Electronic device that provides additional shutter button, control method thereof, and non-transitory computer-readable recording medium
The electronic device addresses the challenge of complex mode selection and image management by providing an additional shutter button and context-aware controls, enabling intuitive shooting mode selection and image saving options.
Patent Information
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- SAMSUNG ELECTRONICS CO LTD
- Filing Date
- 2025-10-09
- Publication Date
- 2026-05-07
AI Technical Summary
Users face inconvenience in directly setting various shooting modes or saving paths for captured images using electronic device cameras, as existing systems lack intuitive controls for mode selection and image management.
An electronic device provides an additional shutter button and a control method that identifies suitable shooting modes by comparing preview image information with predefined settings, displaying a corresponding button on the screen, and allowing users to set and manage image saving options.
Enhances user convenience by allowing intuitive mode selection and image management through context-aware controls, improving the user experience in capturing and saving images.
Smart Images

Figure KR2025015920_07052026_PF_FP_ABST
Abstract
Description
Electronic device providing an additional shutter button, a method for controlling the same, and a non-transient computer-readable recording medium The present disclosure relates to an electronic device and a method for controlling the same, and more specifically, to an electronic device and a method for controlling the same that provide an additional shooting button to a user based on context. As the performance of electronic device cameras advances, various shooting modes are being provided. For example, shooting modes such as standard photo mode, portrait mode, pro mode, and night mode are offered in diverse ways depending on the camera's capabilities and the software installed on the device. However, when users take photos using electronic devices, there is an inconvenience in directly setting various shooting modes or the save path for captured images. The information described above may be provided as related art for the purpose of aiding understanding of the present disclosure. No claim or determination is made as to whether any of the foregoing may be applied as prior art related to the present disclosure. An electronic device according to one embodiment may include at least one processor comprising a memory for storing camera display instructions and a processing circuitry. When the instructions are executed individually or collectively by the at least one processor, the electronic device may display on the display an execution screen of the camera application, which includes a first shutter button and a preview image acquired through the camera, based on the execution of the camera application. When the instructions are executed individually or collectively by the at least one processor, the electronic device may identify at least one shutter item among the plurality of shutter items by comparing first information related to the preview image and second information set for each of the plurality of shutter items. When the instructions are executed individually or collectively by the at least one processor, the electronic device may display a second shutter button corresponding to the identified at least one shutter item on the execution screen of the camera application. The second information may include at least one of a tag, a location, and a comparison image. A control method for an electronic device according to one embodiment may be provided. The control method may include an operation of displaying an execution screen of the camera application, which includes a first shutter button and a preview image acquired through a camera included in the electronic device, on a display included in the electronic device, based on the execution of the camera application. The control method may include an operation of identifying at least one shutter item among a plurality of shutter items by comparing first information related to the preview image and second information set for each of a plurality of shutter items. The control method may include an operation of displaying a second shutter button corresponding to the identified at least one shutter item on the execution screen of the camera application. The second information may include at least one of a tag, a location, and a comparison image. A non-transient computer-readable recording medium may be provided for storing one or more instructions executed by a processor of an electronic device to perform an operation according to one embodiment. The operation may include, based on the execution of a camera application, displaying an execution screen of the camera application, which includes a first shutter button and a preview image acquired through a camera included in the electronic device, on a display included in the electronic device. The operation may include identifying at least one shutter item among the plurality of shutter items by comparing first information related to the preview image and second information set for each of the plurality of shutter items. The operation may include displaying a second shutter button corresponding to the identified at least one shutter item on the execution screen of the camera application. The second information may include at least one of a tag, a location, and a comparison image. In relation to the description of the drawings, the same or similar reference numerals may be used for identical or similar components. FIG. 1 is a block diagram of an electronic device in a network environment according to various embodiments. FIG. 2 illustrates an example of a block diagram of an electronic device according to one embodiment. FIG. 3 is a flowchart illustrating the operation of providing an additional shutter button according to one embodiment. FIG. 4 is a diagram illustrating an example of an operation in which an electronic device displays an execution screen of a camera application on a display according to one embodiment. FIG. 5 is a drawing illustrating an example of a plurality of shutter items and information set for each of the plurality of shutter items according to one embodiment. FIG. 6 is a diagram illustrating an example of an operation in which a user creates a shutter item according to one embodiment. FIGS. 7 to 11 are drawings for explaining the operation of an electronic device acquiring an image through an additional shutter button according to one embodiment. FIGS. 12 to 15 are drawings for illustrating an example of an operation in which an electronic device captures an image and stores an image according to one embodiment. FIG. 16 is a diagram illustrating an example of an operation in which a user modifies the setting information of a shutter item according to one embodiment. FIGS. 17a and FIGS. 17b are drawings for illustrating an example of an operation in which a user changes the settings of a shutter button according to one embodiment. FIGS. 18 and 19 are drawings for illustrating an example of an operation in which an electronic device shares setting information of a shutter item according to one embodiment. FIG. 20 is a diagram illustrating an example of an operation in which, according to one embodiment, when a plurality of shutter items are identified, an electronic device displays a shutter button corresponding to a plurality of shutter items. The present disclosure will be described in detail below with reference to the attached drawings. The electronic device according to the various embodiments disclosed in this document may be of various forms. The electronic device may include, for example, a portable communication device (e.g., a smartphone), a computer device, a portable multimedia device, a portable medical device, a camera, a wearable device, or a consumer electronics device. The electronic device according to the embodiments of this disclosure is not limited to the devices described above. The various embodiments of this document and the terms used therein are not intended to limit the technical features described in this document to specific embodiments, and should be understood to include various modifications, equivalents, or substitutions of said 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 said items unless the relevant context clearly indicates otherwise. In this document, phrases such as "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" may each include any one of the items listed together in the corresponding phrase, or all possible combinations thereof. Terms such as "first," "second," or "first" or "second" may be used simply to distinguish said components from other said components and do not limit said components in any other aspect (e.g., importance or order). Where any (e.g., 1st) component is referred to as "coupled" or "connected" to another (e.g., 2nd) component, with or without the terms "functionally" or "communicationly," it means that said any component may be connected to said other component directly (e.g., via a wire), wirelessly, or through a third component. Throughout the specification, singular expressions include plural expressions unless the context clearly indicates otherwise. Wherever a part of the specification states that it "includes" a certain component, this means that, unless specifically stated otherwise, it does not exclude other components but may include additional components. The term “module” as used in the 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, for example. A module may be a component formed integrally, or a minimum unit of said component or a part thereof 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). FIG. 1 is a block diagram of an electronic device (101) in a network environment (100) according to various embodiments. Referring to FIG. 1, in a network environment (100), an electronic device (101) may communicate with an electronic device (102) through a first network (198) (e.g., a short-range wireless communication network) or with at least one of an electronic device (104) or a server (108) through a second network (199) (e.g., a long-range wireless communication network). According to one embodiment, the electronic device (101) may communicate with the electronic device (104) through a server (108). According to one embodiment, the electronic device (101) may include a processor (120), memory (130), input module (150), sound output module (155), display module (160), audio module (170), sensor module (176), interface (177), connection terminal (178), haptic module (179), camera module (180), power management module (188), battery (189), communication module (190), subscriber identification module (196), or antenna module (197). In some embodiments, at least one of these components (e.g., connection terminal (178)) may be omitted from the electronic device (101), or one or more other components may be added. In some embodiments, some of these components (e.g., sensor module (176), camera module (180), or antenna module (197)) may be integrated into a single component (e.g., display module (160)). The processor (120) can control at least one other component (e.g., hardware or software component) of the electronic device (101) connected to the processor (120) by executing software (e.g., program (140)), for example, and can perform various data processing or operations. According to one embodiment, as at least part of the data processing or operations, the processor (120) can store commands or data received from other components (e.g., sensor module (176) or communication module (190)) in volatile memory (132), process the commands or data stored in volatile memory (132), and store the resulting data in non-volatile memory (134). According to one embodiment, the processor (120) may include a main processor (121) (e.g., central processing unit or application processor) or an auxiliary processor (123) that can operate independently or together with it (e.g., graphics processing unit, neural processing unit (NPU), image signal processor, sensor hub processor, or communication processor). For example, if the electronic device (101) includes a main processor (121) and an auxiliary processor (123), the auxiliary processor (123) may be configured to use less power than the main processor (121) or to be specialized for a designated function. The auxiliary processor (123) may be implemented separately from the main processor (121) or as part thereof. The auxiliary processor (123) may control at least some of the functions or states associated with at least one component of the electronic device (101) (e.g., display module (160), sensor module (176), or communication module (190)) 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. According to one embodiment, the auxiliary processor (123) (e.g., image signal processor or communication processor) may be implemented as part of another functionally related component (e.g., camera module (180) or communication module (190)). According to one embodiment, the auxiliary processor (123) (e.g., neural network processing unit) may include a hardware structure specialized for processing an artificial intelligence model. The artificial intelligence model may be generated through machine learning. Such learning may be performed, for example, on the electronic device (101) itself where the artificial intelligence model is executed, or through a separate server (e.g., server (108)). The learning algorithm may 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 may include a plurality of artificial neural network layers.An artificial neural network may be 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 the hardware structure, the artificial intelligence model may include a software structure, either additionally or substantially. The memory (130) can store various data used by at least one component of the electronic device (101) (e.g., processor (120) or sensor module (176)). The data may include, for example, input data or output data for software (e.g., program (140)) and related commands. The memory (130) may include volatile memory (132) or non-volatile memory (134). The program (140) may be stored as software in memory (130) and may include, for example, an operating system (142), middleware (144), or an application (146). The input module (150) can receive commands or data to be used for a component of the electronic device (101) (e.g., processor (120)) from outside the electronic device (101) (e.g., user). The input module (150) may include, for example, a microphone, a mouse, a keyboard, a key (e.g., a button), or a digital pen (e.g., a stylus pen). The sound output module (155) can output a sound signal to the outside of the electronic device (101). The sound output module (155) may include, for example, a speaker or a receiver. The speaker may be used for general purposes, such as multimedia playback or recording playback. The receiver may be used to receive incoming calls. According to one embodiment, the receiver may be implemented separately from the speaker or as part thereof. The display module (160) can visually provide information to an external (e.g., 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 said device. According to 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 the force generated by said touch. The audio module (170) can convert sound into an electrical signal or, conversely, convert an electrical signal into sound. According to one embodiment, the audio module (170) can acquire sound through the input module (150) or output sound through the sound output module (155) or an external electronic device (e.g., electronic device (102)) (e.g., speaker or headphones) connected directly or wirelessly to the electronic device (101). The sensor module (176) can detect the operating state of the electronic device (101) (e.g., power or temperature) or the external environmental state (e.g., user state) and generate an electrical signal or data value corresponding to the detected state. According to one embodiment, the sensor module (176) may include, for example, a gesture sensor, a gyroscope sensor, a barometric pressure sensor, a magnetic sensor, an accelerometer sensor, a grip sensor, a proximity sensor, a color sensor, an IR (infrared) sensor, a biosensor, a temperature sensor, a humidity sensor, or an illuminance sensor. The interface (177) may support one or more specified protocols that can be used for the electronic device (101) to be connected directly or wirelessly to an external electronic device (e.g., electronic device (102)). According to 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. The connection terminal (178) may include a connector through which the electronic device (101) can 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). The haptic module (179) can convert an electrical signal into a mechanical stimulus (e.g., vibration or movement) or an electrical stimulus that can be perceived by the user through tactile or kinesthetic senses. According to one embodiment, the haptic module (179) may include, for example, a motor, a piezoelectric element, or an electric stimulation device. The camera module (180) can capture still images and video. According to one embodiment, the camera module (180) may include one or more lenses, image sensors, image signal processors, or flashes. 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 part of a power management integrated circuit (PMIC). The battery (189) can supply power to at least one component of the electronic device (101). According to one embodiment, the battery (189) may include, for example, a non-rechargeable primary battery, a rechargeable secondary battery, or a fuel cell. The communication module (190) can support the establishment of a direct (e.g., wired) communication channel or a wireless communication channel between an 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 include one or more communication processors that operate independently of the processor (120) (e.g., application processor) and 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., cellular communication module, short-range wireless communication module, or GNSS (global navigation satellite system) communication module) or a wired communication module (194) (e.g., LAN (local area network) communication module, or power line communication module). The corresponding communication module among these communication modules can communicate with an external electronic device (104) through a first network (198) (e.g., a short-range communication network such as Bluetooth, WiFi (wireless fidelity) direct, or IrDA (infrared data association)) or a second network (199) (e.g., 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 may 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 identify or authenticate the electronic device (101) within a communication network such as the first network (198) or the second network (199) using subscriber information (e.g., International Mobile Subscriber Identifier (IMSI)) stored in the subscriber identification module (196). The wireless communication module (192) can support 5G networks and next-generation communication technologies following 4G networks, for example, new radio access technology. NR access technology can support high-speed transmission of high-capacity data (enhanced mobile broadband (eMBB)), minimization of terminal power and connection of multiple terminals (massive machine type communications (mMTC)), or high reliability and low latency (ultra-reliable and low-latency communications (URLLC)). The wireless communication module (192) can support a high-frequency band (e.g., mmWave band) to achieve a high data transmission rate, for example. The wireless communication module (192) can support various technologies for securing performance in the high-frequency band, such as beamforming, massive MIMO (multiple-input and multiple-output), 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), external electronic device (e.g., electronic device (104)), or network system (e.g., second network (199)). According to one embodiment, the wireless communication module (192) may support a Peak data rate (e.g., 20 Gbps or more) for eMBB realization, loss coverage (e.g., 164 dB or less) for mMTC realization, or U-plane latency (e.g., downlink (DL) and uplink (UL) each 0.5 ms or less, or round trip 1 ms or less) for URLLC realization. An antenna module (197) can transmit a signal or power to or from an external source (e.g., an external electronic device). According to one embodiment, the antenna module (197) may include an antenna comprising a radiator made of a conductor or a conductive pattern formed on a substrate (e.g., a PCB). According to 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 a first network (198) or a second network (199), may be selected from the plurality of antennas, for example, by a 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. According to some embodiments, in addition to the radiator, other components (e.g., a radio frequency integrated circuit (RFIC)) may be additionally formed as part of the antenna module (197). 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 to a first surface (e.g., bottom surface) of the printed circuit board and capable of supporting a specified high frequency band (e.g., mmWave band), and a plurality of antennas (e.g., array antennas) disposed on or adjacent to a second surface (e.g., top surface or side surface) of the printed circuit board and capable of transmitting or receiving a signal of the specified high frequency band. At least some of the above components can be connected to each other via a communication method between peripheral devices (e.g., bus, GPIO (general purpose input and output), SPI (serial peripheral interface), or MIPI (mobile industry processor interface)) and exchange signals (e.g., commands or data) with each other. According to one embodiment, commands or data may be transmitted or received between an electronic device (101) and an external electronic device (104) through 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 performed on the electronic device (101) may be performed on one or more of the external electronic devices (102, 104, or 108). For example, if the electronic device (101) needs to perform a function or service automatically or in response to a request from a user or another device, the electronic device (101) may request one or more external electronic devices to perform at least part of the function or service instead of performing the function or service itself or additionally. One or more external electronic devices that receive the above request may execute at least part of the requested function or service, or 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 provide the result as is or additionally processed as at least part of the response to the request. For this purpose, for example, cloud computing, distributed computing, mobile edge computing (MEC), or client-server computing technology may be used. The electronic device (101) can provide ultra-low latency services using, for example, distributed computing or mobile edge computing. In one embodiment, the external electronic device (104) may include an Internet of Things (IoT) device. The server (108) may be an intelligent server using machine learning and / or neural networks. According to one embodiment, the external electronic device (104) or the server (108) may be included within a second network (199). The electronic device (101) may be applied to intelligent services (e.g., smart home, smart city, smart car, or healthcare) based on 5G communication technology and IoT-related technology. FIG. 2 illustrates an example of a block diagram of an electronic device according to one embodiment. The electronic device (101) of FIG. 1 may correspond to the electronic device (200) of FIG. 2. The electronic device (200) of FIG. 2 may include the electronic device (101) of FIG. 1. The electronic device (200) of FIG. 2 may include at least one component among the components of the electronic device (101) illustrated in FIG. 1. The components illustrated in FIG. 2, their relationships, and their functions are merely exemplary and are not intended to limit the implementations described or claimed herein. Referring to FIG. 2, the electronic device (200) may include at least one processor (210) (hereinafter referred to as processor (210)), at least one memory (220) (hereinafter referred to as memory (220)), at least one camera (230, hereinafter referred to as camera (230)), at least one display (240) (hereinafter referred to as display (240)), and at least one communication circuit (250) (hereinafter referred to as communication circuit (250)). The processor (210), memory (220), display (240), and communication circuit (250) of FIG. 2 are each implemented substantially identically to the processor (120), memory (130), display module (160), and communication module (190) of FIG. 1, so that they can perform the same functions. The components illustrated in FIG. 2 are merely exemplary. For example, the electronic device (200) may include other components (e.g., at least one image sensor, at least one sensor, a PMIC (power management integrated circuitry), an audio processing circuit, an antenna, a rechargeable battery, and / or an input / output interface). For example, some components may be omitted from the electronic device (200). For example, some components may be integrated into a single component. The processor (210) can control the overall operations of the electronic device (200). For example, the processor (210) can control the operation of the electronic device (200) by being operatively connected to the memory (220), the display (240), and the communication circuit (250). Additionally, the processor (210) can control the operation of the electronic device (200) according to the present disclosure by executing one or more instructions stored in the memory (220). The processor (210) may be composed of one or more processors. The processor (210) may be implemented as one or more integrated circuit (or circuitry) chips and may perform various data processing operations. The processor (210) may include at least one electrical circuit and may process instructions (or programs, data, etc.) stored in memory (220) individually or collectively in a distributed manner. The processor (210) may include a processor assembly comprising one or more processing circuits. The processor (210) may include any processing circuit that is operative to control the performance and operation of one or more components of the electronic device (200) (e.g., memory (220), display (240), communication circuit (250)). For example, the processor (210) (e.g., application processor (AP)) may be implemented as a system on chip (SoC) (e.g., a single chip or chipset). For example, the processor (210) may be implemented with a plurality of cores (or at least one core circuit), a plurality of chips, or a plurality of chipsets. For example, the processor (210) may include one or more processing circuits. For example, the processor (210) may include one or more processing circuits configured to perform the various functions of the present disclosure individually and / or collectively. As an example without limitation, at least a portion of the processor (210) may be included in a first chip of the electronic device (200), and at least another portion of the processor (210) may be included in a second chip of the electronic device (200) different from the first chip of the electronic device (200). For example, the processor (210) may include a central processing unit (CPU), a graphics processing unit (GPU), a neural processing unit (NPU), an image signal processor (ISP), a display controller, a memory controller, a storage controller, a communication processor (CP), and / or a sensor interface. These components of the processor (210) are merely exemplary. For example, the processor (210) may include other components. For example, some components of the processor (210) may be omitted from the processor (210). For example, some components of the processor (210) may be included as separate components of the electronic device (200) outside the processor (210). For example, some components of the processor (210) (e.g., a memory controller) may be included within other components (e.g., at least a portion of the memory (220), an interface (e.g., available for connection to at least one component of the electronic device (200)), a display (240)). The processor (210) may cause other components of the electronic device (200) to perform various operations by executing instructions stored in memory (220). The CPU (or central processing circuit) may be configured to control the components of the processor (210) based on the execution of instructions stored in memory (220) (e.g., volatile memory and / or non-volatile memory). The GPU (or graphics processing circuit) may be configured to execute parallel operations (e.g., rendering). The NPU (or neural processing circuit, or AI (artificial intelligence) chip) may be configured to execute operations for an artificial intelligence model (e.g., convolution computation). The ISP (or image signal processing circuit) may be configured to process a raw image acquired through an image sensor into a format suitable for components within the electronic device (200) or components of the processor (210). A display controller (or display control circuit, or DPU (display processing unit)) may be configured to process an image obtained from a CPU, GPU, ISP, or memory (220) (e.g., volatile memory) into a format suitable for display (240). A memory controller (or memory control circuit) may be configured to control reading data from volatile memory and writing data to volatile memory. A storage controller (or storage control circuit) may be configured to control reading data from non-volatile memory and writing data to non-volatile memory. A CP (communication processing circuit) may be configured to process data obtained from a component of the processor (210) into a format suitable for transmitting to another electronic device via a communication circuit, or to process data obtained from another electronic device via a communication circuit into a format suitable for processing by a component of the processor (210).For example, the communication circuit may include one or more communication circuits. The sensor interface (or sensing data processing circuit, sensor hub) may be configured to process data regarding the state of the electronic device (200) and / or the state around the electronic device (200), obtained through the sensor, into a format suitable for the components of the processor (210). For example, the processor (210) can perform the method according to an embodiment of the present disclosure by executing one or more instructions stored in memory (220). When a method according to one embodiment of the present disclosure includes a plurality of operations, the plurality of operations may be performed by a single processor or by a plurality of processors. For example, when a first operation, a second operation, and a third operation are performed by a method according to one embodiment, the first operation, the second operation, and the third operation may all be performed by a first processor, or the first operation and the second operation may be performed by a first processor (e.g., a general-purpose processor) and the third operation may be performed by a second processor (e.g., an artificial intelligence dedicated processor). The processor (210) may be implemented as a single-core processor including one core, or as one or more multicore processors including multiple cores (e.g., homogeneous multicore or heterogeneous multicore). When the processor (210) is implemented as a multicore processor, each of the multiple cores included in the multicore processor may include internal processor memory such as cache memory or on-chip memory, and a common cache shared by the multiple cores may be included in the multicore processor. Additionally, each of the multiple cores included in the multicore processor (or some of the multiple cores) may independently read and execute program instructions for implementing a method according to one embodiment of the present disclosure, or all (or some) of the multiple cores may be linked together to read and execute program instructions for implementing a method according to one embodiment of the present disclosure. When a method according to one embodiment of the present disclosure includes a plurality of operations, the plurality of operations may be performed by one of the plurality of cores included in a multi-core processor, or may be performed by a plurality of cores. For example, when a first operation, a second operation, and a third operation are performed by a method according to one embodiment, the first operation, the second operation, and the third operation may all be performed by a first core included in a multi-core processor, or the first operation and the second operation may be performed by a first core included in a multi-core processor and the third operation may be performed by a second core included in a multi-core processor. In the embodiments of the present disclosure, a processor may mean a system-on-chip (SoC) in which one or more processors and other electronic components are integrated, a single-core processor, a multi-core processor, or a core included in a single-core processor or a multi-core processor, wherein the core may be implemented as a CPU, GPU, APU, MIC, DSP, NPU, hardware accelerator, or machine learning accelerator, but the embodiments of the present disclosure are not limited thereto. Memory (220) may include one or more storage media (or one or more storage devices). For example, memory (220) may include a memory assembly comprising one or more storage media. For example, the one or more storage media may include a hard drive, flash memory, permanent memory (e.g., non-volatile memory) such as ROM (read-only memory), semi-permanent memory (e.g., volatile memory) such as RAM (random access memory), any other suitable type of storage (or storage assembly), or any combination thereof. Memory (220) may include a cache memory, which is one or more different types of memory used to temporarily store data for a function or feature of the electronic device (200). As an example, but not limited to, the cache memory may be included within the processor (210). The memory (220) can be fixedly embedded in the electronic device (200) or incorporated into one or more suitable types of components (e.g., a SIM (subscriber identity module) card and / or an SD (secure digital) card) that can be repeatedly inserted into and removed from the electronic device (200). For example, memory (220) may store one or more software applications, such as operating system (or system) software applications, firmware software applications, driver software applications, plugin (e.g., add-in, add-on, and / or applet) software applications, and / or any other suitable software applications. For example, the one or more software applications may include instructions executable by the processor (210). For example, memory (220) may store instructions that can be called by an application programming interface (API). For example, memory (220) may store instructions within a library. The camera (230) is controlled by the processor (210) and can acquire an image corresponding to a subject by using an image sensor that converts light emitted from or reflected by the subject and transmitted through at least one lens into an electrical signal. The processor (210) can execute an application that supports a shooting function (hereinafter referred to as a camera application). The camera application may be stored in the memory (220). The camera (230) may include at least one lens and at least one image sensor. For example, the camera (230) may include at least one first camera (hereinafter referred to as the first camera) positioned on the front of the electronic device (200) or at least one second camera (hereinafter referred to as the second camera) positioned on the rear of the electronic device (200). In one embodiment, the first camera may be visually exposed through a camera hole of the display (240). In one embodiment, the first camera may include an under-display camera (UDC) exposed through at least one micro-hole of the display (240). For example, if the first camera is a UDC, the first camera may not be visually exposed by the display (240). In one embodiment, the first camera may include a plurality of cameras. For example, the electronic device (200) may include a plurality (e.g., two) of first cameras, such as a first front camera and a second front camera. In one embodiment, the plurality of cameras may be cameras of the same type having equivalent specifications (e.g., pixels or field of view (FOV)), but may also be implemented as cameras of different specifications. For example, the electronic device (200) may support dual camera-related functions (e.g., depth measurement, auto focus (AF), face recognition, 3D selfie) through two first cameras. In one embodiment, at least one second camera may be disposed on the rear of the electronic device (200). For example, at least one second camera may be exposed through at least one area of the rear cover. In one embodiment, the electronic device (200) may include a plurality of second cameras disposed on the rear of the electronic device (200). For example, the electronic device (200) may include a first rear camera, a second rear camera, and a third rear camera. In one embodiment, the first rear camera, the second rear camera, and the third rear camera may have different specifications. For example, the FOV, pixels, sensing wavelength band, aperture, whether optical zoom / digital zoom is supported, whether image stabilization functions (e.g., OIS (optical image stabilization), DIS (digital image stabilization), EIS (electrical image stabilization)) are supported, and at least some of the types and arrangements of lens assemblies (or lens groups) included in each camera may differ from each other. For example, the first rear camera may be a standard camera (e.g., a camera with a narrower field of view than the second rear camera), the second rear camera may be a camera for wide-angle shooting, and the third rear camera may be a camera for telephoto shooting. At least two of the first rear camera, the second rear camera, and the third rear camera may have the same specifications. In the present disclosure, the description of the function or characteristics of the first camera may apply to the second camera, and vice versa. In one embodiment, a processing process for converting a raw image acquired through a camera (230) into a format that can be processed by a component within the electronic device (200) or a sub-component within the processor (210) may be performed in an ISP or an image sensor. In one embodiment, the process of processing the data constituting the raw image may be performed in an ISP. In one embodiment, at least part of the process of processing the data constituting the raw image may be performed through a computational unit included in the image sensor. The technical concept disclosed in this document may be applicable to various user devices equipped with a camera (230). For example, the technical concept disclosed in this document may also be applicable to electronic devices employing a flexible display (e.g., foldable electronic devices, rollable (or slideable) electronic devices, tablets or laptops). The display (240) is controlled by the processor (210) and can output visualized information to the user. The visualized information may include visual objects displayed on the display (240). For example, the visual objects may include screens, images, icons, GUI (graphic user interface), UI (user interface) elements, etc. For example, the display (240) can be implemented as a flat panel display (FPD), a curved display, or a flexible display. For example, the display (240) can be implemented as various types of displays such as an LCD (liquid crystal display), an AMOLED (active matrix organic light emitting diodes) display, an LED (light emitting diodes), a micro LED, a mini LED, etc. The display (240) may include a touch detection circuit configured to detect touch. The touch detection circuit may acquire user input that touches (or selects) a visual object displayed on the display (240). For example, the touch detection circuit may detect an input (e.g., touch input or hovering input) on a specific location by measuring a change in a signal (e.g., voltage, light intensity, resistance, or charge) for a specific location on the display (240), and provide information regarding the detected input to the processor (210). The communication circuit (250) can perform data communication with an external electronic device under the control of the processor (210). For example, the communication circuit (250) can communicate with an external electronic device through a network. For example, the processor (210) can receive data from an external electronic device through the communication circuit (250) and transmit data to an external electronic device through the communication circuit (250). The communication circuit (250) may include hardware components to support the transmission and / or reception of electrical signals between the electronic device (200) and an external electronic device. For example, the communication circuit (250) may support the transmission and / or reception of electrical signals based on various types of protocols such as Ethernet, LAN (local area network), WAN (wide area network), Wi-Fi (wireless fidelity), Bluetooth, BLE (bluetooth low energy), ZigBee, LTE (long term evolution), 5G NR (new radio) and / or 6G. FIG. 3 is a flowchart illustrating the operation of an electronic device providing an additional shutter button according to one embodiment. The electronic device (200) illustrated in FIG. 2 may perform the operations of FIG. 3. A processor (210) may perform at least one of the operations of FIG. 3. For example, instructions stored in memory (220) may cause the electronic device (200) to perform the operations of FIG. 3 when executed individually or collectively by the processor (210). In operation 310, the electronic device (200) can display on the display (240) an execution screen of a camera application including a preview image obtained through a basic shutter button (or a first shutter button) and a camera (230) based on the execution of the camera application. According to one embodiment, the electronic device (200) can execute a camera application when user input for executing a camera application is received. The user input may include, for example, a touch input to an icon of the camera application or a voice command for executing the camera application. A description of the execution screen of the camera application is given with reference to FIG. 4. FIG. 4 is a diagram illustrating an example of an operation in which an electronic device displays an execution screen of a camera application on a display according to one embodiment. Referring to FIG. 4, the electronic device (200) can display on the display (410) an execution screen of a camera application including a first shutter button (420) and a preview image (430) based on the execution of a camera application. In the present disclosure, the first shutter button (420) may refer to a button that is displayed by default on the display (410) to acquire an image. For example, when the electronic device (200) receives a touch input for the first shutter button (420), it may acquire an image based on a normal photo mode (auto mode). The normal photo mode may refer to a shooting mode provided by the electronic device (200) that allows an image to be taken by adjusting the settings of the camera (230) (e.g., focus, exposure, ISO, shutter speed) according to the situation without user settings. Meanwhile, the shutter button may be referred to by various terms such as shooting button, capture button, photo button, shooting trigger, and camera button, but is not limited to these. In the present disclosure, a preview image (430) may refer to an image in which light entering through the lens of a camera (230) is converted into an electrical image signal through the image sensor of the camera (230) and displayed on the display (410) of an electronic device (200). In operation 320, the electronic device (200) can identify a shutter item by comparing information related to a preview image and information set for each of a plurality of shutter items. For example, the electronic device (200) can identify a shutter item that has the same or similar content as the setting information as the content included in the information related to the preview image (e.g., a tag for an object in the preview image, the location of the electronic device (200), the preview image). Hereinafter, an explanation of the operation to identify a shutter item by comparing information related to a preview image and information set for each of a plurality of shutter items is described in detail in FIGS. 7 to 11. According to one embodiment, information related to a preview image may refer to information obtained (or extracted) from a preview image to identify a shutter item. For example, information related to a preview image may include at least one of a tag for an object included in the preview image, the location of an electronic device (200) while running a camera application, or the preview image. According to one embodiment, the electronic device (200) can obtain tags for objects included in the preview image based on the preview image. For example, the electronic device (200) can input the preview image into a first artificial intelligence model to obtain tags for objects included in the preview image and an area where the object is located in the preview image (e.g., 440 in FIG. 4). The first artificial intelligence model may be a model trained using an image as input data and keywords (e.g., tags) of objects included in the image and object regions included in the image as output data. The first artificial intelligence model may include, for example, at least one of TensorFlow Lite, MobileNet-SSD, ML Kit, YOLO (you only look once), SSD (single shot multibox detector), and Faster R-CNN. Being trained means that a basic artificial intelligence model (e.g., an artificial intelligence model containing arbitrary random parameters) is trained using a number of training data by a learning algorithm, thereby creating a predefined behavioral rule or artificial intelligence model configured to perform a desired characteristic (or purpose). This training may be performed through a separate server and / or system, but is not limited thereto, and may also be performed on an electronic device (200). Examples of learning algorithms include supervised learning, unsupervised learning, semi-supervised learning, or reinforcement learning, but are not limited to the examples mentioned above. According to one embodiment, the first artificial intelligence model may be stored in memory (220), but is not necessarily limited thereto. For example, the first artificial intelligence model may be stored on an external server. The electronic device (200) may transmit a prompt to an external server to receive from the server information regarding keywords of objects included in an image and object regions included in an image. For example, the prompt may include a preview image. According to one embodiment, the electronic device (200) can acquire location information of the electronic device (200) while running a camera application. For example, the electronic device (200) can acquire the location of the electronic device (200) while running the application by using a GPS (global positioning system) sensor mounted on the electronic device (200). However, it is not limited thereto, and the electronic device (200) can acquire the location of the electronic device (200) by using Wi-Fi or a cellular network. According to one embodiment, the electronic device (200) may acquire the position of the electronic device (200) using an accelerometer sensor or a gyroscope sensor. For example, the electronic device (200) may acquire a position via GPS, Wi-Fi, or a cellular network, and may detect a change in the position of the electronic device (200) from the acquired position using an accelerometer sensor or a gyroscope sensor. The electronic device (200) may acquire an additional shutter button by comparing the changed position information with the position information of the shutter item. Alternatively, the electronic device (200) may remove the additional shutter button displayed in the camera application, refrain from displaying it, or switch to a screen without an additional shutter button based on the changed position information. For example, if the electronic device (200) identifies that the changed position information is located outside the area corresponding to the position information stored in the shutter item of the additional shutter button, it may remove the additional shutter button displayed in the camera application, refrain from displaying it, or switch to a screen without a shutter button. In the present disclosure, the electronic device (200) may store setting information corresponding to each of a plurality of shutter items in a memory (220) to provide an additional shutter button. The description of the plurality of shutter items and the information set for each of the plurality of shutter items is explained with reference to FIGS. 5 and 6. FIG. 5 is a drawing illustrating an example of a plurality of shutter items and information set for each of the plurality of shutter items according to one embodiment. Referring to 501 in FIG. 5, the electronic device (200) may provide an additional shutter button to the user when the additional shooting button item (505) is activated. However, it is not limited thereto, and the electronic device (200) may provide an additional shooting button based on receiving user input to receive an additional shooting button on the execution screen of the camera application. Referring to 502 in FIG. 5, when the electronic device (200) receives touch input for an additional shooting button item (505), it may display a list (510) containing a plurality of shutter items on the display (240). The plurality of shutter items may be set at manufacturing or initial use, or may be set and changed by user input. Referring to 503 in FIG. 5, when the electronic device (200) receives a touch input for a first shutter item (510-1) (e.g., a person) among a plurality of shutter items, it can display information set in the first shutter item (510-1) on the display (240). According to one embodiment, information set for each of a plurality of shutter items (hereinafter referred to as setting information) may include at least one of setting information of a camera (230), information for identifying a shutter button to be displayed on a display (240), or information regarding a storage path of an acquired image. For example, the setting information of a first shutter item (510-1) among a plurality of shutter items may include at least one of a shutter button name (515) (e.g., person), a shooting mode (520) (e.g., person mode), whether a watermark is enabled (525) (e.g., on), a storage path (530) (e.g., person folder), a tag (535) (e.g., person, person), a comparison image (540), or a location (545). However, it is not limited thereto, and the information set for the first shutter item (510-1) may further include information regarding the storage period of the image. In the present disclosure, the name (515) of the shutter button may refer to a word designating a shutter item. When an additional shutter button is displayed on the display (240), the name (515) of the shutter button may be displayed in the additional shutter button internal area. In the present disclosure, the shooting mode (520) may refer to a shooting method that includes a plurality of functional elements of the camera (230) or settings for post-processing. The plurality of functional elements of the camera (230) may include at least one of sensitivity (ISO, international standard organization), shutter speed, aperture value, white balance, focus, exposure compensation, flash, color processing, image stabilization, resolution, or aspect ratio. The settings for post-processing may refer to a process of converting an image obtained through the camera (230) through filters and corrections. For example, the electronic device (200) may adjust the color, noise, and sharpness of the obtained image. For example, the electronic device (200) may perform additional conversion on the obtained image using algorithms such as Computer Vision or Open CV. For example, the shooting mode (520) may include a general photo mode, portrait mode, night mode, pro mode, panorama mode, time lapse, slow motion, macro mode, wide-angle mode, and telephoto mode. As an example, the general photo mode may include settings for functional elements such as sensitivity set to ISO 500, shutter speed set to 1 / 60s, aperture value set to f / 2.2, focal length set to 24mm, exposure compensation set to 0ev, and may include a post-processing process to remove noise from the acquired image. According to one embodiment, the electronic device (200) may store mapping information including a shooting mode (520) and a setting corresponding to the shooting mode (520) in the memory (220). However, it is not limited thereto, and the setting may be manually set by user input. For example, the electronic device (200) may store information about a functional element manually set by user input and the name of the corresponding shooting mode in the memory (220). For example, let us assume that the setting for the functional element is ISO 100, the shutter speed is 1 / 60s, the aperture value is f / 2.2, the focal length is 30mm, and the exposure compensation is 0ev. The electronic device (200) may store information about the first shooting mode and the setting for the functional element of the first shooting mode (e.g., sensitivity is ISO 100, shutter speed is 1 / 60s, aperture value is f / 2.2, focal length is 30mm, and exposure compensation is 0ev). In the present disclosure, the watermark (525) may include text or a logo inserted into the image. For example, the watermark (525) may include a user-specified watermark, a watermark for copyright protection, a date or location of capture. According to one embodiment, the electronic device (200) may determine whether to insert the watermark (525) into the image based on whether the watermark is activated. For example, the electronic device (200) may insert the watermark into the image when the watermark (525) is activated (e.g., on) and not insert the watermark (525) into the image when the watermark (525) is deactivated (e.g., off). In the present disclosure, the storage path (530) may refer to the location of a folder where the electronic device (200) stores images acquired through the camera (230). For example, the electronic device (200) may store images acquired based on a specific shutter item (e.g., a person item) in a specific folder within a gallery (e.g., a person folder). In the present disclosure, a tag (535) may mean a keyword for an object included in an image. A tag (535) may include, for example, a person, a person, an animal, a dog, a car, or a vehicle. A tag (535) may be set at manufacturing or at initial use, or may be set and changed by user input when creating a shutter item. In the present disclosure, the comparison image (540) may be an image for identifying a shutter item. For example, the comparison image (540) may be stored by user input. According to one embodiment, the electronic device (200) may compare a preview image with the comparison image (540) to identify at least one shutter item among a plurality of shutter items. In the present disclosure, the position (545) may be information for identifying a shutter item. For example, the position (545) may be stored based on user input. According to one embodiment, the electronic device (200) may identify at least one shutter item among a plurality of shutter items based on the position (545) set in the shutter item and the position of the electronic device (200) while running a camera application. FIG. 6 is a diagram illustrating an example of an operation in which an electronic device generates a shutter item based on user input, according to one embodiment. Referring to 601 in FIG. 6, the electronic device (200) may receive user input for creating a shutter item. The user input for creating a shutter item may include, for example, a touch input for an icon (605) for adding a shutter item or a voice command for creating a shutter item. In 602 of FIG. 6, the electronic device (200) may display a screen on the display (240) for adding (or obtaining) setting information for a shutter item. The user may input setting information (610 to 640) included in the shutter item. According to one embodiment, when the electronic device (200) receives user input to add (or change) the name (610), tag (630), or location (640) of the shutter button, it may display a keypad on the display (240). The electronic device (200) may determine the text received through the user input to the keypad as the name (610) (e.g., Osami), tag (630) (e.g., Animal), or location (640) of the shutter button. According to one embodiment, when the electronic device (200) receives user input to add (or change) a shooting mode (615), it may display a UI on the display (240) to guide the user to select at least one of a plurality of options. The electronic device (200) may determine the shooting mode (615) based on the user input to the UI. For example, the electronic device (200) may display buttons corresponding to a plurality of options in the form of a list box on the display (240). The electronic device (200) may receive touch input from the user on the buttons. Based on the user's touch input, the electronic device (200) may determine at least one of the plurality of options (e.g., 1:1 ratio, portrait mode). The electronic device (200) may determine the determined option as the shooting mode (615). However, it is not limited thereto, and the electronic device (200) may add a shooting mode based on the user's input. For example, the electronic device (200) can add shooting modes based on functional elements (e.g., shutter speed, aperture value, focus, sensitivity) entered by the user. According to one embodiment, the electronic device (200) can determine whether to activate the watermark (620) through user input to a toggle button. According to one embodiment, when the electronic device (200) receives user input for adding (or changing) a comparison image (635), it may display a UI on the display (240) for selecting at least one of a plurality of photos. For example, the electronic device (200) may insert check boxes on the plurality of photos and display them on the display (240). The electronic device (200) may receive user input for the check boxes and determine at least one of the plurality of photos as the comparison image (635). In 603 of FIG. 6, the electronic device (200) may add the added shutter item (645) to a list containing a plurality of shutter items. Referring to FIG. 3, in operation 320, the electronic device (200) can identify a shutter item by comparing information related to a preview image and information set for each of a plurality of shutter items. According to one embodiment, the electronic device (200) can identify at least one shutter item among the plurality of shutter items for which a tag for an object in the preview image is set, by comparing a tag for an object in the preview image with a tag set for each of the plurality of shutter items. For example, the electronic device (200) can identify a shutter item among the plurality of shutter items for which a tag for an object in the preview image and a tag set for a shutter item are the same. However, it is not limited thereto, and the electronic device (200) can identify among a plurality of shutter items a shutter item in which the similarity between the tag for an object in the preview image and the tag set in the shutter item is greater than or equal to a preset value. For example, the electronic device (200) can obtain the similarity between the tag for an object in the preview image and the tag set in the shutter item using a natural language processing (NLP) model. According to one embodiment, the electronic device (200) can identify a shutter item in which the position of the electronic device (200) and the position set in a plurality of shutter items are the same. For example, the position of the electronic device (200) may include a position measured using a sensor while running a camera application. According to one embodiment, the electronic device (200) can identify the similarity between a preview image and a comparison image set for each of a plurality of shutter items. The electronic device (200) can identify at least one shutter item among a plurality of shutter buttons in which a comparison image is set such that the identified similarity is greater than or equal to a threshold value. For example, the electronic device (200) can identify the similarity between the feature vector of a preview image and the feature vector of a comparison image set for each of a plurality of shutter items. The electronic device (200) can obtain the feature vector of a preview image and the feature vector of a comparison image set for each of a plurality of shutter items using a convolutional neural network (CNN). The electronic device (200) can obtain the similarity between the feature vector of a preview image and the feature vector of a comparison image set for each of a plurality of shutter items using cosine similarity. In this case, the closer the similarity is to 1, the more similar the two images are. However, the method for determining the similarity between the feature vector of the preview image and the comparison image set for each of the multiple shutter items is not limited to the examples described above. For example, the method for determining the similarity between the feature vector of the preview image and the comparison image set for each of the multiple shutter items may include, but is not limited to, pixel-based methods (e.g., MSE (mean squared error), PSNR (peak signal-to-noise ratio) or structural similarity determination methods (e.g., SSIM (structural similarity index)). In operation 330, the electronic device (200) may display an additional shutter button (or a second shutter button) corresponding to the identified shutter item on the execution screen of the camera application. In the present disclosure, an additional shutter button (e.g., 450 in FIG. 4) may refer to a shutter button corresponding to a shutter item displayed on a display (240). For example, when the electronic device (200) receives a touch input for the additional shutter button, it may acquire an image through the camera (230) based on a shooting mode set in the shutter item corresponding to the additional shutter button. For example, the electronic device (200) may generate the watermark on the captured image depending on whether the watermark set in the shutter item corresponding to the additional shutter button is applied. For example, the electronic device (200) may save the captured image based on a storage path set in the additional shutter button. The operation of the electronic device is described in detail below in FIGS. 7 to 15. FIGS. 7 to 11 are drawings for explaining the operation of an electronic device acquiring an image through an additional shutter button according to one embodiment. FIG. 7 is a diagram illustrating an example of an operation in which an electronic device generates an additional shutter button based on a tag, according to one embodiment. In 701 of FIG. 7, according to one embodiment, an electronic device (200) can display a preview image (705) obtained using a camera (230) on a display (240). The electronic device (200) can input the preview image (705) into a first artificial intelligence model to obtain an object area (710) included in the preview image (705) and a tag (e.g., person, hereinafter referred to as the first tag) for the object included in the object area (710). The electronic device (200) can identify a shutter item (715) among a plurality of shutter items in which the tag is identical to the first tag. For example, a tag (e.g., person) set on an identified shutter item (715) may be identical to the first tag. In 702 of FIG. 7, according to one embodiment, the electronic device (200) may display an additional shutter button (725) (hereinafter referred to as the second shutter button) corresponding to the shutter item (715) on the display (240). The second shutter button (725) may include a shutter button, a name of the shutter button (e.g., person), and an outline (e.g., yellow outline). As an example, the electronic device (200) may place the second shutter button (725) near the object area (720). However, the placement of the second shutter button (725) is not limited thereto, and the electronic device (200) may place the second shutter button (725) in place of the basic shutter button. According to one embodiment, when the electronic device (200) receives a user touch input to the second shutter button (725), it can capture (or acquire) an image using the camera (230) based on a shooting mode (e.g., portrait mode) set in the shutter item (715). FIG. 8 is a diagram illustrating an example of an operation in which an electronic device generates an additional shutter button based on a comparison image, according to one embodiment. In 801 of FIG. 8, according to one embodiment, an electronic device (200) can display a preview image (805) obtained using a camera (230) on a display (240). The electronic device (200) can input the preview image (805) into a first artificial intelligence model to obtain an object region (810) included in the preview image (805). The electronic device (200) can identify the similarity between the object region (810) included in the preview image (805) and comparison images set in a plurality of shutter items. The electronic device (200) can identify a comparison image in which the similarity is greater than or equal to a preset value. The electronic device (200) can identify a shutter item (815) in which a comparison image in which the similarity is greater than or equal to a preset value is used as setting information. For example, the similarity between the comparison image set in the identified shutter item (815) and the object region (810) may be greater than or equal to a preset value. In 802 of FIG. 8, according to one embodiment, the electronic device (200) may display an additional shutter button (825) (hereinafter referred to as the second shutter button) corresponding to the shutter item (815) on the display (240). The second shutter button (825) may include a shutter button, a name of the shutter button (e.g., 532), and an outline (e.g., a green outline). As an example, the electronic device (200) may place the second shutter button (825) near an object area (820). According to one embodiment, when the electronic device (200) receives a user touch input to the second shutter button (825), it can acquire an image using the camera (230) based on the shooting mode (e.g., 1:1 ratio, portrait mode) set in the shutter item (815). FIG. 9 is a diagram illustrating an example of an operation in which an electronic device generates an additional shutter button based on a comparison image, according to one embodiment. In 901 of FIG. 9, according to one embodiment, an electronic device (200) can display a preview image (905) obtained using a camera (230) on a display (240). The electronic device (200) can identify the similarity between the preview image (905) and comparison images set in a plurality of shutter items. The electronic device (200) can identify a comparison image in which the similarity is greater than or equal to a preset value. The electronic device (200) can identify a shutter item (910) in which a comparison image in which the similarity is greater than or equal to a preset value is used as setting information. For example, the similarity between the comparison image set in the identified shutter item (910) and the pre-image (905) may be greater than or equal to a preset value. Meanwhile, the method of identifying the shutter item (910) is not limited to the example described above. For example, the electronic device (200) can identify the shutter item based on the similarity between the comparison images set in the plurality of shutter items (910) and the preview image (905), and at least one of sound data obtained through a microphone sensor and location information obtained through a location sensor. In 902 of FIG. 9, according to one embodiment, the electronic device (200) may display an additional shutter button (920) (hereinafter referred to as the second shutter button) corresponding to the shutter item (910) on the display (240). The second shutter button (920) may include a shutter button, a name of the shutter button (e.g., concert), and an outline (e.g., red outline). As an example, the electronic device (200) may place the second shutter button (910) near the preview image (915). However, the placement of the second shutter button (920) is not limited thereto, and the electronic device (200) may place the second shutter button (920) in place of the basic shutter button. According to one embodiment, when a user's touch input to a second shutter button (920) is received, the electronic device (200) can acquire an image using a camera (230) based on a shooting mode (e.g., a first shooting mode) set in a shutter item (910). The first shooting mode may mean a shooting mode in which the user manually sets the functional elements such as sensitivity to ISO 100, shutter speed to 1 / 60s, aperture value to f / 2.2, focal length to 30mm, and exposure compensation to 0ev. FIG. 10 is a diagram illustrating an example of an operation in which an electronic device generates an additional shutter button based on position, according to one embodiment. In 1001 of FIG. 10, according to one embodiment, an electronic device (200) can display a preview image (1005) acquired using a camera (230) on a display (240). While acquiring the preview image (1005), the electronic device (200) can acquire the location of the electronic device (200) (e.g., Paris, France). The electronic device (200) can compare the location set in a plurality of shutter items with the location of the electronic device (200). The electronic device (200) can identify a shutter item (1010) among the plurality of shutter items in which the location according to the setting information is the same as the location of the electronic device (200) while running the camera application. For example, the location information set in the identified shutter item (1010) (e.g., Paris, France) may be the same as the location of the electronic device (200) (e.g., Paris, France). In 1002 of FIG. 10, according to one embodiment, the electronic device (200) may display an additional shutter button (1020) (hereinafter referred to as the second shutter button) corresponding to the shutter item (1010) on the display (240). The second shutter button (1020) may include a shutter button, a name of the shutter button (e.g., Paris), and an outline (e.g., a red outline). As an example, the electronic device (200) may place the second shutter button (1020) near the preview image (1015). However, the placement of the second shutter button (1020) is not limited thereto, and the electronic device (200) may place the second shutter button (1020) in place of the basic shutter button. According to one embodiment, when the electronic device (200) receives a user touch input for the second shutter button (1020), it can acquire an image using the camera (230) based on a shooting mode (e.g., a normal photo mode) set in the shutter item (1010). Meanwhile, if no shooting mode is set in the shutter item (1010), the electronic device (200) can acquire an image based on a normal photo mode. FIG. 11 is a diagram illustrating an example of an operation in which an electronic device generates an additional shutter button based on a tag, according to one embodiment. In 1101 of FIG. 11, according to one embodiment, an electronic device (200) can display a preview image (1105) obtained using a camera (230) on a display (240). The electronic device (200) can input the preview image (1105) into a first artificial intelligence model to obtain a tag (e.g., a constellation) for an object of the preview image (1105) included in the preview image (1105). When the tag for an object of the preview image is identified as a constellation, the electronic device (200) can obtain a time to execute a camera application. According to one embodiment, the electronic device (200) can identify whether the time corresponds to a preset range (e.g., 18:00 to 6:00). The preset range may be determined based on the time of sunset and the time of sunrise on the next day. When the time at which the camera application is executed falls within the preset range, the electronic device (9200) can input the preview image (1105) into a second artificial intelligence model to identify whether the object included in the preview image (1105) is a real constellation. A real constellation may refer to a constellation obtained by photographing the sky using a camera (230), rather than an artificially created constellation image. The second artificial intelligence model may be an artificial intelligence model trained using a real constellation image and a constellation image displayed on a display as input data, and whether it is a real constellation as output data. According to one embodiment, if the electronic device (200) identifies that an object included in the preview image (1105) is an actual constellation, it can identify a shutter item (1110) corresponding to the constellation among a plurality of shutter items. In 1102 of FIG. 11, according to one embodiment, the electronic device (200) may display an additional shutter button (1120) (hereinafter referred to as the second shutter button) corresponding to the shutter item (1110) on the display (240). The second shutter button (1120) may include a shutter button, a name of the shutter button (e.g., constellation), and an outline (e.g., green outline). In one example, the electronic device (200) may place the second shutter button (1120) near the preview image (1115). According to one embodiment, when the electronic device (200) receives a user touch input to the second shutter button (1120), it can acquire an image using the camera (230) based on a shooting mode (e.g., astrophotography mode) set in the shutter item (1110). FIGS. 12 to 15 are drawings for illustrating an example of an operation in which an electronic device captures an image and stores an image according to one embodiment. FIG. 12 is a diagram illustrating an example of an operation in which an electronic device stores an image captured based on a storage path according to one embodiment. In 1201 of FIG. 12, according to one embodiment, when a user's touch input to a second shutter button (1205) is received, the electronic device (200) can capture (or acquire) an image based on a shooting mode (e.g., portrait mode) set in a shutter item (1210). In 1202 of FIG. 12, according to one embodiment, the electronic device (200) can save an image in a folder (1220) (e.g., a person folder) corresponding to a storage path (1215) set in the shutter item (1210). FIG. 13 is a diagram illustrating an example of an operation in which an electronic device stores an image captured based on a storage path according to one embodiment. In 1301 of FIG. 13, according to one embodiment, when a user's touch input to a second shutter button (1305) is received, the electronic device (200) can capture (or acquire) an image based on a shooting mode (e.g., normal photo mode) set in a shutter item (1310). In 1302 of FIG. 13, according to one embodiment, the electronic device (200) can save an image to a folder (1320, 1325) (e.g., Paris Travel and Shared folder) corresponding to a storage path (1315) set in the shutter item (1310). FIG. 14 is a diagram illustrating an example of an operation in which an electronic device stores an image captured based on a storage path according to an embodiment. In 1401 of FIG. 14, according to one embodiment, when a user's touch input to a second shutter button (1405) is received, the electronic device (200) can capture (or acquire) an image based on a shooting mode (e.g., normal photo mode) set in a shutter item (1410). In 1402 of FIG. 14, according to one embodiment, the electronic device (200) can save an image in a folder (1420) (e.g., a parking lot folder) corresponding to a storage path set in the shutter item (1410). According to one embodiment, the setting information of the shutter item (1410) may further include an image storage period (1415). Information regarding the storage period may mean the period from the time the image is captured until the time of deletion. For example, the shutter item (1410) may set the storage period of the captured image to 30 days. According to one embodiment, the electronic device (200) may delete an image when a storage period has elapsed since the time the image was acquired. However, it is not limited thereto, and the setting information of the shutter item (1410) may include the time of deletion of the image (e.g., October 30, 2024). The electronic device (200) may store the time of deletion of the image as metadata of the image. The electronic device (200) may periodically identify whether the time of deletion of the image has arrived. If the time of deletion of the image has elapsed, the electronic device (200) may delete the image. According to one embodiment, the electronic device (200) may provide a notification to the user when the time for deletion has arrived. The notification may include, for example, a notification including the status of the arrival of the time for deletion or a notification for receiving input from the user regarding whether to delete. In response to providing the notification to the user for receiving input regarding whether to delete, the electronic device (200) may delete the image when it receives a deletion request from the user. FIG. 15 is a diagram illustrating an example of an operation in which an electronic device stores an image captured based on a storage path according to an embodiment. In 1501 of FIG. 15, according to one embodiment, when a user touch input to a second shutter button (1505) is received, the electronic device (200) can capture (or acquire) an image based on a shooting mode (e.g., scan mode) set in a shutter item (1510) (e.g., document). In 1502 of FIG. 15, according to one embodiment, the electronic device (200) has a folder (
[1520] You can save images to )(e.g., the Documents folder). For example, the Documents folder (
[1520] ) can be configured so that the folder opens when the user enters a password (or biometric information). FIG. 16 is a diagram illustrating an example of an operation in which a user modifies the setting information of a shutter item according to one embodiment. In 1601 of FIG. 16, according to one embodiment, the electronic device (200) may display an additional shutter button (1605) corresponding to a shutter item on the display (240) along with the camera application execution screen. According to one embodiment, the electronic device (200) may receive a long press input from the user for the additional shutter button (1605) for a duration longer than a preset time. In 1602, according to one embodiment, when the electronic device (200) receives a long press input, it may display a screen (e.g., 602 of FIG. 6) on the display (240) for modifying the setting information of the shutter item. The operation of the user modifying the setting information of the shutter item is omitted as it is redundant with the details described above in FIG. 6. FIGS. 17a and FIGS. 17b are drawings for illustrating an example of an operation in which a user changes the settings of a shutter button according to one embodiment. FIG. 17a is a drawing illustrating an example of an operation in which a user replaces a basic shutter button with an additional shutter button according to one embodiment. Referring to FIG. 17a, according to one embodiment, an electronic device (200) may receive user input to drag an additional shutter button (1705) in the direction where the main shutter button (1710) is located. Based on the user input, the electronic device (200) may identify whether the additional shutter button (1705) is in an overlapping state (1715) with the main shutter button (1710). If the additional shutter button (1705) is identified as being in an overlapping state with the main shutter button (1710), the electronic device (200) may replace the additional shutter button (1705) with the main shutter button (1710). FIG. 17b is a drawing illustrating an example of an operation in which a user separates an additional shutter button from a basic shutter button according to one embodiment. Referring to FIG. 17b, according to one embodiment, an electronic device (200) may receive input from a user who long-presses an additional shutter button (1720) for a preset time or longer. When the electronic device (200) receives input from a user who long-presses, it may display an effect on a display (240) to guide the user to move the position of the additional shutter button (1720). The effect to guide the user to move the position may include, for example, a button highlighting effect that increases the size of the additional shutter button (1720) and a bubble effect. According to one embodiment, the electronic device (200) may receive user input to drag an additional shutter button (1725) to an area other than the area where the basic shutter button (1730) is located within the entire area of the display (240). Based on the user input, the electronic device (200) may place the additional shooting button (1725) on the display (240). FIGS. 18 and 19 are drawings for illustrating an example of an operation in which an electronic device shares setting information of a shutter item according to one embodiment. FIG. 18 is a diagram illustrating an example of an operation in which an electronic device shares setting information of a shutter item according to one embodiment. Referring to FIG. 18, an electronic device (1800) can scan a QR (quick response) code through a camera (230). A QR code may refer to a two-dimensional barcode system for transmitting information. The QR code may be configured to transmit a shutter item (1805) and setting information (1810) of the shutter item. The electronic device (1800) can obtain the shutter item (1805) (e.g., concert) and the setting information (1810) (e.g., setting information of a concert item) through the scanned QR code. For example, based on the action of a user scanning a QR code using the electronic device (200), the electronic device (200) can obtain a link to download a shutter item. The electronic device (200) can run an application corresponding to the link to download data including a shutter item (1805) and setting information (1810) of the shutter item. The electronic device (200) can update the shutter list based on the downloaded data. FIG. 19 is a diagram illustrating an example of an operation in which an electronic device shares setting information of a shutter item according to one embodiment. According to one embodiment, the electronic device (200) can receive setting information (1905) of a shutter item from an external electronic device. Based on receiving user input, the external electronic device can transmit the setting information (1905) set in the shutter item to the electronic device (200) through a communication circuit (250). According to one embodiment, the electronic device (200) may receive user input for obtaining setting information (1905) set in a shutter item. For example, user input for obtaining setting information (1905) set in a shutter item may include touch input or voice command for an icon (1910) for adding a shutter item. According to one embodiment, when the electronic device (200) receives input from a user to obtain setting information (1905) set in a shutter item, it may add the shutter item containing the setting information (1905) to a list containing a plurality of shutter items. FIG. 20 is a diagram illustrating an example of an operation in which, according to one embodiment, when a plurality of shutter items are identified, an electronic device displays a shutter button corresponding to a plurality of shutter items. Referring to FIG. 20, according to one embodiment, an electronic device (200) can identify a plurality of shutter items based on a plurality of objects included in a preview image. When a plurality of shutter items are identified, the electronic device (200) can display a plurality of additional shutter buttons (2005, 2010) corresponding to the plurality of shutter items on a display (240). Meanwhile, although FIG. 20 is illustrated as showing a plurality of additional shutter buttons (2005, 2010) displayed near an object area for a plurality of objects, the arrangement of the plurality of additional shutter buttons (2005, 2010) is not limited thereto. According to one embodiment, the electronic device (200) can display all additional shutter buttons on the display (240). The electronic device (200) can receive user input regarding all additional shutter buttons. When the electronic device (200) receives user input regarding all additional shutter buttons, it can acquire multiple images based on shooting modes set in multiple shutter items corresponding to multiple additional shutter buttons (2005, 2010). For example, let us assume that the shooting mode of the first additional shutter button (2005) among the multiple additional shutter buttons (2005, 2010) is Portrait mode, and the shooting mode of the second additional shutter button (2010) among the multiple additional shutter buttons (2005, 2010) is Pro mode. When the electronic device (200) receives user input regarding all additional shutter buttons, it can acquire images based on Portrait mode and Pro mode using the camera (230). According to one embodiment, the electronic device (200) can store a plurality of images based on a storage path set in a plurality of shutter items corresponding to a plurality of additional shutter buttons (2005, 2010). The technical problems to be solved in this disclosure are not limited to those mentioned above, and other technical problems not mentioned will be clearly understood by those skilled in the art to which this disclosure pertains. According to the embodiments of the present disclosure as described above, a shutter button reflecting the user's intention is automatically provided, allowing the user to quickly capture the desired image. Additionally, the user can set a shooting mode or a save path in the shutter item as needed to manage the gallery simply and conveniently, or to capture the desired image according to the shooting mode. Meanwhile, the effects obtainable from the present disclosure are not limited to those mentioned above, and other unmentioned effects will be clearly understood by those skilled in the art to which the present disclosure belongs. An electronic device according to one embodiment as described above may include at least one processor (210) comprising a memory (220) for storing camera (230) display (240) instructions and a processing circuitry. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may display on the display (240) an execution screen of the camera application including a first shutter button and a preview image acquired through the camera (230) based on the execution of the camera application. When the above instructions are executed individually or collectively by the at least one processor, the electronic device may identify at least one shutter item among the plurality of shutter items by comparing first information related to the preview image and second information set for each of the plurality of shutter items. When the above instructions are executed individually or collectively by the at least one processor, the electronic device may display a second shutter button corresponding to the identified at least one shutter item on the execution screen of the camera application. The second information above may include at least one of a tag, a location, and a comparison image. The first information above may include tags for objects of the preview image. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may input the preview image into the first artificial intelligence model to obtain tags for objects of the preview image. When the above instructions are executed individually or collectively by the at least one processor, the electronic device may compare the acquired tag and the tag set for each of the plurality of shutter items to identify at least one shutter item among the plurality of shutter items for which the acquired tag is set. When the above instructions are executed individually or collectively by the at least one processor, the electronic device may display the second shutter button corresponding to the identified shutter item. The first information above may include the location of the electronic device (200). When the above instructions are executed individually or collectively by the at least one processor, the electronic device may acquire the position of the electronic device (200) while executing the camera application. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may compare the acquired position and the position set for each of the plurality of shutter items to identify at least one shutter item among the plurality of shutter items in which the acquired position is set. The first information above may include the preview image. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may identify the similarity between the preview image and the comparison image set for each of the plurality of shutter items. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may identify at least one shutter item among the plurality of shutter buttons in which a comparison image is set such that the identified similarity is greater than or equal to a threshold value. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may display the second shutter button corresponding to the identified shutter item. The second information above may further include at least one of a shooting mode, a storage path, and whether a watermark is applied. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may perform at least one of the following operations: capturing an image using the camera (230) based on a shooting mode set on the second shutter button when a touch input to the second shutter button is received; creating a watermark on the captured image based on whether a watermark set on the second shutter button is applied; and saving the captured image based on a storage path set on the second shutter button. The second information above may further include the name of the shutter button. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may display the second shutter button with the name set on the second shutter button on the execution screen of the camera application based on the identification of the second shutter button. The second information above may further include the storage period of the captured image. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may capture an image using the camera (230) when a touch input for the second shutter button is received. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may delete the captured image when the storage period of the captured image has elapsed from the time the image was captured. The above electronic device (200) may include a communication circuit (250). When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may transmit the second information set in the at least one shutter item to the external electronic device (200) through the communication circuit (250) based on receiving user input for transmitting the second information set in the at least one shutter item among the plurality of shutter items to the external electronic device (200). When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may obtain a time to execute the camera application based on the fact that the tag for the object of the preview image is identified as a constellation. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may input the preview image into a second artificial intelligence model based on the fact that the time point is identified as corresponding to a preset range, thereby identifying whether the object of the preview image is an actual constellation. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may identify a shutter item corresponding to a constellation among the plurality of shutter items based on the fact that the object of the preview image is identified as an actual constellation. When the above instructions are executed individually or collectively by the at least one processor (210), the electronic device (200) may display the second shutter button corresponding to the shutter item. A control method for an electronic device (200) according to one embodiment as described above may be provided. For example, the control method may include an operation of displaying an execution screen of the camera application, including a first shutter button and a preview image obtained through the camera (230) included in the electronic device (200), on a display (240) included in the electronic device (200) based on the execution of the camera application. For example, the control method may include an operation of identifying at least one shutter item among the plurality of shutter items by comparing first information related to the preview image and second information set for each of the plurality of shutter items. For example, the control method may include an operation of displaying a second shutter button corresponding to at least one identified shutter item on the execution screen of the camera application. The second information above may include at least one of a tag, a location, and a comparison image. The first information above may include tags for objects of the preview image. For example, the operation of displaying the second shutter button may include the operation of inputting the preview image into the first artificial intelligence model to obtain a tag for an object of the preview image. For example, the operation of displaying the second shutter button may include comparing the acquired tag and the tag set for each of the plurality of shutter items to identify at least one shutter item among the plurality of shutter items for which the acquired tag is set. For example, the operation of displaying the second shutter button may include the operation of displaying the second shutter button corresponding to the identified shutter item. The first information above may include the location of the electronic device (200). For example, the operation of displaying the second shutter button may include the operation of obtaining the position of the electronic device (200) while running the camera application. For example, the operation of displaying the second shutter button may include comparing the acquired position and the position set for each of the plurality of shutter items to identify at least one shutter item among the plurality of shutter items in which the acquired position is set. For example, the operation of displaying the second shutter button may include the operation of displaying the second shutter button corresponding to the identified shutter item. The first information above may include the preview image. For example, the operation of displaying the second shutter button may include an operation of identifying the similarity between the preview image and the comparison image set for each of the plurality of shutter items. For example, the operation of displaying the second shutter button may include the operation of identifying at least one shutter item among the plurality of shutter buttons in which a comparison image is set such that the identified similarity is greater than or equal to a threshold value. For example, the operation of displaying the second shutter button may include the operation of displaying the second shutter button corresponding to the identified shutter item. The second information above may further include at least one of a shooting mode, a storage path, and whether a watermark is applied. For example, the control method may include at least one of the following operations: capturing an image using the camera (230) based on a shooting mode set on the second shutter button when a touch input to the second shutter button is received; creating a watermark on the captured image based on whether a watermark is applied to the second shutter button; and saving the captured image based on a storage path set on the second shutter button. The second information above may further include the name of the shutter button. For example, the operation of displaying the second shutter button may include the operation of displaying the second shutter button, which displays the name set on the second shutter button on the execution screen of the camera application, based on the identification of the second shutter button. The second information above may further include the storage period of the captured image. For example, the control method may include an operation to capture an image using the camera (230) when a touch input to the second shutter button is received. For example, the control method may include an operation to delete the captured image when the storage period of the captured image has elapsed from the time the image was captured. For example, the control method may include an operation of transmitting the second information set in at least one shutter item to the external electronic device (200) based on receiving a user input for transmitting the second information set in at least one shutter item among the plurality of shutter items to the external electronic device (200). For example, the operation of displaying the second shutter button may include the operation of obtaining a time to execute the camera application based on the fact that a tag for an object in the preview image is identified as a constellation. For example, the operation of displaying the second shutter button may include inputting the preview image into a second artificial intelligence model to identify whether the object in the preview image is an actual constellation, based on the fact that the viewpoint is identified as corresponding to a preset range. For example, the operation of displaying the second shutter button may include the operation of identifying a shutter item corresponding to a constellation among the plurality of shutter items based on the fact that the object of the preview image is identified as an actual constellation. For example, the operation of displaying the second shutter button may include the operation of displaying the second shutter button corresponding to the shutter item. A non-transient computer-readable recording medium may be provided for storing one or more instructions executed by a processor (210) of an electronic device (200) to enable the electronic device (200) according to one embodiment as described above to perform an operation. The above operation may include, based on the execution of the camera application, an operation of displaying an execution screen of the camera application, including a first shutter button and a preview image obtained through the camera (230) included in the electronic device (200), on a display (240) included in the electronic device (200). The above operation may include an operation of identifying at least one shutter item among the plurality of shutter items by comparing first information related to the preview image and second information set for each of the plurality of shutter items. The above operation may include displaying a second shutter button corresponding to at least one identified shutter item on the execution screen of the camera application. The second information above may include at least one of a tag, a location, and a comparison image. Although various embodiments have been described above, each embodiment is not necessarily implemented individually, and may be combined with at least one other embodiment, either wholly or partially, to be implemented together in a single product. Meanwhile, embodiments of the present disclosure may also be implemented in the form of a recording medium containing computer-executable instructions, such as program modules executed by a computer. A computer-readable medium may be any available medium accessible by a computer and includes both volatile and non-volatile media, and both removable and non-removable media. Additionally, a computer-readable medium may include computer storage media and communication media. Computer storage media include both volatile and non-volatile, removable and non-removable media implemented by any method or technique for storing information, such as computer-readable instructions, data structures, program modules, or other data. Communication media may typically include other data of modulated data signals, such as computer-readable instructions, data structures, or program modules. Additionally, computer-readable storage media may be provided in the form of non-transitory storage media. Here, 'non-transitory storage media' simply means that it is a tangible device and does not contain a signal (e.g., electromagnetic waves), and this term does not distinguish between cases where data is stored semi-permanently and cases where it is stored temporarily. For example, 'non-transitory storage media' may include a buffer in which data is stored temporarily. According to one embodiment, the method according to the various embodiments disclosed herein may be provided by being included in a computer program product. The computer program product may be traded between a seller and a buyer 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 distributed online (e.g., download or upload) through an application store or directly between two user devices (e.g., smartphones). In the case of online distribution, at least a portion of the computer program product (e.g., downloadable app) may be temporarily stored or temporarily created on a device-readable storage medium, such as the memory of a manufacturer's server, an application store's server, or a relay server. The foregoing description of the present disclosure is for illustrative purposes only, and those skilled in the art will understand that other specific forms can be easily modified without altering the technical spirit or essential features of the present disclosure. Therefore, the embodiments described above should be understood as illustrative in all respects and not restrictive. For example, each component described as a single unit may be implemented in a distributed manner, and components described as distributed may likewise be implemented in a combined form. The scope of the present disclosure is defined by the claims set forth below rather than by the detailed description above, and all modifications or variations derived from the meaning and scope of the claims and equivalent concepts thereof should be interpreted as being included within the scope of the present disclosure.
Claims
1. In an electronic device (200), Camera (230); Display (240); Memory (220) for storing instructions; and It includes at least one processor (210) including a processing circuitry; and When the above instructions are executed individually or collectively by the at least one processor, the electronic device, Based on the execution of the camera application, the execution screen of the camera application including a first shutter button and a preview image acquired through the camera is displayed on the display, and Identifying at least one shutter item among the plurality of shutter items by comparing the first information related to the above preview image and the second information set for each of the plurality of shutter items, and A second shutter button corresponding to at least one identified shutter item is displayed on the execution screen of the camera application, and The above second information is an electronic device comprising at least one of a tag, a location, and a comparison image.
2. In Paragraph 1, The first information above includes tags for objects of the preview image, and When the above instructions are executed individually or collectively by the at least one processor, the electronic device, The above preview image is input into a first artificial intelligence model to obtain tags for objects in the above preview image, and By comparing the above-mentioned acquired tag and the tag set for each of the plurality of shutter items, at least one shutter item among the plurality of shutter items for which the acquired tag is set is identified, and An electronic device that displays the second shutter button corresponding to the identified shutter item.
3. In Paragraph 1 or 2, The first information above includes the location of the electronic device, and When the above instructions are executed individually or collectively by the at least one processor, the electronic device, While running the above camera application, the location of the electronic device is obtained, and By comparing the above-mentioned acquired position and the position set for each of the plurality of shutter items, at least one shutter item among the plurality of shutter items in which the acquired position is set is identified, and An electronic device that displays the second shutter button corresponding to the identified shutter item.
4. In any one of paragraphs 1 through 3, The first information above includes the preview image, and When the above instructions are executed individually or collectively by the at least one processor, the electronic device, Identifying the similarity between the above preview image and the comparison image set for each of the above plurality of shutter items, and Among the plurality of shutter items above, identify at least one shutter item in which a comparison image is set such that the identified similarity is greater than or equal to a threshold value, and An electronic device that displays the second shutter button corresponding to the identified shutter item.
5. In any one of paragraphs 1 through 4, The second information above further includes at least one of a shooting mode, a storage path, and whether a watermark is applied, and When the above instructions are executed individually or collectively by the at least one processor, the electronic device, When a touch input for the second shutter button is received, An electronic device that performs at least one of the following operations: capturing an image using the camera based on a shooting mode set on the second shutter button; generating the watermark on the captured image based on whether the watermark is applied based on the second shutter button; and saving the captured image based on a storage path set on the second shutter button.
6. In any one of paragraphs 1 through 5, The above second information further includes the name of the shutter button, and When the above instructions are executed individually or collectively by the at least one processor, the electronic device, An electronic device that displays the second shutter button, on the execution screen of the camera application, the second shutter button with the name set on the second shutter button, based on the identification of the second shutter button.
7. In any one of paragraphs 1 through 6, The second information above further includes the storage period of the captured image, and When the above instructions are executed individually or collectively by the at least one processor, the electronic device, When a touch input for the second shutter button is received, an image is captured using the camera, and An electronic device that deletes the captured image when the storage period of the captured image has elapsed from the time the image was captured.
8. In any one of paragraphs 1 through 7, Includes a communication circuit; and When the above instructions are executed individually or collectively by the at least one processor, the electronic device, An electronic device that transmits the second information set in at least one shutter item among the plurality of shutter items to the external electronic device through the communication circuit, based on receiving a user input for transmitting the second information set in the at least one shutter item to the external electronic device.
9. In any one of paragraphs 2 through 8, When the above instructions are executed individually or collectively by the at least one processor, the electronic device, Based on the fact that the tag for the object in the above preview image is identified as a constellation, the time at which the camera application is executed is obtained, and Based on the identification that the above time point corresponds to a preset range, the above preview image is input into a second artificial intelligence model to identify whether the object in the above preview image is an actual constellation, and Based on the fact that the object in the above preview image is identified as an actual constellation, the shutter item corresponding to the constellation is identified among the above plurality of shutter items, and An electronic device that displays the second shutter button corresponding to the above shutter item.
10. In a method for controlling an electronic device, An operation (310) of displaying an execution screen of the camera application, including a preview image obtained through a first shutter button and a camera included in the electronic device, on a display included in the electronic device based on the execution of the camera application; An operation (320) of identifying at least one shutter item among the plurality of shutter items by comparing first information related to the above preview image and second information set for each of the plurality of shutter items; and The operation (330) of displaying a second shutter button corresponding to at least one identified shutter item on the execution screen of the camera application; is included, The above second information is a control method comprising at least one of a tag, a location, and a comparison image.
11. In Paragraph 10, The first information above includes tags for objects of the preview image, and The operation of displaying the second shutter button above is, The operation of inputting the above preview image into a first artificial intelligence model to obtain tags for objects in the above preview image; An operation of comparing the acquired tag and the tag set for each of the plurality of shutter items to identify at least one shutter item among the plurality of shutter items for which the acquired tag is set; and A control method comprising the operation of displaying the second shutter button corresponding to the identified shutter item.
12. In Paragraph 10 or 11, The first information above includes the location of the electronic device, and The operation of displaying the second shutter button above is, The operation of acquiring the position of the electronic device while executing the above camera application; An operation of comparing the above-mentioned acquired position and the position set for each of the plurality of shutter items to identify at least one shutter item among the plurality of shutter items in which the acquired position is set; and A control method comprising the operation of displaying the second shutter button corresponding to the identified shutter item.
13. In any one of paragraphs 10 through 12, The first information above includes the preview image, and The operation of displaying the second shutter button above is, An operation to identify the similarity between the above preview image and the comparison image set for each of the plurality of shutter items; An operation of identifying at least one shutter item among the plurality of shutter items above in which a comparison image is set such that the identified similarity is greater than or equal to a threshold; and A control method comprising the operation of displaying the second shutter button corresponding to the identified shutter item.
14. In any one of paragraphs 10 through 13, The second information above further includes at least one of a shooting mode, a storage path, and whether a watermark is applied, and The above control method is, When a touch input for the second shutter button is received, An operation of capturing an image using the camera based on a shooting mode set on the second shutter button; The operation of generating the watermark on the captured image according to whether the watermark set on the second shutter button is applied; and A control method comprising at least one of the operation of saving the captured image based on a storage path set on the second shutter button.
15. In any one of paragraphs 10 through 14, The above second information further includes the name of the shutter button, and The operation of displaying the second shutter button above is, A control method comprising: an operation of displaying the second shutter button, on the execution screen of the camera application, the second shutter button with the name set on the second shutter button displayed thereon, based on the identification of the second shutter button.
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