Interactive jewelry feedback system
The necklace-type terminal with sensors and data processing enhances jewelry by offering health monitoring and personalized feedback, addressing the lack of practical functionality in conventional jewelry.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- SOFTBANK GROUP CORP
- Filing Date
- 2024-11-14
- Publication Date
- 2026-05-26
AI Technical Summary
Conventional jewelry primarily serves an aesthetic purpose and lacks practical functionality, limiting its value and convenience for users.
A necklace-type terminal equipped with sensors, output parts, and a data processing device that provides interactive feedback to the wearer through light, vibration, or voice output, incorporating features like biosensors, cameras, and microphones to collect and analyze biological and environmental data, and generate responses based on user interactions.
Enhances the practical value of jewelry by providing health monitoring, early condition detection, and personalized feedback, improving user convenience and engagement.
Smart Images

Figure 2026086189000001_ABST
Abstract
Description
Technical Field
[0001] The technology of the present disclosure relates to an interactive jewelry feedback system having an interactive function in jewelry.
Background Art
[0002] Conventional jewelry only provides aesthetic value and has hardly any functional role. For this reason, the value of jewelry is limited and there is a lack of practical convenience for users.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] Conventional jewelry mainly has decorative value and does not have practical functions. It is required to add practical value to jewelry and increase the added value of jewelry.
Means for Solving the Problems
[0005] A first aspect according to the technology of the present disclosure is a necklace-type terminal worn by a wearer and having a jewelry part, the necklace-type terminal including a sensor and an output part, and a data processing device that determines feedback to the jewelry part according to data obtained by the sensor, the necklace-type terminal being an interactive jewelry feedback system that outputs information regarding the feedback to the wearer by the output part according to the feedback.
[0006] The output part may be at least one of a light irradiation part, a vibrator, or a voice output part.
[0007] Furthermore, the light irradiation unit may be configured to change the properties of the irradiated light according to the data obtained by the sensor.
[0008] Furthermore, the sensor may be a biosensor that measures the wearer's biological data.
[0009] In addition, the necklace-type terminal may include a camera for photographing the wearer's surroundings, a microphone, and a data collection unit for collecting the outputs of the camera, the sensor, and the microphone. Furthermore, the necklace-type terminal may further include a speaker that outputs a response corresponding to the user's speech picked up by the microphone. [Brief explanation of the drawing]
[0010] [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] This is a conceptual diagram showing an example of the main functions of the data processing device and necklace-type terminal of the first embodiment. [Figure 3] This is a side view showing the configuration of a necklace-type terminal according to the first embodiment. [Figure 4] This is a top view showing the configuration of a necklace-type terminal according to the first embodiment. [Figure 5] The functional configuration of the control unit of the necklace-type terminal of the first embodiment is schematically shown. [Figure 6] The functional configuration of the specific processing unit of the data processing device of the first embodiment is schematically shown. [Figure 7] An example of the operation flow of a specific process by the data processing device of the first embodiment is schematically shown. [Figure 8] This is a conceptual diagram showing an example of the configuration of a data processing system according to the second embodiment. [Figure 9] This is a flowchart illustrating the operation of the data processing system in the second embodiment. [Figure 10]This is a sequence diagram illustrating the operation of the data processing system in the second embodiment. [Modes for carrying out the invention]
[0011] Hereinafter, an example of an embodiment of the data processing device, data processing method, and program relating to the technology of this disclosure will be described with reference to the attached drawings.
[0012] First, let's explain the terminology used in the following explanation.
[0013] In the following embodiments, the signed processor (hereinafter simply referred to as "processor") may be a single arithmetic unit or a combination of multiple arithmetic units. Furthermore, 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), or an APU (Accelerated Processing Unit).
[0014] In the following embodiments, signed RAM (Random Access Memory) is a memory that temporarily stores information and is used as work memory by the processor.
[0015] In the following embodiments, the signed storage is one or more non-volatile storage devices that store various programs and various parameters. Examples of non-volatile storage devices include flash memory (SSD (Solid State Drive)), magnetic disks (e.g., hard disks), or magnetic tapes.
[0016] In the following embodiments, the numbered communication I / F (Interface) is an interface including a communication processor, an antenna, and the like. The communication I / F controls communication between a plurality of 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).
[0017] 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 only A, only B, or a combination of A and B. Also, in this specification, when expressing three or more matters connected by "and / or", the same concept as "A and / or B" is applied.
[0018] [First Embodiment] FIG. 1 shows an example of the configuration of a data processing system 10 according to the first embodiment.
[0019] As shown in FIG. 1, the data processing system 10 includes a data processing device 12 and a necklace-type terminal 14 (jewelry part). An example of the data processing device 12 is a server. In the present embodiment, the data processing device 12 is an example of the "data processing device" according to the technology of the present disclosure, and the necklace-type terminal 14 is an example of the "necklace-type terminal" according to the technology of the present disclosure.
[0020] 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).
[0021] The necklace-type terminal 14 includes a computer 36, a microphone 38, a sensor 39, a speaker 40, 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 38, speaker 40, and camera 42 are also connected to the bus 52.
[0022] The user 20 wearing the necklace-type terminal 14 may be, for example, a patient whose health condition is being diagnosed, or a regular user.
[0023] The microphone 38 picks up the voice emitted by the user 20, who is wearing the necklace-type terminal 14, as well as sounds around the user 20. The microphone 38 also receives instructions from the user 20 by receiving the voice emitted by the user 20. The microphone 38 captures the voice emitted by the user 20, converts the captured voice into audio data, and outputs it to the processor 46. The speaker 40 outputs audio according to the instructions from the processor 46. The speaker 40 is, for example, a directional speaker and outputs audio towards the user 20's ears.
[0024] Sensor 39 is a sensor that detects biometric data of the user 20, who is wearing the necklace-type terminal. For example, sensor 39 may be a heart rate sensor, a blood oxygen sensor, or a skin electrical resistance sensor. Sensor 39 may also include an optical sensor that detects the amount and color of ambient light, an environmental sensor that measures the surrounding environment (temperature, humidity, atmospheric pressure, etc.), an image sensor, etc. The type and combination of sensors can be arbitrarily selected according to the purpose.
[0025] 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).
[0026] 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.
[0027] Figure 2 shows an example of the main functions of the data processing device 12 and the necklace-type terminal 14.
[0028] As shown in Figure 2, in the data processing device 12, specific processing is performed by the processor 28. The storage 32 stores a specific processing program 56. 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.
[0029] The storage 32 stores a data generation model 58. The data generation model 58 is used by the specific processing unit 290. The storage 32 also includes a data storage unit 54.
[0030] In the necklace-type terminal 14, data acquisition processing is performed by the processor 46. The storage 50 stores the data acquisition program 60. The processor 46 reads the data acquisition program 60 from the storage 50 and executes the read data acquisition program 60 on the RAM 48. The data acquisition processing is realized by the processor 46 operating as a control unit 46A according to the data acquisition program 60 executed on the RAM 48.
[0031] As shown in Figures 3 and 4, the necklace-type terminal 14 includes multiple microphones 38, multiple sensors 39, multiple speakers 40, and multiple cameras 42. Figures 3 and 4 show an example where two microphones 38 are positioned in front of the user 20 when the user 20 wears the necklace-type terminal 14. They also show an example where two sensors 39 are positioned to the right and left of the user 20 when the user 20 wears the necklace-type terminal 14. They also show an example where two speakers 40 are positioned to the right rear and left rear of the user 20 when the user 20 wears the necklace-type terminal 14. They also show an example where two cameras 42 are positioned to the right front and left front of the user 20 when the user 20 wears the necklace-type terminal 14. Finally, they show an example where two sensors 39 are positioned inside the necklace-type terminal 14 so as to contact the user 20's neck when the user 20 wears the necklace-type terminal 14.
[0032] Next, we will explain the processing of the control unit 46A when the necklace-type terminal 14 performs data collection processing to collect data.
[0033] In this embodiment, the data collection process collects the user's biometric data in real time. Furthermore, it collects not only biometric data but also all surrounding environment data. This makes it possible to detect early signs of conditions such as Alzheimer's disease and dementia. It also allows for monitoring of the user's health status (e.g., heart disease).
[0034] As shown in Figure 5, the control unit 46A includes a data acquisition unit 100 and a communication unit 102.
[0035] The data acquisition unit 100 collects the outputs of the microphone 38, sensor 39, and camera 42, respectively.
[0036] The communication unit 102 transmits the outputs of the microphone 38, sensor 39, and camera 42, which are collected by the data acquisition unit 100, to the data processing unit 12.
[0037] Next, we will describe the processing of the specific processing unit 290 when the data processing device 12 performs specific processing to obtain a response corresponding to a user utterance.
[0038] In the specific processing in this embodiment, a response corresponding to the user utterance picked up by the microphone 38 of the necklace-type terminal 14 is obtained using the data generation model 58.
[0039] As shown in Figure 6, the specific processing unit 290 includes an input unit 292, a processing unit 294, and an output unit 296.
[0040] The input unit 292 stores the outputs of the microphone 38, sensor 39, and camera 42, respectively, received from the necklace-type terminal 14, in the data storage unit 54.
[0041] The input unit 292 acquires user utterances received by the necklace-type terminal 14. Specifically, it acquires user utterances picked up by the microphone 38 of the necklace-type terminal 14.
[0042] The processing unit 294 performs specific processing using the data generation model 58. Specifically, it inputs a prompt including user utterances to the data generation model 58 and obtains a generation result. At this time, the outputs of the sensor 39 and camera 42 collected by the data acquisition unit 100 may also be included in the prompt.
[0043] The output unit 296 transmits the result of the specific processing to the necklace-type terminal 14. In the necklace-type terminal 14, the control unit 46A causes the speaker 40 to output the result of the specific processing. In this way, a response corresponding to the user utterance picked up by the microphone 38 is output to the user 20 by the speaker 40. The microphone 38 further acquires the user utterance in response to the result of the specific processing. The control unit 46A transmits the audio data indicating the user utterance acquired by the microphone 38 to the data processing unit 12. In the data processing unit 12, the specific processing unit 290 acquires the user utterance.
[0044] 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 those described above. 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 shown 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.
[0045] The outputs of the microphone 38, sensor 39, and camera 42 stored in the data storage unit 54 are used, for example, to diagnose the health status of user 20. In this case, the outputs of the microphone 38, sensor 39, and camera 42 stored in the data storage unit 54 may be transmitted to a terminal on the medical institution's side. Alternatively, the data processing device 12 may analyze the outputs of the microphone 38, sensor 39, and camera 42 stored in the data storage unit 54 to diagnose the health status of user 20.
[0046] Next, the operation of the data processing system 10 will be explained.
[0047] First, let's explain an example of the data collection process flow.
[0048] When user 20 is wearing the necklace-type terminal 14, the data acquisition unit 100 sequentially collects the outputs of the microphone 38, sensor 39, and camera 42. The communication unit 102 sequentially transmits the outputs of the microphone 38, sensor 39, and camera 42 collected by the data acquisition unit 100 to the data processing unit 12.
[0049] Next, an example of the flow of a specific process will be explained with reference to Figure 7. Here, the input unit 292 of the data processing device 12 sequentially acquires the outputs of the microphone 38, sensor 39, and camera 42 received from the necklace-type terminal 14 and stores them in the data storage unit 54.
[0050] In step S300, the processing unit 294 determines whether a predetermined trigger condition is met. Specifically, the trigger condition may be that the user utterance picked up by the microphone 38 contains a specific word (for example, the name of the agent installed in the necklace-type terminal 14) or a phrase (for example, "Hi! XX" (where XX is the name of the agent)).
[0051] If the trigger condition is met in step S300 (step S300; Yes), the data processing system 10 proceeds to step S301. On the other hand, if the trigger condition is not met in step S300 (step S300; No), the data processing system 10 terminates the specific processing.
[0052] In step S301, the processing unit 294 generates a prompt by adding an instruction to obtain the result of a specific process to the text representing the user utterance picked up by the microphone 38.
[0053] For example, a prompt such as "The user is speaking as follows: XXX. Please respond as the agent." (XXX is the user's speech) can be generated. Alternatively, the outputs of sensor 39 and camera 42 can be added to the prompt to generate a prompt such as "This is biometric data representing the user's heart rate and video data representing the user's surroundings. The user is also speaking as follows: XXX. Please respond as the agent." (XXX is the user's speech)
[0054] In step S303, the processing unit 294 inputs the generated prompt to the data generation model 58 and obtains the result of a specific process based on the output of the data generation model 58.
[0055] In step S304, the output unit 296 outputs the result of the specific processing to the necklace-type terminal 14 and terminates the specific processing.
[0056] The system according to the first embodiment has been described primarily in terms of the functions of the data processing device 12, but the system according to this disclosure is not necessarily implemented on a server. The system according 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, etc. The method according to this disclosure may be provided to the user in SaaS (Software as a Service) format.
[0057] 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 method for the specific process may be used, which includes computer 22 and multiple other computers.
[0058] 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.
[0059] 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.
[0060] 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.
[0061] 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.
[0062] 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.
[0063] 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.
[0064] 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.
[0065] [Second Embodiment] Figure 8 shows an example of the configuration of the data processing system 10 (interactive jewelry feedback system) according to the second embodiment. In Figure 8, the same reference numerals are used for components that are the same as those in Figure 1, so redundant explanations are omitted. As shown in Figure 8, the data processing system 10 of the second embodiment is configured to perform the above-described operations of the first embodiment, with a data processing device 12 and a necklace-type terminal 14, similar to the first embodiment. However, in this second embodiment, the necklace-type terminal 14 is further equipped with an LED 51 as a light irradiating unit and a vibrator 52 such as a vibrator motor, which is different from the first embodiment. Also, the data processing device 12 is equipped with a feedback determination unit 53 by a program contained within it, which is another difference from the first embodiment.
[0066] LED 51 allows control over the properties of the light it emits (on / flashing / off, light intensity adjustment, light color and hue), thereby informing the user 20 of various information. The oscillator 52 also informs the user 20 of various information by controlling the start / change / stop of vibration, etc. LED 51 and oscillator 52 are controlled according to feedback information determined by the feedback determination unit 53, based on the detection results of the sensor 39. For example, LED 51 and oscillator 52 can be made to perform actions according to the detected physical condition, emotions, and environment of the user. For example, the feedback determination unit 53 inputs a prompt message to the data generation model 58 instructing it to output feedback in the form of light from LED 51 or vibration from oscillator 52, based on the output of the data generation model 58. Based on this, it acquires the color and irradiation pattern of LED 51 light and the vibration pattern of oscillator 52 as special feedback information. In this case, the feedback determination unit 53 should generate a prompt statement that includes the detection result of the sensor 39, and states: "Feedback will be provided to the wearer of the necklace-type terminal according to the user's physical condition, emotions, and environment detected by the sensor. Please consider whether the color and irradiation pattern of the LED 51 and the vibration pattern of the vibrator 52 are preferable." The sensor 39 in the second embodiment may be a biosensor that detects the user 20's biological data (heart rate sensor, blood pressure sensor, blood oxygen sensor, skin electrical resistance sensor, etc.), as well as a light sensor that detects the amount and color of ambient light, or an environmental sensor that measures the surrounding environment (temperature, humidity, atmospheric pressure, etc.). The LED 51 and vibrator 52 are controlled according to the feedback information, thereby enabling the transmission of various information to the user 20. In addition to the LED 51 and vibrator 52, information can also be transmitted by the speaker 40 (audio output unit). The LED 51, vibrator 52, and speaker 40 function as output units that output information related to the feedback to the user 20 according to the feedback. Furthermore, the feedback determination unit 53 can also be customized by, for example, coordinating with an application on a smartphone (not shown) owned by the user 20 to change various settings, determination criteria, and feedback content.Furthermore, by changing the feedback information, the operation and settings of the necklace-type terminal 14 (jewelry part) can also be changed. This allows the user 20 to set how the jewelry reacts according to their own style and preferences. For example, it can be set so that the jewelry changes to a specific color when a specific notification arrives. In this way, a sensor 39 is incorporated into the necklace-type terminal 14, which is the jewelry part, to detect biometric and environmental information, and the LED 51 can emit light of various intensities and colors. By changing the brilliance and color of the jewelry according to the user's physical condition, emotions, and surrounding environment, the aesthetic effect of the jewelry part can be maximized.
[0067] Next, the operation of the data processing system 10 according to the second embodiment will be described with reference to Figures 9 and 10. When the necklace-type terminal 14 is activated, the sensor 39 starts operating. Various types of data (biological data, environmental data, etc.) are collected by the sensor 39 (step S11). As shown in Figure 10, the user 20 has their biological data measured by touching (or coming close to) the necklace-type terminal 14. Environmental data is also measured by the environmental sensor.
[0068] When various data is collected by the sensor 39, the data processing device 12 performs data analysis on the collected data (step S12). Then, according to the results of the data analysis, the feedback determination unit 53 determines what kind of feedback to provide to the user 20 (type of feedback, etc.) and generates feedback information (step S13). For example, if the measurement results from the sensor 39 determine that the user 20 is exposed to stress, it is decided to provide an output to reduce stress (for example, changing the LED 51 to blue light, which has a relaxing effect). The vibration operation of the oscillator 52 can also be changed.
[0069] In accordance with the feedback information, the LED 51 receives control according to the content to be fed back. The LED 51 can inform the user 20 of various information by changing the color of the LED 51's light emission, the blinking period, brightness, etc. (feedback execution: step S14). In addition, the vibration operation of the vibrator 52 can be changed. Furthermore, a monitoring unit (not shown) may monitor (confirm) whether the operation in accordance with the feedback information has been performed by the LED 51 and the vibration sensor 52, and transmit the result to the data processing device 12 (step S15).
[0070] As described above, according to this second embodiment, the jewelry function incorporated into the necklace-type terminal 14 can be provided not merely as decoration, but in a form that can be executed as a system. In other words, this system enables the jewelry part to operate as an interactive device and provide feedback according to the user's physical condition, emotions, and environment.
[0071] 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.
[0072] 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. [Explanation of Symbols]
[0073] 10 Data Processing Systems 12 Data Processing Devices 14 Necklace-type terminal 38 Microphones 39 Sensors 40 speakers 42 cameras 46A Control Unit 51 LED 52 transducer 53 Feedback determination unit 100 Data Acquisition Unit 102 Communications Department 290 Specific Processing Unit 292 Input section 294 Processing Unit 296 Output section< / url:>
Claims
1. A necklace-type terminal worn by the wearer and having a jewelry portion, comprising a sensor and an output unit, A data processing device that determines whether to provide feedback to the jewelry part according to the data obtained from the sensor, Equipped with, The necklace-type terminal is an interactive jewelry feedback system that outputs information related to the feedback to the wearer via the output unit, in accordance with the feedback.
2. The interactive jewelry feedback system according to claim 1, wherein the output unit is at least one of a light irradiation unit, a vibrator, or an audio output unit.
3. The interactive jewelry feedback system according to claim 2, wherein the light irradiation unit is configured to change the properties of the irradiated light according to the data obtained by the sensor.
4. The interactive jewelry feedback system according to claim 1, wherein the sensor is a biosensor that measures the wearer's biological data.
5. The aforementioned necklace-type terminal is A camera that photographs the area around the wearer, Microphone and, The interactive jewelry feedback system according to claim 1, comprising: a collection unit for collecting the outputs of the camera, the sensor, and the microphone, respectively.
6. The interactive jewelry feedback system according to claim 5, further comprising a speaker that outputs a response corresponding to user speech picked up by the microphone, in the necklace-type terminal.