronic device rotating in a second direction according to one embodiment of the present invention.
[0034] FIG. 8c is a schematic diagram illustrating a first multi-layer deformed based on a wearable electronic device according to one embodiment of the present invention being rotated at a first angle toward a first direction.
[0035] FIG. 8d is a schematic diagram illustrating a third multi-layer deformed based on a wearable electronic device according to an embodiment of the present invention being rotated at a second angle toward a first direction.
[0036] FIG. 8E is a schematic diagram illustrating a background screen of a wearable electronic device that is switched based on the wearable electronic device rotating at a third angle toward a first direction according to one embodiment of the present invention.
[0037] FIG. 9A is a schematic diagram illustrating a second multi-layer displayed on a display based on a wearable electronic device rotating in a second direction according to one embodiment of the present invention.
[0038] FIG. 9B is a schematic diagram illustrating an embodiment in which the order of layers is changed based on a wearable electronic device rotating from a second direction to a first direction within a second specified time according to an embodiment of the present invention.
[0039] FIG. 9c is a schematic diagram illustrating an embodiment in which a layer displayed on a display of a wearable electronic device according to one embodiment of the present invention is changed through a swipe motion.
[0040] FIG. 9d is a diagram schematically illustrating a touch operation for a layer displayed on a display of a wearable electronic device according to one embodiment of the present invention.
[0041] FIG. 10A is a schematic diagram illustrating an embodiment in which a user of a wearable electronic device sets a main application and a main widget according to one embodiment of the present invention.
[0042] FIG. 10b is a diagram schematically illustrating an embodiment of determining the order of multi-layers based on the importance set in a wearable electronic device according to one embodiment of the present invention.
[0043] FIG. 10c is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention generates unconfirmed notifications included in a first application as a single layer.
[0044] FIG. 10d is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention generates unconfirmed notifications included in a second application as a single layer.
[0045] FIG. 10e is a schematic diagram illustrating an embodiment in which a wearable electronic device according to one embodiment of the present invention displays a layer generated to correspond to an unconfirmed notification of a first application and a layer generated to correspond to an unconfirmed notification of a second application in multiple layers.
[0046] FIG. 11 is a flowchart illustrating a method for controlling a wearable electronic device according to one embodiment of the present invention.
[0047] FIG. 12 is a flowchart illustrating a method for controlling a wearable electronic device according to various embodiments of the present invention.
[0048] FIG. 1A is a block diagram of an electronic device (101) within a network environment (100) according to various embodiments of the present invention.
[0049] Referring to FIG. 1A, in a network environment (100), an electronic device (101) may communicate with an electronic device (102) via a first network (198) (e.g., a short-range wireless communication network), or may communicate with at least one of an electronic device (104) or a server (108) via a second network (199) (e.g., a long-range wireless communication network). In one embodiment, the electronic device (101) may communicate with the electronic device (104) via the server (108). According to one embodiment, the electronic device (101) may include a processor (120), a memory (130), an input module (150), an audio output module (155), a display module (160), an audio module (170), a sensor module (176), an interface (177), a connection terminal (178), a haptic module (179), a camera module (180), a power management module (188), a battery (189), a communication module (190), a subscriber identification module (196), or an antenna module (197). In some embodiments, the electronic device (101) may omit at least one of these components (e.g., the connection terminal (178)), or may have one or more other components added. In some embodiments, some of these components (e.g., the sensor module (176), the camera module (180), or the antenna module (197)) may be integrated into one component (e.g., the display module (160)).
[0050] The processor (120) may, for example, execute software (e.g., a program (140)) to control at least one other component (e.g., a hardware or software component) of the electronic device (101) connected to the processor (120) and perform various data processing or calculations. According to one embodiment, as at least a part of the data processing or calculations, the processor (120) may store commands or data received from other components (e.g., a sensor module (176) or a communication module (190)) in a volatile memory (132), process the commands or data stored in the volatile memory (132), and store result data in a non-volatile memory (134). According to one embodiment, the processor (120) may include a main processor (121) (e.g., a central processing unit or an application processor) or a secondary processor (123) (e.g., a graphics processing unit, a neural processing unit (NPU), an image signal processor, a sensor hub processor, or a communication processor)) that can operate independently or together therewith. For example, if the electronic device (101) includes a main processor (121) and a secondary processor (123), the secondary processor (123) may be configured to use less power than the main processor (121) or to be specialized for a specified function. The secondary processor (123) may be implemented separately from the main processor (121) or as a part thereof.
[0051] The auxiliary processor (123) may control at least a portion of functions or states associated with at least one component (e.g., a display module (160), a sensor module (176), or a communication module (190)) of the electronic device (101), for example, on behalf of the main processor (121) while the main processor (121) is in an inactive (e.g., sleep) state, or together with the main processor (121) while the main processor (121) is in an active (e.g., application execution) state. In one embodiment, the auxiliary processor (123) (e.g., an image signal processor or a communication processor) may be implemented as a part of another functionally related component (e.g., a camera module (180) or a communication module (190)). In one embodiment, the auxiliary processor (123) (e.g., a neural network processing unit) may include a hardware structure specialized for processing artificial intelligence models. The artificial intelligence models may be generated through machine learning. This learning can be performed, for example, on the electronic device (101) itself where the artificial intelligence model is executed, or can be performed through a separate server (e.g., server (108)). The learning algorithm can include, for example, supervised learning, unsupervised learning, semi-supervised learning, or reinforcement learning, but is not limited to the examples described above. The artificial intelligence model can include multiple artificial neural network layers.The artificial neural network may be one of a deep neural network (DNN), a convolutional neural network (CNN), a recurrent neural network (RNN), a restricted Boltzmann machine (RBM), a deep belief network (DBN), a bidirectional recurrent deep neural network (BRDNN), a deep Q-network, or a combination of two or more of the above, but is not limited to the examples described above. In addition to, or alternatively to, a hardware structure, an artificial intelligence model may include a software structure.
[0052] The memory (130) can store various data used by at least one component (e.g., processor (120) or sensor module (176)) of the electronic device (101). The data can include, for example, software (e.g., program (140)) and input data or output data for commands related thereto. The memory (130) can include volatile memory (132) or non-volatile memory (134).
[0053] The program (140) may be stored as software in the memory (130) and may include, for example, an operating system (142), middleware (144), or an application (146).
[0054] The input module (150) can receive commands or data to be used in a component of the electronic device (101) (e.g., a processor (120)) from an external source (e.g., a user) of the electronic device (101). The input module (150) can include, for example, a microphone, a mouse, a keyboard, a key (e.g., a button), or a digital pen (e.g., a stylus pen).
[0055] The audio output module (155) can output audio signals to the outside of the electronic device (101). The audio output module (155) can include, for example, a speaker or a receiver. The speaker can be used for general purposes, such as multimedia playback or recording playback. The receiver can be used to receive incoming calls. In one embodiment, the receiver can be implemented separately from the speaker or as part of the speaker.
[0056] The display module (160) can visually provide information to an external party (e.g., a user) of the electronic device (101). The display module (160) may include, for example, a display, a holographic device, or a projector and a control circuit for controlling the device. In one embodiment, the display module (160) may include a touch sensor configured to detect a touch, or a pressure sensor configured to measure the intensity of a force generated by the touch.
[0057] The audio module (170) can convert sound into an electrical signal, or vice versa, convert an electrical signal into sound. According to one embodiment, the audio module (170) can acquire sound through the input module (150), output sound through the sound output module (155), or an external electronic device (e.g., electronic device (102)) (e.g., speaker or headphone) directly or wirelessly connected to the electronic device (101).
[0058] The sensor module (176) can detect the operating status (e.g., power or temperature) of the electronic device (101) or the external environmental status (e.g., user status) and generate an electrical signal or data value corresponding to the detected status. According to one embodiment, the sensor module (176) can include, for example, a gesture sensor, a gyro sensor, a barometric pressure sensor, a magnetic sensor, an acceleration sensor, a grip sensor, a proximity sensor, a color sensor, an IR (infrared) sensor, a biometric sensor, a temperature sensor, a humidity sensor, or an illuminance sensor.
[0059] The interface (177) may support one or more designated protocols that may be used to directly or wirelessly connect the electronic device (101) with an external electronic device (e.g., the electronic device (102)). In one embodiment, the interface (177) may include, for example, a high definition multimedia interface (HDMI), a universal serial bus (USB) interface, an SD card interface, or an audio interface.
[0060] The connection terminal (178) may include a connector through which the electronic device (101) may be physically connected to an external electronic device (e.g., electronic device (102)). According to one embodiment, the connection terminal (178) may include, for example, an HDMI connector, a USB connector, an SD card connector, or an audio connector (e.g., a headphone connector).
[0061] A haptic module (179) can convert electrical signals into mechanical stimuli (e.g., vibration or movement) or electrical stimuli that a user can perceive through tactile or kinesthetic sensations. In one embodiment, the haptic module (179) can include, for example, a motor, a piezoelectric element, or an electrical stimulation device.
[0062] The camera module (180) can capture still images and videos. According to one embodiment, the camera module (180) may include one or more lenses, image sensors, image signal processors, or flashes.
[0063] The power management module (188) can manage power supplied to the electronic device (101). According to one embodiment, the power management module (188) can be implemented, for example, as at least a part of a power management integrated circuit (PMIC).
[0064] A battery (189) may power at least one component of the electronic device (101). In one embodiment, the battery (189) may include, for example, a non-rechargeable primary battery, a rechargeable secondary battery, or a fuel cell.
[0065] The communication module (190) may support the establishment of a direct (e.g., wired) communication channel or a wireless communication channel between the electronic device (101) and an external electronic device (e.g., electronic device (102), electronic device (104), or server (108)), and the performance of communication through the established communication channel. The communication module (190) may operate independently from the processor (120) (e.g., application processor) and may include one or more communication processors that support direct (e.g., wired) communication or wireless communication. According to one embodiment, the communication module (190) may include a wireless communication module (192) (e.g., a cellular communication module, a short-range wireless communication module, or a global navigation satellite system (GNSS) communication module) or a wired communication module (194) (e.g., a local area network (LAN) communication module, or a power line communication module). Among these communication modules, the corresponding communication module can communicate with an external electronic device (104) via a first network (198) (e.g., a short-range communication network such as Bluetooth, wireless fidelity (WiFi) direct, or infrared data association (IrDA)) or a second network (199) (e.g., a long-range communication network such as a legacy cellular network, a 5G network, a next-generation communication network, the Internet, or a computer network (e.g., a LAN or WAN)). These various types of communication modules can be integrated into a single component (e.g., a single chip) or implemented as multiple separate components (e.g., multiple chips). The wireless communication module (192) can verify or authenticate the electronic device (101) within a communication network such as the first network (198) or the second network (199) by using subscriber information (e.g., an international mobile subscriber identity (IMSI)) stored in the subscriber identification module (196).
[0066] The wireless communication module (192) can support 5G networks and next-generation communication technologies following the 4G network, such as NR access technology (new radio access technology). The NR access technology can support high-speed transmission of high-capacity data (eMBB (enhanced mobile broadband)), minimization of terminal power and connection of multiple terminals (mMTC (massive machine type communications)), or high reliability and low latency (URLLC (ultra-reliable and low-latency communications)). The wireless communication module (192) can support, for example, a high-frequency band (e.g., mmWave band) to achieve a high data transmission rate. The wireless communication module (192) can support various technologies for securing performance in a high-frequency band, such as beamforming, massive multiple-input and multiple-output (MIMO), full dimensional MIMO (FD-MIMO), array antenna, analog beam-forming, or large scale antenna. The wireless communication module (192) can support various requirements specified in the electronic device (101), an external electronic device (e.g., the electronic device (104)), or a network system (e.g., the second network (199)). According to one embodiment, the wireless communication module (192) can support a peak data rate (e.g., 20 Gbps or more) for eMBB realization, a loss coverage (e.g., 164 dB or less) for mMTC realization, or a U-plane latency (e.g., 0.5 ms or less for downlink (DL) and uplink (UL), or 1 ms or less for round trip) for URLLC realization.
[0067] The antenna module (197) can transmit or receive signals or power to or from an external device (e.g., an external electronic device). In one embodiment, the antenna module (197) may include an antenna including a radiator formed of a conductor or a conductive pattern formed on a substrate (e.g., a PCB). In one embodiment, the antenna module (197) may include a plurality of antennas (e.g., an array antenna). In this case, at least one antenna suitable for a communication method used in a communication network, such as the first network (198) or the second network (199), may be selected from the plurality of antennas by, for example, the communication module (190). A signal or power may be transmitted or received between the communication module (190) and an external electronic device through the selected at least one antenna. In some embodiments, in addition to the radiator, another component (e.g., a radio frequency integrated circuit (RFIC)) may be additionally formed as a part of the antenna module (197).
[0068] According to various embodiments, the antenna module (197) may form a mmWave antenna module. According to one embodiment, the mmWave antenna module may include a printed circuit board, an RFIC disposed on or adjacent a first side (e.g., a bottom side) of the printed circuit board and capable of supporting a designated high frequency band (e.g., a mmWave band), and a plurality of antennas (e.g., an array antenna) disposed on or adjacent a second side (e.g., a top side or a side side) of the printed circuit board and capable of transmitting or receiving signals in the designated high frequency band.
[0069] At least some of the above components can be interconnected and exchange signals (e.g., commands or data) with each other via a communication method between peripheral devices (e.g., a bus, GPIO (general purpose input and output), SPI (serial peripheral interface), or MIPI (mobile industry processor interface)).
[0070] According to one embodiment, commands or data may be transmitted or received between the electronic device (101) and an external electronic device (104) via a server (108) connected to a second network (199). Each of the external electronic devices (102 or 104) may be the same or a different type of device as the electronic device (101). According to one embodiment, all or part of the operations executed in the electronic device (101) may be executed in one or more of the external electronic devices (102, 104, or 108). For example, when the electronic device (101) is to perform a certain function or service automatically or in response to a request from a user or another device, the electronic device (101) may, instead of or in addition to executing the function or service itself, request one or more external electronic devices to perform the function or at least a part of the service. One or more external electronic devices that receive the request may execute at least a portion of the requested function or service, or an additional function or service related to the request, and transmit the result of the execution to the electronic device (101). The electronic device (101) may process the result as is or additionally and provide it as at least a portion of a response to the request. For this purpose, cloud computing, distributed computing, mobile edge computing (MEC), or client-server computing technology may be used, for example. The electronic device (101) may provide an ultra-low latency service by using distributed computing or mobile edge computing, for example. In another embodiment, the external electronic device (104) may include an Internet of Things (IoT) device. The server (108) may be an intelligent server utilizing machine learning and / or a neural network. According to one embodiment, the external electronic device (104) or the server (108) may be included in the second network (199).The electronic device (101) can be applied to intelligent services (e.g., smart home, smart city, smart car, or healthcare) based on 5G communication technology and IoT-related technology.
[0071] FIG. 1b is a block diagram (105) of a display module (160) according to various embodiments of the present invention.
[0072] Referring to FIG. 1B, the display module (160) may include a display (161) and a display driver IC (DDI) (165) for controlling the display (161). The DDI (165) may include an interface module (165a), a memory (165b) (e.g., a buffer memory), an image processing module (165c), or a mapping module (165d). The DDI (165) may receive, for example, image information including image data or an image control signal corresponding to a command for controlling the image data, from another component of the electronic device (101) through the interface module (165a). According to one embodiment, the image information may be received from a processor (120) (e.g., a main processor (121) (e.g., an application processor) or a secondary processor (123) (e.g., a graphics processing unit)) that operates independently of the function of the main processor (121). The DDI (165) can communicate with the touch circuit (168) or the sensor module (176) through the interface module (165a). In addition, the DDI (165) can store at least a portion of the received image information in the memory (165b), for example, on a frame basis. The image processing module (165c) can, for example, perform preprocessing or postprocessing (e.g., resolution, brightness, or size adjustment) on at least a portion of the image data based on at least the characteristics of the image data or the characteristics of the display (161). The mapping module (165d) can generate a voltage value or a current value corresponding to the image data preprocessed or postprocessed through the image processing module (165c). According to one embodiment, the generation of the voltage value or the current value can be performed based at least in part on, for example, the properties of the pixels of the display (161) (e.g., the arrangement of the pixels (RGB stripe or pentile structure), or the size of each subpixel).At least some pixels of the display (161) may be driven based at least in part on, for example, the voltage value or current value, so that visual information (e.g., text, an image, or an icon) corresponding to the image data may be displayed through the display (161).
[0073] According to one embodiment, the display module (160) may further include a touch circuit (168). The touch circuit (168) may include a touch sensor (168a) and a touch sensor IC (168b) for controlling the touch sensor (168a). The touch sensor IC (168b) may control the touch sensor (168a) to detect, for example, a touch input or a hovering input for a specific location of the display (161). For example, the touch sensor IC (168b) may detect the touch input or the hovering input by measuring a change in a signal (e.g., voltage, light quantity, resistance, or charge quantity) for a specific location of the display (161). The touch sensor IC (168b) may provide information (e.g., location, area, pressure, or time) regarding the detected touch input or hovering input to the processor (120). According to one embodiment, at least a portion of the touch circuit (168) (e.g., touch sensor IC (168b)) may be included as part of the display driver IC (165), or as part of the display (161), or as part of another component (e.g., auxiliary processor (123)) disposed external to the display module (160).
[0074] According to one embodiment, the display module (160) may further include at least one sensor (e.g., a fingerprint sensor, an iris sensor, a pressure sensor, or an illuminance sensor) of the sensor module (176), or a control circuit therefor. In this case, the at least one sensor or the control circuit therefor may be embedded in a part of the display module (160) (e.g., the display (161) or the DDI (165)) or a part of the touch circuit (168). For example, when the sensor module (176) embedded in the display module (160) includes a biometric sensor (e.g., a fingerprint sensor), the biometric sensor may obtain biometric information (e.g., a fingerprint image) associated with a touch input through a part of the display (161). For example, when the sensor module (176) embedded in the display module (160) includes a pressure sensor, the pressure sensor may obtain pressure information associated with a touch input through a part or the entire area of the display (161). According to one embodiment, the touch sensor (168a) or sensor module (176) may be positioned between pixels of a pixel layer of the display (161), or above or below the pixel layer.
[0075] Electronic devices according to various embodiments disclosed in this document may take various forms. Electronic devices may include, for example, portable communication devices (e.g., smartphones), computer devices, portable multimedia devices, portable medical devices, cameras, wearable electronic devices, or home appliances. Electronic devices according to embodiments of this document are not limited to the aforementioned devices.
[0076] The various embodiments of this document and the terminology used therein are not intended to limit the technical features described in this document to specific embodiments, but should be understood to include various modifications, equivalents, or substitutes of the embodiments. In connection with the description of the drawings, similar reference numerals may be used for similar or related components. The singular form of a noun corresponding to an item may include one or more of the items, unless the context clearly indicates otherwise. In this document, each of the phrases "A or B", "at least one of A and B", "at least one of A or B", "A, B, or C", "at least one of A, B, and C", and "at least one of A, B, or C" can include any one of the items listed together in the corresponding phrase among those phrases, or all possible combinations thereof. Terms such as "first," "second," or "first" or "second" may be used merely to distinguish one component from another, and do not limit the components in any other respect (e.g., importance or order). When a component (e.g., a first component) is referred to as "coupled" or "connected" to another (e.g., a second component), with or without the terms "functionally" or "communicatively," it means that the component can be connected to the other component directly (e.g., wired), wirelessly, or through a third component.
[0077] The term "module" used in various embodiments of this document may include a unit implemented in hardware, software, or firmware, and may be used interchangeably with terms such as logic, logic block, component, or circuit. A module may be an integral component, or a minimum unit or part of such a component that performs one or more functions. For example, according to one embodiment, a module may be implemented in the form of an application-specific integrated circuit (ASIC).
[0078] Various embodiments of the present document may be implemented as software (e.g., a program (140)) including one or more instructions stored in a storage medium (e.g., an internal memory (136) or an external memory (138)) readable by a machine (e.g., an electronic device (101)). For example, a processor (e.g., a processor (120)) of the machine (e.g., an electronic device (101)) may call at least one instruction among the one or more instructions stored from the storage medium and execute it. This enables the machine to operate to perform at least one function according to the at least one called instruction. The one or more instructions may include code generated by a compiler or code executable by an interpreter. The machine-readable storage medium may be provided in the form of a non-transitory storage medium. Here, 'non-transitory' simply means that the storage medium is a tangible device and does not contain signals (e.g., electromagnetic waves), and the term does not distinguish between cases where data is stored semi-permanently or temporarily on the storage medium.
[0079] According to one embodiment, the method according to various embodiments disclosed in this document may be provided as a computer program product. The computer program product may be traded between sellers and buyers as a product. The computer program product may be distributed in the form of a device-readable storage medium (e.g., compact disc read-only memory (CD-ROM)) or may be provided through an application store (e.g., Play Store). TM ) or directly between two user devices (e.g., smart phones), online distribution (e.g., downloading or uploading). In the case of online distribution, at least a portion of the computer program product may be at least temporarily stored or temporarily created in a machine-readable storage medium, such as the memory of a manufacturer's server, an application store's server, or an intermediary server.
[0080] According to various embodiments, each component (e.g., a module or a program) of the above-described components may include one or more entities, and some of the entities may be separated and placed in other components. According to various embodiments, one or more components or operations of the aforementioned components may be omitted, or one or more other components or operations may be added. Alternatively or additionally, a plurality of components (e.g., a module or a program) may be integrated into a single component. In such a case, the integrated component may perform one or more functions of each of the plurality of components identically or similarly to those performed by the corresponding component among the plurality of components prior to the integration. According to various embodiments, the operations performed by a module, program, or other component may be executed sequentially, in parallel, iteratively, or heuristically, or one or more of the operations may be executed in a different order, omitted, or one or more other operations may be added.
[0081] A wearable electronic device (200) according to an embodiment of the present invention disclosed below may include embodiments of the electronic device (101) disclosed in FIGS. 1A and 1B. For example, the wearable electronic device (200) disclosed below may include a processor (120), a memory (130), an input module (150), an audio output module (155), a display module (160), an audio module (170), a sensor module (176), an interface (177), a connection terminal (178), a haptic module (179), a camera module (180), an antenna module (197), and / or a subscriber identification module (196) disclosed in FIGS. 1A and 1B.
[0082] According to various embodiments, the wearable electronic device (200) disclosed below may include the electronic device (101) disclosed in FIG. 1A. The wearable electronic device (200) may include a display (210). For example, the display (210) may include the display module (160) disclosed in FIGS. 1A and 1B. For example, the display (210) may include a first display area (211) and a second display area (212).
[0083] FIG. 2A is a schematic diagram illustrating an embodiment in which a wearable electronic device according to an embodiment of the present invention is rotated in a first direction while being worn on a user's left wrist. FIG. 2B is a schematic diagram illustrating an embodiment in which a wearable electronic device according to an embodiment of the present invention is rotated in a first direction while being worn on a user's right wrist.
[0084] Referring to FIG. 2a, a wearable electronic device (200) can be worn on a user's left wrist (201).
[0085] According to one embodiment, when the wearable electronic device (200) is worn on the user's left wrist (201), the user may rotate the left wrist (201) in a first direction (①). For example, the first direction (①) may be a direction in which the user of the wearable electronic device (200) rotates the left wrist (201) toward the body.
[0086] According to one embodiment, when the user rotates the left wrist (201) in the first direction (①), the second display area (212) of the display (210) can be positioned to be more visible in the field of view (207) through the user's eyes (205) than the first display area (211).
[0087] Referring to FIG. 2b, the wearable electronic device (200) can be worn on the user's right wrist (202).
[0088] According to one embodiment, when the wearable electronic device (200) is worn on the user's right wrist (202), the user may rotate the right wrist (202) in a first direction (①). For example, the first direction (①) may be a direction in which the user of the wearable electronic device (200) rotates the right wrist (202) toward the body.
[0089] According to one embodiment, when the user rotates the right wrist (202) in the first direction (①), the second display area (212) of the display (210) may be positioned to be more visible to the user's eye (205) through the field of view (207) than the first display area (211).
[0090] FIG. 3A is a schematic diagram illustrating a first multi-layer displayed in a second display area of a display of a wearable electronic device according to an embodiment of the present invention. FIG. 3B is a schematic diagram illustrating a second multi-layer displayed in a display of a wearable electronic device according to an embodiment of the present invention.
[0091] According to one embodiment, the wearable electronic device (200) may receive at least one notification from an external electronic device (e.g., the external electronic device (102, 104) or the server (108) disclosed in FIG. 1A). For example, the wearable electronic device (200) may be paired with the external electronic device (102). A user of the wearable electronic device (200) may not check the at least one notification received from the external electronic device (102).
[0092] Referring to FIG. 3A, when there are multiple unconfirmed notifications that the user has not confirmed, the wearable electronic device (200) can display a first multi-layer (310) including multiple layers each corresponding to the multiple unconfirmed notifications on a second display area (212) of the display (210).
[0093] According to one embodiment, the first multi-layer (310) may include a first layer (1) corresponding to a first unconfirmed notification, a second layer (2) corresponding to a second unconfirmed notification, a third layer (3) corresponding to a third unconfirmed notification, and / or a fourth layer (4) corresponding to a fourth unconfirmed notification. For example, the first layer (1) may include a page generated to correspond to the first unconfirmed notification. For example, the second layer (2) may include a page generated to correspond to the second unconfirmed notification. For example, the third layer (3) may include a page generated to correspond to the third unconfirmed notification. For example, the fourth layer (4) may include a page generated to correspond to the fourth unconfirmed notification.
[0094] According to one embodiment, the first layer (1), the second layer (2), the third layer (3), and / or the fourth layer (4) may be generated and / or displayed in order according to the importance set by the user. For example, the first layer (1), the second layer (2), the third layer (3), and / or the fourth layer (4) may be stacked in order according to the importance set by the user. According to one embodiment, the stacking order of the first layer (1), the second layer (2), the third layer (3), and / or the fourth layer (4) may be determined and / or changed according to the rank or score corresponding to the importance set by the user. For example, the first layer (1) corresponding to the first importance may be located at the top of the first multi-layer (310). For example, the second layer (2) corresponding to the second importance may be located below the first layer (1). For example, a third layer (3) corresponding to a third importance may be located below a second layer (2). For example, a fourth layer (4) corresponding to a fourth importance may be located below a third layer (3).
[0095] According to one embodiment, the importance set by the user of the wearable electronic device (200) may include at least one of an emergency text message, a notification received through an application or major contact specified by the user, a notification received through a frequently used application, and a notification corresponding to a scheduled time.
[0096] In one embodiment, the first layer (1) generated according to the first priority may include a notification containing an urgent message. For example, the first priority may be set to have a first score.
[0097] In one embodiment, the second layer (2) generated based on the second importance may include notifications received through applications or key contacts designated by the user. For example, the second importance may be set to have a second score lower than the first importance.
[0098] In one embodiment, the third layer (3) generated based on the third importance may include notifications received through applications frequently used by the user. For example, the third importance may include a third score lower than the second importance.
[0099] In one embodiment, the fourth layer (4) generated based on the fourth priority may include notifications corresponding to a scheduled time set by the user. For example, the fourth priority may include a fourth score lower than the third priority.
[0100] According to various embodiments, the first layer (1), the second layer (2), the third layer (3) and / or the fourth layer (4) may have their arrangement order determined and / or changed based on a rank or score (e.g., a first score to a fourth score) corresponding to an importance set by the user (e.g., a first importance to a fourth importance).
[0101] According to various embodiments, the above-described importance (e.g., first importance to fourth importance) and / or score (e.g., first score to fourth score) may be variously adjusted or changed depending on the settings of the user of the wearable electronic device (200) and / or the settings of the manufacturer of the wearable electronic device (200).
[0102] According to one embodiment, the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) may be generated and / or displayed so as to overlap at least partially. For example, the first layer (1) and the second layer (2) may have a first gap (d1) and may overlap at least partially. For example, the second layer (2) and the third layer (3) may have a first gap (d1) and may overlap at least partially. For example, the third layer (3) and the fourth layer (4) may have a first gap (d1) and may overlap at least partially. For example, the first multi-layer (310) may have a first size.
[0103] According to one embodiment, the wearable electronic device (200) can be rotated in a first direction (①) (e.g., toward the inside of the user's body). When the wearable electronic device (200) is rotated in the first direction (①), the first multi-layer (310) can be transformed into a second multi-layer (320) having a second size, as illustrated in FIG. 3B. For example, the first size of the first multi-layer (310) can include an area smaller than the second size of the second multi-layer (320). For example, the second size of the second multi-layer (320) can include an area larger than the first size of the first multi-layer (310).
[0104] According to one embodiment, as the first multi-layer (310) is transformed into the second multi-layer (320), the first layer (1) and the second layer (2) may have a second gap (d2) and may overlap at least partially. For example, as the first multi-layer (310) is transformed into the second multi-layer (320), the second layer (2) and the third layer (3) may have a second gap (d2) and may overlap at least partially. For example, as the first multi-layer (310) is transformed into the second multi-layer (320), the third layer (3) and the fourth layer (4) may have a second gap (d2) and may overlap at least partially. For example, the second gap (d2) may be wider than the first gap (d1). For example, the first gap (d1) may be narrower than the second gap (d2).
[0105] According to one embodiment, as the first multi-layer (310) is transformed into the second multi-layer (320), the display area of at least one layer (e.g., the first layer (1)) and the second layer (2)) among the first layer (1), the second layer (2), the third layer (3) and the fourth layer (4) of the second multi-layer (320) may be changed from the second display area (212) of the display (210) to the first display area (211) and displayed. For example, as the first multi-layer (310) is transformed into the second multi-layer (320), the display area of at least one layer (e.g., the first layer (1) and the second layer (2)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) of the second multi-layer (320) may be displayed by extending at least a portion from the second display area (212) of the display (210) to the first display area (211). For example, the display area of at least one layer (e.g., the first layer (1) and the second layer (2)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) that is changed or extended from the second display area (212) of the display (210) to the first display area (211) can be displayed within the field of view (207) through the user's eyes (205). For example, the display area of at least one layer (e.g., the first layer (1) and the second layer (2)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) that is changed or extended in the direction of the first display area (211) from the second display area (212) of the display (210) can be displayed in a glance view.
[0106] FIG. 4A is a schematic diagram illustrating an embodiment in which a wearable electronic device according to an embodiment of the present invention is rotated in a second direction while being worn on a user's left wrist. FIG. 4B is a schematic diagram illustrating an embodiment in which a wearable electronic device according to an embodiment of the present invention is rotated in a second direction while being worn on a user's right wrist.
[0107] Referring to FIG. 4a, the wearable electronic device (200) can be worn on the user's left wrist (201).
[0108] According to one embodiment, when the wearable electronic device (200) is worn on the user's left wrist (201), the user may rotate the left wrist (201) in a second direction (②). For example, the second direction (②) may be a direction in which the user of the wearable electronic device (200) rotates the left wrist (201) toward the outside of the body.
[0109] According to one embodiment, when the user rotates the left wrist (201) in the second direction (②), the first display area (211) of the display (210) may be positioned to be more visible to the user's eye (205) through the field of view (207) than the second display area (212).
[0110] Referring to FIG. 4b, the wearable electronic device (200) can be worn on the user's right wrist (202).
[0111] According to one embodiment, when the wearable electronic device (200) is worn on the user's right wrist (202), the user may rotate the right wrist (202) in a second direction (②). For example, the second direction (②) may be a direction in which the user of the wearable electronic device (200) rotates the right wrist (202) toward the outside of the body.
[0112] According to one embodiment, when the user rotates the right wrist (202) in the second direction (②), the first display area (211) of the display (210) may be positioned to be more visible in the field of view (207) through the user's eyes (205) than the second display area (212).
[0113] FIG. 5A is a schematic diagram illustrating a first multi-layer displayed in a first display area of a display of a wearable electronic device according to an embodiment of the present invention. FIG. 5B is a schematic diagram illustrating a second multi-layer displayed in a display of a wearable electronic device according to an embodiment of the present invention.
[0114] According to one embodiment, the wearable electronic device (200) may receive at least one notification from an external electronic device (102). For example, a user of the wearable electronic device (200) may not check the at least one notification received from the external electronic device (102).
[0115] Referring to FIG. 5A, when there are multiple unconfirmed notifications that the user has not confirmed, the wearable electronic device (200) can display a first multi-layer (310) including multiple layers each corresponding to the multiple unconfirmed notifications on a first display area (211) of the display (210).
[0116] According to one embodiment, the first multi-layer (310) may include a first layer (1) corresponding to a first unconfirmed notification, a second layer (2) corresponding to a second unconfirmed notification, a third layer (3) corresponding to a third unconfirmed notification, and / or a fourth layer (4) corresponding to a fourth unconfirmed notification. For example, the first layer (1) may include a page generated to correspond to the first unconfirmed notification. For example, the second layer (2) may include a page generated to correspond to the second unconfirmed notification. For example, the third layer (3) may include a page generated to correspond to the third unconfirmed notification. For example, the fourth layer (4) may include a page generated to correspond to the fourth unconfirmed notification.
[0117] According to one embodiment, the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) may be generated and / or displayed so as to overlap at least partially. For example, the first layer (1) and the second layer (2) may have a first gap (d1) and may overlap at least partially. For example, the second layer (2) and the third layer (3) may have a first gap (d1) and may overlap at least partially. For example, the third layer (3) and the fourth layer (4) may have a first gap (d1) and may overlap at least partially. For example, the first multi-layer (310) may have a first size.
[0118] According to one embodiment, the wearable electronic device (200) can be rotated in a second direction (②) (e.g., toward the outside of the user's body). When the wearable electronic device (200) is rotated in the second direction (②), the first multi-layer (310) can be transformed into a second multi-layer (320) having a second size, as illustrated in FIG. 5B. For example, the first size of the first multi-layer (310) can include an area smaller than the second size of the second multi-layer (320). For example, the second size of the second multi-layer (320) can include an area larger than the first size of the first multi-layer (310).
[0119] According to one embodiment, as the first multi-layer (310) is transformed into the second multi-layer (320), the first layer (1) and the second layer (2) may have a second gap (d2) and may overlap at least partially. For example, as the first multi-layer (310) is transformed into the second multi-layer (320), the second layer (2) and the third layer (3) may have a second gap (d2) and may overlap at least partially. For example, as the first multi-layer (310) is transformed into the second multi-layer (320), the third layer (3) and the fourth layer (4) may have a second gap (d2) and may overlap at least partially. For example, the second gap (d2) may be a wider gap between the layers than the first gap (d1). For example, the first interval (d1) may be a narrower spacing between layers than the second interval (d2).
[0120] According to one embodiment, as the first multi-layer (310) is transformed into the second multi-layer (320), the display area of at least one layer (e.g., the first layer (1) and the second layer (2)) among the first layer (1), the second layer (2), the third layer (3) and the fourth layer (4) of the second multi-layer (320) may be changed from the first display area (211) of the display (210) to the second display area (212) and displayed. For example, as the first multi-layer (310) is transformed into the second multi-layer (320), the display area of at least one layer (e.g., the first layer (1) and the second layer (2)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) of the second multi-layer (320) may be displayed by extending at least a portion from the first display area (211) of the display (210) to the second display area (212). For example, the display area of at least one layer (e.g., the first layer (1) and the second layer (2)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) that is changed or extended from the first display area (211) of the display (210) to the second display area (212) can be displayed within the field of view (207) through the user's eyes (205). For example, the display area of at least one layer (e.g., the first layer (1) and the second layer (2)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) that is changed or extended in the direction of the second display area (212) from the first display area (211) of the display (210) can be displayed in a glance view.
[0121] FIG. 6 is a block diagram schematically showing the configuration of a wearable electronic device according to one embodiment of the present invention.
[0122] According to various embodiments, the wearable electronic device (200) disclosed below may include at least some of the embodiments described in FIGS. 1A to 5B. For example, the embodiments disclosed in FIGS. 2A to 5B may be performed through components of the wearable electronic device (200) disclosed in FIG. 6. In the description of the wearable electronic device (200) according to an embodiment of the present invention disclosed below, components that are substantially the same as those of the embodiments disclosed in FIGS. 1A to 5B described above are given the same reference numerals, and redundant descriptions of their functions may be omitted.
[0123] Referring to FIG. 6, a wearable electronic device (200) may include a display (210), a sensor (250), a memory (130), and a processor (120).
[0124] In one embodiment, the display (210), sensor (250), memory (130) and processor (120) may be electrically or operatively connected.
[0125] According to one embodiment, the display (210) may include a first display area (211) and a second display area (212). For example, when the user rotates the left wrist (201) on which the wearable electronic device (200) is worn in a second direction (②) (e.g., toward the outside of the user's body), the first display area (211) may be positioned to be more visible in the field of view (207) through the user's eyes (205) than the second display area (212). For example, when the user rotates the left wrist (201) on which the wearable electronic device (200) is worn in a first direction (①) (e.g., toward the inside of the user's body), the second display area (212) may be positioned to be more visible in the field of view (207) through the user's eyes (205) than the first display area (211). For example, the first display area (211) and the second display area (212) of the display (210) are examples separated for explanation, and may be display areas that are substantially integrally combined.
[0126] According to one embodiment, the display (210) can display at least one of the first multi-layer (310) and the second multi-layer (320) disclosed in FIGS. 3A and 3B using the first display area (211) and / or the second display area (212), for example. According to various embodiments, the display (210) can display at least one of the first multi-layer (310) and the second multi-layer (320) disclosed in FIGS. 5A and 5B, for example, using the first display area (211) and / or the second display area (212).
[0127] According to various embodiments, the display (210) may display the initial screen, background screen, setting screen, and / or execution screens of various applications of the wearable electronic device (200). The display (210) may display a user interface (UI) that may provide various services to the user of the wearable electronic device (200). The display (210) may perform display functions and input functions.
[0128] According to one embodiment, the sensor (250) can detect an angle at which a wearable electronic device (200) worn on a user's left wrist (201) or right wrist (202) rotates in a first direction (①) (e.g., toward the user's body) or a second direction (②) (e.g., toward the user's body). According to various embodiments, the sensor (250) can detect a speed and / or time at which a wearable electronic device (200) worn on a user's left wrist (201) or right wrist (202) rotates in a first direction (①) (e.g., toward the user's body) or a second direction (②) (e.g., toward the user's body). For example, the sensor (250) can include the sensor module (176) disclosed in FIG. 1A.
[0129] According to various embodiments, the sensor (250) may include a six-axis sensor. The sensor (250) may include an acceleration sensor and a gyro sensor. For example, the acceleration sensor may sense an angle (e.g., an inclination angle) at which the wearable electronic device (200) is tilted with respect to a direction of gravity (e.g., a ground). For example, the gyro sensor may sense an angular velocity at which the wearable electronic device (200) rotates in a first direction (①) or a second direction (②). For example, the gyro sensor may sense a rotational speed and / or a rotational angle of the wearable electronic device (200). For example, the sensor (250) may be configured by integrating an acceleration sensor and a gyro sensor.
[0130] According to various embodiments, the sensor (250) may include at least one of a rotation time detection sensor, an angle sensor, a hall sensor, a proximity sensor, a pressure sensor, a magnetic sensor, a biometric sensor, a temperature sensor, a humidity sensor, a gesture sensor, a grip sensor, a color sensor, an infrared (IR) sensor, a light sensor, an ultrasonic sensor, an iris recognition sensor, a distance detection sensor (e.g., a time of flight (TOF) sensor, a light detection and ranging (LiDAR) sensor), and a fingerprint recognition sensor.
[0131] According to one embodiment, the memory (130) can store a plurality of layers displayed using the first display area (211) and / or the second display area (212) of the display (210). For example, the memory (130) can store at least one of the first multi-layer (310) and the second multi-layer (320) displayed using the first display area (211) and / or the second display area (212) of the display (210). The memory (130) can store the initial screen, setting screen, widgets, and / or various applications of the wearable electronic device (200) provided through the first display area (211) and / or the second display area (212) of the display (210).
[0132] According to various embodiments, the memory (130) may store a user interface (UI) that can provide various services to a user of the wearable electronic device (200). The memory (130) may perform a function of storing a program for processing and controlling the processor (120) (e.g., the program (140) of FIG. 1A), an operating system (e.g., the operating system (142) of FIG. 1A), various applications, and input / output data. The memory (130) may store a program that controls the overall operation of the wearable electronic device (200). The memory (130) may store various setting information required for processing functions in the wearable electronic device (200). The memory (130) may store at least one executable instruction. For example, the memory (130) may include one or more recording media that store instructions. For example, the memory (130) may store at least one instruction that, when individually or collectively executed by the processor (120), causes the wearable electronic device (200) to perform at least one operation. For example, the at least one instruction may be stored in a computer-readable recording medium. The recording medium may be tangible and non-transitory. For example, a non-transitory computer-readable recording medium according to one embodiment may, when individually or collectively executed by at least one processor (120) of the wearable electronic device (200), cause the at least one processor (120) to perform at least one operation. The memory (130) and / or the recording medium may store one or more programs including at least one instruction.
[0133] In one embodiment, the processor (120) may be operatively connected to a display (210), a sensor (250), and a memory (130). The processor (120) may control the functions and operations of the display (210), the sensor (250), and the memory (130). The processor (120) may be configured to access the memory (130) and execute at least one instruction. The wearable electronic device (200) may include at least one processor (120).
[0134] According to various embodiments, the processor (120) may control the overall operation of the wearable electronic device (200) and the signal flow between internal components, and may perform a function of processing data. The processor (120) may include, for example, a central processing unit (CPU), an application processor, and / or a communication processor. The processor (120) may include a single core processor or a multi-core processor. The processor (120) may be composed of at least one processor. For example, the processor (120) may include an application processor (e.g., the main processor (121) of FIG. 1A) and a sensor hub processor (e.g., the auxiliary processor (123) of FIG. 1A). For example, the processor (120) may include processing circuitry.
[0135] According to various embodiments, an operation executed in the wearable electronic device (200) may be performed and / or executed by at least one instruction stored in the processor (120) and / or the memory (130). For example, instructions stored in the memory (130) and / or one or more recording media storing the instructions may be individually or collectively executed by at least one processor (120). For example, in this document, an embodiment in which the wearable electronic device (200) may perform a certain operation may be interpreted to mean that the operation is performed by the processor (120), at least one instruction stored in the memory (130) and / or the recording medium.
[0136] According to one embodiment, the wearable electronic device (200) may display a first multi-layer (310) having a first size, in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, in a second display area (212), for example, as disclosed in FIG. 3A. For example, the first layer (1) may be generated to correspond to the first unconfirmed notification. For example, the second layer (2) may be generated to correspond to the second unconfirmed notification. For example, the first layer (1) may be positioned on top of the second layer (2) based on an importance set by a user. For example, the first layer (1) may be generated based on a first importance and a first score. For example, a second layer (2) can be generated based on a second importance and a second score that is lower than the first score.
[0137] According to one embodiment, the first multi-layer (310) is described as including a first layer (1) and a second layer (2), but is not limited thereto, and may further include a plurality of layers generated to correspond to the number of unconfirmed notifications (e.g., a third layer (3) and a fourth layer (4) disclosed in FIG. 3A).
[0138] In one embodiment, the first unconfirmed notification may include a first priority set by the user. For example, the second unconfirmed notification may include a second priority set by the user. For example, the first priority may include a higher priority than the second priority. For example, the priority set by the user of the electronic device (200) may include at least one of an emergency text message notification, a notification received through an application or key contact specified by the user, a notification received through a frequently used application, and a notification corresponding to a scheduled time.
[0139] In one embodiment, the first layer (1) generated based on the first priority may include notifications containing emergency messages. For example, the first priority may be set to have a score of 1. For example, the emergency messages may include notifications corresponding to disaster situations, such as heavy rain warnings, typhoon information, earthquake information, or power outage information.
[0140] In one embodiment, the second layer (2) generated based on the second importance may include notifications received through applications or key contacts designated by the user. For example, the second importance may be set to have a second score lower than the first importance.
[0141] In one embodiment, the third layer (3) generated based on the third importance may include notifications received through applications frequently used by the user. For example, the third importance may include a third score lower than the second importance.
[0142] In one embodiment, the fourth layer (4) generated based on the fourth priority may include notifications corresponding to a scheduled time set by the user. For example, the fourth priority may include a fourth score lower than the third priority.
[0143] According to various embodiments, the first layer (1), the second layer (2), the third layer (3) and / or the fourth layer (4) may have their arrangement order determined and / or changed based on a rank or score (e.g., a first score to a fourth score) corresponding to an importance set by the user (e.g., a first importance to a fourth importance).
[0144] According to various embodiments, the above-described importance (e.g., first importance to fourth importance) and / or score (e.g., first score to fourth score) may be variously adjusted or changed depending on the settings of the user of the wearable electronic device (200) and / or the settings of the manufacturer of the wearable electronic device (200).
[0145] According to one embodiment, the wearable electronic device (200) can detect whether it is rotated in a first direction (①) or a second direction (②) using a sensor (250). For example, when the wearable electronic device (200) is rotated in the first direction (①) (e.g., toward the inside of the user's body), the wearable electronic device (200) can transform a first multi-layer (310) having a first size into a second multi-layer (320) having a second size, as disclosed in, for example, FIGS. 3A and 3B.
[0146] According to one embodiment, the wearable electronic device (200) can display by changing the display area of at least one layer among the first layer (1) and the second layer (2) transformed into the second multi-layer (320) from the second display area (212) to the first display area (211). For example, the wearable electronic device (200) can display by extending the display area of at least one layer among the first layer (1) and the second layer (2) transformed into the second multi-layer (320) from the second display area (212) to the first display area (211). For example, the wearable electronic device (200) may display a display area of at least one layer among the first layer (1) and the second layer (2) transformed into the second multi-layer (320) in a glance view that changes or extends from the second display area (212) to the first display area (211) based on the wearable electronic device (200) rotating in the first direction (①) (e.g., toward the inside of the user's body).
[0147] According to various embodiments, the wearable electronic device (200) may display a first multi-layer (310) having a first size, in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, in a first display area (211), for example, as disclosed in FIG. 5A. For example, the first layer (1) may be generated to correspond to the first unconfirmed notification. For example, the second layer (2) may be generated to correspond to the second unconfirmed notification. For example, based on an importance set by a user of the wearable electronic device (200), a first layer (1) having a high importance may be positioned above a second layer (2) having a low importance. For example, the first layer (1) may be generated and / or displayed based on a first importance and a first score, according to a user's setting. For example, the second layer (2) can be generated and / or displayed based on the second importance and the second score, depending on the user's settings.
[0148] In one embodiment, the first multi-layer (310) is described as including a first layer (1) and a second layer (2), but is not limited thereto, and may further include a plurality of layers generated to correspond to the number of unconfirmed notifications (e.g., a third layer (3) and a fourth layer (4) disclosed in FIG. 5A).
[0149] According to one embodiment, the wearable electronic device (200) can detect whether it is rotated in a first direction (①) or a second direction (②) using a sensor (250). For example, when the wearable electronic device (200) is rotated in the second direction (②) (e.g., toward the outside of the user's body), the wearable electronic device (200) can transform a first multi-layer (310) having a first size into a second multi-layer (320) having a second size, as disclosed in, for example, FIGS. 5A and 5B.
[0150] According to one embodiment, the wearable electronic device (200) can display by changing the display area of at least one layer among the first layer (1) and the second layer (2) transformed into the second multi-layer (320) from the first display area (211) to the second display area (212). For example, the wearable electronic device (200) can display by extending the display area of at least one layer among the first layer (1) and the second layer (2) transformed into the second multi-layer (320) from the first display area (211) to the second display area (212). For example, the wearable electronic device (200) may display a display area of at least one layer among the first layer (1) and the second layer (2) transformed into a second multi-layer (320) in a glance view that changes or extends from the first display area (211) to the second display area (212) based on the wearable electronic device (200) rotating in the second direction (②) (e.g., toward the outside of the user's body).
[0151] According to one embodiment, the wearable electronic device (200) can set a first application having a first priority and a second application having a second priority, which are displayed through a swipe motion (e.g., a swipe gesture) of the display (210). According to one embodiment, the wearable electronic device (200) can generate and / or display a first layer (1) corresponding to the first priority and a second layer (2) corresponding to the second priority, based on the set first priority and second priority. For example, a first unconfirmed notification can be received through the first application (1010), and a second unconfirmed notification can be received through the second application (1020).
[0152] According to one embodiment, the wearable electronic device (200) may determine the order of the first unconfirmed notification and the second unconfirmed notification based on the importance set by the user for at least one application and / or at least one widget. For example, the wearable electronic device (200) may determine the order of the first layer (1) generated to correspond to the first unconfirmed notification and the second layer (2) generated to correspond to the second unconfirmed notification based on the importance set by the user. For example, if the first unconfirmed notification has a higher importance than the second unconfirmed notification, the wearable electronic device (200) may position the first layer (1) of the first multi-layer (310) above the second layer (2). For example, if the second unconfirmed notification has a lower priority than the first unconfirmed notification, the wearable electronic device (200) may position the second layer (2) of the first multi-layer (310) below the first layer (1).
[0153] According to one embodiment, when the first layer (1) has a first priority and the second layer has a second priority, the first layer (1) may be generated and / or displayed so as to be positioned on top of the second layer (2).
[0154] FIG. 7A is a schematic diagram illustrating an embodiment of displaying a specific icon on a display when a wearable electronic device according to an embodiment of the present invention rotates in a first direction. FIG. 7B is a schematic diagram illustrating an embodiment of displaying a specific icon on a display when a wearable electronic device according to an embodiment of the present invention rotates in a second direction.
[0155] According to one embodiment, the wearable electronic device (200) can display a first multi-layer (310) having a first size in a second display area (212), for example, as disclosed in FIG. 3A.
[0156] Referring to FIG. 7a, an indicator indicating the status of the wearable electronic device (200) or an icon (710) indicating an application being used in the wearable electronic device (200) may be displayed in the second display area (212).
[0157] According to one embodiment, when the wearable electronic device (200) rotates in a first direction (①) (e.g., toward the inside of the user's body), the wearable electronic device (200) can transform the first multi-layer (310) having the first size into a second multi-layer (320) having the second size, as disclosed in FIG. 7A.
[0158] According to one embodiment, based on the wearable electronic device (200) rotating in the first direction (①) (e.g., toward the inside of the user's body), the icon (710) displayed in the second display area (212) may be additionally displayed in the first display area (211).
[0159] According to various embodiments, an indicator indicating the status of the wearable electronic device (200) or an icon (710) indicating an application being used in the wearable electronic device (200) may be displayed in only one of the first display area (211) and the second display area (212).
[0160] According to one embodiment, the icon (710) representing an indicator indicating the status of the wearable electronic device (200) may include, for example, an indicator indicating connection or disconnection of the wearable electronic device (200) and an external electronic device (102) (e.g., a smart phone). According to one embodiment, the icon (710) representing an application being used in the wearable electronic device (200) may include an icon related to a health application that can check in real time whether the user is exercising.
[0161] According to various embodiments, the wearable electronic device (200) may display a first multi-layer (310) having a first size in a first display area (211), for example, as disclosed in FIG. 5A.
[0162] Referring to FIG. 7b, an indicator indicating the status of the wearable electronic device (200) or an icon (710) indicating an application being used in the wearable electronic device (200) may be displayed in the first display area (211).
[0163] According to one embodiment, when the wearable electronic device (200) rotates in the second direction (②) (e.g., toward the outside of the user's body), the wearable electronic device (200) can transform the first multi-layer (310) having the first size into the second multi-layer (320) having the second size, as disclosed in FIG. 7b.
[0164] According to one embodiment, based on the wearable electronic device (200) rotating in the second direction (②) (e.g., toward the outside of the user's body), the icon (710) displayed in the first display area (211) may be additionally displayed in the second display area (212).
[0165] According to various embodiments, an indicator indicating the status of the wearable electronic device (200) or an icon (710) indicating an application being used in the wearable electronic device (200) may be displayed in only one of the first display area (211) and the second display area (212).
[0166] FIGS. 8A to 8E are schematic diagrams illustrating an operation in which a multi-layer is transformed and switched to an initial screen based on rotation in a first direction or a second direction of a wearable electronic device according to one embodiment of the present invention.
[0167] According to various embodiments, FIG. 8A is a diagram schematically illustrating a first multi-layer (310) of a wearable electronic device (200) according to an embodiment of the present invention. FIG. 8B is a diagram schematically illustrating a second multi-layer (320) that is deformed based on the wearable electronic device (200) rotating in a second direction (②) according to an embodiment of the present invention. FIG. 8C is a diagram schematically illustrating a first multi-layer (310) that is deformed based on the wearable electronic device (200) rotating at a first angle toward a first direction (①) according to an embodiment of the present invention. FIG. 8D is a diagram schematically illustrating a third multi-layer (830) that is deformed based on the wearable electronic device (200) rotating at a second angle toward a first direction (①) according to an embodiment of the present invention. FIG. 8e is a drawing schematically showing a background screen (840) of a wearable electronic device (200) that is switched based on the wearable electronic device (200) rotating at a third angle toward a first direction (①) according to one embodiment of the present invention.
[0168] Referring to FIG. 8a, when there are multiple unconfirmed notifications that the user has not confirmed, the wearable electronic device (200) can display a first multi-layer (310) including multiple layers each corresponding to the multiple unconfirmed notifications on a first display area (211) of the display (210).
[0169] According to one embodiment, the first multi-layer (310) may include a first layer (1) corresponding to a first unconfirmed notification, a second layer (2) corresponding to a second unconfirmed notification, a third layer (3) corresponding to a third unconfirmed notification, and / or a fourth layer (4) corresponding to a fourth unconfirmed notification. For example, the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) may each overlap at least partially. For example, the first multi-layer (310) may have a first size.
[0170] Referring to FIG. 8B, the wearable electronic device (200) may be rotated in a second direction (②) (e.g., toward the outside of the user's body) while being worn on the user's left wrist (201). When the wearable electronic device (200) is rotated in the second direction (②), the first multi-layer (310) may be transformed into a second multi-layer (320) having a second size. For example, the second size of the second multi-layer (320) may include an area that is larger or wider than the first size of the first multi-layer (310).
[0171] According to one embodiment, as the first multi-layer (310) is transformed into the second multi-layer (320), at least one layer (e.g., the first layer (1)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) of the second multi-layer (320) may be displayed by changing from the first display area (211) of the display (210) to the second display area (212). For example, as the first multi-layer (310) is transformed into the second multi-layer (320), at least one layer (e.g., the first layer (1)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) of the second multi-layer (320) may be displayed by extending from the first display area (211) of the display (210) to the second display area (212). For example, at least one layer among the first layer (1), the second layer (2), the third layer (3) and the fourth layer (4) extending in the direction of the second display area (212) from the first display area (211) of the display (210) can be displayed in a glance view.
[0172] Referring to FIG. 8c, when the wearable electronic device (200) is rotated in a second direction (②) (e.g., toward the outside of the user's body), and at least one layer among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) of the second multi-layer (320) is displayed in a state where it is changed or extended from the first display area (211) of the display (210) to the second display area (212), the user can rotate the left wrist (201) on which the wearable electronic device (200) is worn at a first angle toward the first direction (①) within a first designated time.
[0173] According to one embodiment, when the wearable electronic device (200) rotates at a first angle toward a first direction (①) within a first specified time, for example, the second multi-layer (320) disclosed in FIG. 8B may be transformed into a first multi-layer (310). For example, the transformed first multi-layer (310) may be displayed in the first display area (211).
[0174] Referring to FIG. 8d, based on the wearable electronic device (200) being rotated at a first angle toward a first direction (①) within a first specified time, while the second multi-layer (320) is transformed into the first multi-layer (310) and displayed in the first display area (211), the user can rotate the left wrist (201) on which the wearable electronic device (200) is worn at a second angle toward the first direction (①) within the first specified time. For example, the second angle rotated toward the first direction (①) may be an angle rotated further toward the inside of the user's body or toward the ground than the first angle described above.
[0175] According to one embodiment, when the wearable electronic device (200) rotates at a second angle toward a first direction (①) within a first specified time, for example, the first multi-layer (310) disclosed in FIG. 8C may be transformed into a third multi-layer (830) having a third size. For example, the transformed third multi-layer (830) may be displayed in the first display area (211). For example, the third multi-layer (830) having the third size may include an area smaller than that of the first multi-layer (310). For example, the spacing between each of the plurality of layers included in the modified third multi-layers (830) may be formed to be narrower than the spacing between each of the plurality of layers included in the first multi-layers (310) (e.g., the first spacing (d1) of FIG. 5a). For example, the third size of the third multi-layer (830) may include a size that is reduced from the first size of the first multi-layer (310).
[0176] Referring to FIG. 8E, based on the wearable electronic device (200) being rotated at a second angle toward a first direction (①) within a first specified time, while the deformed third multi-layer (830) is displayed in the first display area (211), the user can rotate the left wrist (201) on which the wearable electronic device (200) is worn at a third angle toward the first direction (①) within the first specified time. For example, the third angle rotated toward the first direction (①) may be an angle that is rotated further toward the ground than the second angle described above. For example, the third angle may be an angle at which the wearable electronic device (200) is rotated toward the first direction (①) by a threshold value.
[0177] According to one embodiment, when the wearable electronic device (200) rotates at a third angle toward the first direction (①) within a first specified time, for example, the first multi-layer (310) disclosed in FIG. 8c or the third multi-layer (830) disclosed in FIG. 8d may be removed from the display (210). According to various embodiments, when the wearable electronic device (200) rotates at a third angle (e.g., a threshold) toward the first direction (①) within a first specified time, for example, the first multi-layer (310) disclosed in FIG. 8c or the third multi-layer (830) disclosed in FIG. 8d may be switched to a background screen (840) (e.g., a clock screen) of the wearable electronic device (200).
[0178] FIG. 9A is a diagram schematically illustrating a second multi-layer displayed on a display based on a wearable electronic device rotating in a second direction according to an embodiment of the present invention. FIG. 9B is a diagram schematically illustrating an embodiment in which the order of layers is changed based on a wearable electronic device rotating from a second direction to a first direction within a second specified time according to an embodiment of the present invention. FIG. 9C is a diagram schematically illustrating an embodiment in which layers displayed on a display of a wearable electronic device are changed through a swipe action according to an embodiment of the present invention. FIG. 9D is a diagram schematically illustrating a touch action for layers displayed on a display of a wearable electronic device according to an embodiment of the present invention.
[0179] According to one embodiment, when there are multiple unconfirmed notifications that the user has not confirmed, the wearable electronic device (200) may display a first multi-layer (310) including multiple layers each corresponding to the multiple unconfirmed notifications on a first display area (211) of the display (210).
[0180] According to one embodiment, the first multi-layer (310) may include a first layer (1) corresponding to a first unconfirmed notification, a second layer (2) corresponding to a second unconfirmed notification, a third layer (3) corresponding to a third unconfirmed notification, and / or a fourth layer (4) corresponding to a fourth unconfirmed notification. For example, the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) may each overlap at least partially. For example, the first multi-layer (310) may have a first size.
[0181] Referring to FIG. 9A, the wearable electronic device (200) may be rotated in a second direction (②) (e.g., toward the outside of the user's body) while being worn on the user's left wrist (201). When the wearable electronic device (200) is rotated in the second direction (②), the first multi-layer (310) may be transformed into a second multi-layer (320) having a second size.
[0182] According to one embodiment, as the first multi-layer (310) is transformed into the second multi-layer (320), at least one layer (e.g., the first layer (1)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) of the second multi-layer (320) may be displayed by changing from the first display area (211) of the display (210) to the second display area (212). For example, as the first multi-layer (310) is transformed into the second multi-layer (320), at least one layer (e.g., the first layer (1)) among the first layer (1), the second layer (2), the third layer (3), and the fourth layer (4) of the second multi-layer (320) may be displayed by extending from the first display area (211) of the display (210) to the second display area (212). For example, at least one layer among the first layer (1), the second layer (2), the third layer (3) and the fourth layer (4) that is changed or extended in the direction of the second display area (212) in the first display area (211) of the display (210) can be displayed in a glance view.
[0183] Referring to FIG. 9B, when the wearable electronic device (200) is rotated in a second direction (②) (e.g., toward the outside of the user's body), and at least one layer (e.g., the first layer (1)) among the first layer (1), the second layer (2), the third layer (3) and the fourth layer (4) of the second multi-layer (320) is displayed in a state where it is changed or extended from the first display area (211) of the display (210) to the second display area (212), the user can rotate the left wrist (201) on which the wearable electronic device (200) is worn toward the first direction (①) within a second specified time. For example, the wearable electronic device (200) can be rotated from the second direction (②) to the first direction (①) within the second specified time.
[0184] According to one embodiment, when the wearable electronic device (200) is rotated from the second direction (②) to the first direction (①) within the second specified time, for example, the order of the layers may be switched so that the first layer (1) positioned at the top of the second multi-layer (320) is positioned below the fourth layer (4) positioned at the bottom. For example, when the wearable electronic device (200) is rotated from the second direction (②) to the first direction (①) within the second specified time, the order of the layers may be switched so that the second layer (2) positioned below the first layer (1) is positioned at the top of the second multi-layer (320).
[0185] Referring to FIG. 9c, when the wearable electronic device (200) is rotated once again from the second direction (②) to the first direction (①) within the second specified time, the order of the layers may be switched so that, for example, the second layer (2) positioned at the top of the second multi-layer (320) is positioned below the first layer (1) positioned at the bottom. For example, when the wearable electronic device (200) is rotated once again from the second direction (②) to the first direction (①) within the second specified time, the order of the layers may be switched so that the third layer (3) positioned below the second layer (2) is positioned at the top of the second multi-layer (320). For example, based on the wearable electronic device (200) being rotated from the second direction (②) to the first direction (①) within the second specified time, the second multi-layer (320) can be arranged in the order of the third layer (3), the fourth layer (4), the first layer (1), and the second layer (2).
[0186] According to one embodiment, a user of a wearable electronic device (200) may perform a swipe input (910) (e.g., a swipe gesture) on a third layer (3) positioned at the top of a second multi-layer (320). For example, the user may swipe the third layer (3) positioned at the top of the second multi-layer (320) upwards using a finger.
[0187] Referring to FIG. 9d, when the second multi-layer (320) is arranged in the order of the third layer (3), the fourth layer (4), the first layer (1), and the second layer (2), and a swipe input (910) is performed on the third layer (3) located at the top, the order of the layers can be switched so that the third layer (3) located at the top of the second multi-layer (320) is located below the second layer (2) located at the bottom. For example, when a swipe input (910) is performed on the third layer (3) located at the top while the second multi-layer (320) is arranged in the order of the third layer (3), the fourth layer (4), the first layer (1), and the second layer (2), the order of the layers can be switched so that the fourth layer (4) located below the third layer (3) is located at the top of the second multi-layer (320).
[0188] According to one embodiment, a user of a wearable electronic device (200) may perform a touch input (920) (e.g., a touch gesture) on a fourth layer (4) located at the top of the second multi-layer (320). For example, when a touch input (920) is performed on the fourth layer (4) located at the top of the second multi-layer (320), the wearable electronic device (200) may display an application or widget corresponding to the fourth layer (4) on the display (210).
[0189] FIG. 10A is a diagram schematically illustrating an embodiment in which a user of a wearable electronic device sets a main application and a main widget according to an embodiment of the present invention. FIG. 10B is a diagram schematically illustrating an embodiment in which the order of multiple layers is determined based on the importance set in the wearable electronic device according to an embodiment of the present invention. FIG. 10C is a diagram schematically illustrating an embodiment in which a wearable electronic device according to an embodiment of the present invention generates unconfirmed notifications included in a first application as one layer. FIG. 10D is a diagram schematically illustrating an embodiment in which a wearable electronic device according to an embodiment of the present invention generates unconfirmed notifications included in a second application as one layer. FIG. 10E is a diagram schematically illustrating an embodiment in which a wearable electronic device according to an embodiment of the present invention displays a layer generated to correspond to an unconfirmed notification of a first application and a layer generated to correspond to an unconfirmed notification of a second application as multiple layers.
[0190] According to various embodiments, the embodiments disclosed in FIGS. 2A to 9D described above can be applied to the embodiments disclosed in FIGS. 10A to 10E.
[0191] Referring to FIG. 10A, a user of a wearable electronic device (200) can select or set a first application (1010), a second application (1020), a first widget (1030), and / or a second widget (1040) through a swipe motion on the display (210).
[0192] According to one embodiment, a user of a wearable electronic device (200) may select a first application (1010), a second application (1020), a first widget (1030), and / or a second widget (1040) displayed through a swipe motion on the display (210), and set an importance level for each of them. For example, the first application (1010) may be set to have a first importance level and / or a first score. For example, the second application (1020) may be set to have a second importance level and / or a second score. For example, the first widget (1030) may be set to have a third importance level and / or a third score. For example, the second widget (1040) may be set to have a fourth importance level and / or a fourth score. For example, the first application (1010) may include a contact-related application that the user frequently uses. For example, the second application (1020) may include a text message-related application that the user frequently checks. For example, the first widget (1030) may include a schedule widget that manages the user's schedule. For example, the second widget (1040) may include a weather widget that informs the weather. According to one embodiment, the wearable electronic device (200) may generate layers corresponding to the first application (1010), the second application (1020), the first widget (1030), and the second widget (1040), respectively, based on the importance set by the user (e.g., the first importance, the second importance, the third importance, and / or the fourth importance).
[0193] According to one embodiment, the wearable electronic device (200) may determine the stacking order of layers corresponding to the first application (1010), the second application (1020), the first widget (1030), and the second widget (1040), respectively, based on the importance set by the user (e.g., first importance, second importance, third importance, and / or fourth importance). For example, the first importance may have a higher priority for notifying an unconfirmed notification than the second importance. For example, the second importance may have a higher priority for notifying an unconfirmed notification than the third importance. For example, the third importance may have a higher priority for notifying an unconfirmed notification than the fourth importance.
[0194] Referring to FIG. 10b, based on the importance set by the user (e.g., first importance, second importance, third importance, and / or fourth importance), an unconfirmed notification (e.g., first unconfirmed notification) of a first application (1010) having a first importance may be generated and / or displayed in a first layer (1) located at the top of a second multi-layer (320). For example, an unconfirmed notification (e.g., second unconfirmed notification) of a second application (1020) having a second importance may be generated and / or displayed in a second layer (2) located below the first layer (1) of the second multi-layer (320). For example, an unconfirmed notification of a first widget (1030) having a third priority may be generated and / or displayed in a third layer (3) located below a second layer (2) of a second multi-layer (320). For example, an unconfirmed notification of a second widget (1040) having a fourth priority may be generated and / or displayed in a fourth layer (4) located below a third layer (3) of a second multi-layer (320).
[0195] According to one embodiment, the first layer (1), the second layer (2), the third layer (3), and / or the fourth layer (4) may be generated and / or displayed in order according to the importance set by the user. For example, the first layer (1), the second layer (2), the third layer (3), and / or the fourth layer (4) may be stacked in order according to the importance set by the user. According to one embodiment, the stacking order of the first layer (1), the second layer (2), the third layer (3), and / or the fourth layer (4) may be determined and / or changed according to a rank or score corresponding to the importance set by the user.
[0196] According to one embodiment, when a user of a wearable electronic device (200) sets a first application (1010) to have a first priority and sets a second application (1020) to have a second priority, a first layer (1) corresponding to the first priority may be positioned on top of a second layer (2) corresponding to the second priority.
[0197] Referring to FIGS. 10c and 10e, when a first unconfirmed notification (1-1) received through a first application (1010) is generated and / or displayed in the first layer (1), and a third unconfirmed notification (1-3) is received through the first application (1010), the third unconfirmed notification (1-3) may be generated and / or displayed in the first layer (1). For example, when a first unconfirmed notification (1-1) received through the first application (1010) is generated and / or displayed in the first layer (1), and a third unconfirmed notification (1-3) is received through the first application (1010), the third unconfirmed notification (1-3) may be generated and / or displayed in the first layer (1) together with the first unconfirmed notification (1-1).
[0198] According to one embodiment, when a 1-1 unconfirmed notification (e.g., a 1st unconfirmed notification) received through a 1st application (1010) is generated and / or displayed in a 1st layer (1), and a 1-3 unconfirmed notification (e.g., a 3rd unconfirmed notification) and a 1-4 unconfirmed notification (e.g., a 4th unconfirmed notification) are received through the 1st application (1010), the 1-3 unconfirmed notification (e.g., a 3rd unconfirmed notification) and a 1-4 unconfirmed notification (e.g., a 4th unconfirmed notification) may be generated and / or displayed in the 1st layer (1).
[0199] According to one embodiment, when a 1-1 unconfirmed notification (e.g., a 1st unconfirmed notification) received through a 1st application (1010) is generated and / or displayed in a 1st layer (1), and a 1-3 unconfirmed notification (e.g., a 3rd unconfirmed notification) and a 1-4 unconfirmed notification (e.g., a 4th unconfirmed notification) are received through the 1st application (1010), the processor (120) may generate and / or display the 1-1 unconfirmed notification (e.g., the 1st unconfirmed notification), the 1-3 unconfirmed notification (e.g., the 3rd unconfirmed notification), and the 1-4 unconfirmed notification (e.g., the 4th unconfirmed notification) in a collage form in the 1st layer (1).
[0200] According to one embodiment, when a 1-1 unconfirmed notification (e.g., a 1-1 unconfirmed notification) received through a 1st application (1010) is generated and / or displayed in a 1st layer (1), and a 1-3 unconfirmed notification (e.g., a 3rd unconfirmed notification) and a 1-4 unconfirmed notification (e.g., a 4th unconfirmed notification) are received through the 1st application (1010), the processor (120) may generate and / or display in the 1st layer (1) at least a portion of the 1-1 unconfirmed notification (e.g., the 1st unconfirmed notification), the 1-3 unconfirmed notification (e.g., the 3rd unconfirmed notification), and the 1-4 unconfirmed notification (e.g., the 4th unconfirmed notification) overlapping each other.
[0201] According to one embodiment, when a 1-1 unconfirmed notification (e.g., a 1st unconfirmed notification) received through a 1st application (1010) is generated and / or displayed in a 1st layer (1), and a 1-3 unconfirmed notification (e.g., a 3rd unconfirmed notification) and a 1-4 unconfirmed notification (e.g., a 4th unconfirmed notification) are received through the 1st application (1010), the processor (120) may generate and / or display a number indicating the number of 1-1 unconfirmed notifications (e.g., a 1st unconfirmed notification), 1-3 unconfirmed notifications (e.g., a 3rd unconfirmed notification), and 1-4 unconfirmed notifications (e.g., a 4th unconfirmed notification) in the 1st layer (1).
[0202] Referring to FIGS. 10d and 10e, when a 2-1 unconfirmed notification (e.g., a 2nd unconfirmed notification) and a 2-2 unconfirmed notification (e.g., a 5th unconfirmed notification) are received through a 2nd application (1020), the processor (120) may generate and / or display both the 2-1 unconfirmed notification (e.g., a 2nd unconfirmed notification) and the 2-2 unconfirmed notification (e.g., a 5th unconfirmed notification) in the 2nd layer (2).
[0203] According to one embodiment, when a 2-1 unconfirmed notification (e.g., a 2nd unconfirmed notification) received through a 2nd application (1020) is generated and / or displayed in the 2nd layer (2), and a 2-2 (e.g., a 5th unconfirmed notification) is received through the 2nd application (1020), the processor (120) may generate and / or display the 2-1 unconfirmed notification (e.g., a 3rd unconfirmed notification) and the 2-2 unconfirmed notification (e.g., a 5th unconfirmed notification) in the form of a collage in the 2nd layer (2).
[0204] According to one embodiment, when a 2-1 unconfirmed notification (e.g., a 2nd unconfirmed notification) received through a 2nd application (1020) is generated and / or displayed in a 2nd layer (2), and a 2-2 (e.g., a 5th unconfirmed notification) is received through the 2nd application (1020), the processor (120) may generate and / or display in the 1st layer (2) at least a portion of the 2-1 unconfirmed notification (e.g., a 3rd unconfirmed notification) and the 2-2 unconfirmed notification (e.g., a 5th unconfirmed notification) overlapping each other.
[0205] According to one embodiment, when a 2-1 unconfirmed notification (e.g., a 2nd unconfirmed notification) received through a 2nd application (1020) is generated and / or displayed in the 2nd layer (2), and a 2-2 (e.g., a 5th unconfirmed notification) is received through the 2nd application (1020), the processor (120) may generate and / or display a number indicating the number of 2-1 unconfirmed notifications (e.g., a 3rd unconfirmed notification) and 2-2 unconfirmed notifications (e.g., a 5th unconfirmed notification) in the 2nd layer (2).
[0206] FIG. 11 is a flowchart illustrating a method for controlling a wearable electronic device according to one embodiment of the present invention.
[0207] The method disclosed in FIG. 11 may include, for example, the embodiments disclosed in FIGS. 1A to 10E. The method disclosed in FIG. 11 may be integrated and applied to, for example, the embodiments disclosed in FIGS. 2A to 10E. In embodiments related to the method disclosed in FIG. 11, the operations may be performed sequentially, but not necessarily sequentially. For example, the order of the operations may be changed. For example, the order of the operations may be performed in parallel. For example, the operations may not all be performed, but at least some of them may be performed. The operations disclosed in FIG. 11 may be performed by instructions stored in the processor (120) and / or memory (130) of the wearable electronic device (200). For example, the method disclosed in FIG. 11 may be integrated with the method disclosed in FIG. 12.
[0208] In operation 1110, the wearable electronic device (200) may display a first multi-layer (310) in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, in a second display area (212).
[0209] According to one embodiment, the first multi-layer (310) may include a first size. For example, the first layer (1) and the second layer (2) of the first multi-layer (310) may have a first gap (d1) and may overlap at least partially.
[0210] In operation 1120, the wearable electronic device (200) can use the sensor (250) to determine that it is rotating in the first direction (①) (e.g., toward the inside of the user's body).
[0211] In operation 1130, the wearable electronic device (200) may transform the first multi-layer (310) into the second multi-layer (320) based on rotation in the first direction (①) (e.g., toward the inside of the user's body).
[0212] In one embodiment, the second multi-layer (320) may include a second size. For example, the second size may include an area that is larger or wider than the first size. For example, the first layer (1) and the second layer (2) of the second multi-layer (320) may have a second gap (d2) and overlap at least partially.
[0213] In operation 1140, the wearable electronic device (200) can change the display area of at least one layer (e.g., the first layer (1)) among the second multi-layers (320) transformed in operation 1130 from the second display area (212) to the first display area (211) and display the display.
[0214] According to one embodiment, the wearable electronic device (200) may display the display area of at least one layer (e.g., the first layer (1)) of the second multi-layer (320) transformed in the above operation 1130 by extending it from the second display area (212) to the first display area (211).
[0215] According to one embodiment, the wearable electronic device (200) may display a display area of at least one of the first layer (1) and the second layer (2) of the second multi-layer (320) transformed in operation 1130 in a glance view that is changed or extended from the second display area (212) to the first display area (211) based on rotation in the first direction (①) (e.g., toward the inside of the user's body).
[0216] FIG. 12 is a flowchart illustrating a method for controlling a wearable electronic device according to various embodiments of the present invention.
[0217] The method disclosed in FIG. 12 may include, for example, the embodiments disclosed in FIGS. 1A to 10E. The method disclosed in FIG. 12 may be integrated and applied to, for example, the embodiments disclosed in FIGS. 2A to 10E. In embodiments related to the method disclosed in FIG. 12, the operations may be performed sequentially, but not necessarily sequentially. For example, the order of the operations may be changed. For example, the order of the operations may be performed in parallel. For example, the operations may not all be performed, but at least some of them may be performed. The operations disclosed in FIG. 12 may be performed by instructions stored in the processor (120) and / or memory (130) of the wearable electronic device (200). For example, the method disclosed in FIG. 12 may be integrated with the method disclosed in FIG. 11.
[0218] In operation 1210, the wearable electronic device (200) can display a first multi-layer (310) in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, in a first display area (211).
[0219] According to one embodiment, the first multi-layer (310) may include a first size. For example, the first layer (1) and the second layer (2) of the first multi-layer (310) may have a first gap (d1) and may overlap at least partially.
[0220] In operation 1220, the wearable electronic device (200) can use the sensor (250) to determine that it is rotating in the second direction (②) (e.g., toward the outside of the user's body).
[0221] In operation 1230, the wearable electronic device (200) may transform the first multi-layer (310) into the second multi-layer (320) based on rotation in the second direction (②) (e.g., toward the outside of the user's body).
[0222] In one embodiment, the second multi-layer (320) may include a second size. For example, the second size may include an area that is larger or wider than the first size. For example, the first layer (1) and the second layer (2) of the second multi-layer (320) may have a second gap (d2) and overlap at least partially.
[0223] In operation 1240, the wearable electronic device (200) can change the display area of at least one layer (e.g., the first layer (1)) among the second multi-layers (320) transformed in operation 1230 from the first display area (211) to the second display area (212) and display the display.
[0224] According to one embodiment, the wearable electronic device (200) may display the display area of at least one layer (e.g., the first layer (1)) of the second multi-layer (320) transformed in the operation 1230 by extending it from the first display area (211) to the second display area (212).
[0225] According to one embodiment, the wearable electronic device (200) may display a display area of at least one layer among the first layer (1) and the second layer (2) of the second multi-layer (320) transformed in operation 1230 in a glance view that is changed or extended from the first display area (211) to the second display area (212) based on rotation in the second direction (②) (e.g., toward the outside of the user's body).
[0226] A wearable electronic device (200) according to one embodiment of the present invention may include a sensor (250), a display (210) including a first display area (211) and a second display area (212), a memory (130) including one or more recording media for storing instructions, and at least one processor (120) including a processing circuit. According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to display a first multi-layer (310) having a first size in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, in the second display area (212), and, based on detection of rotation of the wearable electronic device (200) in a first direction using the sensor (250), transform the first multi-layer (310) into a second multi-layer (320) having a second size, and change the display area of at least one layer of the transformed second multi-layer from the second display area (212) to the first display area (211) and display it.
[0227] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to display the first multi-layer (310) in the first display area (211), and, based on detection by the sensor (250) that the wearable electronic device (200) is rotated in a second direction opposite to the first direction, transform the first multi-layer (310) into a second multi-layer (320), and change the display area of at least one layer of the transformed second multi-layer (320) from the first display area (211) to the second display area (212) and display the same.
[0228] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to set a first application (1010) having a first importance and a second application (1020) having a second importance, and to generate a first layer (1) corresponding to the first importance and a second layer (2) corresponding to the second importance based on the set first importance and the set second importance, wherein the first unconfirmed notification can be received through the first application (1010) and the second unconfirmed notification can be received through the second application (1020).
[0229] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to position the first layer (1) above the second layer (2) based on the set first importance and the set second importance.
[0230] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to generate and / or display a third unconfirmed notification in the first layer (1) when a third unconfirmed notification is received through the first application (1010) while the first unconfirmed notification received through the first application (1010) is generated and / or displayed in the first layer (1).
[0231] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to change the display area of at least one layer of the transformed second multi-layer (320) from the first display area (211) to the second display area (212) based on the wearable electronic device (200) rotating in the second direction, and then, based on the wearable electronic device (200) rotating in the first direction within a first designated time, transform the second multi-layer (320) into the first multi-layer (310) and display the transformed first multi-layer (310) in the first display area (211).
[0232] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to switch the display (210) to display a background screen (840) of the wearable electronic device (200) instead of the first multi-layer (310) displayed on the display (210) based on the wearable electronic device (200) rotating in the first direction by a threshold value or more while the deformed first multi-layer (310) is displayed on the first display area (211).
[0233] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to change the display area of at least one layer of the deformed second multi-layer (320) from the first display area (211) to the second display area (212) based on the wearable electronic device (200) rotating in the second direction, and then, based on the wearable electronic device (200) rotating in the first direction within a second designated time, cause the second layer (2) of the second multi-layer (320) positioned below the first layer (1) to be switched to be positioned above the first layer (1).
[0234] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to additionally display the status indicator or the icon (710) related to the application in use in the first display area (211) when the wearable electronic device (200) is rotated in the first direction while the status indicator or the icon (710) related to the application in use is displayed in the second display area (212) of the wearable electronic device (200).
[0235] According to one embodiment, the instructions, when individually or collectively executed by the at least one processor (120), may cause the wearable electronic device (200) to additionally display the status indicator or the icon (710) related to the application in use in the second display area (212) when the wearable electronic device (200) is rotated in the second direction while the status indicator or the icon (710) related to the application in use is displayed in the first display area (211) of the wearable electronic device (200).
[0236] A method for controlling a wearable electronic device (200) according to one embodiment of the present invention may include an operation of displaying a first multi-layer (310) having a first size, in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, on the second display area (212). According to one embodiment, the method may include an operation of confirming, using a sensor (250), that the wearable electronic device (200) rotates in a first direction. According to one embodiment, the method may include an operation of transforming the first multi-layer (310) into a second multi-layer (320) having a second size based on the rotation of the wearable electronic device (200) in the first direction. According to one embodiment, the method may include an operation of changing the display area of at least one layer of the modified second multi-layer (320) from the second display area (212) to the first display area (211).
[0237] According to one embodiment, the method may include an operation of displaying the first multi-layer (310) in the first display area (211), an operation of transforming the first multi-layer (310) into a second multi-layer (320) based on detection of rotation of the wearable electronic device (200) in a second direction opposite to the first direction using the sensor (250), and an operation of changing the display area of at least one layer of the transformed second multi-layer (320) from the first display area (211) to the second display area (212) and displaying it.
[0238] According to one embodiment, the method further includes the steps of setting a first application (1010) having a first importance and a second application (1020) having a second importance, and generating a first layer (1) corresponding to the first importance and a second layer (2) corresponding to the second importance based on the set first importance and the set second importance, wherein the first unconfirmed notification can be received through the first application (1010), and the second unconfirmed notification can be received through the second application (1020).
[0239] According to one embodiment, the method may further include an operation of positioning the first layer (1) above the second layer (2) based on the set first importance and the second importance.
[0240] According to one embodiment, the method may further include an operation of generating and / or displaying a third unconfirmed notification in the first layer (1) when a third unconfirmed notification is received through the first application (1010) while the first unconfirmed notification received through the first application (1010) is generated and / or displayed in the first layer (1).
[0241] According to one embodiment, the method may include an operation of transforming the second multi-layer (320) into the first multi-layer (310) based on the wearable electronic device (200) rotating in the first direction within a first designated time, in a state where the display area of at least one layer of the transformed second multi-layer (320) is changed from the first display area (211) to the second display area (212) based on the wearable electronic device (200) rotating in the second direction, and an operation of displaying the transformed first multi-layer (310) in the first display area (211).
[0242] According to one embodiment, the method may include an operation of switching the display (210) to display a background screen (840) of the wearable electronic device (200) instead of the first multi-layer (310) displayed on the display (210) based on the wearable electronic device (200) being rotated in the first direction by a threshold value or more while the modified first multi-layer (310) is displayed on the first display area (211).
[0243] According to one embodiment, the method may include an operation of switching the display area of at least one layer of the deformed second multi-layer (320) from the first display area (211) to the second display area (212) based on the wearable electronic device (200) rotating in the second direction, and then switching the second layer (2) positioned below the first layer (1) of the second multi-layer (320) to be positioned above the first layer (1) based on the wearable electronic device (200) rotating in the first direction within a second designated time.
[0244] According to one embodiment, the method may include an operation of additionally displaying the status indicator or the icon (710) related to the application in use in the first display area (211) when the wearable electronic device (200) is rotated in the first direction while the status indicator or the icon (710) related to the application in use is displayed in the second display area (212) of the wearable electronic device (200).
[0245] According to one embodiment, the method may include an operation of additionally displaying the status indicator or the icon (710) related to the application in use in the second display area (212) when the wearable electronic device (200) is rotated in the second direction while the status indicator or the icon (710) related to the application in use is displayed in the first display area (211) of the wearable electronic device (200).
[0246] A non-transitory computer-readable recording medium storing instructions that, when individually or collectively executed by at least one processor (120) of a wearable electronic device (200) according to one embodiment of the present invention, cause the at least one processor (120) to perform at least one operation, comprises: an operation of displaying a first multi-layer (310) having a first size in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, on a second display area (212) of a display (210); an operation of confirming, using a sensor (250), that the wearable electronic device (200) rotates in a first direction; an operation of transforming the first multi-layer (310) into a second multi-layer (320) having a second size based on the rotation of the wearable electronic device (200) in the first direction; and an operation of transforming the transformed second multi-layer (310) into a second multi-layer (320) having a second size based on the rotation of the wearable electronic device (200). An operation can be executed to change the display area of at least one layer among the layers (320) from the second display area (212) to the first display area (211).
[0247] Although the present invention has been described above according to various embodiments of the present invention, it is obvious that changes and modifications made by a person having ordinary skill in the art to which the present invention pertains within a scope that does not deviate from the technical characteristics of the present invention also belong to the present invention.
Claims
1. In a wearable electronic device (200), sensor (250); A display (210) including a first display area (211) and a second display area (212); A memory (130) including one or more recording media for storing instructions; and At least one processor (120) comprising a processing circuit, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: A first multi-layer (310) having a first size in which at least a part of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap is displayed in the second display area (212), Using the above sensor (250), based on the detection that the wearable electronic device (200) is rotating in the first direction, the first multi-layer (310) is transformed into a second multi-layer (320) having a second size, A wearable electronic device that changes the display area of at least one layer of the modified second multi-layer from the second display area (212) to the first display area (211).
2. In paragraph 1, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: The above first multi-layer (310) is displayed in the first display area (211), Using the sensor (250), the first multi-layer (310) is transformed into a second multi-layer (320) based on detection that the wearable electronic device (200) is rotated in a second direction opposite to the first direction, A wearable electronic device that changes the display area of at least one layer of the modified second multi-layer (320) from the first display area (211) to the second display area (212).
3. In paragraph 1 or 2, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: Set up a first application (1010) with a first priority and a second application (1020) with a second priority, Based on the first importance and the second importance set above, the first layer (1) corresponding to the first importance and the second layer (2) corresponding to the second importance are generated, A wearable electronic device wherein the first unconfirmed notification is received through the first application (1010) and the second unconfirmed notification is received through the second application (1020).
4. In paragraph 3, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: A wearable electronic device in which the first layer (1) is positioned above the second layer (2) based on the first importance and the second importance set above.
5. In paragraph 3 or 4, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: A wearable electronic device that, when a third unconfirmed notification is received through the first application (1010) while the first unconfirmed notification received through the first application (1010) is generated and / or displayed in the first layer (1), generates and / or displays the third unconfirmed notification in the first layer (1).
6. In paragraph 2, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: A wearable electronic device in which, based on the wearable electronic device (200) rotating in a second direction, the display area of at least one layer of the transformed second multi-layer (320) is changed from the first display area (211) to the second display area (212) and displayed, based on the wearable electronic device (200) rotating in the first direction within a first designated time, the second multi-layer (320) is transformed into the first multi-layer (310), and the transformed first multi-layer (310) is displayed in the first display area (211).
7. In paragraph 6, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: A wearable electronic device that switches the display (210) to display a background screen (840) of the wearable electronic device (200) instead of the first multi-layer (310) displayed on the display (210) based on the wearable electronic device (200) rotating in the first direction by a threshold value or more while the modified first multi-layer (310) is displayed on the first display area (211).
8. In paragraph 2, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: A wearable electronic device in which, based on the wearable electronic device (200) rotating in the second direction, the display area of at least one layer of the transformed second multi-layer (320) is changed from the first display area (211) to the second display area (212) and displayed, and based on the wearable electronic device (200) rotating in the first direction within a second designated time, the second layer (2) of the second multi-layer (320) positioned below the first layer (1) is switched to be positioned above the first layer (1).
9. In any one of paragraphs 1 to 8, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: A wearable electronic device that, when the wearable electronic device (200) is rotated in the first direction while the status indicator of the wearable electronic device (200) or the icon (710) related to the application in use is displayed in the second display area (212), additionally displays the status indicator or the icon (710) related to the application in use in the first display area (211).
10. In any one of paragraphs 1 to 8, The above instructions, when individually or collectively executed by the at least one processor (120), cause the wearable electronic device (200) to: A wearable electronic device that, when the wearable electronic device (200) is rotated in the second direction while the status indicator of the wearable electronic device (200) or the icon (710) related to the application in use is displayed in the first display area (211), additionally displays the status indicator or the icon (710) related to the application in use in the second display area (212).
11. In a method for controlling a wearable electronic device (200), An operation of displaying a first multi-layer (310) having a first size in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, in a second display area (212) of a display (210); An operation of confirming that the wearable electronic device (200) rotates in a first direction using a sensor (250); An operation of transforming the first multi-layer (310) into a second multi-layer (320) having a second size based on the rotation of the wearable electronic device (200) in the first direction; and A method including an operation of changing the display area of at least one layer among the above-described modified second multi-layers (320) from the second display area (212) to the first display area (211).
12. In paragraph 11, An operation of displaying the first multi-layer (310) in the first display area (211); An operation of transforming the first multi-layer (310) into a second multi-layer (320) based on detection of rotation of the wearable electronic device (200) in a second direction opposite to the first direction using the sensor (250); and A method further comprising an operation of changing the display area of at least one layer among the transformed second multi-layers (320) from the first display area (211) to the second display area (212).
13. In paragraph 11 or 12, An operation of setting a first application (1010) having a first priority and a second application (1020) having a second priority; and Further comprising an operation of generating the first layer (1) corresponding to the first importance and the second layer (2) corresponding to the second importance based on the first importance and the second importance set above, A method wherein the first unconfirmed notification is received through the first application (1010), and the second unconfirmed notification is received through the second application (1020).
14. In paragraph 11 or 12, An operation of additionally displaying the status indicator or the icon (710) related to the application in use in the first display area (211) when the wearable electronic device (200) is rotated in the first direction while the status indicator or the icon (710) related to the application in use of the wearable electronic device (200) is displayed in the second display area (212); and A method further comprising an action of additionally displaying the status indicator or the icon (710) related to the application in use in the second display area (212) when the wearable electronic device (200) is rotated in the second direction while the status indicator or the icon (710) related to the application in use of the wearable electronic device (200) is displayed in the first display area (211).
15. A non-transitory computer-readable recording medium storing instructions that, when executed individually or collectively by at least one processor (120) of a wearable electronic device (200), cause the at least one processor (120) to perform at least one operation. An operation of displaying a first multi-layer (310) having a first size in which at least a portion of a first layer (1) corresponding to a first unconfirmed notification and a second layer (2) corresponding to a second unconfirmed notification overlap, in a second display area (212) of a display (210); An operation of confirming that the wearable electronic device (200) rotates in a first direction using a sensor (250); An operation of transforming the first multi-layer (310) into a second multi-layer (320) having a second size based on the rotation of the wearable electronic device (200) in the first direction; and A non-transitory computer-readable recording medium that executes an operation of changing the display area of at least one layer among the above-described modified second multi-layers (320) from the second display area (212) to the first display area (211).
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