system

The system addresses inefficiencies and security risks in personal information management by enabling secure, one-time input and transmission with user approval and traceability, ensuring efficient and transparent information sharing across institutions.

JP2026071055APending Publication Date: 2026-04-28SOFTBANK GROUP CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
SOFTBANK GROUP CORP
Filing Date
2024-10-16
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

Existing systems require users to input personal information multiple times across different institutions, leading to inefficiencies and security risks, including privacy leakage and inaccurate information sharing.

Method used

A system that allows users to input personal information once from their terminals, encrypt it, and securely transmit it to a server for authorized institutions, with traceability and user approval, using temporary authentication tokens and secure communication channels.

Benefits of technology

Ensures secure, efficient, and transparent management and sharing of personal information across institutions, reducing the risk of privacy breaches and improving information accuracy.

✦ Generated by Eureka AI based on patent content.

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Abstract

We provide the system. [Solution] To streamline information provision across multiple institutions, a means is provided to input personal information from user terminals and encrypt that information. A means of sending encrypted information to a server via a secure communication channel, A means for securely storing information received on a server and generating a temporary authentication token that can only be accessed by authorized authorities, A means of authorizing the provision of information to a specific institution based on user approval and providing encrypted information to that institution, A system that notifies the user when information has been provided and includes means for saving all access history as logs.
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Description

Technical Field

[0001] The technology of the present disclosure relates to a system.

Background Art

[0002] Patent Document 1 discloses a persona chatbot control method performed by at least one processor, including steps of receiving a user utterance, adding the user utterance to a prompt including an instruction sentence related to an explanation of a chatbot character, encoding the prompt, and inputting the encoded prompt into a language model to generate a chatbot utterance in response to the user utterance.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] When personal information input and provision are required, the user has to input the same information multiple times at each institution, which is a waste of time and effort. Also, if personal information is not securely managed, there is a risk of privacy leakage. Furthermore, since information sharing between different institutions is performed manually, there are problems such as a decrease in the accuracy of information and the efficiency of transfer.

Means for Solving the Problems

[0005] This invention provides a means for efficiently providing personal information by allowing users to input information from their terminals, encrypt it, and securely transmit it to a server. The server securely stores the encrypted information and provides it to the institution based on the user's approval. In this process, the security of the information is ensured by generating a temporary authentication token that can only be accessed by authorized institutions. Furthermore, traceability is improved by notifying the user of the information provision history and saving all information access as logs.

[0006] An "organization" refers to an organization such as a hospital, school, government office, or bank that requires personal information.

[0007] A "user terminal" is an electronic device used by a user to enter personal information, and includes smartphones and PCs.

[0008] Encryption is the process of transforming information so that it cannot be understood by third parties, and is particularly used to protect data privacy.

[0009] A "secure communication channel" is a protected communication path that prevents unauthorized access while data is being transmitted, and typically uses protocols such as HTTPS.

[0010] A "server" is a computer system that stores received data and processes or provides it as needed.

[0011] An "authentication token" is a digital key that indicates temporary permission for an institution to access a user's information.

[0012] A "log" is a recording medium or file used to record system operations and data access history. [Brief explanation of the drawing]

[0013] [Figure 1] This is a conceptual diagram showing an example of the configuration of a data processing system according to the first embodiment. [Figure 2] It is a conceptual diagram showing an example of the main functions of a data processing device and a smart device according to the first embodiment. [Figure 3] It is a conceptual diagram showing an example of the configuration of a data processing system according to the second embodiment. [Figure 4] It is a conceptual diagram showing an example of the main functions of a data processing device and smart glasses according to the second embodiment. [Figure 5] It is a conceptual diagram showing an example of the configuration of a data processing system according to the third embodiment. [Figure 6] It is a conceptual diagram showing an example of the main functions of a data processing device and a headset-type terminal according to the third embodiment. [Figure 7] It is a conceptual diagram showing an example of the configuration of a data processing system according to the fourth embodiment. [Figure 8] It is a conceptual diagram showing an example of the main functions of a data processing device and a robot according to the fourth embodiment. [Figure 9] It shows an emotion map to which a plurality of emotions are mapped. [Figure 10] It shows an emotion map to which a plurality of emotions are mapped. [Figure 11] It is a sequence diagram showing the processing flow of the data processing system in Example 1. [Figure 12] It is a sequence diagram showing the processing flow of the data processing system in Application Example 1. [Figure 13] It is a sequence diagram showing the processing flow of the data processing system in Example 2 when an emotion engine is combined. [Figure 14] It is a sequence diagram showing the processing flow of the data processing system in Application Example 2 when an emotion engine is combined.

MODE FOR CARRYING OUT THE INVENTION

[0014] Hereinafter, an example of an embodiment of a system according to the technology of the present disclosure will be described with reference to the accompanying drawings.

[0015] First, the terms used in the following description will be explained.

[0016] In the following embodiments, the labeled processor (hereinafter simply referred to as "processor") may be a single arithmetic unit or a combination of multiple arithmetic units. Also, the processor may be a single type of arithmetic unit or a combination of multiple types of arithmetic units. Examples of arithmetic units include a CPU (Central Processing Unit), a GPU (Graphics Processing Unit), a GPGPU (General-Purpose computing on Graphics Processing Units), an APU (Accelerated Processing Unit), and the like.

[0017] In the following embodiments, the labeled RAM (Random Access Memory) is a memory in which information is temporarily stored and is used as a work memory by the processor.

[0018] In the following embodiments, the labeled storage is one or more non-volatile storage devices that store various programs and various parameters, etc. Examples of non-volatile storage devices include flash memory (SSD (Solid State Drive)), magnetic disks (e.g., hard disks), or magnetic tapes, etc.

[0019] In the following embodiments, the labeled communication I / F (Interface) is an interface including a communication processor and an antenna, etc. The communication I / F controls communication between multiple computers. Examples of communication standards applied to the communication I / F include wireless communication standards including 5G (5th Generation Mobile Communication System), Wi-Fi (registered trademark), or Bluetooth (registered trademark), etc.

[0020] In the following embodiments, "A and / or B" is synonymous with "at least one of A and B." That is, "A and / or B" means that it may be A alone, or B alone, or a combination of A and B. Furthermore, in this specification, the same concept as "A and / or B" applies when expressing three or more things linked by "and / or."

[0021] [First Embodiment]

[0022] Figure 1 shows an example of the configuration of the data processing system 10 according to the first embodiment.

[0023] As shown in Figure 1, the data processing system 10 includes a data processing device 12 and a smart device 14. An example of the data processing device 12 is a server.

[0024] The data processing device 12 comprises a computer 22, a database 24, and a communication interface 26. The computer 22 is an example of a "computer" related to the technology of this disclosure. The computer 22 comprises a processor 28, RAM 30, and storage 32. The processor 28, RAM 30, and storage 32 are connected to a bus 34. The database 24 and the communication interface 26 are also connected to the bus 34. The communication interface 26 is connected to a network 54. An example of the network 54 is a WAN (Wide Area Network) and / or a LAN (Local Area Network).

[0025] The smart device 14 comprises a computer 36, a reception device 38, an output device 40, a camera 42, and a communication interface 44. The computer 36 comprises a processor 46, RAM 48, and storage 50. The processor 46, RAM 48, and storage 50 are connected to a bus 52. The reception device 38, output device 40, and camera 42 are also connected to the bus 52.

[0026] The reception device 38 is equipped with a touch panel 38A and a microphone 38B, etc., and receives user input. The touch panel 38A receives user input by detecting contact with an object (e.g., a pen or finger). The microphone 38B receives user input by detecting the user's voice. The control unit 46A transmits data indicating the user input received by the touch panel 38A and microphone 38B to the data processing device 12. In the data processing device 12, the specific processing unit 290 acquires the data indicating the user input.

[0027] The output device 40 includes a display 40A and a speaker 40B, and presents data to the user 20 by outputting the data in a form perceptible to the user 20 (e.g., audio and / or text). The display 40A displays visible information such as text and images according to instructions from the processor 46. The speaker 40B outputs audio according to instructions from the processor 46. The camera 42 is a small digital camera equipped with an optical system such as a lens, aperture, and shutter, and an image sensor such as a CMOS (Complementary Metal-Oxide-Semiconductor) image sensor or a CCD (Charge Coupled Device) image sensor.

[0028] Communication interface 44 is connected to network 54. Communication interfaces 44 and 26 are responsible for the exchange of various types of information between processor 46 and processor 28 via network 54.

[0029] Figure 2 shows an example of the main functions of the data processing device 12 and the smart device 14.

[0030] As shown in Figure 2, in the data processing device 12, a specific processing is performed by the processor 28. A specific processing program 56 is stored in the storage 32. The specific processing program 56 is an example of a "program" related to the technology of this disclosure. The processor 28 reads the specific processing program 56 from the storage 32 and executes the read specific processing program 56 on the RAM 30. The specific processing is realized by the processor 28 operating as a specific processing unit 290 according to the specific processing program 56 executed on the RAM 30.

[0031] The storage 32 stores the data generation model 58 and the emotion identification model 59. The data generation model 58 and the emotion identification model 59 are used by the identification processing unit 290.

[0032] In the smart device 14, the processor 46 performs the reception output processing. The storage 50 stores the reception output program 60. The reception output program 60 is used in conjunction with a specific processing program 56 by the data processing system 10. The processor 46 reads the reception output program 60 from the storage 50 and executes the read reception output program 60 on the RAM 48. The reception output processing is realized by the processor 46 operating as a control unit 46A according to the reception output program 60 executed on the RAM 48.

[0033] Next, the specific processing performed by the specific processing unit 290 of the data processing device 12 will be described. In the following description, the data processing device 12 will be referred to as the "server" and the smart device 14 as the "terminal".

[0034] This invention relates to a system for securely and efficiently managing personal information and providing it to different organizations as needed. This system is designed for seamless information sharing between user terminals, servers, and multiple organizations.

[0035] Users launch a dedicated application on their smartphone or PC and enter their personal and medical information. This entered information is validated in real time on the device, encrypted, and sent to the server. After receiving the encrypted data, the server stores it in a secure database to prevent unauthorized access to the data.

[0036] When a specific organization requires information, the user can review the request through the application and authorize the provision of information. Based on the user's authorization, the server generates a temporary authentication token that grants access limited to that organization. Using this token, the organization can access the necessary information.

[0037] For example, when a user visits a new hospital, if past medical history or allergy information is needed, the hospital can request this information through the system. After user approval, the hospital can retrieve the relevant information from the server and use it to treat the patient. This eliminates the need to use traditional paper-based questionnaires and allows for quick and accurate acquisition of necessary information before the consultation.

[0038] Furthermore, this system automatically notifies the user once all information access and provision is complete, and also stores more detailed access logs. Users can see which organizations used their information and how, thereby ensuring their privacy and information security.

[0039] The following describes the processing flow.

[0040] Step 1:

[0041] The user launches a dedicated application and enters personal and medical information. The terminal validates the format of the entered information and the completion of required fields in real time, prompting the user to correct any errors.

[0042] Step 2:

[0043] The device encrypts information that has passed validation using a strong encryption algorithm to protect personal information. The encryption key is temporarily generated and managed within the device.

[0044] Step 3:

[0045] The terminal sends encrypted information to the server using a secure data transfer protocol (such as HTTPS). The server receives the encrypted data and verifies the integrity and completeness of the transmission.

[0046] Step 4:

[0047] The server stores the received encrypted data directly into the database. By default, the data is inaccessible, and only authorized processes can access it.

[0048] Step 5:

[0049] If the relevant organization requests information, the user will receive and confirm the request through the application. The user will authorize the provision of information as needed.

[0050] Step 6:

[0051] Upon receiving user approval, the server generates a temporary authentication token that grants the institution access to the information. This token is valid for a specified period and becomes invalid after that period expires.

[0052] Step 7:

[0053] The institution's terminal accesses the necessary information using the provided authentication token. The server verifies the token's validity and provides the requested information.

[0054] Step 8:

[0055] After access to the information is complete, the server sends a notification to the user and generates a log recording which organization accessed which information. The log is retained for the user to review later.

[0056] (Example 1)

[0057] Next, we will describe Example 1. In the following description, the data processing device 12 will be referred to as the "server," and the smart device 14 will be referred to as the "terminal."

[0058] Providing individual identification information securely and efficiently to multiple data processing organizations requires considerable effort and time with current technology. Furthermore, if information security is not ensured, the risk of personal data breaches increases. Additionally, user approval procedures and access history management during information provision are cumbersome, highlighting the need for a means to achieve efficient data sharing while protecting user privacy.

[0059] The identification process performed by the identification processing unit 290 of the data processing device 12 in Example 1 is realized by the following means.

[0060] In this invention, the server includes means for securely encoding information and transferring information input from a user device, means for generating a temporary authentication code that grants limited access permissions to an information processing organization, and means for storing all access history and notifying the user. This enables efficient and secure information provision based on user approval.

[0061] "User device" refers to an electronic device used for inputting individual identification information, and includes smartphones and personal computers.

[0062] "Encoding" is the process of encrypting information using a specific algorithm, and it is a technology used to protect the confidentiality of information.

[0063] A "secure communication channel" is a protected communication path designed to prevent eavesdropping and unauthorized access to information during data transfer, and includes those using the SSL / TLS protocol.

[0064] An "information processing device" is a central processing unit used to analyze, store, and provide received information, and includes servers and database management systems.

[0065] An "authentication code" is a temporary access key generated to grant access limited to a specific information processing organization, and once authorized, it is only valid for a limited period of time.

[0066] A "recording medium" is a device or medium used to store information or access history, and includes hard disk drives and flash memory.

[0067] This invention relates to a system for securely and efficiently managing individual identification information and providing it to multiple information processing organizations. This system enables seamless information sharing between user devices, information processing devices, and multiple information processing organizations.

[0068] Users launch a dedicated application on their smartphone or personal computer and enter their individual identification information. This application is built using frameworks such as React Native or Electron. The information entered by the user is validated in real time on the device. For validation, regular expressions or the Validator.js library are used, for example.

[0069] The terminal encodes verified information using the AES (Advanced Encryption Standard) algorithm and transfers it to the information processing device (server) via a secure communication channel using the SSL / TLS protocol. This transfer prevents eavesdropping and tampering with the information.

[0070] The server, acting as an information processing device, stores the received encoded information in a secure database system (e.g., PostgreSQL, MongoDB). This database is managed using frameworks such as Spring Boot or Express.js. Furthermore, the server generates temporary authentication codes and provides them only to authorized information processing authorities, thereby restricting data access.

[0071] For example, when a user seeks medical treatment at a new medical facility, they may need information about their past medical history and allergies. The medical facility requests this information through this system, and the user approves the request through the application. After approval, the medical facility retrieves the relevant information from the server and can use it to provide appropriate medical care.

[0072] An example of a prompt message is, "Before your appointment at the new hospital, we need your past medical history and allergy information. Do you consent to the request for this information?" This prompt makes it easy for users to grant permission for information sharing.

[0073] The flow of the specific processing in Example 1 will be explained using Figure 11.

[0074] Step 1:

[0075] Users launch a dedicated application on their smartphone or personal computer and enter their individual identification and medical information. The application is built using React Native or Electron frameworks. This entered data is validated in real time on the device. Specifically, when a user enters data into an input field, the format and integrity of the data are checked using regular expressions or libraries (e.g., Validator.js). In this step, the input is personal information directly entered by the user, and the output is validated personal information.

[0076] Step 2:

[0077] The terminal encodes the validated information using the AES encryption algorithm. The Web Crypto API is used for encryption. This encoding process protects the confidentiality of the data. The encoded data is sent to the server via a secure communication channel using the SSL / TLS protocol. In this step, the input is validated personal information and the output is encrypted data. Specifically, the process involves the terminal establishing an SSL / TLS connection and sending data to the server's IP address.

[0078] Step 3:

[0079] The server parses the received encrypted data and processes it to store it in a secure database. The server-side application is implemented using Spring Boot or Express.js frameworks. The server uses PostgreSQL or MongoDB as the database and appropriately stores the received data. In this step, the input is encrypted data, and the output is data records stored in the database. Specifically, the server verifies the sender's authentication and executes a query to save the data to the database.

[0080] Step 4:

[0081] When a user receives an information access request from a specific information processing authority, they review the request through the application and decide whether to approve it. If approved, the server generates a temporary authentication token using OAuth 2.0 or JWT. In this step, the input is the information access request from the authority, and the output is the user's approval and temporary authentication token. Specifically, the application displays a confirmation message to the user, and the user taps a button to approve.

[0082] Step 5:

[0083] The server provides the generated temporary authentication token to the information processing authority. The authority can use this token to access and utilize the necessary information. Once access is complete, the server creates a detailed access log and notifies the user that the information has been provided. In this step, the input is the temporary authentication token, and the output is the permission to access information to the authority and the access log. Specifically, the server writes the access record to a log file.

[0084] (Application Example 1)

[0085] Next, we will explain Application Example 1. In the following explanation, the data processing device 12 will be referred to as the "server," and the smart device 14 will be referred to as the "terminal."

[0086] In today's information society, there is a need for systems that can securely manage personal and financial information and provide it efficiently and safely to the necessary institutions. However, many systems have security and efficiency problems in managing and providing information. In particular, the secure handling of financial information in electronic transactions is important, but providing the necessary information safely and quickly is difficult. Therefore, there is a strong desire for the realization of systems that enable secure and efficient information management and provision.

[0087] The specific processing performed by the specific processing unit 290 of the data processing device 12 in Application Example 1 is realized by the following means.

[0088] In this invention, the server includes means for inputting personal information from a communication device and encrypting that information, means for transmitting the encrypted information to a storage device via a secure communication channel, and means for managing financial information, and means for securely providing the information necessary for digital transactions, in order to streamline the provision of information to multiple institutions. As a result, information is managed securely and it becomes possible to provide information efficiently and securely to the necessary institutions based on user approval.

[0089] "Multiple organizations" refers to a variety of organizations involved in providing or obtaining information.

[0090] "Personal information" refers to information that can identify a specific individual, including information such as name, address, contact information, and financial information.

[0091] "Communication equipment" refers to electronic terminals used to input, transmit, and receive data, including smartphones and personal computers.

[0092] "Encryption" refers to the process of converting information into a format that cannot be deciphered by third parties in order to ensure the security of the information.

[0093] A "secure communication channel" is a communication path that allows information to be sent and received safely, and it uses encryption protocols to guarantee the confidentiality of the data.

[0094] A "storage device" refers to a data storage system for securely storing received data.

[0095] An "authentication code" is a temporary authorization required for a specific organization to access information, and is used to control access to that information.

[0096] "Financial information" refers to data that shows the financial status of an individual or organization, including account numbers and transaction history.

[0097] "Digital transactions" refer to transactions related to the purchase of goods or the provision of services that are conducted electronically.

[0098] "Access history" refers to a record of information access within a system, and is data that shows which organization used the information and when.

[0099] This system operates on a network-based structure that includes communication devices, servers, and storage devices. Communication devices (e.g., smartphones and personal computers) provide an interface for users to input and encrypt personal and financial information. Advanced protocols (e.g., TLS or SSL) are used for encryption to ensure the confidentiality of the information.

[0100] When the terminal receives the entered information, it performs a real-time integrity check. This check includes a validation process to verify that the format and content of the information are correct.

[0101] The server receives encrypted information via a secure communication channel and safely stores it in a storage device. Access to the stored information is controlled by generating a temporary authentication code when a specific institution accesses it with the user's authorization. This process is typically performed on cloud services such as Amazon Web Services or Google Cloud.

[0102] When users are asked to provide financial information in electronic transactions, they can verify and approve the request through the system. For example, when a user conducts online purchasing activities, the necessary financial information is securely provided to the trading partner. In this process, the trading partner accesses the user's information using an authentication code.

[0103] The system records all information access and generates an access history. This allows users to understand which organizations used the information and when.

[0104] As a concrete example, in a digital wallet application using a generative AI model, the following prompt is used to explain how past purchase history will be securely shared when a user purchases an item: "Please explain how past purchase history will be securely shared when a user purchases an item." This prompt is useful for analyzing user purchasing behavior.

[0105] The flow of a specific process in Application Example 1 will be explained using Figure 12.

[0106] Step 1:

[0107] The terminal receives personal and financial information from the user. It performs validation on the entered data to verify format consistency and ensure it is in a valid format. As a result of processing, data that passes validation is passed on to the next processing step.

[0108] Step 2:

[0109] The terminal encrypts the validated information. Here, encryption protocols such as TLS or SSL are used to secure the data. This encrypted data is then transmitted to the server via a secure communication channel. The output consists of encrypted personal and financial information.

[0110] Step 3:

[0111] The server stores the received encrypted data in a storage device. The data is stored in its original encrypted state and protected by access control. After confirming that the storage process is complete, the server waits for the next request.

[0112] Step 4:

[0113] When a user authorizes the provision of information to a specific institution, the server generates an authentication code. This authentication code grants temporary, restricted access to that institution. The generated authentication code is then used to grant the institution access to the necessary information.

[0114] Step 5:

[0115] After providing information, the server records access history. This access history includes information about which organizations accessed the server and when. Based on this record, users receive notifications, allowing them to see how their information was used.

[0116] Step 6:

[0117] The server uses a generative AI model to create prompt messages and provide additional information to help users conduct transactions with confidence. For example, a prompt message might be: "Please explain how to securely share past purchase history when a user purchases an item."

[0118] Furthermore, an emotion engine that estimates the user's emotions may be incorporated. That is, the identification processing unit 290 may use the emotion identification model 59 to estimate the user's emotions and perform identification processing using the user's emotions.

[0119] This invention combines a system that enables efficient management and provision of personal information with an emotion engine that recognizes user emotions. By considering the emotional state of the user when inputting information, this system achieves a better user interface and information delivery experience.

[0120] First, users input personal and medical information through a dedicated application. During this process, an emotion engine analyzes the user's emotions in real time based on their facial expressions and voice. For example, if a user is experiencing stress, the device can adjust the interface based on this information to provide input assistance. Specific methods include changing the font size and displaying guidance messages.

[0121] The terminal validates the entered information, and if there are no problems, encrypts the data using a strong encryption algorithm. It then sends the encrypted information to the server via a secure communication channel, and the receiving server securely stores this information.

[0122] When a specific organization requires information, users can authorize the provision of that information while considering emotional data recognized by the emotion engine. For example, if the user is relaxed, the authorization process can be expedited.

[0123] After approval, the server generates a temporary authentication token for accessing information to the institution. This token allows the institution to access only the necessary information. Finally, transparency is ensured by notifying the user of which information was provided to which institution.

[0124] In this way, this system, which incorporates an emotion engine, provides a better user experience that takes into account the user's emotional state, improving information security and usability.

[0125] The following describes the processing flow.

[0126] Step 1:

[0127] The user launches a dedicated application and begins entering personal and medical information on the input screen. The device uses its camera and microphone to transmit the user's facial expressions and voice to an emotion engine for emotional analysis.

[0128] Step 2:

[0129] The device receives emotional data obtained by the emotion engine in real time and dynamically adjusts the interface according to the user's mood. For example, if the user is feeling stressed, the screen colors may be changed to calmer hues.

[0130] Step 3:

[0131] Once the user has finished entering information, the device validates the input data to ensure all fields are entered correctly. Depending on the user's emotional state, the device may also provide additional guidance messages or confirmations.

[0132] Step 4:

[0133] Once validation is complete, the device encrypts the data and sends it to the server using a secure communication protocol. A strong encryption algorithm is used to ensure data security.

[0134] Step 5:

[0135] The server receives the data and stores it in the database while keeping it encrypted. Access to the data is restricted to authorized institutions only.

[0136] Step 6:

[0137] If a user is asked to provide information to a specific organization, the device uses an emotion engine to determine the user's consent status and displays a screen for the user to review and approve the information.

[0138] Step 7:

[0139] Once the user consents to providing information, the server generates a temporary authentication token for the institution to access the information and provides it to the institution.

[0140] Step 8:

[0141] The institution uses the received authentication token to access the necessary information. The server generates access logs to track which institution accessed which information.

[0142] Step 9:

[0143] The server notifies the user that information has been provided and displays the logs in the user's view so that they can check the history. This allows the user to understand how their information has been used.

[0144] (Example 2)

[0145] Next, we will describe Example 2. In the following description, the data processing device 12 will be referred to as the "server" and the smart device 14 as the "terminal".

[0146] In today's information society, it is crucial to manage personal identification information securely and efficiently, and to provide it to the appropriate organizations when necessary. However, current systems often sacrifice usability while ensuring information security, and in particular, they lack a consent process for information provision that takes into account the emotional state of the user. A further challenge is the need to ensure transparency in access records after information provision.

[0147] The identification process performed by the identification processing unit 290 of the data processing device 12 in Example 2 is realized by the following means.

[0148] In this invention, the server includes means for securely storing information and generating temporary authentication codes accessible only to designated organizations; means for dynamically analyzing the user's emotional state and adjusting the interface; and means for notifying the user of the information provision history based on the user's approval. This enables a user-friendly information provision process that takes the user's emotional state into consideration, as well as improved information security and transparency.

[0149] "Identification information" refers to data used to identify individuals or objects.

[0150] "Computer equipment" is a general term for devices that process data electronically.

[0151] "Encryption" is a technology that transforms information based on a specific algorithm to prevent interception by third parties.

[0152] A "communication channel" is a path or protocol used to send and receive data.

[0153] A "data storage device" is a system or structure for securely storing information over the long term.

[0154] An "authentication code" is a temporary code that can only be used by those with designated access rights.

[0155] "Emotional state" refers to information that represents the user's mental and psychological condition.

[0156] An "interface" is a general term for the environment and protocols that enable humans and computer devices to interact with each other.

[0157] An "information provision history" is a record that shows what information was provided, when, and to which organization.

[0158] This invention is a system for efficiently managing and securely providing personal identification information to organizations. The system consists of multiple components, and users input their identification information through a computer device. The computer device is equipped with an emotion engine that uses a camera and microphone to analyze the user's emotional state in real time. This emotion engine combines a neural network and voice analysis software to record the user's facial expressions and voice, and to identify emotional states such as stress and relaxation.

[0159] The entered information is validated on the terminal and then converted using a standardized encryption algorithm such as AES. This encryption provides high security to prevent information leakage. The terminal also uses the TLS protocol to securely transmit the encrypted information to the server. After receiving the information, the server securely stores it and generates an authentication code. The authentication code temporarily grants access to the information to a specified organization.

[0160] When users receive a request for information, they decide whether to consent to providing the information through an interface proposed by the emotion engine. For example, if the user is relaxed, the system presents an interface that allows for a quick decision. After the organization accesses the information using a temporary authentication code, the history is recorded on the server and notified to the user. This ensures transparency in information provision.

[0161] As a concrete example, when a user shares their medical history for a medical consultation, the system has a function to display guidance messages to alleviate the user's anxieties. For instance, prompts such as, "If the user shows signs of anxiety while entering information, how should the device adjust its UI?" can be input into the AI ​​model, which can then respond in real time based on that input.

[0162] The flow of the specific processing in Example 2 will be explained using Figure 13.

[0163] Step 1:

[0164] Users input identification and related information via computer devices. This input includes text data, audio, and images. This data is then prepared for sentiment analysis and validation in the next stage.

[0165] Step 2:

[0166] The device analyzes the user's facial expressions and voice using an emotion engine. Image processing algorithms and machine learning models are applied to process the input image and voice data to determine the user's emotional state. For example, if a facial expression indicating stress is detected, that information is output as data for interface adjustment.

[0167] Step 3:

[0168] The terminal validates the user's input data. Regular expressions and comparisons with existing databases are performed to ensure the entered identification information is accurate and complete. If validation is successful, the information proceeds to the next encryption step.

[0169] Step 4:

[0170] The device encrypts validated information. It uses the AES algorithm to convert text and image data into a secure format. This encrypted data is output to prevent external access.

[0171] Step 5:

[0172] The device sends encrypted information to the server using the TLS protocol. Before transmission, communication settings are checked and established to ensure that the encrypted data can be transmitted correctly.

[0173] Step 6:

[0174] The server securely stores the received encrypted data in a data storage device. A database management system is used for storage. The data is kept with restricted access until an authentication code is generated.

[0175] Step 7:

[0176] The server generates a temporary authentication code for a specific institution to access the information. The code is generated based on the user's authorization information and provided to the relevant institution as needed.

[0177] Step 8:

[0178] The server generates an access history after information is provided, recording which information was provided to which organization. This history is recorded as a log and notified to the user. This allows the user to see when and to whom the information was provided.

[0179] (Application Example 2)

[0180] Next, we will explain application example 2. In the following explanation, the data processing device 12 will be referred to as a "server" and the smart device 14 as a "terminal".

[0181] Existing electronic payment and data provision systems often offer fixed interfaces without considering the user's emotional state, which can degrade the quality of the user experience. Furthermore, a lack of secure data management and efficient information delivery methods presents a challenge in simultaneously enhancing user convenience and data security.

[0182] The specific processing performed by the specific processing unit 290 of the data processing device 12 in Application Example 2 is realized by the following means.

[0183] In this invention, the server includes means for dynamically adjusting the information provision interface based on the emotional state of an identified user, means for inputting personal data from the user interface and encrypting that data in order to streamline data provision across multiple organizations, and means for transmitting the encrypted data to a storage device via a secure communication channel. This enables flexible interface provision that responds to the user's emotions and secure and efficient data management.

[0184] An "organization" is a group or institution formed to achieve a specific purpose.

[0185] "Data" refers to an encoded string or number that contains information.

[0186] A "user interface" is a means of interaction between a user and a system.

[0187] "Encryption" is a technique that transforms the content of data in order to transmit or store it securely.

[0188] A "communication channel" is a physical or logical path for sending and receiving data.

[0189] A "storage device" is a hardware or virtual device used to store data.

[0190] An "authentication code" is a temporary sequence of numbers or characters issued to prove specific access rights.

[0191] "Emotional state" refers to the internal conditions that represent the user's emotions and psychological state.

[0192] "Interface tuning" is the process of optimizing the interface according to the user's needs and circumstances.

[0193] To implement this invention, a system is used in which the user's device and the server work closely together. The user's device is equipped with a camera and microphone to acquire the user's facial expressions and voice data. Using this data, a generative AI model recognizes the user's emotional state. Specifically, software such as OpenPose or Google Cloud's Speech-to-Text API can be utilized. This allows the interface on the device to be dynamically adjusted based on the user's emotional state. For example, if the user is feeling anxious, simple and clear instructions can be provided.

[0194] The server receives encrypted data from users and stores it securely. To ensure the confidentiality of the information, AES (Advanced Encryption Standard) is used for data encryption. Furthermore, the TLS protocol is used for data transfer, guaranteeing secure communication.

[0195] When a user provides data to a specific organization, the server generates a temporary authentication code, allowing only authorized organizations to access the necessary information using that code. This allows users to track which organizations have accessed which data, ensuring transparency in information sharing.

[0196] As a concrete example, when a user uses online banking, if a relaxed emotional state is detected, the buttons on the screen will be displayed larger than usual, and important messages will be prioritized. Furthermore, an example of a prompt message could be given to the AI ​​model: "Recognize the user's emotions in real time from their facial expressions and voice in the smart payment application. If the user is relaxed, process the transaction faster than usual." This would simultaneously improve the user experience and enhance information security.

[0197] The flow of a specific process in Application Example 2 will be explained using Figure 14.

[0198] Step 1:

[0199] The user's device uses a camera and microphone to capture the user's facial expressions and voice. It collects facial expression and voice data from various angles as input. The output is stored in temporary storage so that this data can be passed on to the next processing step.

[0200] Step 2:

[0201] The device inputs acquired facial expression and voice data into a generating AI model to analyze the user's emotional state. It uses OpenPose to analyze facial expressions and Google Cloud's Speech-to-Text API to estimate emotions from the voice. The output is identified emotion data, which is used for interface adjustments.

[0202] Step 3:

[0203] The device adjusts the user interface based on emotional data. For example, if the user is stressed, it will enlarge buttons on the screen and prioritize important messages. The input is emotional data, and the output is a customized interface.

[0204] Step 4:

[0205] The user enters personal data through a pre-configured interface, which is then encrypted. The terminal uses AES to encrypt the data and sends it to the server via a secure communication channel. The input is the data entered by the user, and the output is the encrypted data.

[0206] Step 5:

[0207] The server securely stores the received encrypted data. Furthermore, it generates a temporary authentication code accessible to authorized organizations. At this stage, data storage is the primary output.

[0208] Step 6:

[0209] Obtain user approval and conduct the approval process quickly and in a relaxed manner. The input is user approval information, and the output is the provision of a temporary authentication code to the organization.

[0210] Step 7:

[0211] The server notifies users of information about which organizations accessed the data and when, and records the access history. The input is access information, and the output is user notifications and access logs.

[0212] The specific processing unit 290 transmits the result of the specific processing to the smart device 14. In the smart device 14, the control unit 46A causes the output device 40 to output the result of the specific processing. The microphone 38B acquires audio indicating user input for the result of the specific processing. The control unit 46A transmits the audio data indicating user input acquired by the microphone 38B to the data processing device 12. In the data processing device 12, the specific processing unit 290 acquires the audio data.

[0213] Data generation model 58 is a so-called generative AI (Artificial Intelligence). An example of data generation model 58 is ChatGPT (registered trademark) (Internet search).<URL: https: / / openai.com / blog / chatgpt> ), Gemini (registered trademark) (Internet search) <url: https: gemini.google.com ?hl="ja">Examples of generative AI include the following. The data generation model 58 is obtained by performing deep learning on a neural network. The data generation model 58 is input with prompts containing instructions, and with inference data such as audio data representing speech, text data representing text, and image data representing images. The data generation model 58 infers from the input inference data according to the instructions indicated by the prompts, and outputs the inference results in data formats such as audio data and text data. Here, inference refers to, for example, analysis, classification, prediction, and / or summarization.

[0214] In the above embodiment, an example was given in which specific processing is performed by the data processing device 12, but the technology of this disclosure is not limited thereto, and the specific processing may also be performed by the smart device 14.

[0215] [Second Embodiment]

[0216] Figure 3 shows an example of the configuration of the data processing system 210 according to the second embodiment.

[0217] As shown in Figure 3, the data processing system 210 includes a data processing device 12 and smart glasses 214. An example of the data processing device 12 is a server.

[0218] The data processing device 12 comprises a computer 22, a database 24, and a communication interface 26. The computer 22 is an example of a "computer" related to the technology of this disclosure. The computer 22 comprises a processor 28, RAM 30, and storage 32. The processor 28, RAM 30, and storage 32 are connected to a bus 34. The database 24 and the communication interface 26 are also connected to the bus 34. The communication interface 26 is connected to a network 54. An example of the network 54 is a WAN (Wide Area Network) and / or a LAN (Local Area Network).

[0219] The smart glasses 214 include a computer 36, a microphone 238, a speaker 240, a camera 42, and a communication interface 44. The computer 36 includes a processor 46, RAM 48, and storage 50. The processor 46, RAM 48, and storage 50 are connected to a bus 52. The microphone 238, speaker 240, and camera 42 are also connected to the bus 52.

[0220] The microphone 238 receives voice signals from the user 20 and receives instructions from the user 20. The microphone 238 captures the voice signals from the user 20, converts the captured voice into audio data, and outputs it to the processor 46. The speaker 240 outputs audio according to the instructions from the processor 46.

[0221] Camera 42 is a small digital camera equipped with an optical system including a lens, aperture, and shutter, and an image sensor such as a CMOS (Complementary Metal-Oxide-Semiconductor) image sensor or a CCD (Charge Coupled Device) image sensor, and captures images of the area around the user 20 (for example, an imaging range defined by a field of view equivalent to the width of a typical healthy person's field of vision).

[0222] Communication interface 44 is connected to network 54. Communication interfaces 44 and 26 are responsible for the exchange of various information between processor 46 and processor 28 via network 54. The exchange of various information between processor 46 and processor 28 using communication interfaces 44 and 26 is performed in a secure manner.

[0223] Figure 4 shows an example of the main functions of the data processing device 12 and the smart glasses 214. As shown in Figure 4, the data processing device 12 performs specific processing using the processor 28. The storage 32 stores the specific processing program 56.

[0224] The specific processing program 56 is an example of a "program" relating to the technology of this disclosure. The processor 28 reads the specific processing program 56 from the storage 32 and executes the read specific processing program 56 on the RAM 30. The specific processing is realized by the processor 28 operating as a specific processing unit 290 in accordance with the specific processing program 56 executed on the RAM 30.

[0225] The storage 32 stores the data generation model 58 and the emotion identification model 59. The data generation model 58 and the emotion identification model 59 are used by the identification processing unit 290.

[0226] In the smart glasses 214, the processor 46 performs the reception output processing. The storage 50 stores the reception output program 60. The processor 46 reads the reception output program 60 from the storage 50 and executes the read reception output program 60 on the RAM 48. The reception output processing is realized by the processor 46 operating as a control unit 46A according to the reception output program 60 executed on the RAM 48.

[0227] Next, the identification processing performed by the identification processing unit 290 of the data processing device 12 will be described. In the following description, the data processing device 12 will be referred to as the "server" and the smart glasses 214 will be referred to as the "terminal".

[0228] This invention relates to a system for securely and efficiently managing personal information and providing it to different organizations as needed. This system is designed for seamless information sharing between user terminals, servers, and multiple organizations.

[0229] Users launch a dedicated application on their smartphone or PC and enter their personal and medical information. This entered information is validated in real time on the device, encrypted, and sent to the server. After receiving the encrypted data, the server stores it in a secure database to prevent unauthorized access to the data.

[0230] When a specific organization requires information, the user can review the request through the application and authorize the provision of information. Based on the user's authorization, the server generates a temporary authentication token that grants access limited to that organization. Using this token, the organization can access the necessary information.

[0231] For example, when a user visits a new hospital, if past medical history or allergy information is needed, the hospital can request this information through the system. After user approval, the hospital can retrieve the relevant information from the server and use it to treat the patient. This eliminates the need to use traditional paper-based questionnaires and allows for quick and accurate acquisition of necessary information before the consultation.

[0232] Furthermore, this system automatically notifies the user once all information access and provision is complete, and also stores more detailed access logs. Users can see which organizations used their information and how, thereby ensuring their privacy and information security.

[0233] The following describes the processing flow.

[0234] Step 1:

[0235] The user launches a dedicated application and enters personal and medical information. The terminal validates the format of the entered information and the completion of required fields in real time, prompting the user to correct any errors.

[0236] Step 2:

[0237] The device encrypts information that has passed validation using a strong encryption algorithm to protect personal information. The encryption key is temporarily generated and managed within the device.

[0238] Step 3:

[0239] The terminal sends encrypted information to the server using a secure data transfer protocol (such as HTTPS). The server receives the encrypted data and verifies the integrity and completeness of the transmission.

[0240] Step 4:

[0241] The server stores the received encrypted data directly into the database. By default, the data is inaccessible, and only authorized processes can access it.

[0242] Step 5:

[0243] If the relevant organization requests information, the user will receive and confirm the request through the application. The user will authorize the provision of information as needed.

[0244] Step 6:

[0245] Upon receiving user approval, the server generates a temporary authentication token that grants the institution access to the information. This token is valid for a specified period and becomes invalid after that period expires.

[0246] Step 7:

[0247] The institution's terminal accesses the necessary information using the provided authentication token. The server verifies the token's validity and provides the requested information.

[0248] Step 8:

[0249] After access to the information is complete, the server sends a notification to the user and generates a log recording which organization accessed which information. The log is retained for the user to review later.

[0250] (Example 1)

[0251] Next, we will describe Example 1. In the following description, the data processing device 12 will be referred to as the "server," and the smart glasses 214 will be referred to as the "terminal."

[0252] Providing individual identification information securely and efficiently to multiple data processing organizations requires considerable effort and time with current technology. Furthermore, if information security is not ensured, the risk of personal data breaches increases. Additionally, user approval procedures and access history management during information provision are cumbersome, highlighting the need for a means to achieve efficient data sharing while protecting user privacy.

[0253] The identification process performed by the identification processing unit 290 of the data processing device 12 in Example 1 is realized by the following means.

[0254] In this invention, the server includes means for securely encoding information and transferring information input from a user device, means for generating a temporary authentication code that grants limited access permissions to an information processing organization, and means for storing all access history and notifying the user. This enables efficient and secure information provision based on user approval.

[0255] "User device" refers to an electronic device used for inputting individual identification information, and includes smartphones and personal computers.

[0256] "Encoding" is the process of encrypting information using a specific algorithm, and it is a technology used to protect the confidentiality of information.

[0257] A "secure communication channel" is a protected communication path designed to prevent eavesdropping and unauthorized access to information during data transfer, and includes those using the SSL / TLS protocol.

[0258] An "information processing device" is a central processing unit used to analyze, store, and provide received information, and includes servers and database management systems.

[0259] An "authentication code" is a temporary access key generated to grant access limited to a specific information processing organization, and once authorized, it is only valid for a limited period of time.

[0260] A "recording medium" is a device or medium used to store information or access history, and includes hard disk drives and flash memory.

[0261] This invention relates to a system for securely and efficiently managing individual identification information and providing it to multiple information processing organizations. This system enables seamless information sharing between user devices, information processing devices, and multiple information processing organizations.

[0262] Users launch a dedicated application on their smartphone or personal computer and enter their individual identification information. This application is built using frameworks such as React Native or Electron. The information entered by the user is validated in real time on the device. For validation, regular expressions or the Validator.js library are used, for example.

[0263] The terminal encodes verified information using the AES (Advanced Encryption Standard) algorithm and transfers it to the information processing device (server) via a secure communication channel using the SSL / TLS protocol. This transfer prevents eavesdropping and tampering with the information.

[0264] The server, acting as an information processing device, stores the received encoded information in a secure database system (e.g., PostgreSQL, MongoDB). This database is managed using frameworks such as Spring Boot or Express.js. Furthermore, the server generates temporary authentication codes and provides them only to authorized information processing authorities, thereby restricting data access.

[0265] For example, when a user seeks medical treatment at a new medical facility, they may need information about their past medical history and allergies. The medical facility requests this information through this system, and the user approves the request through the application. After approval, the medical facility retrieves the relevant information from the server and can use it to provide appropriate medical care.

[0266] An example of a prompt message is, "Before your appointment at the new hospital, we need your past medical history and allergy information. Do you consent to the request for this information?" This prompt makes it easy for users to grant permission for information sharing.

[0267] The flow of the specific processing in Example 1 will be explained using Figure 11.

[0268] Step 1:

[0269] Users launch a dedicated application on their smartphone or personal computer and enter their individual identification and medical information. The application is built using React Native or Electron frameworks. This entered data is validated in real time on the device. Specifically, when a user enters data into an input field, the format and integrity of the data are checked using regular expressions or libraries (e.g., Validator.js). In this step, the input is personal information directly entered by the user, and the output is validated personal information.

[0270] Step 2:

[0271] The terminal encodes the validated information using the AES encryption algorithm. The Web Crypto API is used for encryption. This encoding process protects the confidentiality of the data. The encoded data is sent to the server via a secure communication channel using the SSL / TLS protocol. In this step, the input is validated personal information and the output is encrypted data. Specifically, the process involves the terminal establishing an SSL / TLS connection and sending data to the server's IP address.

[0272] Step 3:

[0273] The server parses the received encrypted data and processes it to store it in a secure database. The server-side application is implemented using Spring Boot or Express.js frameworks. The server uses PostgreSQL or MongoDB as the database and appropriately stores the received data. In this step, the input is encrypted data, and the output is data records stored in the database. Specifically, the server verifies the sender's authentication and executes a query to save the data to the database.

[0274] Step 4:

[0275] When a user receives an information access request from a specific information processing authority, they review the request through the application and decide whether to approve it. If approved, the server generates a temporary authentication token using OAuth 2.0 or JWT. In this step, the input is the information access request from the authority, and the output is the user's approval and temporary authentication token. Specifically, the application displays a confirmation message to the user, and the user taps a button to approve.

[0276] Step 5:

[0277] The server provides the generated temporary authentication token to the information processing authority. The authority can use this token to access and utilize the necessary information. Once access is complete, the server creates a detailed access log and notifies the user that the information has been provided. In this step, the input is the temporary authentication token, and the output is the permission to access information to the authority and the access log. Specifically, the server writes the access record to a log file.

[0278] (Application Example 1)

[0279] Next, we will explain Application Example 1. In the following explanation, the data processing device 12 will be referred to as the "server," and the smart glasses 214 will be referred to as the "terminal."

[0280] In today's information society, there is a need for systems that can securely manage personal and financial information and provide it efficiently and safely to the necessary institutions. However, many systems have security and efficiency problems in managing and providing information. In particular, the secure handling of financial information in electronic transactions is important, but providing the necessary information safely and quickly is difficult. Therefore, there is a strong desire for the realization of systems that enable secure and efficient information management and provision.

[0281] The specific processing performed by the specific processing unit 290 of the data processing device 12 in Application Example 1 is realized by the following means.

[0282] In this invention, the server includes means for inputting personal information from a communication device and encrypting that information, means for transmitting the encrypted information to a storage device via a secure communication channel, and means for managing financial information, and means for securely providing the information necessary for digital transactions, in order to streamline the provision of information to multiple institutions. As a result, information is managed securely and it becomes possible to provide information efficiently and securely to the necessary institutions based on user approval.

[0283] "Multiple institutions" refers to various organizations involved in providing or obtaining information.

[0284] "Personal information" refers to information that can identify a specific individual, including information such as name, address, contact information, and financial information.

[0285] "Communication device" refers to an electronic terminal used for inputting, transmitting, and receiving data, including smartphones and personal computers.

[0286] "Encryption" refers to the process of converting information into a form that cannot be decoded by a third party in order to ensure the security of the information.

[0287] "Secure communication channel" refers to a communication path through which information can be safely transmitted and received, and uses an encryption protocol to guarantee the confidentiality of data.

[0288] "Storage device" refers to a data storage system for safely storing received data.

[0289] "Authentication code" refers to a temporary permit required for a specific institution to access information, and is used to control access to information.

[0290] "Financial information" refers to data indicating the financial situation of an individual or organization, including account numbers and transaction histories.

[0291] "Digital transaction" refers to a transaction related to the purchase of goods or the provision of services conducted electronically.

[0292] "Access history" refers to a record of information access in a system, and is data indicating which institution used the information at what time.

[0293] This system operates on a network-based structure that includes communication devices, servers, and storage devices. Communication devices (e.g., smartphones and personal computers) provide an interface for users to input and encrypt personal and financial information. Advanced protocols (e.g., TLS or SSL) are used for encryption to ensure the confidentiality of the information.

[0294] When the terminal receives the entered information, it performs a real-time integrity check. This check includes a validation process to verify that the format and content of the information are correct.

[0295] The server receives encrypted information via a secure communication channel and safely stores it in a storage device. Access to the stored information is controlled by generating a temporary authentication code when a specific institution accesses it with the user's authorization. This process is typically performed on cloud services such as Amazon Web Services or Google Cloud.

[0296] When users are asked to provide financial information in electronic transactions, they can verify and approve the request through the system. For example, when a user conducts online purchasing activities, the necessary financial information is securely provided to the trading partner. In this process, the trading partner accesses the user's information using an authentication code.

[0297] The system records all information access and generates an access history. This allows users to understand which organizations used the information and when.

[0298] As a concrete example, in a digital wallet application using a generative AI model, the following prompt is used to explain how past purchase history will be securely shared when a user purchases an item: "Please explain how past purchase history will be securely shared when a user purchases an item." This prompt is useful for analyzing user purchasing behavior.

[0299] The flow of the specific process in Application Example 1 will be described using FIG. 12.

[0300] Step 1:

[0301] The terminal is input with personal information and financial information from the user. Validation is performed to check the format consistency of the input data, ensuring that it is in a proper format. As a processing result, the data that has passed the validation is passed on to the next process.

[0302] Step 2:

[0303] The terminal encrypts the validated information. Here, an encryption protocol such as TLS or SSL is used to secure the data. This encrypted data is transmitted to the server via a secure communication channel. The output is the encrypted personal information and financial information.

[0304] Step 3:

[0305] The server stores the received encrypted data in a storage device. The data is stored in its encrypted state and protected by access control. It is confirmed that the storage process has been completed, and the data is put on standby until the next request.

[0306] Step 4:

[0307] When the user approves the provision of information to a specific institution, the server generates an authentication code. This authentication code temporarily permits access limited to a specific institution. Using the generated authentication code, the institution is provided with access rights to the necessary information.

[0308] Step 5:

[0309] After providing information, the server records access history. This access history includes information about which organizations accessed the server and when. Based on this record, users receive notifications, allowing them to see how their information was used.

[0310] Step 6:

[0311] The server uses a generative AI model to create prompt messages and provide additional information to help users conduct transactions with confidence. For example, a prompt message might be: "Please explain how to securely share past purchase history when a user purchases an item."

[0312] Furthermore, an emotion engine that estimates the user's emotions may be incorporated. That is, the identification processing unit 290 may use the emotion identification model 59 to estimate the user's emotions and perform identification processing using the user's emotions.

[0313] This invention combines a system that enables efficient management and provision of personal information with an emotion engine that recognizes user emotions. By considering the emotional state of the user when inputting information, this system achieves a better user interface and information delivery experience.

[0314] First, users input personal and medical information through a dedicated application. During this process, an emotion engine analyzes the user's emotions in real time based on their facial expressions and voice. For example, if a user is experiencing stress, the device can adjust the interface based on this information to provide input assistance. Specific methods include changing the font size and displaying guidance messages.

[0315] The terminal validates the entered information, and if there are no problems, encrypts the data using a strong encryption algorithm. It then sends the encrypted information to the server via a secure communication channel, and the receiving server securely stores this information.

[0316] When a specific organization requires information, users can authorize the provision of that information while considering emotional data recognized by the emotion engine. For example, if the user is relaxed, the authorization process can be expedited.

[0317] After approval, the server generates a temporary authentication token for accessing information to the institution. This token allows the institution to access only the necessary information. Finally, transparency is ensured by notifying the user of which information was provided to which institution.

[0318] In this way, this system, which incorporates an emotion engine, provides a better user experience that takes into account the user's emotional state, improving information security and usability.

[0319] The following describes the processing flow.

[0320] Step 1:

[0321] The user launches a dedicated application and begins entering personal and medical information on the input screen. The device uses its camera and microphone to transmit the user's facial expressions and voice to an emotion engine for emotional analysis.

[0322] Step 2:

[0323] The device receives emotional data obtained by the emotion engine in real time and dynamically adjusts the interface according to the user's mood. For example, if the user is feeling stressed, the screen colors may be changed to calmer hues.

[0324] Step 3:

[0325] Once the user has finished entering information, the device validates the input data to ensure all fields are entered correctly. Depending on the user's emotional state, the device may also provide additional guidance messages or confirmations.

[0326] Step 4:

[0327] Once validation is complete, the device encrypts the data and sends it to the server using a secure communication protocol. A strong encryption algorithm is used to ensure data security.

[0328] Step 5:

[0329] The server receives the data and stores it in the database while keeping it encrypted. Access to the data is restricted to authorized institutions only.

[0330] Step 6:

[0331] If a user is asked to provide information to a specific organization, the device uses an emotion engine to determine the user's consent status and displays a screen for the user to review and approve the information.

[0332] Step 7:

[0333] Once the user consents to providing information, the server generates a temporary authentication token for the institution to access the information and provides it to the institution.

[0334] Step 8:

[0335] The institution uses the received authentication token to access the necessary information. The server generates access logs to track which institution accessed which information.

[0336] Step 9:

[0337] The server notifies the user that information has been provided and displays the logs in the user's view so that they can check the history. This allows the user to understand how their information has been used.

[0338] (Example 2)

[0339] Next, we will describe Example 2. In the following description, the data processing device 12 will be referred to as the "server" and the smart glasses 214 will be referred to as the "terminal".

[0340] In today's information society, it is crucial to manage personal identification information securely and efficiently, and to provide it to the appropriate organizations when necessary. However, current systems often sacrifice usability while ensuring information security, and in particular, they lack a consent process for information provision that takes into account the emotional state of the user. A further challenge is the need to ensure transparency in access records after information provision.

[0341] The identification process performed by the identification processing unit 290 of the data processing device 12 in Example 2 is realized by the following means.

[0342] In this invention, the server includes means for securely storing information and generating temporary authentication codes accessible only to designated organizations; means for dynamically analyzing the user's emotional state and adjusting the interface; and means for notifying the user of the information provision history based on the user's approval. This enables a user-friendly information provision process that takes the user's emotional state into consideration, as well as improved information security and transparency.

[0343] "Identification information" refers to data used to identify individuals or objects.

[0344] "Computer equipment" is a general term for devices that process data electronically.

[0345] "Encryption" is a technology that transforms information based on a specific algorithm to prevent interception by third parties.

[0346] A "communication channel" is a path or protocol used to send and receive data.

[0347] A "data storage device" is a system or structure for securely storing information over the long term.

[0348] An "authentication code" is a temporary code that can only be used by those with designated access rights.

[0349] "Emotional state" refers to information that represents the user's mental and psychological condition.

[0350] An "interface" is a general term for the environment and protocols that enable humans and computer devices to interact with each other.

[0351] An "information provision history" is a record that shows what information was provided, when, and to which organization.

[0352] This invention is a system for efficiently managing and securely providing personal identification information to organizations. The system consists of multiple components, and users input their identification information through a computer device. The computer device is equipped with an emotion engine that uses a camera and microphone to analyze the user's emotional state in real time. This emotion engine combines a neural network and voice analysis software to record the user's facial expressions and voice, and to identify emotional states such as stress and relaxation.

[0353] The entered information is validated on the terminal and then converted using a standardized encryption algorithm such as AES. This encryption provides high security to prevent information leakage. The terminal also uses the TLS protocol to securely transmit the encrypted information to the server. After receiving the information, the server securely stores it and generates an authentication code. The authentication code temporarily grants access to the information to a specified organization.

[0354] When users receive a request for information, they decide whether to consent to providing the information through an interface proposed by the emotion engine. For example, if the user is relaxed, the system presents an interface that allows for a quick decision. After the organization accesses the information using a temporary authentication code, the history is recorded on the server and notified to the user. This ensures transparency in information provision.

[0355] As a concrete example, when a user shares their medical history for a medical consultation, the system has a function to display guidance messages to alleviate the user's anxieties. For instance, prompts such as, "If the user shows signs of anxiety while entering information, how should the device adjust its UI?" can be input into the AI ​​model, which can then respond in real time based on that input.

[0356] The flow of the specific processing in Example 2 will be explained using Figure 13.

[0357] Step 1:

[0358] Users input identification and related information via computer devices. This input includes text data, audio, and images. This data is then prepared for sentiment analysis and validation in the next stage.

[0359] Step 2:

[0360] The device analyzes the user's facial expressions and voice using an emotion engine. Image processing algorithms and machine learning models are applied to process the input image and voice data to determine the user's emotional state. For example, if a facial expression indicating stress is detected, that information is output as data for interface adjustment.

[0361] Step 3:

[0362] The terminal validates the user's input data. Regular expressions and comparisons with existing databases are performed to ensure the entered identification information is accurate and complete. If validation is successful, the information proceeds to the next encryption step.

[0363] Step 4:

[0364] The device encrypts validated information. It uses the AES algorithm to convert text and image data into a secure format. This encrypted data is output to prevent external access.

[0365] Step 5:

[0366] The device sends encrypted information to the server using the TLS protocol. Before transmission, communication settings are checked and established to ensure that the encrypted data can be transmitted correctly.

[0367] Step 6:

[0368] The server securely stores the received encrypted data in a data storage device. A database management system is used for storage. The data is kept with restricted access until an authentication code is generated.

[0369] Step 7:

[0370] The server generates a temporary authentication code for a specific institution to access the information. The code is generated based on the user's authorization information and provided to the relevant institution as needed.

[0371] Step 8:

[0372] The server generates an access history after information is provided, recording which information was provided to which organization. This history is recorded as a log and notified to the user. This allows the user to see when and to whom the information was provided.

[0373] (Application Example 2)

[0374] Next, we will explain application example 2. In the following explanation, the data processing device 12 will be referred to as the "server," and the smart glasses 214 will be referred to as the "terminal."

[0375] Existing electronic payment and data provision systems often offer fixed interfaces without considering the user's emotional state, which can degrade the quality of the user experience. Furthermore, a lack of secure data management and efficient information delivery methods presents a challenge in simultaneously enhancing user convenience and data security.

[0376] The specific processing performed by the specific processing unit 290 of the data processing device 12 in Application Example 2 is realized by the following means.

[0377] In this invention, the server includes means for dynamically adjusting the information provision interface based on the emotional state of an identified user, means for inputting personal data from the user interface and encrypting that data in order to streamline data provision across multiple organizations, and means for transmitting the encrypted data to a storage device via a secure communication channel. This enables flexible interface provision that responds to the user's emotions and secure and efficient data management.

[0378] An "organization" is a group or institution formed to achieve a specific purpose.

[0379] "Data" refers to an encoded string or number that contains information.

[0380] A "user interface" is a means of interaction between a user and a system.

[0381] "Encryption" is a technique that transforms the content of data in order to transmit or store it securely.

[0382] A "communication channel" is a physical or logical path for sending and receiving data.

[0383] A "storage device" is a hardware or virtual device used to store data.

[0384] An "authentication code" is a temporary sequence of numbers or characters issued to prove specific access rights.

[0385] "Emotional state" refers to the internal conditions that represent the user's emotions and psychological state.

[0386] "Interface tuning" is the process of optimizing the interface according to the user's needs and circumstances.

[0387] To implement this invention, a system is used in which the user's device and the server work closely together. The user's device is equipped with a camera and microphone to acquire the user's facial expressions and voice data. Using this data, a generative AI model recognizes the user's emotional state. Specifically, software such as OpenPose or Google Cloud's Speech-to-Text API can be utilized. This allows the interface on the device to be dynamically adjusted based on the user's emotional state. For example, if the user is feeling anxious, simple and clear instructions can be provided.

[0388] The server receives encrypted data from users and stores it securely. To ensure the confidentiality of the information, AES (Advanced Encryption Standard) is used for data encryption. Furthermore, the TLS protocol is used for data transfer, guaranteeing secure communication.

[0389] When a user provides data to a specific organization, the server generates a temporary authentication code, allowing only authorized organizations to access the necessary information using that code. This allows users to track which organizations have accessed which data, ensuring transparency in information sharing.

[0390] As a concrete example, when a user uses online banking, if a relaxed emotional state is detected, the buttons on the screen will be displayed larger than usual, and important messages will be prioritized. Furthermore, an example of a prompt message could be given to the AI ​​model: "Recognize the user's emotions in real time from their facial expressions and voice in the smart payment application. If the user is relaxed, process the transaction faster than usual." This would simultaneously improve the user experience and enhance information security.

[0391] The flow of a specific process in Application Example 2 will be explained using Figure 14.

[0392] Step 1:

[0393] The user's device uses a camera and microphone to capture the user's facial expressions and voice. It collects facial expression and voice data from various angles as input. The output is stored in temporary storage so that this data can be passed on to the next processing step.

[0394] Step 2:

[0395] The device inputs acquired facial expression and voice data into a generating AI model to analyze the user's emotional state. It uses OpenPose to analyze facial expressions and Google Cloud's Speech-to-Text API to estimate emotions from the voice. The output is identified emotion data, which is used for interface adjustments.

[0396] Step 3:

[0397] The device adjusts the user interface based on emotional data. For example, if the user is stressed, it will enlarge buttons on the screen and prioritize important messages. The input is emotional data, and the output is a customized interface.

[0398] Step 4:

[0399] The user enters personal data through a pre-configured interface, which is then encrypted. The terminal uses AES to encrypt the data and sends it to the server via a secure communication channel. The input is the data entered by the user, and the output is the encrypted data.

[0400] Step 5:

[0401] The server securely stores the received encrypted data. Furthermore, it generates a temporary authentication code accessible to authorized organizations. At this stage, data storage is the primary output.

[0402] Step 6:

[0403] Obtain user approval and conduct the approval process quickly and in a relaxed manner. The input is user approval information, and the output is the provision of a temporary authentication code to the organization.

[0404] Step 7:

[0405] The server notifies users of information about which organizations accessed the data and when, and records the access history. The input is access information, and the output is user notifications and access logs.

[0406] The specific processing unit 290 transmits the result of the specific processing to the smart glasses 214. In the smart glasses 214, the control unit 46A causes the speaker 240 to output the result of the specific processing. The microphone 238 acquires audio indicating user input for the result of the specific processing. The control unit 46A transmits the audio data indicating user input acquired by the microphone 238 to the data processing unit 12. In the data processing unit 12, the specific processing unit 290 acquires the audio data.

[0407] Data generation model 58 is a type of so-called generative AI (Artificial Intelligence). One example of data generation model 58 is ChatGPT (Internet search<URL: https: / / openai.com / blog / chatgpt> ), Gemini (Internet search) <url: https: gemini.google.com ?hl="ja">Examples of generative AI include the following. The data generation model 58 is obtained by performing deep learning on a neural network. The data generation model 58 is input with prompts containing instructions, and with inference data such as audio data representing speech, text data representing text, and image data representing images. The data generation model 58 infers from the input inference data according to the instructions indicated by the prompts, and outputs the inference results in data formats such as audio data and text data. Here, inference refers to, for example, analysis, classification, prediction, and / or summarization.

[0408] In the above embodiment, an example was given in which specific processing is performed by the data processing device 12, but the technology of this disclosure is not limited thereto, and the specific processing may also be performed by the smart glasses 214.

[0409] [Third Embodiment]

[0410] Figure 5 shows an example of the configuration of the data processing system 310 according to the third embodiment.

[0411] As shown in Figure 5, the data processing system 310 includes a data processing device 12 and a headset terminal 314. An example of the data processing device 12 is a server.

[0412] The data processing device 12 comprises a computer 22, a database 24, and a communication interface 26. The computer 22 is an example of a "computer" related to the technology of this disclosure. The computer 22 comprises a processor 28, RAM 30, and storage 32. The processor 28, RAM 30, and storage 32 are connected to a bus 34. The database 24 and the communication interface 26 are also connected to the bus 34. The communication interface 26 is connected to a network 54. An example of the network 54 is a WAN (Wide Area Network) and / or a LAN (Local Area Network).

[0413] The headset terminal 314 includes a computer 36, a microphone 238, a speaker 240, a camera 42, a communication interface 44, and a display 343. The computer 36 includes a processor 46, RAM 48, and storage 50. The processor 46, RAM 48, and storage 50 are connected to a bus 52. The microphone 238, speaker 240, camera 42, and display 343 are also connected to the bus 52.

[0414] The microphone 238 receives voice signals from the user 20 and receives instructions from the user 20. The microphone 238 captures the voice signals from the user 20, converts the captured voice into audio data, and outputs it to the processor 46. The speaker 240 outputs audio according to the instructions from the processor 46.

[0415] Camera 42 is a small digital camera equipped with an optical system including a lens, aperture, and shutter, and an image sensor such as a CMOS (Complementary Metal-Oxide-Semiconductor) image sensor or a CCD (Charge Coupled Device) image sensor, and captures images of the area around the user 20 (for example, an imaging range defined by a field of view equivalent to the width of a typical healthy person's field of vision).

[0416] Communication interface 44 is connected to network 54. Communication interfaces 44 and 26 are responsible for the exchange of various information between processor 46 and processor 28 via network 54. The exchange of various information between processor 46 and processor 28 using communication interfaces 44 and 26 is performed in a secure manner.

[0417] Figure 6 shows an example of the main functions of the data processing device 12 and the headset terminal 314. As shown in Figure 6, the data processing device 12 performs specific processing using the processor 28. The storage 32 stores the specific processing program 56.

[0418] The specific processing program 56 is an example of a "program" relating to the technology of this disclosure. The processor 28 reads the specific processing program 56 from the storage 32 and executes the read specific processing program 56 on the RAM 30. The specific processing is realized by the processor 28 operating as a specific processing unit 290 in accordance with the specific processing program 56 executed on the RAM 30.

[0419] The storage 32 stores the data generation model 58 and the emotion identification model 59. The data generation model 58 and the emotion identification model 59 are used by the identification processing unit 290.

[0420] In the headset terminal 314, the processor 46 performs the reception output processing. The storage 50 stores the reception output program 60. The processor 46 reads the reception output program 60 from the storage 50 and executes the read reception output program 60 on the RAM 48. The reception output processing is realized by the processor 46 operating as a control unit 46A according to the reception output program 60 executed on the RAM 48.

[0421] Next, the specific processing performed by the specific processing unit 290 of the data processing device 12 will be described. In the following description, the data processing device 12 will be referred to as the "server" and the headset terminal 314 will be referred to as the "terminal".

[0422] This invention relates to a system for securely and efficiently managing personal information and providing it to different organizations as needed. This system is designed for seamless information sharing between user terminals, servers, and multiple organizations.

[0423] Users launch a dedicated application on their smartphone or PC and enter their personal and medical information. This entered information is validated in real time on the device, encrypted, and sent to the server. After receiving the encrypted data, the server stores it in a secure database to prevent unauthorized access to the data.

[0424] When a specific organization requires information, the user can review the request through the application and authorize the provision of information. Based on the user's authorization, the server generates a temporary authentication token that grants access limited to that organization. Using this token, the organization can access the necessary information.

[0425] For example, when a user visits a new hospital, if past medical history or allergy information is needed, the hospital can request this information through the system. After user approval, the hospital can retrieve the relevant information from the server and use it to treat the patient. This eliminates the need to use traditional paper-based questionnaires and allows for quick and accurate acquisition of necessary information before the consultation.

[0426] Furthermore, this system automatically notifies the user once all information access and provision is complete, and also stores more detailed access logs. Users can see which organizations used their information and how, thereby ensuring their privacy and information security.

[0427] The following describes the processing flow.

[0428] Step 1:

[0429] The user launches a dedicated application and enters personal and medical information. The terminal validates the format of the entered information and the completion of required fields in real time, prompting the user to correct any errors.

[0430] Step 2:

[0431] The device encrypts information that has passed validation using a strong encryption algorithm to protect personal information. The encryption key is temporarily generated and managed within the device.

[0432] Step 3:

[0433] The terminal sends encrypted information to the server using a secure data transfer protocol (such as HTTPS). The server receives the encrypted data and verifies the integrity and completeness of the transmission.

[0434] Step 4:

[0435] The server stores the received encrypted data directly into the database. By default, the data is inaccessible, and only authorized processes can access it.

[0436] Step 5:

[0437] If the relevant organization requests information, the user will receive and confirm the request through the application. The user will authorize the provision of information as needed.

[0438] Step 6:

[0439] Upon receiving user approval, the server generates a temporary authentication token that grants the institution access to the information. This token is valid for a specified period and becomes invalid after that period expires.

[0440] Step 7:

[0441] The institution's terminal accesses the necessary information using the provided authentication token. The server verifies the token's validity and provides the requested information.

[0442] Step 8:

[0443] After access to the information is complete, the server sends a notification to the user and generates a log recording which organization accessed which information. The log is retained for the user to review later.

[0444] (Example 1)

[0445] Next, we will describe Example 1. In the following description, the data processing device 12 will be referred to as the "server," and the headset-type terminal 314 will be referred to as the "terminal."

[0446] Providing individual identification information securely and efficiently to multiple data processing organizations requires considerable effort and time with current technology. Furthermore, if information security is not ensured, the risk of personal data breaches increases. Additionally, user approval procedures and access history management during information provision are cumbersome, highlighting the need for a means to achieve efficient data sharing while protecting user privacy.

[0447] The identification process performed by the identification processing unit 290 of the data processing device 12 in Example 1 is realized by the following means.

[0448] In this invention, the server includes means for securely encoding information and transferring information input from a user device, means for generating a temporary authentication code that grants limited access permissions to an information processing organization, and means for storing all access history and notifying the user. This enables efficient and secure information provision based on user approval.

[0449] "User device" refers to an electronic device used for inputting individual identification information, and includes smartphones and personal computers.

[0450] "Encoding" is the process of encrypting information using a specific algorithm, and it is a technology used to protect the confidentiality of information.

[0451] A "secure communication channel" is a protected communication path designed to prevent eavesdropping and unauthorized access to information during data transfer, and includes those using the SSL / TLS protocol.

[0452] An "information processing device" is a central processing unit used to analyze, store, and provide received information, and includes servers and database management systems.

[0453] An "authentication code" is a temporary access key generated to grant access limited to a specific information processing organization, and once authorized, it is only valid for a limited period of time.

[0454] A "recording medium" is a device or medium used to store information or access history, and includes hard disk drives and flash memory.

[0455] This invention relates to a system for securely and efficiently managing individual identification information and providing it to multiple information processing organizations. This system enables seamless information sharing between user devices, information processing devices, and multiple information processing organizations.

[0456] Users launch a dedicated application on their smartphone or personal computer and enter their individual identification information. This application is built using frameworks such as React Native or Electron. The information entered by the user is validated in real time on the device. For validation, regular expressions or the Validator.js library are used, for example.

[0457] The terminal encodes verified information using the AES (Advanced Encryption Standard) algorithm and transfers it to the information processing device (server) via a secure communication channel using the SSL / TLS protocol. This transfer prevents eavesdropping and tampering with the information.

[0458] The server, acting as an information processing device, stores the received encoded information in a secure database system (e.g., PostgreSQL, MongoDB). This database is managed using frameworks such as Spring Boot or Express.js. Furthermore, the server generates temporary authentication codes and provides them only to authorized information processing authorities, thereby restricting data access.

[0459] For example, when a user seeks medical treatment at a new medical facility, they may need information about their past medical history and allergies. The medical facility requests this information through this system, and the user approves the request through the application. After approval, the medical facility retrieves the relevant information from the server and can use it to provide appropriate medical care.

[0460] An example of a prompt message is, "Before your appointment at the new hospital, we need your past medical history and allergy information. Do you consent to the request for this information?" This prompt makes it easy for users to grant permission for information sharing.

[0461] The flow of the specific processing in Example 1 will be explained using Figure 11.

[0462] Step 1:

[0463] Users launch a dedicated application on their smartphone or personal computer and enter their individual identification and medical information. The application is built using React Native or Electron frameworks. This entered data is validated in real time on the device. Specifically, when a user enters data into an input field, the format and integrity of the data are checked using regular expressions or libraries (e.g., Validator.js). In this step, the input is personal information directly entered by the user, and the output is validated personal information.

[0464] Step 2:

[0465] The terminal encodes the validated information using the AES encryption algorithm. The Web Crypto API is used for encryption. This encoding process protects the confidentiality of the data. The encoded data is sent to the server via a secure communication channel using the SSL / TLS protocol. In this step, the input is validated personal information and the output is encrypted data. Specifically, the process involves the terminal establishing an SSL / TLS connection and sending data to the server's IP address.

[0466] Step 3:

[0467] The server parses the received encrypted data and processes it to store it in a secure database. The server-side application is implemented using Spring Boot or Express.js frameworks. The server uses PostgreSQL or MongoDB as the database and appropriately stores the received data. In this step, the input is encrypted data, and the output is data records stored in the database. Specifically, the server verifies the sender's authentication and executes a query to save the data to the database.

[0468] Step 4:

[0469] When a user receives an information access request from a specific information processing authority, they review the request through the application and decide whether to approve it. If approved, the server generates a temporary authentication token using OAuth 2.0 or JWT. In this step, the input is the information access request from the authority, and the output is the user's approval and temporary authentication token. Specifically, the application displays a confirmation message to the user, and the user taps a button to approve.

[0470] Step 5:

[0471] The server provides the generated temporary authentication token to the information processing authority. The authority can use this token to access and utilize the necessary information. Once access is complete, the server creates a detailed access log and notifies the user that the information has been provided. In this step, the input is the temporary authentication token, and the output is the permission to access information to the authority and the access log. Specifically, the server writes the access record to a log file.

[0472] (Application Example 1)

[0473] Next, we will explain Application Example 1. In the following explanation, the data processing device 12 will be referred to as the "server," and the headset-type terminal 314 will be referred to as the "terminal."

[0474] In today's information society, there is a need for systems that can securely manage personal and financial information and provide it efficiently and safely to the necessary institutions. However, many systems have security and efficiency problems in managing and providing information. In particular, the secure handling of financial information in electronic transactions is important, but providing the necessary information safely and quickly is difficult. Therefore, there is a strong desire for the realization of systems that enable secure and efficient information management and provision.

[0475] The specific processing performed by the specific processing unit 290 of the data processing device 12 in Application Example 1 is realized by the following means.

[0476] In this invention, the server includes means for inputting personal information from a communication device and encrypting that information, means for transmitting the encrypted information to a storage device via a secure communication channel, and means for managing financial information, and means for securely providing the information necessary for digital transactions, in order to streamline the provision of information to multiple institutions. As a result, information is managed securely and it becomes possible to provide information efficiently and securely to the necessary institutions based on user approval.

[0477] "Multiple organizations" refers to a variety of organizations involved in providing or obtaining information.

[0478] "Personal information" refers to information that can identify a specific individual, including information such as name, address, contact information, and financial information.

[0479] "Communication equipment" refers to electronic terminals used to input, transmit, and receive data, including smartphones and personal computers.

[0480] "Encryption" refers to the process of converting information into a format that cannot be deciphered by third parties in order to ensure the security of the information.

[0481] A "secure communication channel" is a communication path that allows information to be sent and received safely, and it uses encryption protocols to guarantee the confidentiality of the data.

[0482] A "storage device" refers to a data storage system for securely storing received data.

[0483] An "authentication code" is a temporary authorization required for a specific organization to access information, and is used to control access to that information.

[0484] "Financial information" refers to data that shows the financial status of an individual or organization, including account numbers and transaction history.

[0485] "Digital transactions" refer to transactions related to the purchase of goods or the provision of services that are conducted electronically.

[0486] "Access history" refers to a record of information access within a system, and is data that shows which organization used the information and when.

[0487] This system operates on a network-based structure that includes communication devices, servers, and storage devices. Communication devices (e.g., smartphones and personal computers) provide an interface for users to input and encrypt personal and financial information. Advanced protocols (e.g., TLS or SSL) are used for encryption to ensure the confidentiality of the information.

[0488] When the terminal receives the entered information, it performs a real-time integrity check. This check includes a validation process to verify that the format and content of the information are correct.

[0489] The server receives encrypted information via a secure communication channel and safely stores it in a storage device. Access to the stored information is controlled by generating a temporary authentication code when a specific institution accesses it with the user's authorization. This process is typically performed on cloud services such as Amazon Web Services or Google Cloud.

[0490] When users are asked to provide financial information in electronic transactions, they can verify and approve the request through the system. For example, when a user conducts online purchasing activities, the necessary financial information is securely provided to the trading partner. In this process, the trading partner accesses the user's information using an authentication code.

[0491] The system records all information access and generates an access history. This allows users to understand which organizations used the information and when.

[0492] As a concrete example, in a digital wallet application using a generative AI model, the following prompt is used to explain how past purchase history will be securely shared when a user purchases an item: "Please explain how past purchase history will be securely shared when a user purchases an item." This prompt is useful for analyzing user purchasing behavior.

[0493] The flow of a specific process in Application Example 1 will be explained using Figure 12.

[0494] Step 1:

[0495] The terminal receives personal and financial information from the user. It performs validation on the entered data to verify format consistency and ensure it is in a valid format. As a result of processing, data that passes validation is passed on to the next processing step.

[0496] Step 2:

[0497] The terminal encrypts the validated information. Here, encryption protocols such as TLS or SSL are used to secure the data. This encrypted data is then transmitted to the server via a secure communication channel. The output consists of encrypted personal and financial information.

[0498] Step 3:

[0499] The server stores the received encrypted data in a storage device. The data is stored in its original encrypted state and protected by access control. After confirming that the storage process is complete, the server waits for the next request.

[0500] Step 4:

[0501] When a user authorizes the provision of information to a specific institution, the server generates an authentication code. This authentication code grants temporary, restricted access to that institution. The generated authentication code is then used to grant the institution access to the necessary information.

[0502] Step 5:

[0503] After providing information, the server records access history. This access history includes information about which organizations accessed the server and when. Based on this record, users receive notifications, allowing them to see how their information was used.

[0504] Step 6:

[0505] The server uses a generative AI model to create prompt messages and provide additional information to help users conduct transactions with confidence. For example, a prompt message might be: "Please explain how to securely share past purchase history when a user purchases an item."

[0506] Furthermore, an emotion engine that estimates the user's emotions may be incorporated. That is, the identification processing unit 290 may use the emotion identification model 59 to estimate the user's emotions and perform identification processing using the user's emotions.

[0507] This invention combines a system that enables efficient management and provision of personal information with an emotion engine that recognizes user emotions. By considering the emotional state of the user when inputting information, this system achieves a better user interface and information delivery experience.

[0508] First, users input personal and medical information through a dedicated application. During this process, an emotion engine analyzes the user's emotions in real time based on their facial expressions and voice. For example, if a user is experiencing stress, the device can adjust the interface based on this information to provide input assistance. Specific methods include changing the font size and displaying guidance messages.

[0509] The terminal validates the entered information, and if there are no problems, encrypts the data using a strong encryption algorithm. It then sends the encrypted information to the server via a secure communication channel, and the receiving server securely stores this information.

[0510] When a specific organization requires information, users can authorize the provision of that information while considering emotional data recognized by the emotion engine. For example, if the user is relaxed, the authorization process can be expedited.

[0511] After approval, the server generates a temporary authentication token for accessing information to the institution. This token allows the institution to access only the necessary information. Finally, transparency is ensured by notifying the user of which information was provided to which institution.

[0512] In this way, this system, which incorporates an emotion engine, provides a better user experience that takes into account the user's emotional state, improving information security and usability.

[0513] The following describes the processing flow.

[0514] Step 1:

[0515] The user launches a dedicated application and begins entering personal and medical information on the input screen. The device uses its camera and microphone to transmit the user's facial expressions and voice to an emotion engine for emotional analysis.

[0516] Step 2:

[0517] The device receives emotional data obtained by the emotion engine in real time and dynamically adjusts the interface according to the user's mood. For example, if the user is feeling stressed, the screen colors may be changed to calmer hues.

[0518] Step 3:

[0519] Once the user has finished entering information, the device validates the input data to ensure all fields are entered correctly. Depending on the user's emotional state, the device may also provide additional guidance messages or confirmations.

[0520] Step 4:

[0521] Once validation is complete, the device encrypts the data and sends it to the server using a secure communication protocol. A strong encryption algorithm is used to ensure data security.

[0522] Step 5:

[0523] The server receives the data and stores it in the database while keeping it encrypted. Access to the data is restricted to authorized institutions only.

[0524] Step 6:

[0525] If a user is asked to provide information to a specific organization, the device uses an emotion engine to determine the user's consent status and displays a screen for the user to review and approve the information.

[0526] Step 7:

[0527] Once the user consents to providing information, the server generates a temporary authentication token for the institution to access the information and provides it to the institution.

[0528] Step 8:

[0529] The institution uses the received authentication token to access the necessary information. The server generates access logs to track which institution accessed which information.

[0530] Step 9:

[0531] The server notifies the user that information has been provided and displays the logs in the user's view so that they can check the history. This allows the user to understand how their information has been used.

[0532] (Example 2)

[0533] Next, we will describe Example 2. In the following description, the data processing device 12 will be referred to as the "server," and the headset-type terminal 314 will be referred to as the "terminal."

[0534] In today's information society, it is crucial to manage personal identification information securely and efficiently, and to provide it to the appropriate organizations when necessary. However, current systems often sacrifice usability while ensuring information security, and in particular, they lack a consent process for information provision that takes into account the emotional state of the user. A further challenge is the need to ensure transparency in access records after information provision.

[0535] The identification process performed by the identification processing unit 290 of the data processing device 12 in Example 2 is realized by the following means.

[0536] In this invention, the server includes means for securely storing information and generating temporary authentication codes accessible only to designated organizations; means for dynamically analyzing the user's emotional state and adjusting the interface; and means for notifying the user of the information provision history based on the user's approval. This enables a user-friendly information provision process that takes the user's emotional state into consideration, as well as improved information security and transparency.

[0537] "Identification information" refers to data used to identify individuals or objects.

[0538] "Computer equipment" is a general term for devices that process data electronically.

[0539] "Encryption" is a technology that transforms information based on a specific algorithm to prevent interception by third parties.

[0540] A "communication channel" is a path or protocol used to send and receive data.

[0541] A "data storage device" is a system or structure for securely storing information over the long term.

[0542] An "authentication code" is a temporary code that can only be used by those with designated access rights.

[0543] "Emotional state" refers to information that represents the user's mental and psychological condition.

[0544] An "interface" is a general term for the environment and protocols that enable humans and computer devices to interact with each other.

[0545] An "information provision history" is a record that shows what information was provided, when, and to which organization.

[0546] This invention is a system for efficiently managing and securely providing personal identification information to organizations. The system consists of multiple components, and users input their identification information through a computer device. The computer device is equipped with an emotion engine that uses a camera and microphone to analyze the user's emotional state in real time. This emotion engine combines a neural network and voice analysis software to record the user's facial expressions and voice, and to identify emotional states such as stress and relaxation.

[0547] The entered information is validated on the terminal and then converted using a standardized encryption algorithm such as AES. This encryption provides high security to prevent information leakage. The terminal also uses the TLS protocol to securely transmit the encrypted information to the server. After receiving the information, the server securely stores it and generates an authentication code. The authentication code temporarily grants access to the information to a specified organization.

[0548] When users receive a request for information, they decide whether to consent to providing the information through an interface proposed by the emotion engine. For example, if the user is relaxed, the system presents an interface that allows for a quick decision. After the organization accesses the information using a temporary authentication code, the history is recorded on the server and notified to the user. This ensures transparency in information provision.

[0549] As a concrete example, when a user shares their medical history for a medical consultation, the system has a function to display guidance messages to alleviate the user's anxieties. For instance, prompts such as, "If the user shows signs of anxiety while entering information, how should the device adjust its UI?" can be input into the AI ​​model, which can then respond in real time based on that input.

[0550] The flow of the specific processing in Example 2 will be explained using Figure 13.

[0551] Step 1:

[0552] Users input identification and related information via computer devices. This input includes text data, audio, and images. This data is then prepared for sentiment analysis and validation in the next stage.

[0553] Step 2:

[0554] The device analyzes the user's facial expressions and voice using an emotion engine. Image processing algorithms and machine learning models are applied to process the input image and voice data to determine the user's emotional state. For example, if a facial expression indicating stress is detected, that information is output as data for interface adjustment.

[0555] Step 3:

[0556] The terminal validates the user's input data. Regular expressions and comparisons with existing databases are performed to ensure the entered identification information is accurate and complete. If validation is successful, the information proceeds to the next encryption step.

[0557] Step 4:

[0558] The device encrypts validated information. It uses the AES algorithm to convert text and image data into a secure format. This encrypted data is output to prevent external access.

[0559] Step 5:

[0560] The device sends encrypted information to the server using the TLS protocol. Before transmission, communication settings are checked and established to ensure that the encrypted data can be transmitted correctly.

[0561] Step 6:

[0562] The server securely stores the received encrypted data in a data storage device. A database management system is used for storage. The data is kept with restricted access until an authentication code is generated.

[0563] Step 7:

[0564] The server generates a temporary authentication code for a specific institution to access the information. The code is generated based on the user's authorization information and provided to the relevant institution as needed.

[0565] Step 8:

[0566] The server generates an access history after information is provided, recording which information was provided to which organization. This history is recorded as a log and notified to the user. This allows the user to see when and to whom the information was provided.

[0567] (Application Example 2)

[0568] Next, we will explain application example 2. In the following explanation, the data processing device 12 will be referred to as the "server," and the headset-type terminal 314 will be referred to as the "terminal."

[0569] Existing electronic payment and data provision systems often offer fixed interfaces without considering the user's emotional state, which can degrade the quality of the user experience. Furthermore, a lack of secure data management and efficient information delivery methods presents a challenge in simultaneously enhancing user convenience and data security.

[0570] The specific processing performed by the specific processing unit 290 of the data processing device 12 in Application Example 2 is realized by the following means.

[0571] In this invention, the server includes means for dynamically adjusting the information provision interface based on the emotional state of an identified user, means for inputting personal data from the user interface and encrypting that data in order to streamline data provision across multiple organizations, and means for transmitting the encrypted data to a storage device via a secure communication channel. This enables flexible interface provision that responds to the user's emotions and secure and efficient data management.

[0572] An "organization" is a group or institution formed to achieve a specific purpose.

[0573] "Data" refers to an encoded string or number that contains information.

[0574] A "user interface" is a means of interaction between a user and a system.

[0575] "Encryption" is a technique that transforms the content of data in order to transmit or store it securely.

[0576] A "communication channel" is a physical or logical path for sending and receiving data.

[0577] A "storage device" is a hardware or virtual device used to store data.

[0578] An "authentication code" is a temporary sequence of numbers or characters issued to prove specific access rights.

[0579] "Emotional state" refers to the internal conditions that represent the user's emotions and psychological state.

[0580] "Interface tuning" is the process of optimizing the interface according to the user's needs and circumstances.

[0581] To implement this invention, a system is used in which the user's device and the server work closely together. The user's device is equipped with a camera and microphone to acquire the user's facial expressions and voice data. Using this data, a generative AI model recognizes the user's emotional state. Specifically, software such as OpenPose or Google Cloud's Speech-to-Text API can be utilized. This allows the interface on the device to be dynamically adjusted based on the user's emotional state. For example, if the user is feeling anxious, simple and clear instructions can be provided.

[0582] The server receives encrypted data from users and stores it securely. To ensure the confidentiality of the information, AES (Advanced Encryption Standard) is used for data encryption. Furthermore, the TLS protocol is used for data transfer, guaranteeing secure communication.

[0583] When a user provides data to a specific organization, the server generates a temporary authentication code, allowing only authorized organizations to access the necessary information using that code. This allows users to track which organizations have accessed which data, ensuring transparency in information sharing.

[0584] As a concrete example, when a user uses online banking, if a relaxed emotional state is detected, the buttons on the screen will be displayed larger than usual, and important messages will be prioritized. Furthermore, an example of a prompt message could be given to the AI ​​model: "Recognize the user's emotions in real time from their facial expressions and voice in the smart payment application. If the user is relaxed, process the transaction faster than usual." This would simultaneously improve the user experience and enhance information security.

[0585] The flow of a specific process in Application Example 2 will be explained using Figure 14.

[0586] Step 1:

[0587] The user's device uses a camera and microphone to capture the user's facial expressions and voice. It collects facial expression and voice data from various angles as input. The output is stored in temporary storage so that this data can be passed on to the next processing step.

[0588] Step 2:

[0589] The device inputs acquired facial expression and voice data into a generating AI model to analyze the user's emotional state. It uses OpenPose to analyze facial expressions and Google Cloud's Speech-to-Text API to estimate emotions from the voice. The output is identified emotion data, which is used for interface adjustments.

[0590] Step 3:

[0591] The device adjusts the user interface based on emotional data. For example, if the user is stressed, it will enlarge buttons on the screen and prioritize important messages. The input is emotional data, and the output is a customized interface.

[0592] Step 4:

[0593] The user enters personal data through a pre-configured interface, which is then encrypted. The terminal uses AES to encrypt the data and sends it to the server via a secure communication channel. The input is the data entered by the user, and the output is the encrypted data.

[0594] Step 5:

[0595] The server securely stores the received encrypted data. Furthermore, it generates a temporary authentication code accessible to authorized organizations. At this stage, data storage is the primary output.

[0596] Step 6:

[0597] Obtain user approval and conduct the approval process quickly and in a relaxed manner. The input is user approval information, and the output is the provision of a temporary authentication code to the organization.

[0598] Step 7:

[0599] The server notifies users of information about which organizations accessed the data and when, and records the access history. The input is access information, and the output is user notifications and access logs.

[0600] The specific processing unit 290 transmits the result of the specific processing to the headset terminal 314. In the headset terminal 314, the control unit 46A causes the speaker 240 and display 343 to output the result of the specific processing. The microphone 238 acquires audio indicating user input for the result of the specific processing. The control unit 46A transmits the audio data indicating user input acquired by the microphone 238 to the data processing unit 12. In the data processing unit 12, the specific processing unit 290 acquires the audio data.

[0601] Data generation model 58 is a type of so-called generative AI (Artificial Intelligence). One example of data generation model 58 is ChatGPT (Internet search<URL: https: / / openai.com / blog / chatgpt> ), Gemini (Internet search) <url: https: gemini.google.com ?hl="ja">Examples of generative AI include the following. The data generation model 58 is obtained by performing deep learning on a neural network. The data generation model 58 is input with prompts containing instructions, and with inference data such as audio data representing speech, text data representing text, and image data representing images. The data generation model 58 infers from the input inference data according to the instructions indicated by the prompts, and outputs the inference results in data formats such as audio data and text data. Here, inference refers to, for example, analysis, classification, prediction, and / or summarization.

[0602] In the above embodiment, an example was given in which specific processing is performed by the data processing device 12, but the technology of this disclosure is not limited thereto, and specific processing may also be performed by the headset terminal 314.

[0603] [Fourth Embodiment]

[0604] Figure 7 shows an example of the configuration of the data processing system 410 according to the fourth embodiment.

[0605] As shown in Figure 7, the data processing system 410 includes a data processing device 12 and a robot 414. An example of the data processing device 12 is a server.

[0606] The data processing device 12 comprises a computer 22, a database 24, and a communication interface 26. The computer 22 is an example of a "computer" related to the technology of this disclosure. The computer 22 comprises a processor 28, RAM 30, and storage 32. The processor 28, RAM 30, and storage 32 are connected to a bus 34. The database 24 and the communication interface 26 are also connected to the bus 34. The communication interface 26 is connected to a network 54. An example of the network 54 is a WAN (Wide Area Network) and / or a LAN (Local Area Network).

[0607] The robot 414 includes a computer 36, a microphone 238, a speaker 240, a camera 42, a communication interface 44, and a controlled object 443. The computer 36 includes a processor 46, RAM 48, and storage 50. The processor 46, RAM 48, and storage 50 are connected to a bus 52. The microphone 238, speaker 240, camera 42, and controlled object 443 are also connected to the bus 52.

[0608] The microphone 238 receives voice signals from the user 20 and receives instructions from the user 20. The microphone 238 captures the voice signals from the user 20, converts the captured voice into audio data, and outputs it to the processor 46. The speaker 240 outputs audio according to the instructions from the processor 46.

[0609] Camera 42 is a small digital camera equipped with an optical system including a lens, aperture, and shutter, and an image sensor such as a CMOS (Complementary Metal-Oxide-Semiconductor) image sensor or a CCD (Charge Coupled Device) image sensor, and captures images of the area around the user 20 (for example, an imaging range defined by a field of view equivalent to the width of a typical healthy person's field of vision).

[0610] Communication interface 44 is connected to network 54. Communication interfaces 44 and 26 are responsible for the exchange of various information between processor 46 and processor 28 via network 54. The exchange of various information between processor 46 and processor 28 using communication interfaces 44 and 26 is performed in a secure manner.

[0611] The controlled object 443 includes a display device, LEDs in the eyes, and motors that drive the arms, hands, and feet. The posture and gestures of the robot 414 are controlled by controlling the motors of the arms, hands, and feet. Some of the robot 414's emotions can be expressed by controlling these motors. Furthermore, the robot 414's facial expressions can also be expressed by controlling the illumination state of the LEDs in its eyes.

[0612] Figure 8 shows an example of the main functions of the data processing device 12 and the robot 414. As shown in Figure 8, the data processing device 12 performs specific processing using the processor 28. The storage 32 stores the specific processing program 56.

[0613] The specific processing program 56 is an example of a "program" relating to the technology of this disclosure. The processor 28 reads the specific processing program 56 from the storage 32 and executes the read specific processing program 56 on the RAM 30. The specific processing is realized by the processor 28 operating as a specific processing unit 290 in accordance with the specific processing program 56 executed on the RAM 30.

[0614] The storage 32 stores the data generation model 58 and the emotion identification model 59. The data generation model 58 and the emotion identification model 59 are used by the identification processing unit 290.

[0615] In robot 414, the processor 46 performs the reception output processing. The storage 50 stores the reception output program 60. The processor 46 reads the reception output program 60 from the storage 50 and executes the read reception output program 60 on the RAM 48. The reception output processing is realized by the processor 46 operating as a control unit 46A according to the reception output program 60 executed on the RAM 48.

[0616] Next, the specific processing performed by the specific processing unit 290 of the data processing device 12 will be described. In the following description, the data processing device 12 will be referred to as the "server" and the robot 414 as the "terminal".

[0617] This invention relates to a system for securely and efficiently managing personal information and providing it to different organizations as needed. This system is designed for seamless information sharing between user terminals, servers, and multiple organizations.

[0618] Users launch a dedicated application on their smartphone or PC and enter their personal and medical information. This entered information is validated in real time on the device, encrypted, and sent to the server. After receiving the encrypted data, the server stores it in a secure database to prevent unauthorized access to the data.

[0619] When a specific organization requires information, the user can review the request through the application and authorize the provision of information. Based on the user's authorization, the server generates a temporary authentication token that grants access limited to that organization. Using this token, the organization can access the necessary information.

[0620] For example, when a user visits a new hospital, if past medical history or allergy information is needed, the hospital can request this information through the system. After user approval, the hospital can retrieve the relevant information from the server and use it to treat the patient. This eliminates the need to use traditional paper-based questionnaires and allows for quick and accurate acquisition of necessary information before the consultation.

[0621] Furthermore, this system automatically notifies the user once all information access and provision is complete, and also stores more detailed access logs. Users can see which organizations used their information and how, thereby ensuring their privacy and information security.

[0622] The following describes the processing flow.

[0623] Step 1:

[0624] The user launches a dedicated application and enters personal and medical information. The terminal validates the format of the entered information and the completion of required fields in real time, prompting the user to correct any errors.

[0625] Step 2:

[0626] The device encrypts information that has passed validation using a strong encryption algorithm to protect personal information. The encryption key is temporarily generated and managed within the device.

[0627] Step 3:

[0628] The terminal sends encrypted information to the server using a secure data transfer protocol (such as HTTPS). The server receives the encrypted data and verifies the integrity and completeness of the transmission.

[0629] Step 4:

[0630] The server stores the received encrypted data directly into the database. By default, the data is inaccessible, and only authorized processes can access it.

[0631] Step 5:

[0632] If the relevant organization requests information, the user will receive and confirm the request through the application. The user will authorize the provision of information as needed.

[0633] Step 6:

[0634] Upon receiving user approval, the server generates a temporary authentication token that grants the institution access to the information. This token is valid for a specified period and becomes invalid after that period expires.

[0635] Step 7:

[0636] The institution's terminal accesses the necessary information using the provided authentication token. The server verifies the token's validity and provides the requested information.

[0637] Step 8:

[0638] After access to the information is complete, the server sends a notification to the user and generates a log recording which organization accessed which information. The log is retained for the user to review later.

[0639] (Example 1)

[0640] Next, we will describe Example 1. In the following description, the data processing device 12 will be referred to as the "server" and the robot 414 as the "terminal".

[0641] Providing individual identification information securely and efficiently to multiple data processing organizations requires considerable effort and time with current technology. Furthermore, if information security is not ensured, the risk of personal data breaches increases. Additionally, user approval procedures and access history management during information provision are cumbersome, highlighting the need for a means to achieve efficient data sharing while protecting user privacy.

[0642] The identification process performed by the identification processing unit 290 of the data processing device 12 in Example 1 is realized by the following means.

[0643] In this invention, the server includes means for securely encoding information and transferring information input from a user device, means for generating a temporary authentication code that grants limited access permissions to an information processing organization, and means for storing all access history and notifying the user. This enables efficient and secure information provision based on user approval.

[0644] "User device" refers to an electronic device used for inputting individual identification information, and includes smartphones and personal computers.

[0645] "Encoding" is the process of encrypting information using a specific algorithm, and it is a technology used to protect the confidentiality of information.

[0646] A "secure communication channel" is a protected communication path designed to prevent eavesdropping and unauthorized access to information during data transfer, and includes those using the SSL / TLS protocol.

[0647] An "information processing device" is a central processing unit used to analyze, store, and provide received information, and includes servers and database management systems.

[0648] An "authentication code" is a temporary access key generated to grant access limited to a specific information processing organization, and once authorized, it is only valid for a limited period of time.

[0649] A "recording medium" is a device or medium used to store information or access history, and includes hard disk drives and flash memory.

[0650] This invention relates to a system for securely and efficiently managing individual identification information and providing it to multiple information processing organizations. This system enables seamless information sharing between user devices, information processing devices, and multiple information processing organizations.

[0651] Users launch a dedicated application on their smartphone or personal computer and enter their individual identification information. This application is built using frameworks such as React Native or Electron. The information entered by the user is validated in real time on the device. For validation, regular expressions or the Validator.js library are used, for example.

[0652] The terminal encodes verified information using the AES (Advanced Encryption Standard) algorithm and transfers it to the information processing device (server) via a secure communication channel using the SSL / TLS protocol. This transfer prevents eavesdropping and tampering with the information.

[0653] The server, acting as an information processing device, stores the received encoded information in a secure database system (e.g., PostgreSQL, MongoDB). This database is managed using frameworks such as Spring Boot or Express.js. Furthermore, the server generates temporary authentication codes and provides them only to authorized information processing authorities, thereby restricting data access.

[0654] For example, when a user seeks medical treatment at a new medical facility, they may need information about their past medical history and allergies. The medical facility requests this information through this system, and the user approves the request through the application. After approval, the medical facility retrieves the relevant information from the server and can use it to provide appropriate medical care.

[0655] An example of a prompt message is, "Before your appointment at the new hospital, we need your past medical history and allergy information. Do you consent to the request for this information?" This prompt makes it easy for users to grant permission for information sharing.

[0656] The flow of the specific processing in Example 1 will be explained using Figure 11.

[0657] Step 1:

[0658] Users launch a dedicated application on their smartphone or personal computer and enter their individual identification and medical information. The application is built using React Native or Electron frameworks. This entered data is validated in real time on the device. Specifically, when a user enters data into an input field, the format and integrity of the data are checked using regular expressions or libraries (e.g., Validator.js). In this step, the input is personal information directly entered by the user, and the output is validated personal information.

[0659] Step 2:

[0660] The terminal encodes the validated information using the AES encryption algorithm. The Web Crypto API is used for encryption. This encoding process protects the confidentiality of the data. The encoded data is sent to the server via a secure communication channel using the SSL / TLS protocol. In this step, the input is validated personal information and the output is encrypted data. Specifically, the process involves the terminal establishing an SSL / TLS connection and sending data to the server's IP address.

[0661] Step 3:

[0662] The server parses the received encrypted data and processes it to store it in a secure database. The server-side application is implemented using Spring Boot or Express.js frameworks. The server uses PostgreSQL or MongoDB as the database and appropriately stores the received data. In this step, the input is encrypted data, and the output is data records stored in the database. Specifically, the server verifies the sender's authentication and executes a query to save the data to the database.

[0663] Step 4:

[0664] When a user receives an information access request from a specific information processing authority, they review the request through the application and decide whether to approve it. If approved, the server generates a temporary authentication token using OAuth 2.0 or JWT. In this step, the input is the information access request from the authority, and the output is the user's approval and temporary authentication token. Specifically, the application displays a confirmation message to the user, and the user taps a button to approve.

[0665] Step 5:

[0666] The server provides the generated temporary authentication token to the information processing authority. The authority can use this token to access and utilize the necessary information. Once access is complete, the server creates a detailed access log and notifies the user that the information has been provided. In this step, the input is the temporary authentication token, and the output is the permission to access information to the authority and the access log. Specifically, the server writes the access record to a log file.

[0667] (Application Example 1)

[0668] Next, we will explain Application Example 1. In the following explanation, the data processing device 12 will be referred to as the "server" and the robot 414 as the "terminal".

[0669] In today's information society, there is a need for systems that can securely manage personal and financial information and provide it efficiently and safely to the necessary institutions. However, many systems have security and efficiency problems in managing and providing information. In particular, the secure handling of financial information in electronic transactions is important, but providing the necessary information safely and quickly is difficult. Therefore, there is a strong desire for the realization of systems that enable secure and efficient information management and provision.

[0670] The specific processing performed by the specific processing unit 290 of the data processing device 12 in Application Example 1 is realized by the following means.

[0671] In this invention, the server includes means for inputting personal information from a communication device and encrypting that information, means for transmitting the encrypted information to a storage device via a secure communication channel, and means for managing financial information, and means for securely providing the information necessary for digital transactions, in order to streamline the provision of information to multiple institutions. As a result, information is managed securely and it becomes possible to provide information efficiently and securely to the necessary institutions based on user approval.

[0672] "Multiple organizations" refers to a variety of organizations involved in providing or obtaining information.

[0673] "Personal information" refers to information that can identify a specific individual, including information such as name, address, contact information, and financial information.

[0674] "Communication equipment" refers to electronic terminals used to input, transmit, and receive data, including smartphones and personal computers.

[0675] "Encryption" refers to the process of converting information into a format that cannot be deciphered by third parties in order to ensure the security of the information.

[0676] A "secure communication channel" is a communication path that allows information to be sent and received safely, and it uses encryption protocols to guarantee the confidentiality of the data.

[0677] A "storage device" refers to a data storage system for securely storing received data.

[0678] An "authentication code" is a temporary authorization required for a specific organization to access information, and is used to control access to that information.

[0679] "Financial information" refers to data that shows the financial status of an individual or organization, including account numbers and transaction history.

[0680] "Digital transactions" refer to transactions related to the purchase of goods or the provision of services that are conducted electronically.

[0681] "Access history" refers to a record of information access within a system, and is data that shows which organization used the information and when.

[0682] This system operates on a network-based structure that includes communication devices, servers, and storage devices. Communication devices (e.g., smartphones and personal computers) provide an interface for users to input and encrypt personal and financial information. Advanced protocols (e.g., TLS or SSL) are used for encryption to ensure the confidentiality of the information.

[0683] When the terminal receives the entered information, it performs a real-time integrity check. This check includes a validation process to verify that the format and content of the information are correct.

[0684] The server receives encrypted information via a secure communication channel and safely stores it in a storage device. Access to the stored information is controlled by generating a temporary authentication code when a specific institution accesses it with the user's authorization. This process is typically performed on cloud services such as Amazon Web Services or Google Cloud.

[0685] When users are asked to provide financial information in electronic transactions, they can verify and approve the request through the system. For example, when a user conducts online purchasing activities, the necessary financial information is securely provided to the trading partner. In this process, the trading partner accesses the user's information using an authentication code.

[0686] The system records all information access and generates an access history. This allows users to understand which organizations used the information and when.

[0687] As a concrete example, in a digital wallet application using a generative AI model, the following prompt is used to explain how past purchase history will be securely shared when a user purchases an item: "Please explain how past purchase history will be securely shared when a user purchases an item." This prompt is useful for analyzing user purchasing behavior.

[0688] The flow of a specific process in Application Example 1 will be explained using Figure 12.

[0689] Step 1:

[0690] The terminal receives personal and financial information from the user. It performs validation on the entered data to verify format consistency and ensure it is in a valid format. As a result of processing, data that passes validation is passed on to the next processing step.

[0691] Step 2:

[0692] The terminal encrypts the validated information. Here, encryption protocols such as TLS or SSL are used to secure the data. This encrypted data is then transmitted to the server via a secure communication channel. The output consists of encrypted personal and financial information.

[0693] Step 3:

[0694] The server stores the received encrypted data in a storage device. The data is stored in its original encrypted state and protected by access control. After confirming that the storage process is complete, the server waits for the next request.

[0695] Step 4:

[0696] When a user authorizes the provision of information to a specific institution, the server generates an authentication code. This authentication code grants temporary, restricted access to that institution. The generated authentication code is then used to grant the institution access to the necessary information.

[0697] Step 5:

[0698] After providing information, the server records access history. This access history includes information about which organizations accessed the server and when. Based on this record, users receive notifications, allowing them to see how their information was used.

[0699] Step 6:

[0700] The server uses a generative AI model to create prompt messages and provide additional information to help users conduct transactions with confidence. For example, a prompt message might be: "Please explain how to securely share past purchase history when a user purchases an item."

[0701] Furthermore, an emotion engine that estimates the user's emotions may be incorporated. That is, the identification processing unit 290 may use the emotion identification model 59 to estimate the user's emotions and perform identification processing using the user's emotions.

[0702] This invention combines a system that enables efficient management and provision of personal information with an emotion engine that recognizes user emotions. By considering the emotional state of the user when inputting information, this system achieves a better user interface and information delivery experience.

[0703] First, users input personal and medical information through a dedicated application. During this process, an emotion engine analyzes the user's emotions in real time based on their facial expressions and voice. For example, if a user is experiencing stress, the device can adjust the interface based on this information to provide input assistance. Specific methods include changing the font size and displaying guidance messages.

[0704] The terminal validates the entered information, and if there are no problems, encrypts the data using a strong encryption algorithm. It then sends the encrypted information to the server via a secure communication channel, and the receiving server securely stores this information.

[0705] When a specific organization requires information, users can authorize the provision of that information while considering emotional data recognized by the emotion engine. For example, if the user is relaxed, the authorization process can be expedited.

[0706] After approval, the server generates a temporary authentication token for accessing information to the institution. This token allows the institution to access only the necessary information. Finally, transparency is ensured by notifying the user of which information was provided to which institution.

[0707] In this way, this system, which incorporates an emotion engine, provides a better user experience that takes into account the user's emotional state, improving information security and usability.

[0708] The following describes the processing flow.

[0709] Step 1:

[0710] The user launches a dedicated application and begins entering personal and medical information on the input screen. The device uses its camera and microphone to transmit the user's facial expressions and voice to an emotion engine for emotional analysis.

[0711] Step 2:

[0712] The device receives emotional data obtained by the emotion engine in real time and dynamically adjusts the interface according to the user's mood. For example, if the user is feeling stressed, the screen colors may be changed to calmer hues.

[0713] Step 3:

[0714] Once the user has finished entering information, the device validates the input data to ensure all fields are entered correctly. Depending on the user's emotional state, the device may also provide additional guidance messages or confirmations.

[0715] Step 4:

[0716] Once validation is complete, the device encrypts the data and sends it to the server using a secure communication protocol. A strong encryption algorithm is used to ensure data security.

[0717] Step 5:

[0718] The server receives the data and stores it in the database while keeping it encrypted. Access to the data is restricted to authorized institutions only.

[0719] Step 6:

[0720] If a user is asked to provide information to a specific organization, the device uses an emotion engine to determine the user's consent status and displays a screen for the user to review and approve the information.

[0721] Step 7:

[0722] Once the user consents to providing information, the server generates a temporary authentication token for the institution to access the information and provides it to the institution.

[0723] Step 8:

[0724] The institution uses the received authentication token to access the necessary information. The server generates access logs to track which institution accessed which information.

[0725] Step 9:

[0726] The server notifies the user that information has been provided and displays the logs in the user's view so that they can check the history. This allows the user to understand how their information has been used.

[0727] (Example 2)

[0728] Next, we will describe Example 2. In the following description, the data processing device 12 will be referred to as the "server" and the robot 414 as the "terminal".

[0729] In today's information society, it is crucial to manage personal identification information securely and efficiently, and to provide it to the appropriate organizations when necessary. However, current systems often sacrifice usability while ensuring information security, and in particular, they lack a consent process for information provision that takes into account the emotional state of the user. A further challenge is the need to ensure transparency in access records after information provision.

[0730] The identification process performed by the identification processing unit 290 of the data processing device 12 in Example 2 is realized by the following means.

[0731] In this invention, the server includes means for securely storing information and generating temporary authentication codes accessible only to designated organizations; means for dynamically analyzing the user's emotional state and adjusting the interface; and means for notifying the user of the information provision history based on the user's approval. This enables a user-friendly information provision process that takes the user's emotional state into consideration, as well as improved information security and transparency.

[0732] "Identification information" refers to data used to identify individuals or objects.

[0733] "Computer equipment" is a general term for devices that process data electronically.

[0734] "Encryption" is a technology that transforms information based on a specific algorithm to prevent interception by third parties.

[0735] A "communication channel" is a path or protocol used to send and receive data.

[0736] A "data storage device" is a system or structure for securely storing information over the long term.

[0737] An "authentication code" is a temporary code that can only be used by those with designated access rights.

[0738] "Emotional state" refers to information that represents the user's mental and psychological condition.

[0739] An "interface" is a general term for the environment and protocols that enable humans and computer devices to interact with each other.

[0740] An "information provision history" is a record that shows what information was provided, when, and to which organization.

[0741] This invention is a system for efficiently managing and securely providing personal identification information to organizations. The system consists of multiple components, and users input their identification information through a computer device. The computer device is equipped with an emotion engine that uses a camera and microphone to analyze the user's emotional state in real time. This emotion engine combines a neural network and voice analysis software to record the user's facial expressions and voice, and to identify emotional states such as stress and relaxation.

[0742] The entered information is validated on the terminal and then converted using a standardized encryption algorithm such as AES. This encryption provides high security to prevent information leakage. The terminal also uses the TLS protocol to securely transmit the encrypted information to the server. After receiving the information, the server securely stores it and generates an authentication code. The authentication code temporarily grants access to the information to a specified organization.

[0743] When users receive a request for information, they decide whether to consent to providing the information through an interface proposed by the emotion engine. For example, if the user is relaxed, the system presents an interface that allows for a quick decision. After the organization accesses the information using a temporary authentication code, the history is recorded on the server and notified to the user. This ensures transparency in information provision.

[0744] As a concrete example, when a user shares their medical history for a medical consultation, the system has a function to display guidance messages to alleviate the user's anxieties. For instance, prompts such as, "If the user shows signs of anxiety while entering information, how should the device adjust its UI?" can be input into the AI ​​model, which can then respond in real time based on that input.

[0745] The flow of the specific processing in Example 2 will be explained using Figure 13.

[0746] Step 1:

[0747] Users input identification and related information via computer devices. This input includes text data, audio, and images. This data is then prepared for sentiment analysis and validation in the next stage.

[0748] Step 2:

[0749] The device analyzes the user's facial expressions and voice using an emotion engine. Image processing algorithms and machine learning models are applied to process the input image and voice data to determine the user's emotional state. For example, if a facial expression indicating stress is detected, that information is output as data for interface adjustment.

[0750] Step 3:

[0751] The terminal validates the user's input data. Regular expressions and comparisons with existing databases are performed to ensure the entered identification information is accurate and complete. If validation is successful, the information proceeds to the next encryption step.

[0752] Step 4:

[0753] The device encrypts validated information. It uses the AES algorithm to convert text and image data into a secure format. This encrypted data is output to prevent external access.

[0754] Step 5:

[0755] The device sends encrypted information to the server using the TLS protocol. Before transmission, communication settings are checked and established to ensure that the encrypted data can be transmitted correctly.

[0756] Step 6:

[0757] The server securely stores the received encrypted data in a data storage device. A database management system is used for storage. The data is kept with restricted access until an authentication code is generated.

[0758] Step 7:

[0759] The server generates a temporary authentication code for a specific institution to access the information. The code is generated based on the user's authorization information and provided to the relevant institution as needed.

[0760] Step 8:

[0761] The server generates an access history after information is provided, recording which information was provided to which organization. This history is recorded as a log and notified to the user. This allows the user to see when and to whom the information was provided.

[0762] (Application Example 2)

[0763] Next, we will explain application example 2. In the following explanation, the data processing device 12 will be referred to as the "server" and the robot 414 as the "terminal".

[0764] Existing electronic payment and data provision systems often offer fixed interfaces without considering the user's emotional state, which can degrade the quality of the user experience. Furthermore, a lack of secure data management and efficient information delivery methods presents a challenge in simultaneously enhancing user convenience and data security.

[0765] The specific processing performed by the specific processing unit 290 of the data processing device 12 in Application Example 2 is realized by the following means.

[0766] In this invention, the server includes means for dynamically adjusting the information provision interface based on the emotional state of an identified user, means for inputting personal data from the user interface and encrypting that data in order to streamline data provision across multiple organizations, and means for transmitting the encrypted data to a storage device via a secure communication channel. This enables flexible interface provision that responds to the user's emotions and secure and efficient data management.

[0767] An "organization" is a group or institution formed to achieve a specific purpose.

[0768] "Data" refers to an encoded string or number that contains information.

[0769] A "user interface" is a means of interaction between a user and a system.

[0770] "Encryption" is a technique that transforms the content of data in order to transmit or store it securely.

[0771] A "communication channel" is a physical or logical path for sending and receiving data.

[0772] A "storage device" is a hardware or virtual device used to store data.

[0773] An "authentication code" is a temporary sequence of numbers or characters issued to prove specific access rights.

[0774] "Emotional state" refers to the internal conditions that represent the user's emotions and psychological state.

[0775] "Interface tuning" is the process of optimizing the interface according to the user's needs and circumstances.

[0776] To implement this invention, a system is used in which the user's device and the server work closely together. The user's device is equipped with a camera and microphone to acquire the user's facial expressions and voice data. Using this data, a generative AI model recognizes the user's emotional state. Specifically, software such as OpenPose or Google Cloud's Speech-to-Text API can be utilized. This allows the interface on the device to be dynamically adjusted based on the user's emotional state. For example, if the user is feeling anxious, simple and clear instructions can be provided.

[0777] The server receives encrypted data from users and stores it securely. To ensure the confidentiality of the information, AES (Advanced Encryption Standard) is used for data encryption. Furthermore, the TLS protocol is used for data transfer, guaranteeing secure communication.

[0778] When a user provides data to a specific organization, the server generates a temporary authentication code, allowing only authorized organizations to access the necessary information using that code. This allows users to track which organizations have accessed which data, ensuring transparency in information sharing.

[0779] As a concrete example, when a user uses online banking, if a relaxed emotional state is detected, the buttons on the screen will be displayed larger than usual, and important messages will be prioritized. Furthermore, an example of a prompt message could be given to the AI ​​model: "Recognize the user's emotions in real time from their facial expressions and voice in the smart payment application. If the user is relaxed, process the transaction faster than usual." This would simultaneously improve the user experience and enhance information security.

[0780] The flow of a specific process in Application Example 2 will be explained using Figure 14.

[0781] Step 1:

[0782] The user's device uses a camera and microphone to capture the user's facial expressions and voice. It collects facial expression and voice data from various angles as input. The output is stored in temporary storage so that this data can be passed on to the next processing step.

[0783] Step 2:

[0784] The device inputs acquired facial expression and voice data into a generating AI model to analyze the user's emotional state. It uses OpenPose to analyze facial expressions and Google Cloud's Speech-to-Text API to estimate emotions from the voice. The output is identified emotion data, which is used for interface adjustments.

[0785] Step 3:

[0786] The device adjusts the user interface based on emotional data. For example, if the user is stressed, it will enlarge buttons on the screen and prioritize important messages. The input is emotional data, and the output is a customized interface.

[0787] Step 4:

[0788] The user enters personal data through a pre-configured interface, which is then encrypted. The terminal uses AES to encrypt the data and sends it to the server via a secure communication channel. The input is the data entered by the user, and the output is the encrypted data.

[0789] Step 5:

[0790] The server securely stores the received encrypted data. Furthermore, it generates a temporary authentication code accessible to authorized organizations. At this stage, data storage is the primary output.

[0791] Step 6:

[0792] Obtain user approval and conduct the approval process quickly and in a relaxed manner. The input is user approval information, and the output is the provision of a temporary authentication code to the organization.

[0793] Step 7:

[0794] The server notifies users of information about which organizations accessed the data and when, and records the access history. The input is access information, and the output is user notifications and access logs.

[0795] The specific processing unit 290 transmits the result of the specific processing to the robot 414. In the robot 414, the control unit 46A causes the speaker 240 and the controlled object 443 to output the result of the specific processing. The microphone 238 acquires audio indicating user input for the result of the specific processing. The control unit 46A transmits the audio data indicating user input acquired by the microphone 238 to the data processing unit 12. In the data processing unit 12, the specific processing unit 290 acquires the audio data.

[0796] Data generation model 58 is a type of so-called generative AI (Artificial Intelligence). One example of data generation model 58 is ChatGPT (Internet search<URL: https: / / openai.com / blog / chatgpt> ), Gemini (Internet search) <url: https: gemini.google.com ?hl="ja">Examples of generative AI include the following. The data generation model 58 is obtained by performing deep learning on a neural network. The data generation model 58 is input with prompts containing instructions, and with inference data such as audio data representing speech, text data representing text, and image data representing images. The data generation model 58 infers from the input inference data according to the instructions indicated by the prompts, and outputs the inference results in data formats such as audio data and text data. Here, inference refers to, for example, analysis, classification, prediction, and / or summarization.

[0797] In the above embodiment, an example was given in which the specific processing is performed by the data processing device 12, but the technology of this disclosure is not limited thereto, and the specific processing may also be performed by the robot 414.

[0798] Furthermore, the emotion identification model 59, acting as an emotion engine, may determine the user's emotion according to a specific mapping. Specifically, the emotion identification model 59 may determine the user's emotion according to a specific mapping, which is an emotion map (see Figure 9). Similarly, the emotion identification model 59 may also determine the robot's emotion, and the identification processing unit 290 may perform identification processing using the robot's emotion.

[0799] Figure 9 shows an emotion map 400 in which multiple emotions are mapped. In the emotion map 400, emotions are arranged in concentric circles radiating from the center. The closer to the center of the concentric circles, the more primitive the emotions are located. Further out of the concentric circles, emotions representing states and actions arising from mental states are located. Emotion is a concept that includes feelings and mental states. On the left side of the concentric circles, emotions that are generally generated from reactions occurring in the brain are located. On the right side of the concentric circles, emotions that are generally induced by situational judgment are located. Above and below the concentric circles, emotions that are generally generated from reactions occurring in the brain and induced by situational judgment are located. In addition, the emotion of "pleasure" is located on the upper side of the concentric circles, and the emotion of "displeasure" is located on the lower side. Thus, in the emotion map 400, multiple emotions are mapped based on the structure in which emotions arise, and emotions that are likely to occur simultaneously are mapped close together.

[0800] These emotions are distributed at the 3 o'clock position on the Emotion Map 400, and usually fluctuate between feelings of security and anxiety. In the right half of the Emotion Map 400, situational awareness takes precedence over internal feelings, resulting in a calm impression.

[0801] The inside of the Emotion Map 400 represents inner thoughts, while the outside represents actions. Therefore, the further you go from the outside of the Emotion Map 400, the more visible (expressed in actions) your emotions become.

[0802] Here, human emotions are based on various balances, such as posture and blood sugar levels. When these balances deviate from the ideal, it results in discomfort, and when they approach the ideal, it results in pleasure. Similarly, in robots, cars, motorcycles, etc., emotions can be created based on various balances, such as posture and battery level. When these balances deviate from the ideal, it results in discomfort, and when they approach the ideal, it results in pleasure. The emotion map can be generated, for example, based on Dr. Mitsuyoshi's emotion map (Research on a system for analyzing brain physiological signals of speech emotion recognition and emotion, Tokushima University, doctoral dissertation: https: / / ci.nii.ac.jp / naid / 500000375379). The left half of the emotion map contains emotions belonging to a region called "response," where sensation is dominant. The right half of the emotion map contains emotions belonging to a region called "situation," where situational awareness is dominant.

[0803] The emotion map defines two emotions that promote learning. One is the emotion around the middle of the negative "repentance" and "reflection" on the situation side. In other words, it is when the robot experiences negative emotions such as "I never want to feel this way again" or "I don't want to be scolded again." The other is the emotion around the positive "desire" on the reaction side. In other words, it is when the robot has positive feelings such as "I want more" or "I want to know more."

[0804] The emotion identification model 59 inputs user input into a pre-trained neural network, obtains emotion values ​​representing each emotion shown in the emotion map 400, and determines the user's emotion. This neural network is pre-trained based on multiple training data sets, which are combinations of user input and emotion values ​​representing each emotion shown in the emotion map 400. Furthermore, this neural network is trained so that emotions located close together have similar values, as shown in the emotion map 900 in Figure 10. Figure 10 shows an example where multiple emotions such as "reassured," "calm," and "confident" have similar emotion values.

[0805] The above description primarily focuses on the functions of the data processing device 12 in relation to this disclosure. However, the system related to this disclosure is not necessarily implemented on a server. The system related to this disclosure may be implemented as a general information processing system. This disclosure may be implemented, for example, as a software program that runs on a personal computer or as an application that runs on a smartphone. The method related to this disclosure may be provided to users in SaaS (Software as a Service) format.

[0806] In the above embodiment, an example was given in which a specific process is performed by a single computer 22. However, the technology of this disclosure is not limited thereto, and a distributed processing of the specific process may be performed by multiple computers, including computer 22. For example, a data generation model 58 may be provided in an external device of the data processing device 12, and the external device may generate data according to the input data.

[0807] In the above embodiment, an example was given in which the specific processing program 56 is stored in the storage 32, but the technology of this disclosure is not limited thereto. For example, the specific processing program 56 may be stored in a portable, computer-readable, non-temporary storage medium such as a USB (Universal Serial Bus) memory. The specific processing program 56 stored in the non-temporary storage medium is installed in the computer 22 of the data processing device 12. The processor 28 executes specific processing according to the specific processing program 56.

[0808] Alternatively, the specific processing program 56 may be stored in a storage device such as a server connected to the data processing device 12 via the network 54, and the specific processing program 56 may be downloaded and installed on the computer 22 in response to a request from the data processing device 12.

[0809] Furthermore, it is not necessary to store the entirety of the specific processing program 56 in a storage device such as a server connected to the data processing device 12 via the network 54, or to store the entirety of the specific processing program 56 in the storage 32; it is acceptable to store only a portion of the specific processing program 56.

[0810] The following types of processors can be used as hardware resources to perform specific processing. Examples of processors include a CPU, a general-purpose processor that functions as a hardware resource to perform specific processing by executing software, i.e., a program. Other examples of processors include dedicated electrical circuits, such as FPGAs (Field-Programmable Gate Arrays), PLDs (Programmable Logic Devices), or ASICs (Application Specific Integrated Circuits), which have circuit configurations specifically designed to perform specific processing. All of these processors have built-in or connected memory, and all of them perform specific processing by using memory.

[0811] The hardware resource that performs a specific process may consist of one of these various processors, or it may consist of a combination of two or more processors of the same or different types (for example, a combination of multiple FPGAs, or a combination of a CPU and an FPGA). Alternatively, the hardware resource that performs a specific process may consist of a single processor.

[0812] Examples of configurations using a single processor include, firstly, a configuration in which one or more CPUs and software are combined to form a single processor, and this processor functions as a hardware resource that performs a specific process. Secondly, there is a configuration using a processor that realizes the functions of the entire system, including multiple hardware resources that perform a specific process, on a single IC chip, as exemplified by SoCs (System-on-a-chip). In this way, a specific process is realized using one or more of the above types of processors as hardware resources.

[0813] Furthermore, the hardware structure of these various processors can more specifically utilize electrical circuits that combine circuit elements such as semiconductor devices. Also, the specific processing described above is merely an example. Therefore, it goes without saying that unnecessary steps can be deleted, new steps added, or the processing order rearranged, as long as it does not deviate from the main purpose.

[0814] The descriptions and illustrations presented above are detailed explanations of the technical aspects of this disclosure and are merely examples of the technical aspects. For example, the above descriptions of the structure, function, operation, and effect are examples of the structure, function, operation, and effect of the technical aspects of this disclosure. Therefore, it goes without saying that you may delete unnecessary parts, add new elements, or replace elements in the descriptions and illustrations presented above, as long as you do not deviate from the essence of the technical aspects of this disclosure. Furthermore, in order to avoid confusion and facilitate understanding of the technical aspects of this disclosure, explanations of common technical knowledge and the like that do not require special explanation to enable the implementation of the technical aspects of this disclosure have been omitted from the descriptions and illustrations presented above.

[0815] All documents, patent applications, and technical standards described herein are incorporated by reference to the same extent as if each individual document, patent application, and technical standard were specifically and individually noted to be incorporated by reference.

[0816] The following is further disclosed regarding the embodiments described above.

[0817] (Claim 1)

[0818] To streamline information provision across multiple institutions, a means is provided to input personal information from user terminals and encrypt that information.

[0819] A means of sending encrypted information to a server via a secure communication channel,

[0820] A means for securely storing information received on a server and generating a temporary authentication token that can only be accessed by authorized authorities,

[0821] A means of authorizing the provision of information to a specific institution based on user approval and providing encrypted information to that institution,

[0822] A system that notifies the user when information has been provided and includes means for saving all access history as logs.

[0823] (Claim 2)

[0824] The system according to claim 1, wherein the user terminal verifies and validates the input information.

[0825] (Claim 3)

[0826] The system according to claim 1, wherein information is stored in a database in an encrypted state and access does not require encryption or decryption.

[0827] "Example 1"

[0828] (Claim 1)

[0829] In order to streamline data provision by multiple information processing organizations, a means is provided to input individual identification information from a user device and encode that information.

[0830] Means for transferring encoded information to an information processing device via a secure communication channel,

[0831] A means for securely storing information received by an information processing device and generating a temporary authentication code that can only be obtained by an authorized information processing organization,

[0832] A means of authorizing the provision of information to a specific information processing organization based on user approval, and providing encoded information to said organization,

[0833] A system that includes means to notify users when information provision is complete and to save all access history as a recording medium.

[0834] (Claim 2)

[0835] The system according to claim 1, wherein the user device verifies and checks the input information.

[0836] (Claim 3)

[0837] The system according to claim 1, wherein information is stored on a recording medium in an encoded state, and retrieval does not require code decoding.

[0838] "Application Example 1"

[0839] (Claim 1)

[0840] To streamline information provision across multiple organizations, a means is needed to input personal information from communication devices and encrypt that information.

[0841] A means for transmitting encrypted information to a storage device via a secure communication channel,

[0842] A means for securely storing received information in a storage device and generating a temporary authentication code accessible only to authorized authorities,

[0843] A means of authorizing the provision of information to a specific institution based on user approval and providing encrypted information to that institution,

[0844] A means of notifying the user that information has been provided and saving all access history as a record,

[0845] A system that provides means for managing financial information and includes means for securely providing information necessary for digital transactions.

[0846] (Claim 2)

[0847] The system according to claim 1, wherein a communication device verifies input information and performs integrity checks.

[0848] (Claim 3)

[0849] The system according to claim 1, wherein information is stored in an encrypted state on a storage device, and access does not require decryption.

[0850] "Example 2 of combining an emotion engine"

[0851] (Claim 1)

[0852] To streamline the provision of information to multiple organizations, a means is needed to input identification information from a computer device and encrypt that information.

[0853] A means for transmitting encrypted information to a data storage device via a secure communication channel,

[0854] A means for securely storing received information in a data storage device and generating a temporary authentication code accessible only to authorized organizations,

[0855] A means of providing information to a specific organization based on user approval and providing encrypted information to that organization,

[0856] A means of notifying users that information has been provided and saving all access records as records,

[0857] A means by which computer equipment analyzes the emotions of users and dynamically adjusts the user interface,

[0858] A system that includes means for approving the provision of information while taking into account the emotional state of the user.

[0859] (Claim 2)

[0860] The system according to claim 1, wherein a computer device verifies and validates input information.

[0861] (Claim 3)

[0862] The system according to claim 1, wherein information is stored in an encrypted state on a data storage medium, and access does not require information decryption.

[0863] "Application example 2 when combining with an emotional engine"

[0864] (Claim 1)

[0865] To streamline data provision across multiple organizations, a means is provided to input personal data through a user interface and encrypt that data.

[0866] A means for transmitting encrypted data to a storage device via a secure communication channel,

[0867] A means for securely storing received data in a storage device and generating a temporary authentication code accessible only to authorized organizations,

[0868] A means for dynamically adjusting the information provision interface based on the identified emotional state of the user,

[0869] A means of authorizing the provision of data to a specific organization based on user approval and providing encrypted data to that organization,

[0870] A system that includes means to notify the user that data has been provided and to save all access history as a record.

[0871] (Claim 2)

[0872] The system according to claim 1, wherein the user interface validates input data and performs verification work.

[0873] (Claim 3)

[0874] The system according to claim 1, wherein data is stored in an encrypted state in an information storage location, and access does not require decryption. [Explanation of Symbols]

[0875] 10, 210, 310, 410 Data Processing Systems 12 Data Processing Devices 14 Smart Devices 214 Smart Glasses 314 Headset-type terminal 414 Robots< / url:> < / url:> < / url:> < / url:>

Claims

1. To streamline information provision across multiple institutions, a means is provided to input personal information from user terminals and encrypt that information. A means of sending encrypted information to a server via a secure communication channel, A means for securely storing information received on a server and generating a temporary authentication token that can only be accessed by authorized authorities, A means of authorizing the provision of information to a specific institution based on user approval and providing encrypted information to that institution, A system that notifies the user when information has been provided and includes means for saving all access history as logs.

2. The system according to claim 1, wherein the user terminal verifies and validates the input information.

3. The system according to claim 1, wherein information is stored in a database in an encrypted state, and access does not require encryption or decryption.

Citation Information

Patent Citations

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    JP2022180282A