Electronic device for user-customized health care and method of operating same

By combining user electronic devices with generative artificial intelligence models to generate personalized digital prescriptions and device configuration information, the accuracy and continuity issues of healthcare services in existing technologies are solved, enabling efficient and personalized health guidance from electronic devices without expert intervention.

CN122074155APending Publication Date: 2026-05-22SAMSUNG ELECTRONICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
SAMSUNG ELECTRONICS CO LTD
Filing Date
2024-06-27
Publication Date
2026-05-22

AI Technical Summary

Technical Problem

In existing technologies, electronic devices, when providing healthcare services, struggle to effectively monitor users' daily activities and provide personalized health guidance without expert intervention. Furthermore, users often find it difficult to remember or follow the details of prescribed activities, especially for the elderly, young children, or foreigners. This leads to a decline in the accuracy and continuity of healthcare services.

Method used

By combining the user's electronic devices and prescription details, a generative artificial intelligence model is used to generate personalized digital prescriptions and device configuration information, providing an intuitive user interface to guide the user's health activities, and interacting with external electronic devices through communication circuits to support health activities.

Benefits of technology

It improves the efficiency and convenience of healthcare services, enhances the application of personalized prescription details, improves the professionalism of guidance content, and provides intuitive and easy-to-follow guidance for health activities in daily life.

✦ Generated by Eureka AI based on patent content.

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Abstract

Disclosed are an electronic device for user-customized healthcare and a method of operating the same. An electronic device may receive an access request from an external electronic device and receive a user input for the access request. The electronic device may send personal information to an external electronic device based on the user input. The personal information may include personal device information about the at least one device. The electronic device may receive device setting information generated based on the personal information and the digital prescription from an external electronic device, and generate healthcare guidance information related to the at least one device based on the device setting information. The electronic device may display a user interface for guiding a health activity of the user based on the healthcare guidance information, and send a device control command to the at least one device to support the health activity. Various other embodiments understood by the document are also possible.
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Description

Technical Field

[0001] This disclosure relates to an electronic device and a method of operating the same, for example, to an electronic device and a method of operating the same for user-customized healthcare. Background Technology

[0002] As the use of portable or mobile electronic devices (e.g., smartphones, wearable devices, mobile terminals, or tablet PCs) has become commonplace with recent advancements in mobile communication technologies, the services offered through these electronic devices have become increasingly diversified. Such electronic devices, carried or worn by users and closely integrated into their daily lives, can be effectively utilized to access a wide range of services.

[0003] For example, electronic devices can provide healthcare services for continuously monitoring a user's biometric data or data related to the user's training, sleep, and / or diet, and managing his / her health. Electronic devices (e.g., smartphones) can acquire user data from one or more sensors or external electronic devices (e.g., wearable devices such as smartwatches) and analyze the user's health status based on the acquired data. Electronic devices can use the analysis results to provide healthcare services to assist the user in maintaining his / her health or to provide guidance (or coaching) for improving the user's health status. Summary of the Invention

[0004] Solution to the problem An electronic device according to various embodiments may include a communication circuit, a memory, a display, and at least one processor. The memory may store instructions that, when executed by the at least one processor, cause the electronic device to: receive an access request from an external electronic device via the communication circuit; receive user input in response to the access request; send personal information, including personal device information of at least one device, to the external electronic device via the communication circuit based on the user input; receive device configuration information generated based on the personal information and a digital prescription from the external electronic device via the communication circuit; generate healthcare guidance information related to at least one device based on the device configuration information; and display a user interface on the display to guide health activities based on the healthcare guidance information, and send device control commands to at least one device via the communication circuit to support the health activities.

[0005] An external electronic device according to various embodiments may include a communication circuit, a memory, and at least one processor. The memory may store instructions that, when executed by the at least one processor, cause the external electronic device to: generate a digital prescription based on input medical information; send an access request to the electronic device via the communication circuit; receive personal information from the electronic device via the communication circuit, the personal information including personal device information of at least one device; generate device configuration information for user-customized prescriptions based on the personal information and the digital prescription; and send the device configuration information to the electronic device via the communication circuit.

[0006] Operating a method of an electronic device according to various embodiments may include: receiving an access request from an external electronic device; receiving user input in response to the access request; sending personal information to the external electronic device based on the user input, the personal information including personal device information of at least one device; receiving device configuration information generated from the external electronic device based on the personal information and a digital prescription; generating healthcare guidance information related to at least one device based on the device configuration information; and displaying a user interface for guiding health activities based on the healthcare guidance information, and sending device control commands to at least one device to support the health activities.

[0007] Operating a method of an external electronic device according to various embodiments may include: generating a digital prescription based on input medical information; sending an access request to the electronic device via a communication circuit; receiving personal information from the electronic device via a communication circuit, the personal information including personal device information of at least one device; generating device configuration information for user-customized prescriptions based on the personal information and the digital prescription; and sending the device configuration information to the electronic device via a communication circuit.

[0008] A computer-readable recording medium according to various embodiments can record a program for operating a method of an electronic device, the method comprising: receiving an access request from an external electronic device; receiving user input in response to the access request; sending personal information to the external electronic device based on the user input, the personal information including personal device information of at least one device; receiving device configuration information generated from the external electronic device based on the personal information and a digital prescription; generating healthcare guidance information related to at least one device based on the device configuration information; and displaying a user interface for guiding health activities based on the healthcare guidance information, and sending device control commands to at least one device to support the health activities.

[0009] A computer-readable recording medium according to various embodiments may record a program for operating a method of an external electronic device, the method comprising: generating a digital prescription based on input medical information; sending an access request to the electronic device via a communication circuit; receiving personal information from the electronic device via a communication circuit, the personal information including personal device information of at least one device; generating device configuration information for user-customized prescriptions based on the personal information and the digital prescription; and sending the device configuration information to the electronic device via the communication circuit. Attached Figure Description

[0010] Figure 1 This is a block diagram of an electronic device in a network environment according to an embodiment.

[0011] Figure 2 This is a diagram illustrating a simplified configuration of a healthcare system according to an embodiment.

[0012] Figure 3a This is a block diagram of an electronic device according to an embodiment.

[0013] Figure 3b This is a block diagram of a hospital server according to an embodiment.

[0014] Figure 4 This is a flowchart illustrating a user-customized healthcare method using a healthcare system according to an embodiment.

[0015] Figure 5a This is a flowchart illustrating an operation method of an electronic device according to an embodiment.

[0016] Figure 5b This is a flowchart illustrating an operation method of a hospital server according to an embodiment.

[0017] Figure 6 This is an example of a user interface for user-customized healthcare functions for an electronic device, according to an embodiment.

[0018] Figure 7 This is another example of a user interface for user-customized healthcare functions for an electronic device, according to an embodiment. Detailed Implementation

[0019] Healthcare services delivered via electronic devices can be primarily provided by simply monitoring a user's daily activities (e.g., measurements, training, or sleep) without expert intervention, evaluating the monitoring results according to specified logic, and providing feedback to the user in the form of guidance based on the evaluation. In this case, the level of professionalism in the guidance details is reduced.

[0020] Furthermore, during medical consultations at hospitals, doctors may not have access to baseline health information about the patient, such as their health status, daily activity levels, and relevant disease types, beyond the medical examination details or some personal information recorded in the hospital system. This can lead to decreased prescription accuracy or prevent the ability to continuously monitor and manage the patient's health. Additionally, even for patients presenting with similar symptoms, it may be necessary to apply different prescriptions based on the individual patient's baseline health information.

[0021] For patients, it may be difficult to remember every detail of prescribed activities (such as periodic medications, repetitive exercises for symptom improvement, or sleep habit adjustments) or to perform the appropriate activities at the right time over a relatively long period of time (e.g., days to weeks). This difficulty may be even greater for some patients (e.g., the elderly, young children, or foreigners).

[0022] According to various embodiments of this disclosure, the efficiency and convenience of healthcare services can be enhanced by combining electronic devices owned or readily available to the user (or patient) in his / her daily life with prescription details.

[0023] According to various embodiments of this disclosure, personalized prescription details can be applied based on the baseline health information of an individual user (or patient).

[0024] According to various embodiments of this disclosure, the professionalism of guidance content for healthcare services can be improved through verification procedures, and guidance content based on prescription details can be provided to users in the form of an intuitive and easy-to-use user interface in daily life.

[0025] The effects that can be obtained from this disclosure are not limited to those mentioned above, and other effects not mentioned can be clearly understood by those skilled in the art from the following description.

[0026] Subsequently, this disclosure relates to electronic devices for user-customized healthcare and methods of operation thereof.

[0027] In the following description, embodiments of the present disclosure will be described in detail with reference to the accompanying drawings, enabling those skilled in the art to readily implement the disclosure. However, the present disclosure can be implemented in various different forms and is not limited to the embodiments described herein. In conjunction with the description of the drawings, the same or similar reference numerals may be used for the same or similar components. Furthermore, for clarity and brevity, descriptions of well-known functions and configurations may be omitted in the drawings and related descriptions.

[0028] Figure 1 This is a block diagram illustrating an electronic device 101 in a network environment 100 according to various embodiments. (Refer to...) Figure 1In network environment 100, electronic device 101 can communicate with electronic device 102 via a first network 198 (e.g., a short-range wireless communication network), or with at least one of electronic device 104 or server 108 via a second network 199 (e.g., a long-range wireless communication network). According to an embodiment, electronic device 101 can communicate with electronic device 104 via server 108. According to an embodiment, 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, user identification module (SIM) 196, or antenna module 197. In some embodiments, at least one of the above components (e.g., connection terminal 178) may be omitted from electronic device 101, or one or more other components may be added to electronic device 101. In some embodiments, some of the components described above (e.g., sensor module 176, camera module 180, or antenna module 197) may be implemented as a single component (e.g., display module 160).

[0029] Processor 120 may run software (e.g., program 140) to control at least one other component (e.g., hardware or software component) of electronic device 101 coupled to processor 120, and may perform various data processing or calculations. According to one embodiment, as at least part of the data processing or calculation, processor 120 may store commands or data received from another component (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 result data in non-volatile memory 134. According to embodiments, processor 120 may include a main processor 121 (e.g., central processing unit (CPU) or application processor (AP)) or an auxiliary processor 123 (e.g., graphics processing unit (GPU), neural processing unit (NPU), image signal processor (ISP), sensor central processor, or communication processor (CP)) that is operationally independent of or combined with the main processor 121. For example, when electronic device 101 includes a main processor 121 and an auxiliary processor 123, the auxiliary processor 123 can be adapted to consume less power than the main processor 121, or adapted to be dedicated to a specific function. The auxiliary processor 123 can be implemented separately from the main processor 121, or as part of the main processor 121.

[0030] When the main processor 121 is inactive (e.g., in sleep) state, the auxiliary processor 123 (rather than the main processor 121) can 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), or when the main processor 121 is active (e.g., running an application), the auxiliary processor 123 can work with the main processor 121 to 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). According to embodiments, the auxiliary processor 123 (e.g., an image signal processor or a communication processor) can be implemented as part of another component (e.g., camera module 180 or communication module 190) functionally associated with the auxiliary processor 123. According to embodiments, the auxiliary processor 123 (e.g., a neural processing unit) can include hardware architectures dedicated to artificial intelligence model processing. Artificial intelligence models can be generated through machine learning. For example, such learning can be performed via electronic device 101 where the artificial intelligence model is executed or via a separate server (e.g., server 108). The learning algorithm can include, but is not limited to, supervised learning, unsupervised learning, semi-supervised learning, or reinforcement learning. The artificial intelligence model can include multiple layers of artificial neural networks. The artificial neural networks can be, but are not limited to, deep neural networks (DNNs), convolutional neural networks (CNNs), recurrent neural networks (RNNs), restricted Boltzmann machines (RBMs), deep belief networks (DBNs), bidirectional recurrent deep neural networks (BRDNNs), or deep Q-networks, or combinations of two or more thereof. Additionally or optionally, the artificial intelligence model can include software structures in addition to hardware structures.

[0031] Memory 130 may store various data used by at least one component of electronic device 101 (e.g., processor 120 or sensor module 176). The various data may include, for example, software (e.g., program 140) and input or output data for commands associated with it. Memory 130 may include volatile memory 132 or non-volatile memory 134.

[0032] The program 140 can be stored as software in the memory 130, and the program 140 may include, for example, an operating system (OS) 142, middleware 144, or application 146.

[0033] Input module 150 can receive commands or data from outside electronic device 101 (e.g., a user) that will be used by another component of electronic device 101 (e.g., processor 120). Input module 150 may include, for example, a microphone, mouse, keyboard, keys (e.g., buttons), or digital pen (e.g., stylus).

[0034] The audio output module 155 can output audio signals to the outside of the electronic device 101. The audio output module 155 may include, for example, a speaker or a receiver. The speaker can be used for general purposes such as playing multimedia or playing records. The receiver can be used to receive incoming calls. According to embodiments, the receiver can be implemented separately from the speaker, or as part of the speaker.

[0035] Display module 160 can visually provide information to the outside of electronic device 101 (e.g., to a user). Display module 160 may include, for example, a display, a holographic device, or a projector, and control circuitry for controlling a corresponding one of the display, holographic device, and projector. According to an embodiment, display module 160 may include a touch sensor adapted to detect touch or a pressure sensor adapted to measure the intensity of the force caused by touch.

[0036] The audio module 170 can convert sound into electrical signals and vice versa. According to an embodiment, the audio module 170 can obtain sound via the input module 150, or output sound via the sound output module 155 or headphones of an external electronic device (e.g., electronic device 102) that is directly (e.g., wired) coupled to the electronic device 101 or wirelessly coupled to it.

[0037] Sensor module 176 can detect the operating state of electronic device 101 (e.g., power or temperature) or the environmental state outside electronic device 101 (e.g., user state), and then generate an electrical signal or data value corresponding to the detected state. According to embodiments, sensor module 176 may include, for example, a gesture sensor, gyroscope sensor, atmospheric pressure sensor, magnetic sensor, accelerometer, grip sensor, proximity sensor, color sensor, infrared (IR) sensor, biometric sensor, temperature sensor, humidity sensor, or illuminance sensor.

[0038] Interface 177 may support one or more specific protocols used to couple (e.g., wired) or wirelessly to electronic device 101 with external electronic device (e.g., electronic device 102). According to embodiments, interface 177 may include, for example, a High Definition Multimedia Interface (HDMI), a Universal Serial Bus (USB) interface, a Secure Digital (SD) card interface, or an audio interface.

[0039] Connection end 178 may include a connector, through which electronic device 101 can be physically connected to an external electronic device (e.g., electronic device 102). According to embodiments, connection end 178 may include, for example, an HDMI connector, a USB connector, an SD card connector, or an audio connector (e.g., a headphone connector).

[0040] The haptic module 179 can convert electrical signals into mechanical stimuli (e.g., vibration or motion) or electrical stimuli that can be recognized by a user through his touch or kinesthesia. According to embodiments, the haptic module 179 may include, for example, a motor, a piezoelectric element, or an electrical stimulator.

[0041] Camera module 180 can capture still or moving images. According to an embodiment, camera module 180 may include one or more lenses, an image sensor, an image signal processor, or a flash.

[0042] The power management module 188 can manage the power supply to the electronic device 101. According to one embodiment, the power management module 188 can be implemented as at least part of, for example, a power management integrated circuit (PMIC).

[0043] Battery 189 can power at least one component of electronic device 101. According to embodiments, battery 189 may include, for example, a non-rechargeable primary battery, a rechargeable rechargeable battery, or a fuel cell.

[0044] Communication module 190 can support the establishment of a direct (e.g., wired) or wireless communication channel between electronic device 101 and external electronic devices (e.g., electronic device 102, electronic device 104, or server 108), and perform communication via the established communication channel. Communication module 190 may include one or more communication processors capable of operating independently of processor 120 (e.g., application processor (AP)) and support direct (e.g., wired) or wireless communication. According to embodiments, communication module 190 may include wireless communication module 192 (e.g., cellular communication module, short-range wireless communication module, or Global Navigation Satellite System (GNSS) communication module) or wired communication module 194 (e.g., local area network (LAN) communication module or power line communication (PLC) module). A corresponding one of these communication modules can communicate via a first network 198 (e.g., a short-range communication network, such as Bluetooth). TM The communication module 192 can communicate with external electronic devices via a Wi-Fi Direct or Infrared Data Association (IrDA) network or a second network 199 (e.g., a long-range communication network, such as a traditional cellular network, a 5G network, a next-generation communication network, the Internet, or a computer network (e.g., a LAN or a wide area network (WAN))). These various types of communication modules can be implemented as a single component (e.g., a single chip) or as multiple components that are separate from each other (e.g., multiple chips). The wireless communication module 192 can use user information (e.g., the International Mobile Subscriber Identity (IMSI)) stored in the user identification module 196 to identify and verify the electronic device 101 in the communication network (such as the first network 198 or the second network 199).

[0045] Wireless communication module 192 can support 5G networks following 4G networks and next-generation communication technologies (such as New Radio (NR) access technologies). NR access technologies can support enhanced mobile broadband (eMBB), massive machine-type communications (mMTC), or ultra-reliable low-latency communications (URLLC). Wireless communication module 192 can support high-frequency bands (e.g., millimeter-wave bands) to achieve, for example, high data transmission rates. Wireless communication module 192 can support various technologies used to ensure performance in high-frequency bands, such as, for example, beamforming, massive MIMO, full-dimensional MIMO (FD-MIMO), array antennas, analog beamforming, or massive antennas. Wireless communication module 192 can support various requirements specified in electronic device 101, external electronic devices (e.g., electronic device 104), or network systems (e.g., second network 199). According to an embodiment, the wireless communication module 192 may support peak data rates (e.g., 20 Gbps or greater) for implementing eMBB, lost coverage (e.g., 164 dB or less) for implementing mMTC, or U-plane latency (e.g., 0.5 ms or less for each of the downlink (DL) and uplink (UL), or 1 ms or less round trip) for implementing URLLC.

[0046] Antenna module 197 can transmit or receive signals or power to or from the outside of electronic device 101 (e.g., external electronic device). According to an embodiment, antenna module 197 may include an antenna comprising a radiating element formed of conductive material or conductive patterns formed in or on a substrate (e.g., a printed circuit board (PCB)). According to an embodiment, antenna module 197 may include multiple antennas (e.g., an array antenna). In this case, at least one antenna suitable for a communication scheme used in a communication network (such as a first network 198 or a second network 199) can be selected from the multiple antennas by, for example, communication module 190 (e.g., wireless communication module 192). Signals or power can then be transmitted or received between communication module 190 and the external electronic device via the selected at least one antenna. According to an embodiment, another component besides the radiating element (e.g., a radio frequency integrated circuit (RFIC)) may be additionally incorporated into antenna module 197.

[0047] According to various embodiments, antenna module 197 can form a millimeter-wave antenna module. According to embodiments, the millimeter-wave antenna module may include a printed circuit board, an RFIC, and multiple antennas (e.g., an array antenna), wherein the RFIC is disposed on or adjacent to a first surface (e.g., a bottom surface) of the printed circuit board and is capable of supporting a specified high-frequency band (e.g., a millimeter-wave band), and the multiple antennas are disposed on or adjacent to a second surface (e.g., a top or side surface) of the printed circuit board and are capable of transmitting or receiving signals in the specified high-frequency band.

[0048] At least some of the aforementioned components can be coupled to each other via an inter-peripheral communication scheme (e.g., bus, general purpose input / output (GPIO), serial peripheral interface (SPI), or mobile industrial processor interface (MIPI)) and can communicatively transmit signals (e.g., commands or data) between them.

[0049] According to an embodiment, commands or data can be sent or received between electronic device 101 and external electronic device 104 via server 108 coupled to the second network 199. Each of electronic device 102 or electronic device 104 can be a device of the same type as electronic device 101, or a device of a different type. According to an embodiment, all or some of the operations to be performed on electronic device 101 can be performed on one or more of external electronic devices 102, external electronic devices 104, or server 108. For example, if electronic device 101 is required to automatically perform a function or service or is required to perform a function or service in response to a request from a user or another device, electronic device 101 may request one or more external electronic devices to perform at least a portion of the function or service instead of running the function or service, or electronic device 101 may request one or more external electronic devices to perform at least a portion of the function or service in addition to running the function or service. Upon receiving the request, one or more external electronic devices may perform at least a portion of the requested function or service, or perform additional functions or services related to the request, and transmit the result of the execution to electronic device 101. Electronic device 101 may provide the result as at least a partial response to the request, with or without further processing of the result. For this purpose, technologies such as cloud computing, distributed computing, mobile edge computing (MEC), or client-server computing can be used. Electronic device 101 may use, for example, distributed computing or mobile edge computing to provide ultra-low latency services. In another embodiment, external electronic device 104 may include an Internet of Things (IoT) device. Server 108 may be an intelligent server using machine learning and / or neural networks. According to embodiments, external electronic device 104 or server 108 may be included in a second network 199. Electronic device 101 can be applied to intelligent services (e.g., smart homes, smart cities, smart cars, or healthcare) based on 5G communication technology or IoT-related technologies.

[0050] Figure 2 This is a diagram illustrating a simplified configuration of a healthcare system according to an embodiment.

[0051] Reference Figure 2 The healthcare system according to the embodiments may include an electronic device 200 (e.g., a wearable electronic device such as a smartphone 201 or a smartwatch 202) and an external electronic device 300 (e.g., a hospital server).

[0052] According to an embodiment, electronic device 200 is an electronic device for a user (e.g., a patient visiting a hospital or a patient remotely accessing an external electronic device 300), and may correspond to Figure 1 Electronic device 101 in the middle.

[0053] According to an embodiment, the external electronic device 300 is an electronic device used by a doctor for medical examinations, and can correspond to... Figure 1 Server 108 or electronic device 104.

[0054] For example, if the user of electronic device 200 visits a hospital, electronic device 200 and external electronic device 300 can communicate via... Figure 1 The first network 198 (e.g., a short-range wireless communication network such as Bluetooth or WiFi) communicates with each other. For example, if a user of electronic device 200 remotely accesses external electronic device 300, electronic device 200 and external electronic device 300 can communicate via... Figure 1 The second network 199 (e.g., a long-distance communication network such as cellular communication or the Internet) communicates.

[0055] According to an embodiment, the electronic device 200 may be a smartphone 201 carried by the user or a wearable electronic device (e.g., a smartwatch 202) worn by the user. The electronic device 200 may be equipped with a healthcare application to provide user-customized healthcare functions.

[0056] According to an embodiment, the electronic device 200 may include a user-customized information generator 210. According to an embodiment, the user-customized information generator 210 may include hardware structures (e.g., Figure 3a The processor 270) and / or software architecture (e.g., healthcare applications installed on the electronic device 200, stored in...) Figure 3a (Programs or instructions in memory 280).

[0057] According to an embodiment, the electronic device 200 may store the user's personal information. For example, personal information may include personal health information 221 and personal device information 225.

[0058] According to an embodiment, personal health information 221 may include a user's profile information and / or basic health information. For example, basic health information may include raw health data of the user collected in daily life. For example, basic health information may include at least some of the following: medical history data (e.g., presence of potential medical conditions), health activity data (e.g., data such as walking, exercise, or calorie consumption), health status data (e.g., resting heart rate, average heart rate, blood pressure, body temperature, or body composition), statistical information based on health activity data or health status data (e.g., assessment of activities or status based on the same sex, same age group, or similar medical history), and measurement trend data (e.g., measurement items, measurement cycles, measurement time per session, or measurement period).

[0059] According to an embodiment, personal device information 225 may include information about at least one device registered in the healthcare application of electronic device 200.

[0060] For example, at least one device may include a device carried or worn by a user (e.g., smartphone 201, smartwatch 202, sensor 205) or a device located at a location where the user resides or frequently visits (e.g., IoT device 240). For example, at least one device may include electronic device 200 (e.g., one of smartphone 201 and smartwatch 202) and at least one of one or more other electronic devices (e.g., another of smartphone 201 and smartwatch 202, sensor 205, or IoT device 240). For example, at least one device may include a main device and one or more peripheral devices for interacting with the main device.

[0061] For example, at least one device may include one or more of a smartphone 201, a wearable electronic device (e.g., a smartwatch 202), an IoT device 240 (e.g., a speaker 241, a television 242, an air purifier 243, or a lamp 244), or a sensor 205. For example, sensor 205 may be one or more sensors (e.g., biometric sensors, motion sensors, temperature sensors, or proximity sensors) included in smartphone 201, wearable electronic device (e.g., a smartwatch 202), or IoT device 240. For example, a biometric sensor may include at least one of electrodes, a photoplethysmography (PPG) sensor, a bioelectrical impedance analysis (BIA) sensor, an electrocardiogram (ECG) sensor, and a conductance-reactivity (GSR) sensor. The biometric sensor may measure a user's biometric signals (e.g., signals such as bioimpedance, ECG, heart rate, blood pressure, blood oxygen saturation, stress, and / or conductance-reactivity). For example, a motion sensor may include at least one of an accelerometer and a gyroscope.

[0062] For example, the main device for providing user-customized healthcare functions may be a smartphone 201 or a wearable electronic device (e.g., a smartwatch 202). For example, the peripheral device for supporting user-customized healthcare functions may be at least one of a smartphone 201, a wearable electronic device (e.g., a smartwatch 202), an IoT device 240, and a sensor 205.

[0063] According to an embodiment, the external electronic device 300 may include a digital prescription generator 310. The external electronic device 300 may store a local database (DB) 320 and an electronic medical record (EMR) 330.

[0064] According to an embodiment, the digital prescription generator 310 may include hardware structures (e.g., Figure 3b The processor 370) and / or software architecture (e.g., stored in...) Figure 3b (Programs, applications, or instructions in memory 380).

[0065] In embodiments, both the digital prescription generator 310 and / or the user-customized information generator 210 may be implemented in the form of a generative artificial intelligence (AI) model or by employing a generative AI model. In some embodiments, the digital prescription generator 310 and the user-customized information generator 210 may be implemented to interact with different external generative AI models, respectively. Alternatively, the generative AI model of the digital prescription generator 310 and the generative AI model of the user-customized information generator 210 may be integrated.

[0066] According to an embodiment, if the user (or patient) of electronic device 200 visits a hospital or receives medical care from a doctor via remote access, the doctor can examine and diagnose the patient and administer treatment if necessary. External electronic device 300 can record medical information corresponding to treatment details in EMR 330 based on the doctor's input. Digital prescription generator 310 of external electronic device 300 can generate (or issue) an initial digital prescription (or primary digital prescription) based on the medical information recorded in EMR 330 and basic data (e.g., Clinical Decision Support System (CDSS)) in local DB 320.

[0067] According to an embodiment, the user-customized information generator 210 of the electronic device 200 can be communicatively connected to the digital prescription generator 310 of the external electronic device 300 to send the user's personal information to the digital prescription generator 310 via the communication connection. In this embodiment, the personal information may include personal device information 225. In this embodiment, the personal information may also include personal health information 221.

[0068] According to an embodiment, the digital prescription generator 310 of the external electronic device 300 can generate a secondary digital prescription based on personal information received from the electronic device 200 and / or device configuration information for user-customized prescriptions.

[0069] According to an embodiment, the digital prescription generator 310 of the external electronic device 300 can generate a modified digital prescription (or secondary digital prescription) based on personal information (e.g., personal health information 221) received from the user-customized information generator 210 of the electronic device 200 using a generative AI model. For example, the generative AI model can analyze a patient's symptoms or a prescription specified by a doctor and the doctor's opinions through the initial digital prescription, and generate (or issue) a digital prescription (or secondary digital prescription) based on the analysis results and personal health information 221 to induce the patient to perform various health activities (e.g., measurement activities, exercise activities, or sleep activities) in daily life from now until the next visit.

[0070] According to an embodiment, the digital prescription generator 310 of the external electronic device 300 can utilize a generative artificial intelligence model to generate device configuration information for providing user-customized prescriptions based on digital prescriptions (or secondary digital prescriptions) and personal information (e.g., personal device information 225).

[0071] According to an embodiment, the generative AI model of the digital prescription generator 310 can identify one or more devices that can be used for health activities specified in the digital prescription, based on personal device information 225 received from the user-customized information generator 210 and registered in the healthcare application of the electronic device 200. The generative AI model can generate device configuration information (e.g., prompts specifying device-specific operating commands) for the identified one or more devices. For example, the generated device configuration information may include target item settings related to at least one device registered in the healthcare application of the electronic device 200 (e.g., smartphone 201, wearable electronic device (e.g., smartwatch 202), or sensor 205). For example, the target item settings may include settings for measurements (e.g., steps, heart rate, blood pressure, body temperature, or body composition) to be managed or monitored by the healthcare application installed on the electronic device 200 from now until the next medical treatment, reference values ​​(e.g., target values) associated with each measurement, measurement cycle, measurement frequency, measurement time per measurement, measurement period, or concurrent measurement items. The generated device configuration information can be sent to the user customization information generator 210 of the electronic device 200.

[0072] According to an embodiment, the external electronic device 300 can display device configuration information generated by the digital prescription generator 310 for the doctor to view, and send the device configuration information to the electronic device 200 in response to the doctor's approval input regarding the device configuration information.

[0073] According to an embodiment, the user-customized information generator 210 of electronic device 200 can generate healthcare guidance information 230 related to at least one device registered in the healthcare application of electronic device 200 based on device configuration information received from the digital prescription generator 310 of external electronic device 300. The user-customized information generator 210 can provide the healthcare guidance information 230 to the user to guide the user's health activities according to a digital prescription. The user-customized information generator 210 can also control at least one device registered in the healthcare application of electronic device 200 based on the healthcare guidance information 230 to support the user's health activities according to a digital prescription.

[0074] According to an embodiment, the user-customized information generator 210 may use a generative AI model to generate healthcare guidance information 230. The healthcare guidance information 230 generated by the user-customized information generator 210 may include at least a portion of scheduling information related to the user's health activities (e.g., scheduling information for measurement, exercise, or sleep activities), guidance content (e.g., images, videos, or audio representing suggestions, guidance, or coaching messages for measurement, exercise, or sleep activities), or device control information. The device control information (e.g., prompts specifying device-specific operating commands) may correspond to device configuration information received from the digital prescription generator 310. For example, the device control information may be the same as the device configuration information, or it may be processed from or updated from the device configuration information.

[0075] In some embodiments, device configuration information generated by digital prescription generator 310 can be readjusted by user-customized information generator 210 and fed back to digital prescription generator 310 of external electronic device 300. For example, if a patient, as a user of electronic device 200, does not consent to sharing his / her personal information with external electronic device 300, user-customized information generator 210 can readjust (e.g., filter) the device configuration information based on the personal information stored on electronic device 200, and then feed back the readjusted device configuration information to digital prescription generator 310 of external electronic device 300. The fed-back device configuration information can ultimately be approved by digital prescription generator 310 of external electronic device 300 or by a physician.

[0076] Figure 3a This is a block diagram of an electronic device 200 according to an embodiment.

[0077] Reference Figure 3a The electronic device 200 is an electronic device for a user (e.g., a patient visiting a hospital or a patient remotely accessing an external electronic device 300) and may include communication circuitry 250, a display 260, a processor 270, and a memory 280. Figure 3aThe electronic device 200 can correspond to Figure 1 The electronic device 101 shown or Figure 2 The electronic device 200 shown. For example, the electronic device 200 may be a smartphone 201 carried by the user or a wearable electronic device (e.g., a smartwatch 202) worn by the user.

[0078] According to an embodiment, the electronic device 200 may be equipped with a healthcare application to provide user-customized healthcare functions.

[0079] In an embodiment, the communication circuit 250 (e.g., Figure 1 The communication module 190 can communicate with one or more external electronic devices (e.g., Figure 1 Electronic devices 104 Figure 1 Server 108 or Figure 2 The external electronic device 300 establishes a communication connection and sends and receives various data. For example, the communication circuit 250 may support at least one of the following communication schemes: cellular communication, Internet, WiFi, Bluetooth, near field communication (NFC), or ultra-wideband (UWB) communication.

[0080] In an embodiment, processor 270 (e.g., Figure 1 The processor 120 can run applications and control various hardware by executing code or instructions written in a programming language stored in the memory 280 of the electronic device 200. As the code stored in the memory 280 is executed, the processor 270 can be driven to perform a specified function (or logic). Alternatively, the processor 270 can execute instructions stored in the memory 280 to perform a specified function (or logic).

[0081] In an embodiment, memory 280 (e.g., Figure 1 The memory 130 can store various data used by at least one component of the electronic device 200 (e.g., processor 270 or communication circuit 250). The data may include, for example, software (e.g., programs, applications, or instructions) and input or output data associated with commands thereto.

[0082] In an embodiment, memory 280 (e.g., Figure 1 The memory 130 can store instructions for controlling the processor 270 to perform various operations when it is running.

[0083] In an embodiment, the display 260 (e.g., Figure 1The display module 160 can visually provide (or display) information to the outside of the electronic device 200 (e.g., to a user). In an embodiment, the display 260 may include a touch sensor configured to detect touch and / or a pressure sensor configured to measure the amplitude of the force generated by the touch.

[0084] According to an embodiment, processor 270 (e.g., Figure 1 The processor 120 may include at least one processor. The processor 270 may receive access requests from the external electronic device 300 via communication circuitry 250. The processor 270 may receive user input in response to the access request and, based on the user input, send the user's personal information to the external electronic device 300 via communication circuitry 250. The personal information may include personal device information of at least one of the user's devices (e.g., ...). Figure 2 Personal device information 225). Personal information may also include the user's personal health information (e.g., Figure 2 Personal health information (221).

[0085] According to an embodiment, processor 270 can receive device configuration information generated based on user personal information and digital prescriptions from external electronic device 300 via communication circuit 250. Processor 270 can generate healthcare guidance information related to at least one device based on the device configuration information (e.g., ...). Figure 2 Healthcare guidance information 230).

[0086] According to an embodiment, based on healthcare guidance information, the processor 270 can display a user interface (e.g., [missing information]) on the display 260 to guide the user's health activities. Figure 7 The first frame 710). The processor 270 can communicate with at least one device (e.g., via the communication circuit 250). Figure 7 The device sends control commands to the smartwatch 202, speaker 241, or television 242 to support the user's health activities.

[0087] According to an embodiment, at least one device for a user to use user-customized healthcare functions may include at least one of an electronic device 200 (e.g., a smartphone 201 and a smartwatch 202) and one or more other electronic devices (e.g., another of a smartphone 201 and a smartwatch 202, a sensor 205, or an IoT device 240).

[0088] According to an embodiment, at least one device for a user to customize healthcare functions may include a main device and one or more peripheral devices.

[0089] According to an embodiment, at least one device for user-customized healthcare functions may include one or more of a smartphone 201, a wearable electronic device (e.g., a smartwatch 202), an IoT device (e.g., a speaker 241, a television 242, an air purifier 243, a lamp 244), or a sensor 205.

[0090] According to an embodiment, the user interface illustrating healthcare guidance information may include information related to one or more of the following: measurement activities, exercise activities, sleep activities, schedules, or guidance content associated with health activities. Device control commands sent to at least one of the user's devices may be intended to instruct functions to be executed on each of the at least one device to support the user's health activities.

[0091] According to an embodiment, based on the scheduling information included in the healthcare guidance information, the processor 270 may repeatedly (e.g., periodically or whenever a specified event occurs) display a user interface showing the healthcare guidance information and send device control commands to at least one device of the user for a specified period of time (e.g., from now until the next medical treatment).

[0092] According to an embodiment, processor 270 can display a user interface guiding the user's initial health activities. Processor 270 can use at least one of the user's at least one device to collect information about the user's actual health activities. Based on the collected actual health activity information, processor 270 can update the healthcare guidance information and / or display the user interface for the healthcare guidance information. Processor 270 can display the updated user interface and send device control commands related to the updated user interface to at least one of the user's devices.

[0093] According to an embodiment, the processor 270 may display a user interface on the display 260 that queries the level of privacy exposure (e.g., whether privacy is protected or the level of privacy protection). For example, the user interface may include text and / or images.

[0094] In an embodiment, the user interface that inquires about the level of privacy exposure can be implemented in at least one of the following types: visual (e.g., screen), auditory (e.g., audio, sound), and tactile (e.g., vibration). For example, the processor 270 can use the display 260, the audio module 170, and the tactile module 179 to output the user interface in a manner such as a pop-up window, a window (running) screen, a sound notification, or a vibration notification.

[0095] According to an embodiment, based on user input to a user interface that inquires about the level of privacy exposure, processor 270 may send only some information filtered from personal information stored in electronic device 200 based on the level of privacy exposure to external electronic device 300.

[0096] According to an embodiment, processor 270 can identify whether electronic device 200 is located at a specified location (e.g., home). If electronic device 200 is located at the specified location, processor 270 can display a user interface presenting healthcare guidance information and send device control commands for at least one of the user's devices.

[0097] According to an embodiment, processor 270 can identify, based on device configuration information received from external electronic device 300, whether it is necessary to use an additional device not included in at least one of the user's devices. If the additional device is required, processor 270 can search for locations where the additional device is available. Processor 270 can display an indicator guiding users to the searched location within a user interface that represents healthcare guidance information.

[0098] Figure 3b This is a block diagram of an external electronic device 300 (e.g., a hospital server) according to an embodiment.

[0099] Reference Figure 3b The external electronic device 300 is an electronic device used by doctors for medical consultation, and may include communication circuitry 350, processor 370, and memory 380. The external electronic device 300 may also include a display 360.

[0100] Figure 3b The external electronic device 300 can correspond to Figure 1 Server 108 Figure 1 Electronic device 104 or Figure 2 External electronic device 300.

[0101] In one embodiment, the display 360 can visually provide (or display) information to the outside of the external electronic device 300 (e.g., a doctor).

[0102] In this embodiment, the processor 370 can run applications and control various hardware by executing code or instructions written in a programming language stored in the memory 380 of the external electronic device 300. As the code stored in the memory 380 is executed, the processor 370 can be driven to perform a specified function (or logic). Alternatively, the processor 370 can execute instructions stored in the memory 380 to perform a specified function (or logic).

[0103] According to an embodiment, processor 370 may include at least one processor.

[0104] In one embodiment, the memory 380 may store instructions for controlling the processor 370 to perform various operations when it is in use.

[0105] According to an embodiment, processor 370 can generate an initial digital prescription based on medical information entered by a doctor. Processor 370 can send an access request to the user's electronic device 200 via communication circuitry 350. Processor 370 can receive the user's personal information from the electronic device 200 via communication circuitry 350. The personal information may include device information of at least one device (e.g., ...). Figure 2 Personal device information 225). Personal information may also include the user's personal health information (e.g., Figure 2 Personal health information (221).

[0106] According to an embodiment, processor 370 can generate a modified digital prescription (e.g., a secondary digital prescription) based on the user's personal information received from electronic device 200. Processor 370 can also generate device configuration information for user-customized prescriptions based on the digital prescription. Processor 370 can transmit the generated device configuration information to electronic device 200 via communication circuitry 350.

[0107] According to an embodiment, processor 370 can determine whether any necessary devices required for the prescription are missing based on the digital prescription and the user's personal device information. If any necessary devices are missing, processor 370 can add the information of the necessary devices to the device configuration information to be sent to electronic device 200.

[0108] For example, processor 370 can identify, based on a digital prescription, that the user of electronic device 200 is a diabetic patient who needs to perform accurate blood glucose measurements at least twice a week using a dedicated blood glucose meter. Based on the user's personal device information, processor 370 can identify that the user's smartphone 201 or smartwatch 202 does not have a sensor with the functional specifications required for accurate blood glucose measurement. In this case, processor 370 can add information about a dedicated blood glucose meter to the device configuration information and / or notify the user that accurate blood glucose measurements are required at least twice a week.

[0109] Subsequently, refer to Figure 4 , Figure 5a and Figure 5b This describes methods of operating an electronic device for user-customized healthcare, according to various embodiments. These methods can be executed sequentially. Figure 4 , Figure 5a and Figure 5bThe operations shown in the embodiments are not necessarily performed sequentially. For example, the order of operations can be changed, and at least two operations can be performed in parallel. Alternatively, at least one of the operations shown can be omitted, the order of some operations can be changed, some operations can be combined, or other operations can be added. At least some operations of the operation methods of the electronic devices for user-customized healthcare according to various embodiments described herein can be performed correspondingly to or in combination with each other.

[0110] Figure 4 This is a flowchart illustrating a user-customized healthcare method using a healthcare system according to an embodiment.

[0111] The healthcare system according to the embodiments may include an electronic device 200 and an external electronic device 300.

[0112] Reference Figure 4 The user-customized healthcare method of the healthcare system according to the embodiment may include operation 410, operation 420, operation 430, operation 440, operation 450, operation 460, operation 470, operation 480, operation 490 and operation 495.

[0113] In operation 410, external electronic device 300 can record medical information related to medical records (e.g., details of medical examinations, diagnoses, and treatments) generated during a consultation between the doctor and the patient, who is the user of electronic device 200 (e.g., smartphone 201), into EMR 330 based on input from the doctor.

[0114] For example, if the user of electronic device 200 (e.g., smartphone 201) is a 48-year-old male patient who visits the hospital due to headaches persisting for two weeks while walking in the morning, the doctor can conduct a medical examination regarding the patient's symptoms and lifestyle, and discover from last year's health checkup recorded on the EMR 330 of external electronic device 300 that the patient has borderline hypertension. If the doctor measures blood pressure and determines hypertension with a result of 145 / 92 mmHg, the doctor can diagnose the headache as a symptom caused by hypertension and enter the corresponding diagnosis into the EMR 330.

[0115] In operation 420, external electronic device 300 can generate an initial digital prescription (or primary digital prescription) based on medical information recorded in EMR 330 in operation 410 and local DB 320 (e.g., CDSS).

[0116] For example, if a doctor enters a prescription generation request on the screen of the external electronic device 300, the digital prescription generator 310 of the external electronic device 300 can automatically set and display a default template on the screen. The default template can reflect the medical information entered by the doctor (e.g., medical examinations, diagnostic results, and treatment details).

[0117] For example, a primary digital prescription can be a document containing prescription details and may include medication information (e.g., an antihypertensive drug to be taken twice daily for two weeks) and / or target item settings information required to monitor and manage the patient's health status (e.g., required blood pressure management, current blood pressure value, or target blood pressure range).

[0118] In operation 430, the external electronic device 300 may send an access request to the patient's electronic device 200 (e.g., smartphone 201).

[0119] For example, a doctor can identify whether a patient has a wearable electronic device, and if the patient has a wearable electronic device, the doctor can request a connection between the external electronic device 300 and the electronic device 200 (e.g., smartphone 201) via the external electronic device 300.

[0120] In operation 440, electronic device 200 (e.g., smartphone 201) may display a user interface on its screen asking the user whether they consent to access and / or use of personal information by the external electronic device 300 in response to an access request from external electronic device 300. If the patient consents to access and / or use of personal information by the external electronic device 300 in response to the user interface displayed on the screen of electronic device 200, operation 450 can proceed. In operation 450, electronic device 200 may process personal information stored locally on electronic device 200 into a specified file format and send it to external electronic device 300. Personal information may include personal device information of at least one of the patient's devices (e.g., model name of a wearable electronic device). Personal information may also include personal health information (e.g., user profile information and / or basic health information).

[0121] In operation 460, external electronic device 300 may generate a modified digital prescription (or secondary digital prescription) based on personal information (e.g., personal health information) received from electronic device 200 (e.g., smartphone 201) from the initial digital prescription (or primary digital prescription) generated in operation 420.

[0122] For example, the digital prescription generator 310 of the external electronic device 300 can generate a secondary digital prescription based on pre-stored fitness and medical knowledge data and the patient's personal health information received from the electronic device 200.

[0123] For example, a secondary digital prescription is a document that records modifications, adjustments, or updates made to a primary digital prescription and may include adjusted medication information (e.g., adjustments to the components of an antihypertensive drug based on the patient’s recent health status or medical history) and / or adjusted target item settings information (e.g., settings regarding required blood pressure management, current blood pressure value, target blood pressure range, and recommended health activities taking into account the patient’s age, sex, medical history, recent health status, or average activity level).

[0124] In operation 470, external electronic device 300 can generate device configuration information for user-customized prescriptions based on the secondary digital prescription generated in operation 460 and personal information (e.g., personal device information) received in operation 450.

[0125] For example, the digital prescription generator 310 of the external electronic device 300 can generate device configuration information based on secondary digital prescriptions and personal device information. The device configuration information may include target item settings for monitoring and / or managing the patient's health activities in daily life.

[0126] For example, the digital prescription generator 310 of the external electronic device 300 can identify the functional specifications of the smartwatch 202 as a wearable electronic device owned by the patient, or the type of one or more sensors embedded in the smartwatch 202, based on personal device information (e.g., model name of the smartwatch 202) received from the electronic device 200 (e.g., smartphone 201). The digital prescription generator 310 can generate device configuration information based on the identified functional specifications or the type of one or more sensors.

[0127] For example, device configuration information may include target item settings related to the measurement items, reference values ​​(e.g., target values) associated with each measurement item, measurement cycle, measurement frequency, measurement duration per session, measurement period, or concurrent measurement items. For example, measurement items may be set for steps, heart rate, heart rate variability (HRV), blood pressure, body temperature, body composition, or sleep quality. For heart rate or HRV, the measurement cycle (e.g., every 10 minutes) and measurement duration (e.g., 1 minute per measurement) can be set. For steps, a daily target step count (e.g., 5000 steps) can be set. For body composition, the measurement cycle (e.g., every two weeks) can be set. For sleep quality, the sleep start time or sleep duration can be set.

[0128] In operation 480, external electronic device 300 can send the device configuration information generated in operation 470 to the patient's electronic device 200 (e.g., smartphone 201).

[0129] In operation 490, electronic device 200 (e.g., smartphone 201) can generate healthcare guidance information related to at least one of the patient's devices (e.g., smartwatch 202) based on device configuration information received from external electronic device 300.

[0130] In operation 495, electronic device 200 may display a user interface for guiding the patient's health activities based on healthcare guidance information generated in operation 490 (e.g., Figure 7 The first image 710) and at least one device for the patient (e.g., Figure 7 The device sends control commands to the smartwatch 202, speaker 241, or television 242 to support health activities.

[0131] If the patient does not consent to the connection to and / or use of personal information by the external electronic device 300 in operation 440, the patient's personal information stored on the electronic device 200 may not be sent to the external electronic device 300. Therefore, in operation 480, the patient's personal information may not be reflected when generating the device configuration information to be provided to the electronic device 200. In this case, the user-customized information generator 210 of the electronic device 200 may readjust (e.g., filter) the device configuration information received from the external electronic device 300 based on the patient's personal information stored on the electronic device 200.

[0132] For example, primary device configuration information (e.g., device configuration information related to steps, body composition, or sleep quality) generated by the digital prescription generator 310 using an initial digital prescription and personal information stored in the electronic device 200 can be combined and input as a query into the user-customized information generator 210. The user-customized information generator 210 can readjust parameters, ranges, or specific values ​​contained in the initial device configuration information based on the personal information. For example, if the user-customized information generator 210 analyzes the patient's personal information and finds that the patient's current activity trend (e.g., activity trend over recent months) is decreasing in activity level, and the daily target steps specified by the primary device configuration information are approximately 5,000 steps, then the user-customized information generator 210 can increase the target steps to approximately 6,000 steps to improve the patient's activity level. For example, if the personal information analysis indicates that although the patient's wearable electronic device is a model with body composition measurement functionality, the body composition measurement function has never been used, then the user-customized information generator 210 can modify the body composition measurement cycle to once a week and set a user classification flag indicating that the patient is a first-time user of the body composition measurement function. For example, if the sleep start time specified by the initial device configuration information is 10 p.m., but the personal information analysis results show that the user's average sleep duration is 7 hours and the average sleep start time is 11 p.m., then the user customization information generator 210 can modify the sleep start time to approximately 11 p.m. or 10:30 p.m.

[0133] According to an embodiment, the user-customized information generator 210 of the electronic device 200 can feed back self-adjusted device configuration information to the digital prescription generator 310 of the external electronic device 300. The fed-back device configuration information can be ultimately approved by the digital prescription generator 310 of the external electronic device 300 or by a doctor.

[0134] According to an embodiment, if there is no digital prescription history for the patient (e.g., at the initial visit), the external electronic device 300 can issue a digital prescription by utilizing the personal information stored in the patient's electronic device 200, and then store the digital prescription history in the local DB 320.

[0135] According to an embodiment, if a patient's digital prescription history exists in the local DB 320 (e.g., at the next visit after the initial visit), the digital prescription generator 310 of the external electronic device 300 can, in conjunction with the user-customized information generator 210 of the electronic device 200, obtain various health activity outcome information related to previously issued digital prescriptions, such as patient participation and compliance or goal achievement rates. Using this various health activity outcome information, the digital prescription generator 310 of the external electronic device 300 can provide physicians with evolving user-customized suggestions, guidance, or instruction when issuing subsequent digital prescriptions.

[0136] Figure 5a This is a flowchart illustrating the operation method of the electronic device 200 according to an embodiment.

[0137] The operation method of the electronic device 200 according to the embodiment may be for providing user-customized healthcare functions. For ease of description, the method is assumed to be performed by... Figure 2 and Figure 3a The electronic device 200 performs the operation. However, this is not the only limitation. For example, the method can be performed by... Figure 1 Electronic device 101 Figure 1 Processor 120 Figure 2 User-customized information generator 210 or Figure 3a Executed by any of the processors 270.

[0138] Reference Figure 5a The operation method of the electronic device 200 according to the embodiment may include operation 510, operation 520, operation 530, operation 540, operation 550 and operation 560.

[0139] In operation 510, electronic device 200 (e.g., smartphone 201) can receive access requests from external electronic device 300 via communication circuit 250.

[0140] In operation 520, electronic device 200 (e.g., smartphone 201) can receive user input for access requests from external electronic device 300.

[0141] In operation 530, electronic device 200 (e.g., smartphone 201) can transmit user personal information stored in electronic device 200 to external electronic device 300 via communication circuit 250 based on user input entered in operation 520. In embodiments, the personal information may include personal device information of at least one of the user's devices. In embodiments, the personal information may also include the user's personal health information (e.g., user profile information and / or basic health information).

[0142] For example, at least one of a user's devices can be registered in a healthcare application on electronic device 200 (e.g., smartphone 201). Electronic device 200 can store personal device information of at least one device and provide the personal device information to external electronic device 300 during a medical consultation.

[0143] For example, a healthcare application on an electronic device 200 (e.g., a smartphone 201) may store user profile information and / or basic health information collected from daily activities, and provide the user profile information and / or basic health information to an external electronic device 300 during medical treatment.

[0144] According to an embodiment, at least one device that can be used for user-customized healthcare functions may include one or more of a smartphone 201, a wearable electronic device (e.g., a smartwatch 202), an IoT device 240, or a sensor 205.

[0145] According to an embodiment, at least one device that can be used for user-customized healthcare functions may include at least one of electronic device 200 (e.g., one of smartphone 201 and smartwatch 202) and one or more other electronic devices (e.g., another of smartphone 201 and smartwatch 202, sensor 205, or IoT device 240).

[0146] According to an embodiment, at least one device that can be used for user-customized healthcare functions may include a main device (e.g., a smartphone 201) and one or more peripheral devices (e.g., wearable electronic devices (e.g., smartwatches 202), IoT devices 240, or sensors 205).

[0147] In operation 540, electronic device 200 (e.g., smartphone 201) can receive device configuration information generated based on the user's personal information and digital prescription from external electronic device 300 via communication circuit 250.

[0148] In operation 550, electronic device 200 (e.g., smartphone 201) can generate healthcare guidance information related to at least one of the user's devices based on device configuration information received in operation 540.

[0149] In operation 560, electronic device 200 (e.g., smartphone 201) can display a user interface on display 260 to guide the user's health activities based on healthcare guidance information generated in operation 550. Figure 7 The first screen 710), and via communication circuit 250 send device control commands to at least one device to support health activities.

[0150] According to an embodiment, the user interface may include information related to one or more of the following: measurement activities, exercise activities, sleep activities, schedules, or guidance content, all relevant to the user's health activities. Device control commands may be designed to support health activities by instructing functions to be executed on each of at least one device.

[0151] For example, at least one device (e.g., a peripheral device, a wearable electronic device such as a smartwatch 202, a speaker 241, or a television 242) registered in a healthcare application on electronic device 200 (e.g., smartphone 201, the main device) can interact with the healthcare application of electronic device 200 to output a user interface (e.g., such as...) when receiving device control commands from electronic device 200 (e.g., smartphone 201). Figure 7 The audio message 720, the guidance content 730, or the second screen 740 shown are used to support the patient's health activities.

[0152] According to an embodiment, the display user interface and device control commands can be repeatedly executed and sent during a specified period of time (e.g., for two weeks until the next visit or daily at a specified time) based on the scheduling information included in the healthcare guidance information.

[0153] According to an embodiment, electronic device 200 (e.g., smartphone 201) may display a user interface guiding the user through initial health activities and use at least one of the user's devices (e.g., a wearable electronic device such as a smartwatch 202) to collect the user's actual health activity information. Electronic device 200 may update the user interface based on the collected actual health activity information. Electronic device 200 may display the updated user interface and send device control commands related to the updated user interface to at least one device.

[0154] According to an embodiment, electronic device 201 (e.g., smartphone 201) may display a user interface on display 260 that inquires about the level of privacy exposure (e.g., whether privacy is protected or the level of privacy protection). For example, in response to an access request from external electronic device 300, the screen of electronic device 200 (e.g., smartphone 201) may display a message such as “Would you like to apply privacy protection options if sharing your personal information with the hospital?” Based on user input to the user interface (e.g., user input activating privacy protection options), electronic device 200 may send only some information filtered from the user's personal information stored on electronic device 200 according to the level of privacy exposure to external electronic device 300. This filtering restricts the sharing of information with a high level of privacy or sensitivity within the personal information.

[0155] According to an embodiment, electronic device 200 (e.g., smartphone 201) can identify whether electronic device 200 is located at a designated location (e.g., home). If located at the designated location, electronic device 200 can display a user interface for healthcare guidance information and send device control commands related to the healthcare guidance information.

[0156] According to an embodiment, electronic device 200 (e.g., smartphone 201) can identify whether it is necessary to use an additional device not included in at least one of the user's devices based on device configuration information received from external electronic device 300. If it is necessary to use the additional device, electronic device 200 can search for locations where the additional device is available and include and display indicators within a user interface for healthcare guidance information to direct the user to the searched locations. For example, if the user is a diabetic patient who needs to use a dedicated blood glucose meter for diabetes management but does not own one, electronic device 200 can search for locations near the user's home where a dedicated blood glucose meter is available (e.g., a public health center or hospital) and provide the user with a user interface directing the user to the searched locations.

[0157] Figure 5b This is a flowchart illustrating the operation method of the external electronic device 300 according to an embodiment.

[0158] Reference Figure 5b The operation method of the external electronic device 300 according to the embodiment may include operation 515, operation 525, operation 535, operation 545, and operation 555. For ease of explanation, it is assumed that the method is performed by... Figure 2 and Figure 3b The method is executed by an external electronic device 300. However, this is not the only possibility. For example, the method can be performed by... Figure 1 Server 108 Figure 2 Digital Prescription Generator 310 or Figure 3b Executed by any of the processors 370.

[0159] In operation 515, external electronic device 300 can generate a digital prescription (e.g., a primary digital prescription) based on medical information input by a doctor (e.g., medical examinations, diagnostic results, treatment procedure details).

[0160] In operation 525, the external electronic device 300 can send an access request to the patient's (or user's) electronic device 200 via the communication circuit 350.

[0161] In operation 535, external electronic device 300 can receive the patient's personal information from electronic device 200 via communication circuit 350. According to an embodiment, the personal information may include personal device information of at least one device. According to an embodiment, the personal information may also include the patient's personal health information (e.g., profile information and / or basic health information).

[0162] In operation 545, external electronic device 300 can generate device configuration information for user-customized prescriptions based on the digital prescription generated in operation 515 and the personal information received in operation 535.

[0163] According to an embodiment, in operation 545, the external electronic device 300 can generate device configuration information for user-customized prescriptions based on a digital prescription (e.g., a primary digital prescription) and personal information of the patient received from the electronic device 200 (e.g., personal device information).

[0164] According to an embodiment, in operation 545, the external electronic device 300 can generate a digital prescription (e.g., a secondary digital prescription) modified from the initial digital prescription (e.g., a primary digital prescription) based on the patient's personal information (e.g., personal health information) received from the electronic device 200. Next, the external electronic device 300 can generate device configuration information for user-customized prescriptions based on the generated digital prescription (e.g., the secondary digital prescription) and personal information (e.g., personal device information).

[0165] In operation 555, external electronic device 300 can send the device configuration information generated in operation 545 to the patient's electronic device 200 via communication circuit 350.

[0166] According to an embodiment, the external electronic device 300 can determine whether a necessary device required for the prescription (e.g., a dedicated blood glucose meter) is missing based on the digital prescription and personal device information received from the patient's (or user's) electronic device 200. If a necessary device required for the prescription is missing, the external electronic device 300 can add the necessary device information to the device configuration information to be sent to the electronic device 200.

[0167] Figure 6 This is an example of a user interface for user-customized healthcare functions of an electronic device 200 according to an embodiment. Figure 6 The user interface in the device can be designed to set goals for supporting user-customized healthcare functions. The electronic device 200 can be equipped with healthcare applications to provide user-customized healthcare functions. For example, the electronic device 200 could be a user's (or patient's) smartphone 201.

[0168] According to an embodiment, if a user visits a hospital for treatment, the user's electronic device 200 can provide the user's personal device information to an external electronic device 300.

[0169] Table 1 below shows a user's personal device information. Referring to Table 1, personal device information may include information related to at least some of the following: device ID, device type, model name, or whether it is activated and interacts with a healthcare application relative to at least one device.

[0170] Table 1

[0171] According to an embodiment, external electronic device 300 can use the user's personal device information as shown in Table 1 to generate device configuration information for user-customized prescriptions, and then send the device configuration information to electronic device 200. Electronic device 200 can store the device configuration information for user-customized prescriptions received from external electronic device 300. The device configuration information can be information associated with at least one of the user's devices. At least one device can include at least one of various devices registered in the healthcare application of electronic device 200, such as smartphone 201, wearable electronic device (e.g., smartwatch 202), sensor 205, or IoT device 240.

[0172] Figure 6 The first screen 610 and the second screen 620 shown may be user interfaces of a target device used to set up at least one device for a user to actually interact with a healthcare application of the electronic device 200.

[0173] For example, after visiting a hospital and receiving treatment, a user can run a healthcare application that provides customized healthcare functions via electronic device 200. As the healthcare application is running, electronic device 200 can display things such as... Figure 6 The first screen 610 shows the user interface.

[0174] Reference Figure 6 The first screen 610 of the electronic device 200 may include menus 611 and 612 for asking whether to activate automatic settings of at least one of the user's devices based on device configuration information received from the external electronic device 300 for user-customized prescriptions. The user can approve automatic settings by selecting the agree menu 611 on the first screen 610, or refuse automatic settings by selecting the refuse menu 612.

[0175] In this embodiment, if the user selects the "agree" menu 611, various devices registered in the healthcare application (e.g., smartwatch 202 or IoT device 240) can be automatically set to work with the healthcare application for a specified time period (e.g., from now until the next scheduled medical appointment). In this case, the various devices can work in conjunction with the healthcare application to support the user in customizing healthcare functions.

[0176] Additionally, if the user selects to agree to menu 611, the interaction between the healthcare app and the app can be automatically set up.

[0177] In an embodiment, if the user selects the more details menu 613 within the first screen 610, the first screen 610 can switch to the second screen 620.

[0178] Reference Figure 6 The second screen 620 of the electronic device 200 may include a first area 621 and a second area 622 displaying a plurality of user devices registered in the healthcare application. The first area 621 displays registered wearable electronic devices (e.g., smartwatch 202) and may include an on / off menu for selecting whether to interoperate between the wearable electronic devices and the healthcare application. The second area 622 displays registered IoT devices 240 (e.g., speaker 241, television 242, air purifier 243, or lamp 244) and may include an on / off menu for selecting whether to interoperate between the IoT devices 240 and the healthcare application.

[0179] In an embodiment, the second screen 620 of the electronic device 200 may further include a third area 623 showing applications for interacting with the healthcare application (e.g., an alarm clock application, a pedometer application, or a sleep care application). The third area 623 may include an on / off menu for selecting whether each application interacts with the healthcare application.

[0180] In an embodiment, the electronic device 200 may set the actual interaction target in the device and / or application for interacting with the healthcare application based on user input settings for the first screen 610 or the second screen 620.

[0181] For example, if a user selects the consent menu 611 on the first screen 610 to consent to the automatic settings of multiple devices and multiple applications registered in the healthcare service, then the multiple devices and multiple applications can be jointly set as the interactive working target of the healthcare application.

[0182] For example, if a user selects some of multiple devices and applications using the on / off menu on the second screen 620, only the selected devices and applications can be set as targets for interacting with healthcare applications.

[0183] Figure 7 This is another example of a user interface for user-customized healthcare functions of electronic device 200 according to an embodiment. Figure 7 It can display a user interface based on healthcare guidance information and send device control commands.

[0184] According to an embodiment, the electronic device 200 may be as follows: Figure 7 The smartphone 201 shown. Healthcare applications that provide user-customized healthcare features can be installed on the smartphone 201. However, Figure 7 The smartphone 201 and its user interface are merely examples to aid understanding. The electronic device 200 and the user interface output by the electronic device 200 are not limited thereto and can be applied, modified, and / or extended in various ways.

[0185] Reference Figure 7 The smartphone 201 is the main device for providing user-customized healthcare functions, and at least one device (e.g., one or more of a smartwatch 202, a speaker 241, and a television 242) may be a peripheral device for supporting user-customized healthcare functions.

[0186] In one embodiment, smartphone 201 can generate healthcare guidance information related to at least one of the user's devices based on device configuration information received from external electronic device 300. Smartphone 201 can display, for example... Figure 7The first screen 710 is a user interface designed to provide healthcare guidance information to the user. For example, the healthcare guidance information may include an indicator 711 showing the day's exercise goals, an indicator 712 showing medication information, and an indicator 713 for guiding necessary measurement activities.

[0187] In an embodiment, the smartphone 201 may set device control information for at least one device (e.g., one or more of a smartwatch 202, speaker 241, and television 242) to interact with the healthcare application based on device configuration information received from the external electronic device 300.

[0188] According to an embodiment, when a first screen 710 for healthcare guidance information is displayed on a smartphone 201, the smartphone 201, which operates as a main device, can send device control commands to at least one peripheral device (e.g., one or more of a smartwatch 202, a speaker 241, and a television 242) to support the user's health activities related to the healthcare guidance information.

[0189] For example, if the time for taking the blood pressure medication, as included in the healthcare guidance information (e.g., 9:00 AM), arrives, the smartphone 201 can send a first device control command to the speaker 241. The first device control command can instruct the speaker 241 to output an audio message 720 notifying the user of the blood pressure medication time.

[0190] For example, if the blood pressure measurement time included in the healthcare guidance information (e.g., 9 PM before sleep) arrives, smartphone 201 can send a second device control command to television 242 and a third device control command to smartwatch 202. The second control command can instruct television 242 to output guidance content 730 for instructing the posture for blood pressure measurement. The third control command can instruct smartwatch 202, as a wearable electronic device, to display a second screen 740 for performing blood pressure measurement, activate the biosensors of smartwatch 202 at the specified time, and thus wait for the user's blood pressure measurement.

[0191] Figure 6 and Figure 7 The user interface described herein is merely an example for illustration, and the scope of the embodiments disclosed herein is not limited thereto, but can be applied, modified, and / or extended in various ways.

[0192] According to various embodiments, electronic device 200 (e.g., Figure 2 , Figure 3a The electronic device 200 may include communication circuitry (e.g., Figure 3a Communication circuit 250), memory (e.g., Figure 3a The memory 280), the display (e.g., Figure 3aThe display 260) and at least one processor (e.g., Figure 3a The processor 270 may store instructions that, when executed by at least one processor, cause the electronic device to: receive an access request from an external electronic device via a communication circuit; receive user input in response to the access request; send personal information, including personal device information of at least one device, to the external electronic device via the communication circuit based on the user input; receive device configuration information generated based on the personal information and a digital prescription from the external electronic device via the communication circuit; generate healthcare guidance information related to at least one device based on the device configuration information; and display a user interface on a display to guide health activities based on the healthcare guidance information, and send device control commands to at least one device via the communication circuit to support the health activities.

[0193] According to various embodiments, at least one device may include at least one of electronic device 200 and one or more other electronic devices.

[0194] According to various embodiments, at least one device may include one or more of a smartphone, wearable electronic device, IoT device, or sensor.

[0195] According to various embodiments, the user interface may include information on one or more of the following related to health activities: measurement activities, exercise activities, sleep activities, schedules, or guidance content. Device control commands may be intended to support health activities by instructing functions to be executed on each of at least one device.

[0196] According to various embodiments, displaying a user interface and sending device control commands can be repeatedly performed at specified times based on scheduling information contained in healthcare guidance information.

[0197] According to various embodiments, instructions can be executed by at least one processor to cause an electronic device to: display a user interface for guiding an initial health activity of a user; use at least one device to collect actual health activity information of the user; update the user interface based on the collected actual health activity information, display the updated user interface, and send device control commands associated with the updated user interface.

[0198] According to various embodiments, instructions can be executed by at least one processor to cause an electronic device to: display a user interface on a screen that inquires about the level of privacy exposure; and, based on user input to the user interface, send only some information filtered from personal information based on the level of privacy exposure to an external electronic device.

[0199] According to various embodiments, instructions can be executed by at least one processor to cause an electronic device to: identify whether the electronic device is located at a specified location; and if the electronic device is located at the specified location, display a user interface and send device control commands.

[0200] According to various embodiments, instructions can be executed by at least one processor to cause an electronic device to: identify, based on device configuration information, whether it is necessary to use at least one additional device not included in the device; if it is necessary to use the additional device, search for a location where the additional device can be obtained; and display an indicator within a user interface guiding the searched location.

[0201] According to various embodiments, external electronic devices (e.g., Figure 2 , Figure 3b External electronic device 300) may include communication circuitry (e.g., Figure 3b Communication circuit 350), memory (e.g., Figure 3b The memory 380) and at least one processor (e.g., Figure 3b The processor 370 may store instructions that, when executed by at least one processor, cause an external electronic device to: generate a digital prescription based on input medical information; send an access request to the electronic device via a communication circuit; receive personal information from the electronic device via a communication circuit, the personal information including personal device information of at least one device; generate device configuration information for user-customized prescriptions based on the personal information and the digital prescription; and send the device configuration information to the electronic device via a communication circuit.

[0202] According to various embodiments, the instructions can be executed by at least one processor to cause an electronic device to: determine, based on digital prescription and personal device information, whether a necessary device required for the prescription is missing; and if a necessary device is missing, add the information of the necessary device to the device configuration information.

[0203] Electronic devices according to various embodiments (e.g., Figure 2 , Figure 3a The operation method of the electronic device 200 may include: from an external electronic device (e.g., Figure 2 , Figure 3b An external electronic device 300 receives an access request; receives user input in response to the access request; sends personal information to the external electronic device based on the user input, the personal information including personal device information of at least one device; receives device configuration information generated from the external electronic device based on the personal information and a digital prescription; generates healthcare guidance information related to at least one device based on the device configuration information; displays a user interface for guiding health activities based on the healthcare guidance information, and sends device control commands to at least one device to support health activities.

[0204] According to various embodiments, at least one device may include at least one of an electronic device and one or more other electronic devices.

[0205] According to various embodiments, at least one device may include one or more of a smartphone, wearable electronic device, IoT device, or sensor.

[0206] According to various embodiments, the user interface may include information on one or more of the following related to health activities: measurement activities, exercise activities, sleep activities, schedules, or guidance content. Device control commands may be intended to support health activities by instructing functions to be executed on each of at least one device.

[0207] According to various embodiments, displaying a user interface and sending device control commands can be repeatedly performed at specified times based on scheduling information contained in healthcare guidance information.

[0208] According to various embodiments, the display user interface may include: displaying a user interface for guiding the user's initial health activities; using at least one device to collect information about the user's actual health activities; and updating the user interface based on the collected information about the actual health activities, displaying the updated user interface, and sending device control commands related to the updated user interface.

[0209] According to various embodiments, sending personal information may include: displaying a user interface on a display that inquires about the level of privacy exposure; and, based on user input to the user interface, sending only some information filtered from the personal information based on the level of privacy exposure to an external electronic device.

[0210] According to various embodiments, the method may further include: identifying whether the electronic device is located at a designated location. If the electronic device is located at the designated location, a user interface can be displayed and device control commands can be sent.

[0211] According to various embodiments, the method may further include: identifying, based on device configuration information, whether it is necessary to use at least one additional device not included in the device; if it is necessary to use the additional device, searching for a location where the additional device can be obtained; and displaying an indicator within a user interface guiding to the searched location.

[0212] External electronic devices according to various embodiments (e.g., Figure 2 , Figure 3b The operation method of the external electronic device 300 may include: generating a digital prescription based on input medical information; transmitting the prescription to the electronic device (e.g., via a communication circuit) Figure 2 , Figure 3aThe electronic device 200 sends an access request; receives personal information from the electronic device via a communication circuit, the personal information including personal device information of at least one device; generates device configuration information for user-customized prescriptions based on the personal information and digital prescriptions; and sends the device configuration information to the electronic device via the communication circuit.

[0213] According to various embodiments, the method may further include: determining whether a necessary device required for the prescription is missing based on digital prescription and personal device information; and if the necessary device is missing, adding the information of the necessary device to the device configuration information.

[0214] Computer-readable recording media according to various embodiments can record information used for operating electronic devices (e.g., Figure 2 , Figure 3a A procedure for operating an electronic device 200, the method comprising: from an external electronic device (e.g., Figure 2 , Figure 3b An external electronic device 300 receives an access request; receives user input in response to the access request; sends personal information to the external electronic device based on the user input, the personal information including personal device information of at least one device; receives device configuration information generated from the external electronic device based on the personal information and a digital prescription; generates healthcare guidance information related to at least one device based on the device configuration information; displays a user interface for guiding health activities based on the healthcare guidance information, and sends device control commands to at least one device to support health activities.

[0215] Computer-readable recording media according to various embodiments can record information used to operate external electronic devices (e.g., Figure 2 , Figure 3b A procedure for operating an external electronic device 300, the method comprising: generating a digital prescription based on input medical information; transmitting the prescription to the electronic device (e.g., via a communication circuit) Figure 2 , Figure 3a The electronic device 200 sends an access request; receives personal information from the electronic device via a communication circuit, the personal information including personal device information of at least one device; generates device configuration information for user-customized prescriptions based on the personal information and digital prescriptions; and sends the device configuration information to the electronic device via the communication circuit.

[0216] The electronic device according to various embodiments can be one of a variety of types of electronic devices. Electronic devices may include, for example, portable communication devices (e.g., smartphones), computer devices, portable multimedia devices, portable medical devices, cameras, wearable devices, or home appliances. According to embodiments of this disclosure, the electronic device is not limited to those described above.

[0217] It should be understood that the various embodiments of this disclosure and the terminology used therein are not intended to limit the technical features set forth herein to the specific embodiments, but rather to include various changes, equivalents, or substitutions to the respective embodiments. In the description of the drawings, similar reference numerals may be used to refer to similar or related elements. It will be understood that the singular form of a noun corresponding to an item may include one or more things unless the relevant context clearly indicates otherwise. As used herein, each of the 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 include any one or all possible combinations of the items enumerated together with the corresponding phrase among the plurality of phrases. As used herein, terms such as “first” and “second” or “first” and “second” may be used to simply distinguish one component from another and do not limit the components in other respects (e.g., importance or order). It will be understood that, whether the terms “operably” or “communically” are used or not, if an element (e.g., a first element) is referred to as being “coupled”, “coupled to”, “connected”, or “connected to” another element (e.g., a second element), it means that the element can be directly (e.g., wiredly) coupled to the other element, wirelessly connected to the other element, or coupled to the other element via a third element.

[0218] As used in connection with various embodiments of this disclosure, the term "module" may include a unit implemented in hardware, software, or firmware, and may be used interchangeably with other terms such as "logic," "logic block," "part," or "circuit." A module may be a single integrated component adapted to perform one or more functions, or the smallest unit or part of such a single integrated component. For example, according to embodiments, a module may be implemented in the form of an application-specific integrated circuit (ASIC).

[0219] The various embodiments set forth herein can be implemented as software (e.g., program 140) containing one or more instructions readable by a machine (e.g., electronic device 101) stored in a storage medium (e.g., internal memory 136 or external memory 138). For example, under the control of a processor (e.g., processor 120) of the machine (e.g., electronic device 101), the processor can invoke and execute at least one instruction from one or more instructions stored in the storage medium, with or without the use of one or more other components. This enables the machine to operate to perform at least one function according to the invoked at least one instruction. The one or more instructions may include code generated by a compiler or code that can be run by an interpreter. The machine-readable storage medium may be provided in the form of a non-transitory storage medium. The term "non-transitory" means only that the storage medium is a tangible device and does not include signals (e.g., electromagnetic waves), but this term does not distinguish between data being stored semi-permanently in the storage medium and data being temporarily stored in the storage medium.

[0220] According to embodiments, methods according to various embodiments of this disclosure may be included and provided in a computer program product. The computer program product can be traded as a product between a seller and a buyer. The computer program product may be distributed in the form of a machine-readable storage medium (e.g., a compact disk read-only memory (CD-ROM)) or via an app store (e.g., the Play Store). TM The computer program product may be distributed online (e.g., downloaded or uploaded), or may be distributed directly between two user devices (e.g., smartphones) (e.g., downloaded or uploaded). If it is distributed online, at least a portion of the computer program product may be temporarily generated, or at least a portion of the computer program product may be temporarily stored in a machine-readable storage medium (such as the memory of a manufacturer's server, an app store's server, or a forwarding server).

[0221] According to various embodiments, each of the above-described components (e.g., a module or program) may include a single entity or multiple entities, and some of the multiple entities may be separately disposed in different components. According to various embodiments, one or more of the above-described components may be omitted, or one or more other components may be added. Optionally or additionally, multiple components (e.g., modules or programs) may be integrated into a single component. In this case, according to various embodiments, the integrated component may still perform one or more functions of each of the multiple components in the same or similar manner as the corresponding component of the multiple components performed one or more functions before integration. According to various embodiments, the operations performed by a module, program, or other component may be performed sequentially, in parallel, repeatedly, or heuristically, or one or more operations may be run in a different order or omitted, or one or more other operations may be added.

Claims

1. An electronic device (200), the electronic device (200) comprising: Communication circuit (250); Memory (280); Monitor (260); as well as At least one processor (270). The memory (280) stores instructions that, when executed by the at least one processor (270), cause the electronic device (200) to: Access requests are received from external electronic devices (300) via the communication circuit (250); Receive user input in response to the access request; Based on the user input, personal information is sent to the external electronic device (300) via the communication circuit (250), the personal information including personal device information of at least one device; Receive device configuration information generated based on the personal information and digital prescription from the external electronic device (300) via the communication circuit (250); Based on the device configuration information, generate healthcare guidance information related to the at least one device; as well as Based on the healthcare guidance information, a user interface for guiding health activities is displayed on the display (260), and device control commands are sent to the at least one device via the communication circuit (250) to support the health activities.

2. The electronic device according to claim 1, wherein, The at least one device includes the electronic device (200) and at least one of one or more other electronic devices.

3. The electronic device according to claim 1, wherein, The at least one device includes one or more of a smartphone, a wearable electronic device, an Internet of Things (IoT) device, or a sensor.

4. The electronic device according to claim 1, wherein, The user interface includes information on one or more of the following related to the health activity: measurement activities, exercise activities, sleep activities, schedules, or guidance content. The device control commands are intended to support the health activities by instructing each of the at least one device to run a function.

5. The electronic device according to claim 1, wherein, The user interface is displayed and the device control commands are sent repeatedly at specified times based on the schedule information contained in the healthcare guidance information.

6. The electronic device according to claim 1, wherein, When the instruction is executed by the at least one processor (270), it causes the electronic device (200) to: Displays a user interface to guide users through initial health activities; The at least one device is used to collect the user's actual health activity information; as well as The user interface is updated based on the collected actual health activity information, the updated user interface is displayed, and device control commands related to the updated user interface are sent.

7. The electronic device according to claim 1, wherein, When the instruction is executed by the at least one processor (270), it causes the electronic device (200) to: A user interface that asks about the level of privacy exposure is displayed on the monitor; and Based on user input to the user interface, only some information filtered from the personal information based on the privacy exposure level is sent to the external electronic device.

8. The electronic device according to claim 1, wherein, When the instruction is executed by the at least one processor (270), it causes the electronic device (200) to: Identify whether the electronic device is located at a designated location; and If the electronic device is located at the designated location, the user interface is displayed and device control commands are sent.

9. The electronic device according to claim 1, wherein, When the instruction is executed by the at least one processor (270), it causes the electronic device (200) to: Based on the device configuration information, it is determined whether it is necessary to use additional devices not included in the at least one device; If it is necessary to use the additional device, search for a location where the additional device can be obtained; as well as The user interface displays an indicator that guides you to the searched location.

10. An external electronic device (300), the external electronic device (300) comprising: Communication circuit (350); Memory (380); as well as At least one processor (370). The memory (380) stores instructions that, when executed by the at least one processor (370), cause the external electronic device (300) to: Digital prescriptions are generated based on the input medical information. Send an access request to the electronic device (200) via the communication circuit (350); Personal information is received from the electronic device (200) via the communication circuit (350), the personal information including personal device information of at least one device; Based on the personal information and the digital prescription, device configuration information for generating user-customized prescriptions is generated; and The device configuration information is sent to the electronic device (200) via the communication circuit (350).

11. The external electronic device according to claim 10, wherein, When the instruction is executed by the at least one processor (370), it causes the external electronic device (300) to: Based on the digital prescription and the personal device information, determine whether the necessary devices required for the prescription are missing; as well as If the necessary device is missing, the information of the necessary device is added to the device configuration information.

12. A method of operating an electronic device, the method comprising: Receive access requests from external electronic devices; Receive user input in response to the access request; Based on the user input, personal information is sent to the external electronic device, the personal information including personal device information of at least one device; Receive device configuration information generated based on the personal information and digital prescription from the external electronic device; Based on the device configuration information, generate healthcare guidance information related to the at least one device; as well as The user interface for guiding health activities is displayed based on the healthcare guidance information, and device control commands are sent to the at least one device to support the health activities.

13. The method according to claim 12, wherein, The at least one device includes at least one of the electronic device and one or more other electronic devices.

14. The method of claim 12, wherein, The at least one device includes one or more of a smartphone, a wearable electronic device, an Internet of Things (IoT) device, or a sensor.

15. The method according to claim 12, wherein, The user interface includes information on one or more of the following related to the health activity: measurement activities, exercise activities, sleep activities, schedules, or guidance content. The device control commands are intended to support the health activities by instructing each of the at least one device to run a function.