Acupoint information detection and processing device

Through the combination of ultrasonic module and infrared detection module, acupuncture information is collected and analyzed, and the problem of incomplete acupuncture detection in the existing technology is solved, achieving more accurate and complete organ analysis.

CN120167902BActive Publication Date: 2025-08-22SICHUAN SHAOYUTANG HEALTH CONSULTING CO LTD
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Patent Information

Application Number
CN202510365840.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-26
Publication Date
2025-08-22
Estimated Expiration
2045-03-26

AI Technical Summary

Technical Problem

In the prior art, the collection results during acupuncture points detection are not complete and comprehensive enough, which affects the accuracy of subsequent analysis results.

Method used

The ultrasonic module and infrared detection module are combined to obtain more comprehensive acupuncture information through ultrasonic excitation combined with infrared signal acquisition, and the processing module is used to analyze infrared signal changes to determine the analysis results of the organs.

Benefits of technology

It improves the accuracy and completeness of acupuncture information collection, improves the accuracy and completeness of human organ analysis, and has good versatility and practicality.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present application provides an acupoint information detection and processing device, wherein an infrared detection module collects a first infrared signal and a first infrared signal group of a first acupoint in a first acupoint set; while applying stimulation to a second acupoint corresponding to the first acupoint in a second acupoint set via an ultrasonic module, the device collects a second infrared signal of the first acupoint; the infrared detection module collects a third infrared signal and a second infrared signal group of a second acupoint in a second acupoint set; while applying stimulation to the first acupoint via an ultrasonic module, the device collects a fourth infrared signal of the second acupoint; and a processing module determines an analysis result of a target organ based on the first infrared signal, the second infrared signal, and the first infrared signal group of each acupoint in the first acupoint set, and the third infrared signal, the fourth infrared signal, and the second infrared signal group of each acupoint in the second acupoint set. This improves the integrity and comprehensiveness of acupoint information detection and the accuracy of human organ analysis.
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Description

Technical Field

[0001] The present application relates to the field of data processing technology, and in particular to an acupoint information detection and processing device. Background Art

[0002] With the continuous development of science and technology, we can use scientific and technological means to detect acupoints on the human body, obtain detection signals, and obtain status analysis results of the internal organs corresponding to the acupoints by processing and analyzing the detection signals.

[0003] In the prior art, electrical signals, temperature signals or impedance values ​​on meridian acupoints are collected, and the collected data are processed and analyzed to obtain signal analysis results, thereby obtaining status information of the internal organs corresponding to the meridian acupoints.

[0004] However, when performing acupoint detection in the existing technology, the information collection method adopted is relatively simple, and there is a problem that the collection results are not complete and comprehensive, which affects the accuracy of subsequent analysis results. Summary of the Invention

[0005] The purpose of this application is to provide an acupoint information detection and processing device to address the deficiencies in the above-mentioned prior art, so as to solve the problem that the collection results in the prior art are not complete and comprehensive, thereby affecting the subsequent analysis results.

[0006] To achieve the above objectives, the technical solutions adopted in this application are as follows:

[0007] In a first aspect, the present application provides an acupoint information detection and processing device, the acupoint information detection and processing device comprising: an ultrasonic module, an infrared detection module, and a processing module;

[0008] The infrared detection module collects a first infrared signal and a first infrared signal group of a first acupoint in the first acupoint set;

[0009] While applying stimulation to a second acupoint corresponding to the first acupoint in the second acupoint set by the ultrasonic module, the infrared detection module collects a second infrared signal of the first acupoint, wherein the two corresponding acupoints in the first acupoint set and the second acupoint set correspond to the same target organ;

[0010] The infrared detection module collects the third infrared signal and the second infrared signal group of the second acupuncture point;

[0011] While applying stimulation to the first acupuncture point through the ultrasonic module, the infrared detection module collects a fourth infrared signal from the second acupuncture point;

[0012] The processing module determines the analysis result of the target organ based on the first infrared signal, the second infrared signal and the first infrared signal group of each acupoint in the first acupoint set, and the third infrared signal, the fourth infrared signal and the second infrared signal group of each acupoint in the second acupoint set.

[0013] Optionally, the process of the infrared detection module collecting the first infrared signal of the first acupoint in the first acupoint set and the first infrared signal group includes:

[0014] Starting the infrared detection module and continuously sampling the first acupoint in the first acupoint set to obtain K groups of infrared signal data, where K is a positive integer greater than 1;

[0015] Taking the K groups of infrared signal data as the first infrared signal group, and sorting the K groups of infrared signal data according to the size of the data values ​​to obtain a sorting result;

[0016] The middle value of the sorting results is used as the first infrared signal of the first acupuncture point.

[0017] Optionally, the process of applying stimulation to the corresponding second acupoint in the second acupoint set by the ultrasonic module and collecting the second infrared signal of the first acupoint by the infrared detection module includes:

[0018] The ultrasonic module applies N seconds of excitation to the corresponding second acupoint in the second acupoint set, and starting from the second second, the infrared detection module is started to sample at the first acupoint to obtain a second infrared signal of the first acupoint, where N is a positive integer greater than 1.

[0019] Optionally, the process of determining the analysis result of the target organ by the processing module according to the first infrared signal, the first infrared signal group, and the second infrared signal of each acupoint in the first acupoint set, and the third infrared signal, the second infrared signal group, and the fourth infrared signal of each acupoint in the second acupoint set includes:

[0020] If the number of acupoints in the first acupoint set is one, and the number of acupoints in the second acupoint set is one, and the first acupoint in the first acupoint set is symmetrical with the second acupoint in the second acupoint set, determining a first infrared difference of the first acupoint based on the first infrared signal and the second infrared signal of the first acupoint, and performing Fourier transform on the first infrared signal group to obtain a first frequency spectrum;

[0021] determining a second infrared difference corresponding to the second acupoint based on a third infrared signal of a second acupoint symmetrical to the first acupoint and the fourth infrared signal, and performing Fourier transform on the second infrared signal group to obtain a second spectrum diagram;

[0022] An analysis result of the target organ is determined according to the first infrared difference, the second infrared difference, the first spectrum graph, and the second spectrum graph.

[0023] Optionally, the process of determining the analysis result of the target organ according to the first infrared difference, the second infrared difference, the first spectrum graph, and the second spectrum graph includes:

[0024] If the first infrared difference value and the second infrared difference value are within a first change value interval, or the difference between the first infrared difference value and the second infrared difference value is within a first difference value interval, determining an analysis result of the target organ according to the first infrared difference value and the second infrared difference value;

[0025] If the first infrared difference and the second infrared difference are not within the first change value interval, and the difference between the first infrared difference and the second infrared difference is not within the first difference interval, the analysis result of the target organ is determined based on the first spectrum graph and the second spectrum graph.

[0026] Optionally, the process of determining the analysis result of the target organ by the processing module according to the first infrared signal, the first infrared signal group, and the second infrared signal of each acupoint in the first acupoint set, and the third infrared signal, the second infrared signal group, and the fourth infrared signal of each acupoint in the second acupoint set includes:

[0027] If the number of acupoints in the first acupoint set is multiple, and the number of acupoints in the second acupoint set is multiple, and the acupoints in the first acupoint set are symmetrical with the acupoints in the second acupoint set, then determining the initial infrared difference value of each acupoint according to the first infrared signal and the second infrared signal of each acupoint in the first acupoint set, and determining the final infrared difference value of each acupoint in the second acupoint set according to the third infrared signal and the fourth infrared signal of each acupoint in the second acupoint set;

[0028] Determine the difference between the initial infrared difference and the final infrared difference based on the initial infrared difference of each acupoint in the first acupoint set and the final infrared difference of each acupoint in the second acupoint set that is symmetrical to each acupoint in the first acupoint set;

[0029] Performing a Fourier transform on the first infrared signal group to obtain a first frequency spectrum, and performing a Fourier transform on the second infrared signal group to obtain a second frequency spectrum;

[0030] An analysis result of the target organ is determined according to the first spectrum graph, the second spectrum graph, and the difference between the initial infrared difference value and the final infrared difference value.

[0031] Optionally, the process of determining the analysis result of the target organ according to the first spectrum graph, the second spectrum graph, and the difference between the initial infrared difference value and the final infrared difference value includes:

[0032] If the difference between the initial infrared difference value and the final infrared difference value is within a second variation value interval, determining the analysis result of the target organ according to the difference between the initial infrared difference value and the final infrared difference value;

[0033] If the difference between the initial infrared difference value and the final infrared difference value is not within the second change value interval, the analysis result of the target organ is determined according to the first spectrum graph and the second spectrum graph.

[0034] Optionally, the ultrasonic module performs self-detection when it is started, and the process of the ultrasonic module self-detection includes:

[0035] Collecting multiple sets of ultrasonic data, each set of ultrasonic data includes an ultrasonic frequency value and an ultrasonic intensity value;

[0036] Performing elimination processing on the multiple sets of ultrasonic data to obtain ultrasonic frequency target values ​​and ultrasonic intensity target values;

[0037] The working state of the ultrasonic module is determined according to the ultrasonic frequency target value and the preset frequency range, and the ultrasonic intensity target value and the preset intensity range.

[0038] Optionally, the process of performing elimination processing on the multiple sets of ultrasonic data to obtain ultrasonic frequency target values ​​and ultrasonic intensity target values ​​includes:

[0039] sorting the ultrasonic frequency values ​​according to the magnitude of the ultrasonic frequency values ​​in the ultrasonic data to obtain an ultrasonic frequency value sorting result;

[0040] sorting the ultrasonic intensity values ​​according to the magnitude of the ultrasonic intensity values ​​in the ultrasonic data to obtain an ultrasonic intensity value sorting result;

[0041] Eliminate the maximum and minimum values ​​from the ultrasonic frequency value sorting results and the ultrasonic intensity value sorting results to obtain an ultrasonic frequency value set and an ultrasonic intensity value set;

[0042] The average value of each data in the ultrasonic frequency value set is used as the ultrasonic frequency target value, and the average value of each data in the ultrasonic intensity value set is used as the ultrasonic intensity target value.

[0043] Optionally, the process of determining the working state of the ultrasonic module according to the ultrasonic frequency target value and the preset frequency range, the ultrasonic intensity target value and the preset intensity range includes:

[0044] If the ultrasonic frequency target value is within the frequency range, and the ultrasonic intensity target value is within the intensity range, it is determined that the working state of the ultrasonic module is normal;

[0045] If the ultrasonic frequency target value is not within the frequency range, or the ultrasonic intensity target value is not within the intensity range, it is determined that the working state of the ultrasonic module is abnormal.

[0046] Optionally, the ultrasonic module includes: an ultrasonic unit and an ultrasonic probe connected to the ultrasonic unit;

[0047] The ultrasonic unit controls the ultrasonic probe to apply excitation to the acupuncture point;

[0048] The infrared detection module includes: an infrared detection unit and an infrared detection probe connected to the infrared detection unit;

[0049] The infrared detection unit controls the infrared detection probe to collect infrared signals of acupuncture points.

[0050] Optionally, the acupoint information detection and processing device further includes: a button module and a display module;

[0051] The button module includes a plurality of buttons;

[0052] Each button and the display module are connected to the processing module;

[0053] The processing module generates control instructions for the ultrasonic module and the infrared detection module according to the trigger status of each button;

[0054] The processing module also sends the analysis result of the target organ to the display module for display.

[0055] The beneficial effects of the present application are: by combining ultrasonic excitation with infrared signal collection, the collected infrared signals can more comprehensively characterize the changes in the infrared signals of the acupuncture points before and after the excitation is applied, thereby more accurately characterizing the analysis results of the organs corresponding to the acupuncture points through the changes in the infrared signals. At the same time, by comparing the infrared changes of the acupuncture points on the left and right sides, the location of the meridians with problems in the meridians related to the organs can be more accurately determined, thereby improving the accuracy of the collection of human acupuncture point information and improving the integrity of the analysis of human organs. Compared with the existing technology, the present application can realize a physical device through ultrasonic technology and infrared technology on the premise of improving the accuracy and integrity of the analysis results, and has good versatility and practicality.

[0056] In order to make the above-mentioned objects, features and advantages of the present application more obvious and easy to understand, preferred embodiments are given below and described in detail with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0057] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following is a brief introduction to the drawings required for use in the embodiments. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other relevant drawings can be obtained based on these drawings without creative work.

[0058] Figure 1 A schematic diagram of the appearance and structure of an acupoint information detection and processing device provided in an embodiment of the present application is shown;

[0059] Figure 2 A schematic diagram of the internal structure of an acupoint information detection and processing device provided in an embodiment of the present application is shown;

[0060] Figure 3 A flow chart of collecting a first infrared signal provided by an embodiment of the present application is shown;

[0061] Figure 4 A flowchart of determining an analysis result of an organ provided by an embodiment of the present application is shown;

[0062] Figure 5 A flowchart of another method for determining an organ analysis result provided by an embodiment of the present application is shown;

[0063] Figure 6 A schematic diagram of a display interface provided in an embodiment of the present application is shown;

[0064] Figure 7 A flow chart of performing ultrasonic module self-testing according to an embodiment of the present application is shown;

[0065] Figure 8 A flow chart for determining an ultrasonic frequency target value and an ultrasonic intensity target value provided by an embodiment of the present application is shown;

[0066] Figure 9 A flowchart of another method for performing ultrasonic module self-testing according to an embodiment of the present application is shown;

[0067] Figure 10 A schematic structural diagram of an electronic device provided in an embodiment of the present application is shown. DETAILED DESCRIPTION

[0068] In order to make the purpose, technical solutions and advantages of the embodiments of the present application clearer, the technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. The components of the embodiments of the present application generally described and shown in the drawings here can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the application for protection, but merely represents the selected embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without making creative work are within the scope of protection of this application.

[0069] It should be noted that the term "comprising" will be used in the embodiments of the present application to indicate the existence of the features declared thereafter, but does not exclude the addition of other features.

[0070] The meridians in the human body correspond to the internal organs. By detecting the acupuncture points on the meridians and analyzing the detected information, we can obtain the analysis results of the internal organs' status.

[0071] In the prior art, the electrical signals, impedance values ​​and temperature signals of acupoints are generally detected, and the detected information is analyzed to obtain the status analysis results of the internal organs corresponding to the acupoints.

[0072] For example, the detection information of the "Taiyuan" acupoint on the hand Taiyin lung meridian of the human body can indicate the health status of the lungs, and the various acupoints included in the hand Taiyin lung meridian can represent the health status of the meridian circulation area.

[0073] However, in the prior art, when performing acupoint detection, the information collection method adopted is relatively simple, and the information collection of the human body's meridian acupoints is not comprehensive enough. Therefore, the accuracy of the results of the internal organ status analysis needs to be improved.

[0074] Based on this, the present application proposes an acupoint information detection and processing device, which includes: an ultrasonic module, an infrared detection module, and a processing module. Among them, the infrared detection module is used to detect the infrared information of the acupoints and send the infrared information to the processing module. The processing module is used to issue instructions to the ultrasonic processing module so that the ultrasonic processing module generates ultrasonic waves according to the instructions, and analyzes the infrared information to obtain the analysis results of the internal organs corresponding to the acupoints. By actively applying ultrasound to the meridian acupoints of the human body and combining it with the passive collection of meridian acupoint signals by infrared sensors, the acupoint information of the human body is collected and the analysis results of the internal organs are obtained, which effectively improves the accuracy of the analysis results and has the advantage of strong versatility.

[0075] The acupoint information detection device can be a physical device, such as Figure 1 The figure shows a schematic diagram of the physical device, which includes at least a button module, a display module, an ultrasonic probe, and an infrared detection probe. The button module includes multiple buttons, such as a button for controlling the ultrasonic module to transmit ultrasonic waves, a button for controlling the infrared detection module to collect infrared signals, and a button for turning the device on and off. Both the button module and the display module are connected to a processing module, which generates control instructions for the ultrasonic module and the infrared detection module based on the triggering status of the buttons. For example, pressing the left button activates the ultrasonic module to generate ultrasonic waves, while pressing the right button activates the infrared detection module to collect infrared signals.

[0076] Figure 2 It is a perspective structural diagram of a physical device, referring to Figure 2 The ultrasonic module includes an ultrasonic unit and an ultrasonic probe. In the physical device, the ultrasonic unit controls the ultrasonic probe based on the instructions issued by the processing module to transmit ultrasonic waves. The infrared detection module includes an infrared detection unit and an infrared detection probe. The infrared detection unit controls the infrared detection probe in the diagram to collect infrared signals based on the instructions issued by the processing module. The processing module is a module with computing and processing capabilities in the acupoint information detection device, which is encapsulated inside the housing of the physical device and is used to analyze the collected data. The acupoint information detection device may also include a display module. The display module may be the display interface of the acupoint information detection device, or the display interface of an electronic device that is communicatively connected to the acupoint information detection device. After the processing module obtains the analysis results, the analysis results may be sent and displayed on the display interface.

[0077] Next, combine Figure 2 The working process of the acupoint information detection and processing device in this application is described.

[0078] The infrared detection module collects a first infrared signal and a first infrared signal group of a first acupoint in the first acupoint set.

[0079] Wherein, each acupoint in the first acupoint set may be an acupoint of the same meridian, and each acupoint is used to indicate the state of the same organ. Figure 2 The infrared detection unit can send a control instruction to the infrared detection probe to collect the first infrared signal of the first acupuncture point through the infrared detection probe. The steps for collecting the infrared signal described below are the same as the steps for collecting the first infrared signal, and this application will not go into details here.

[0080] When collecting infrared signals, multiple infrared signals can be continuously collected within the collection time to obtain an infrared signal group, and the collected infrared signal group can be used as the first infrared signal group. For example, after starting the infrared detection module, acupuncture points can be continuously sampled to obtain multiple groups of infrared signal data. The multiple groups of infrared signal data collected can be arranged in the order of collection, and the obtained infrared signal sequence can be used as the first infrared signal group.

[0081] In the first implementation method, the first acupoint set includes multiple acupoints, and each first acupoint is used to indicate the same organ. The first acupoint set can include all acupoints on a meridian indicating an organ. For example, the first acupoint set can be the acupoint set of the hand Taiyin Lung Meridian, including the first acupoints such as "Shaoshang acupoint, Yuji acupoint, Jingqu acupoint, Taiyuan acupoint, Lieque acupoint, Kongzui acupoint, Chize acupoint, Xiabai acupoint, Tianfu acupoint, Zhongfu acupoint and Yunmen acupoint".

[0082] In a second implementation, the first acupoint in the first acupoint set may be a Yuan acupoint in a meridian. The Yuan acupoint may represent the health status of the organ indicated by the meridian and has higher accuracy than other acupoints. For example, the first acupoint of the Hand Taiyin Lung Meridian may be Taiyuan acupoint, the first acupoint of the Hand Yangming Large Intestine Meridian may be Hegu acupoint, the first acupoint of the Foot Yangming Stomach Meridian may be Chongyang acupoint, and so on.

[0083] Optionally, the infrared detection module can collect the first infrared signal and the first infrared signal group of each first acupoint in the first acupoint set. When the first acupoint set contains multiple first acupoints, the first infrared signal and the first infrared signal group of each first acupoint can be collected and recorded in sequence.

[0084] It should be noted that when collecting infrared signals from acupoints, the infrared detection module can also filter the signals through hardware such as amplifiers and filters, thereby further improving the reliability and quality of the signals.

[0085] While applying excitation to the second acupoint corresponding to the first acupoint in the second acupoint set through the ultrasonic module, the infrared detection module collects the second infrared signal of the first acupoint, wherein the two corresponding acupoints in the first acupoint set and the second acupoint set correspond to the same target organ.

[0086] After collecting the first infrared signal of each first acupoint, the ultrasonic module can be used to apply excitation, and at the same time, the second infrared signal of the first acupoint is collected. The second infrared signal is the infrared signal of the acupoint when the excitation is applied. Figure 1 and Figure 2 The user can trigger the button module to cause the processing module to generate and send control instructions to the ultrasonic unit, so that the ultrasonic unit controls the ultrasonic probe to send ultrasonic waves to the acupuncture points to achieve stimulation. The stimulation described below refers to the ultrasonic unit controlling the ultrasonic probe to generate ultrasonic waves at the acupuncture points, which is not detailed in this application.

[0087] The excitation is applied by the ultrasonic module, and the ultrasonic probe in the ultrasonic module can be used to provide a low-frequency or high-frequency sound wave to the second acupuncture point in a continuous manner or a pulsed manner.

[0088] For example, assuming that the first acupoint in the first acupoint set is the Yangchi acupoint on the left hand, and the second acupoint in the second acupoint set is the Yangchi acupoint on the right hand, after the first infrared signal of the Yangchi acupoint on the left hand is collected by the infrared detection module, the ultrasonic module can be used to apply excitation to the Yangchi acupoint on the right hand, and at the same time as applying the excitation, the infrared detection module can be used to collect the second infrared signal of the Yangchi acupoint on the left hand.

[0089] The second acupoint in the second acupoint set corresponding to the first acupoint may be an acupoint symmetrically opposite the first acupoint, or an acupoint adjacent to the acupoint symmetrically opposite the first acupoint. For example, when the first acupoint is Taiyuan acupoint on the left hand, the second acupoint may be Taiyuan acupoint on the right hand. The second acupoint may also be Jingqu acupoint, Yuji acupoint, or Lieque acupoint on the right hand.

[0090] The second acupoint set includes multiple second acupoints. The second acupoints in the second acupoint set can be symmetrical acupoints of each first acupoint in the first acupoint set. The second acupoints in the second acupoint set and the first acupoints in the first acupoint set are used to indicate the status of the same organ.

[0091] The infrared detection module collects the third infrared signal of the second acupuncture point and the second infrared signal group.

[0092] Among them, the second acupoint can be any second acupoint in the second acupoint set, and the method of collecting the third infrared signal and the second infrared signal group of the second acupoint can be the same as the method of collecting the first infrared signal and the first infrared signal group of the first acupoint in the above steps. The infrared signal of each acupoint in the second acupoint set can be collected by the infrared detection module. When the second acupoint set contains multiple second acupoints, the third infrared signal and the second infrared signal group of each second acupoint can be collected and recorded in sequence.

[0093] While applying excitation to the first acupuncture point through the ultrasonic module, the infrared detection module collects a fourth infrared signal from the second acupuncture point.

[0094] After collecting the third infrared signal from each second acupoint, an excitation can be applied via the ultrasonic module, and while the excitation is being applied, a fourth infrared signal from the second acupoint is collected. The fourth infrared signal is the infrared signal from the second acupoint when the excitation is applied. Applying the excitation via the ultrasonic module can include providing a low-frequency or high-frequency sound wave to the first acupoint in a continuous or pulsed manner.

[0095] The first acupoint may be an acupoint corresponding to the second acupoint in the second acupoint set, including an acupoint in the second acupoint set that is symmetrical to the first acupoint, and an acupoint adjacent to the symmetrical acupoint of the first acupoint.

[0096] The processing module determines the analysis result of the target organ based on the first infrared signal, the second infrared signal and the first infrared signal group of each acupoint in the first acupoint set, and the third infrared signal, the fourth infrared signal and the second infrared signal group of each acupoint in the second acupoint set.

[0097] After the infrared detection module collects the infrared signal, it can send the infrared signal to the processing module, which analyzes and processes it to obtain the analysis result of the target organ.

[0098] Optionally, the first infrared signal, the second infrared signal, the third infrared signal, and the fourth infrared signal may be temperature signals or infrared radiation spectra collected by the infrared sensor. The first infrared signal group and the second infrared signal group may be a sequence of temperature signals or infrared radiation spectra collected by the infrared sensor, including multiple temperature signals or infrared radiation spectra arranged in a collection order.

[0099] The first infrared signal and the second infrared signal of the first acupoint are the infrared signals before and after the first acupoint is stimulated. Therefore, the difference between the first infrared signal and the second infrared signal can represent the change in the strength of the infrared signal of the first acupoint before and after the stimulation. The third infrared signal and the fourth infrared signal of the second acupoint are the infrared signals before and after the second acupoint is stimulated. Therefore, the difference between the third infrared signal and the fourth infrared signal can represent the change in the strength of the infrared signal of the second acupoint before and after the stimulation. The first infrared signal group represents the strength of the acupoint signal on one side of the first acupoint, and the second infrared signal group represents the strength of the acupoint signal on one side of the second acupoint. Therefore, the difference between the first infrared signal group and the second infrared signal group can represent the difference in the strength of the infrared signals on both sides of the human body, thereby representing the health status of the same organ corresponding to the left and right meridians. For example, if the first infrared signal group and the second infrared signal group indicate a large difference in the strength of the infrared signals on both sides, it indicates that there is meridian blockage on the left or right side, which can indicate that the organ corresponding to the meridian may be at risk.

[0100] It can be understood that ultrasound has temperature and penetrability. Applying ultrasonic excitation on an acupoint can produce a certain degree of stimulation to the acupoint, which can cause a change in the infrared signal of the acupoint. The greater the change in the infrared signal of the acupoint before and after the application of the excitation, the more likely it is that the organ corresponding to the acupoint has health problems. Therefore, in one possible implementation, the infrared signal change value of the first acupoint can be determined based on the first infrared signal and the second infrared signal of the first acupoint, and the infrared signal change value of the second acupoint can be determined based on the third infrared signal and the fourth infrared signal of the second acupoint. The infrared signal change value is used to characterize the health status of the organs corresponding to the first acupoint and the second acupoint.

[0101] Furthermore, the present application can also analyze the symmetrical acupoints in the first acupoint set and the second acupoint set. When the human organs are healthy, the infrared signal changes of the symmetrical acupoints in the first acupoint set and the second acupoint set are similar values. Therefore, if the infrared signal change values ​​of the symmetrical acupoints are significantly different, it can be indicated that the organs corresponding to the acupoints are in poor health. The infrared signal change value of the acupoint can be the difference between the first infrared signal of the first acupoint and the third infrared signal of the second acupoint symmetrical to it, or the difference between the second infrared signal of the first acupoint and the fourth infrared signal of the second acupoint symmetrical to it, or the difference between the first infrared signal group of the first acupoint and the second infrared signal group of the second acupoint symmetrical to the first acupoint.

[0102] Optionally, the analysis result of the target organ can be the health status of the target organ, or a risk prediction value for the target organ's health risks. For example, if the infrared signal change values ​​of the Taiyuan acupoints on the left and right sides of the human body differ significantly, it can indicate a significant health risk in the human lungs and can indicate which side of the human body has circulation problems.

[0103] In the embodiment of the present application, by combining ultrasonic excitation with infrared signal collection, the collected infrared signals can more comprehensively characterize the changes in the infrared signals of the acupuncture points before and after the excitation is applied, thereby more accurately characterizing the analysis results of the organs corresponding to the acupuncture points through the changes in the infrared signals. At the same time, by comparing the infrared changes of the acupuncture points on the left and right sides, the location of the meridians with problems in the meridians related to the organs can be more accurately determined, thereby improving the accuracy of the collection of human acupuncture point information and improving the integrity of the analysis of human organs. Compared with the existing technology, the present application can realize a physical device through ultrasonic technology and infrared technology on the premise of improving the accuracy and integrity of the analysis results, and has good versatility and practicality.

[0104] The following is a further explanation of the above-mentioned acquisition of the first infrared signal of the first acupoint in the first acupoint set by the infrared detection module. Figure 3 As shown, the process of collecting the first infrared signal includes:

[0105] S301: Start the infrared detection module and continuously sample the first acupoint in the first acupoint set to obtain K groups of infrared signal data, where K is a positive integer greater than 1.

[0106] S302: Take K groups of infrared signal data as the first infrared signal group, and sort the K groups of infrared signal data according to the size of the data values ​​to obtain a sorting result.

[0107] S303: Use the middle value of the sorting results as the first infrared signal of the first acupuncture point.

[0108] After the infrared detection module is started, K groups of infrared signal data can be continuously sampled every second to obtain the first infrared signal group. After the K groups of infrared signal data are arranged in order of size, the middle value of the K groups of infrared signals can be used as the first infrared signal.

[0109] If infrared signal data of multiple seconds are collected, the effective value of the infrared signal data of each second may be determined first, and the median or average value of all the effective values ​​of the infrared signal data may be used as the first infrared signal.

[0110] It should be noted that due to the influence of the detection method or other factors, the data collected by the infrared detection module cannot all be used as valid values ​​for subsequent analysis. In the embodiment of the present application, the collected data is sorted and the middle value is used as the valid first infrared signal to ensure the reliability of the data, thereby improving the accuracy of the subsequent analysis results.

[0111] It should be understood that the above steps S301-S303 are only illustrated by taking the collection of the first infrared signal and the first infrared signal group as an example. The collection method of the second infrared signal, the third infrared signal, the fourth infrared signal and the second infrared signal group can be the same as the above steps S301-S303, and this application will not go into details here.

[0112] The following is a further explanation of the above process of applying stimulation to the second acupoint corresponding to the first acupoint in the second acupoint set by the ultrasonic module and collecting the second infrared signal of the first acupoint by the infrared detection module. The process includes:

[0113] The ultrasonic module is used to apply N seconds of excitation to the second acupoint corresponding to the first acupoint in the second acupoint set, and starting from the second second, the infrared detection module is started to sample at the first acupoint to obtain a second infrared signal of the first acupoint, where N is a positive integer greater than 1.

[0114] After the first infrared signal is acquired, an excitation may be applied to the second acupoint for N seconds, wherein the second acupoint may be a symmetrical acupoint of the first acupoint, or an acupoint adjacent to the symmetrical acupoint of the first acupoint.

[0115] While applying excitation to the second acupoint, the infrared detection module can sample the first acupoint to obtain a second infrared signal from the first acupoint. As one possible implementation, assuming that the ultrasonic module applies excitation to the second acupoint at time T0, the infrared detection module can begin collecting the second infrared signal from the first acupoint at time T0+1.

[0116] The method for collecting the second infrared signal can be the same as the method for collecting the first infrared signal, including continuously sampling K groups of infrared signal data per second, sorting the K groups of infrared signal data, and using the middle value as the effective value of the current second. After collecting the effective values ​​of the infrared signals for multiple seconds, the effective values ​​of the infrared signals for multiple seconds can be sorted and the middle infrared signal effective value can be used as the second infrared signal, or the average of the effective values ​​of multiple infrared signals can be used as the second infrared signal, and this application does not impose any restrictions on this.

[0117] It is worth noting that the method for collecting the third infrared signal is the same as the method for collecting the first infrared signal, the method for collecting the fourth infrared signal is the same as the method for collecting the second infrared signal, and the method for collecting the second infrared signal group is the same as the method for collecting the first infrared signal group. The specific process will not be repeated in this application.

[0118] The following is a further description of the first implementation method of determining the analysis result of the target organ based on the first infrared signal and the second infrared signal of each acupoint in the first acupoint set, and the third infrared signal and the fourth infrared signal of each acupoint in the second acupoint set. Figure 4 As shown, the process includes:

[0119] S401. If the number of acupoints in the first acupoint set is one, and the number of acupoints in the second acupoint set is one, and the first acupoint in the first acupoint set is symmetrical with the second acupoint in the second acupoint set, then determine the first infrared difference of the first acupoint based on the first infrared signal and the second infrared signal of the first acupoint, and perform Fourier transform on the first infrared signal group to obtain a first spectrum diagram.

[0120] Optionally, the first acupoint and the second acupoint are symmetrical acupoints, that is, the first acupoint and the second acupoint are symmetrically distributed on the human body, such as Taiyuan acupoint on the left side of the human body and Taiyuan acupoint on the right side of the human body, Chongyang acupoint on the left side of the human body and Chongyang acupoint on the right side of the human body, etc.

[0121] The first infrared difference of the first acupoint can be the difference between the first infrared signal and the second infrared signal. When the first infrared signal and the second infrared signal are temperature values, the first infrared difference can be the temperature difference of the first acupoint before and after the excitation is applied. When the first infrared signal and the second infrared signal are infrared spectral data, the first infrared difference can be the change value of the infrared spectral data of the first acupoint before and after the excitation is applied.

[0122] Optionally, the first infrared signal group can be expressed as x[n], and its discrete Fourier transform X[k] can be expressed as: Where x[n] represents the nth discrete sampling point of the time domain signal, X[k] represents the kth frequency component of the frequency domain signal, and represents the complex value spectrum of the sequence x[n] at frequency k / N. i is the imaginary unit. is a complex exponential basis function used to map the time domain signal to the frequency domain.

[0123] Optionally, Fourier transform may be performed on the first infrared signal group based on the following formula (1) to obtain spectrum information of the first infrared signal group at different frequencies, and the transform result is used as the first spectrum graph.

[0124]

[0125] Where F(ω) is the complex-valued spectrum of the function f(t) at frequency ω, exp -iωt is a complex exponential basis function, and f(t) is the time function of the input.

[0126] S402 : Determine a second infrared difference value of the second acupoint based on the third infrared signal and the fourth infrared signal of the second acupoint symmetrical to the first acupoint, and perform Fourier transform on the second infrared signal group to obtain a second spectrum diagram.

[0127] The second infrared difference corresponding to the second acupoint may be the difference between the third infrared signal and the fourth infrared signal of the second acupoint, which is symmetrically distributed with respect to the first acupoint. When the third infrared signal and the fourth infrared signal are temperature values, the second infrared difference may be the temperature difference of the second acupoint before and after the stimulation is applied. When the third infrared signal and the fourth infrared signal are infrared spectral data, the second infrared difference may be the change in the infrared spectral data of the second acupoint before and after the stimulation is applied.

[0128] The step of performing Fourier transform on the second infrared signal group may be the same as the step of performing Fourier transform on the first infrared signal group in the above step S401, and will not be described in detail in this application.

[0129] S403: Determine an analysis result of the target organ according to the first infrared difference, the second infrared difference, the first spectrum, and the second spectrum.

[0130] In the first implementation, the first infrared difference can characterize the meridian congestion on the side of the first acupuncture point, and the second infrared difference can characterize the meridian congestion on the side of the second acupuncture point. When the difference between the first infrared difference and the second infrared difference is small, the two may be in the same variation range. Specifically, the greater the change in the infrared difference, the greater the change value before and after the application of the stimulus, and the more serious the meridian congestion can be considered. Exemplarily, the change value includes multiple intervals, and each interval corresponds to a different health status analysis result. Therefore, based on the first infrared difference and the second infrared difference, the congestion of the left and right meridians of the target organ can be described, and based on the first infrared difference, the second infrared difference and the preset variation value interval, the analysis result of the target organ of the meridian where the acupuncture point is located can be determined.

[0131] For example, assuming that the first infrared difference and the second infrared difference are both within the range of change value interval 1, the health status analysis result corresponding to change value interval 1 is "low", indicating that the risk of health hazards in the organs corresponding to the first acupoint and the second acupoint is low.

[0132] In the second implementation, if the first infrared difference and the second infrared difference differ significantly and fall within different ranges, the first and second infrared differences can be used to further determine the left and right meridian blockage and organ health status analysis results. By determining the difference between the first and second infrared differences and comparing this difference with a preset difference range, it is possible to determine whether the left or right side of the body is blocked, and the risk value corresponding to the difference range within which the difference falls is used as the analysis result for the target organ.

[0133] For example, assuming that the first infrared difference is within the change value interval 1 and the second infrared difference is within the change value interval 3, the analysis result corresponding to the change value interval 1 is "low", and the analysis result corresponding to the change value interval 3 is "high", the analysis result of the organ cannot be directly determined. At this time, the difference A between the first infrared difference and the second infrared difference can be calculated, and the difference A can be compared with the difference interval. If the difference A is within the range of the difference interval 1, the analysis result corresponding to the difference interval 1, "congestion on the left side, high organ risk value", can be used as the analysis result of the target organ.

[0134] In a third implementation, the first infrared difference and the second infrared difference may be input into a predefined function to calculate a result of the operation of the two, and the result of the operation is used to characterize the risk prediction probability of the target organ.

[0135] It is worth noting that if the first infrared difference and the second infrared difference cannot obtain accurate analysis results, for example, the first infrared difference and the second infrared difference are both less than the minimum value of the minimum change value interval, or the difference between the two is less than the minimum value of the minimum difference interval, then it is impossible to obtain accurate analysis results based on the first infrared difference and the second infrared difference. At this time, analysis can be performed based on the first spectrum graph and the second spectrum graph to obtain the analysis results of the target organ.

[0136] It should be understood that by performing Fourier transform on the signal, the time domain signal can be converted into a frequency domain signal to obtain a spectrum diagram, which shows the energy distribution of the signal at different frequencies. Therefore, the energy difference of the signal can be more clearly displayed. The energy difference can characterize the congestion of the meridians on both sides. Therefore, based on this energy difference, the analysis results of the target organ can be obtained.

[0137] Furthermore, the step of determining the analysis result of the target organ based on the first infrared difference, the second infrared difference, the first spectrum and the second spectrum includes:

[0138] If the first infrared difference and the second infrared difference are within the first change value interval, or the difference between the first infrared difference and the second infrared difference is within the first difference interval, the analysis result of the target organ is determined based on the first infrared difference and the second infrared difference.

[0139] The first change value interval and the first difference value interval may each include multiple subintervals, each subinterval corresponding to a different risk level. If the first infrared difference value and the second infrared difference value are within the first change value interval, the analysis result of the target organ may be determined based on the risk level corresponding to the change value subinterval in which the first infrared difference value is located and the risk level corresponding to the change value subinterval in which the second infrared difference value is located. If the difference between the first infrared difference value and the second infrared difference value is within the first difference interval, the analysis result of the target organ may be determined based on the risk level corresponding to the difference subinterval in which the difference between the first infrared difference value and the second infrared difference value is located.

[0140] If the first infrared difference and the second infrared difference are not within the first change value interval, and the difference between the first infrared difference and the second infrared difference is not within the first difference interval, the analysis result of the target organ is determined according to the first spectrum map and the second spectrum map.

[0141] If both the first infrared difference and the second infrared difference are smaller than the minimum value of the first change value interval, or the difference between the first infrared difference and the second infrared difference is smaller than the minimum value of the first difference interval, it means that accurate analysis results cannot be obtained based on the first infrared difference and the second infrared difference. At this time, the analysis results of the target organ can be determined based on the first spectrum graph and the second spectrum graph.

[0142] As a possible implementation method, the first spectrum graph and the second spectrum graph can be compared to obtain the signal energy difference value of the same acupoint, and the signal energy difference value can be compared with the energy difference value interval, and the risk level corresponding to the sub-interval where the signal energy difference value is located can be used as the risk level of the target organ.

[0143] The following is a further explanation of the second implementation method of determining the analysis result of the target organ based on the first infrared signal and the second infrared signal of each acupoint in the first acupoint set, and the third infrared signal and the fourth infrared signal of each acupoint in the second acupoint set. Figure 5 As shown, the process includes:

[0144] S501. If there are multiple acupoints in the first acupoint set and multiple acupoints in the second acupoint set, and the acupoints in the first acupoint set are symmetrical with the acupoints in the second acupoint set, then the initial infrared difference of each acupoint is determined according to the first infrared signal and the second infrared signal of each acupoint in the first acupoint set, and the final infrared difference of each acupoint in the second acupoint set is determined according to the third infrared signal and the fourth infrared signal of each acupoint in the second acupoint set.

[0145] The acupoints in the first acupoint set are acupoints on the same meridian, and the acupoints in the second acupoint set are acupoints on the same meridian. The acupoints in the second acupoint set correspond to the acupoints in the first acupoint set and are symmetrically distributed.

[0146] The initial infrared difference of the acupoints can represent the blockage of the meridians on the side where each acupoint in the first acupoint set is located, and the final infrared difference can represent the blockage of the meridians on the side where each acupoint in the second acupoint set is located.

[0147] The initial infrared difference can be the difference between the first infrared signal and the second infrared signal. When the first infrared signal and the second infrared signal are temperature values, the first infrared difference can be the temperature difference between the acupoint before and after the stimulation. When the first infrared signal and the second infrared signal are infrared spectral data, the first infrared difference can be the change value of the infrared spectral data of the acupoint before and after the stimulation.

[0148] When the third infrared signal and the fourth infrared signal are temperature values, the final infrared difference can be the temperature difference of the acupoints in the second acupoint set before and after the excitation is applied. When the third infrared signal and the fourth infrared signal are infrared spectral data, the final infrared difference can be the change value of the infrared spectral data of the acupoints before and after the excitation is applied.

[0149] S502. Determine the difference between the initial infrared difference and the final infrared difference based on the initial infrared difference of each acupoint in the first acupoint set and the final infrared difference of each acupoint in the second acupoint set that is symmetrical to each acupoint in the first acupoint set.

[0150] The difference between the initial infrared difference and the final infrared difference can indicate whether there is congestion in the meridians on the side corresponding to the first acupoint set or the side corresponding to the second acupoint set, and can indicate the health status of the target organ.

[0151] It should be noted that the initial infrared difference can represent the meridian congestion on the side where each acupoint in the first acupoint set is located. For example, the larger the initial infrared difference, the more serious the meridian congestion on that side. The final infrared difference can represent the meridian congestion on the side where each acupoint in the second acupoint set is located. For example, the larger the final infrared difference, the more serious the meridian congestion on that side. The difference between the initial infrared difference and the final infrared difference can represent the difference in congestion between the two meridians. The difference in congestion can represent which side of the meridians has a more serious congestion. The more serious the meridian congestion, the more likely the target organ is to have health risks.

[0152] S503 , performing Fourier transform on the first infrared signal group to obtain a first spectrum graph, and performing Fourier transform on the second infrared signal group to obtain a second spectrum graph.

[0153] The step of performing Fourier transform on the first infrared signal group and the second infrared signal group is the same as the above-mentioned step S401, and will not be described in detail in this application.

[0154] S504: Determine the analysis result of the target organ according to the first spectrum graph, the second spectrum graph, and the difference between the initial infrared difference value and the final infrared difference value.

[0155] In the first implementation method, the average value of the difference between all initial infrared difference values ​​and final infrared difference values ​​can be calculated, and the average value can be compared with the preset difference interval. Each difference interval corresponds to an analysis result. If the average value is within the value range of the difference interval, the analysis result corresponding to the difference interval can be used as the analysis result of the target organ. If the average value is not within the value range of the difference interval, the signal energy difference value is obtained based on the first spectrum graph and the second spectrum graph, and the risk level corresponding to the signal energy difference value is used as the analysis result of the target organ.

[0156] In the second implementation method, different weights can be assigned to each acupoint on the meridian, and the weight value is used to characterize the importance of the detection result of the acupoint to the organ analysis result. For example, a larger weight value can be assigned to the original acupoint on the meridian, and a smaller weight value can be assigned to other acupoints on the meridian except the original acupoint. The weighted average value of the meridian where the acupoint is located is calculated based on the weight value and the difference between the initial infrared difference and the final infrared difference of each acupoint. The weighted average value is compared with the difference interval. If the weighted average value is within the value range of the difference interval, the analysis result corresponding to the difference interval can be used as the analysis result of the target organ. If the weighted average value is not within the value range of the difference interval, the signal energy difference value is obtained based on the first spectrum diagram and the second spectrum diagram, and the risk level corresponding to the signal energy difference value is used as the analysis result of the target organ.

[0157] The analysis results corresponding to the difference interval include: the location of the meridian where congestion occurs and the risk value of the target organ corresponding to the meridian. Figure 6 The figure shows a schematic diagram of the target organ analysis results, where the horizontal axis represents the organ, and the vertical axis represents the risk value corresponding to the organ. For example, "-gold" represents the lung meridian (corresponding to the lung), "-fire" represents the heart meridian (corresponding to the heart), and "+gold" represents the large intestine meridian (corresponding to the large intestine). The coordinates on the horizontal axis are named based on the five elements corresponding to the original acupoints of the organ. The greater the difference between the initial infrared difference and the final infrared difference, Figure 6 The larger the value on the vertical axis, the higher the risk of health problems in the target organ.

[0158] The following is a further explanation of determining the analysis result of the target organ based on the first spectrum, the second spectrum, and the difference between the initial infrared difference and the final infrared difference in step S504. The process includes:

[0159] If the difference between the initial infrared difference value and the final infrared difference value is within the second change value interval, the analysis result of the target organ is determined according to the difference between the initial infrared difference value and the final infrared difference value.

[0160] Optionally, the second change value interval includes multiple sub-intervals. If the difference between the initial infrared difference and the final infrared difference is greater than the minimum value of the second change value interval and less than the maximum value of the second change value interval, it means that the difference between the initial infrared difference and the final infrared difference can represent the risk level of the target organ. At this time, the risk level of the sub-interval where the difference between the initial infrared difference and the final infrared difference is located can be used as the risk level of the target organ.

[0161] If the difference between the initial infrared difference value and the final infrared difference value is not within the second change value interval, the analysis result of the target organ is determined according to the first spectrum graph and the second spectrum graph.

[0162] If the difference between the initial infrared difference and the final infrared difference is smaller than the minimum value of the second change value interval, it means that the risk level of the target organ cannot be accurately obtained based on the difference between the initial infrared difference and the final infrared difference. At this time, the first spectrum graph and the second spectrum graph can be compared to obtain the signal energy difference value between the two, and the risk level corresponding to the signal energy difference value can be used as the risk level of the target organ.

[0163] In an embodiment of the present application, by actively applying ultrasonic excitation in combination with collecting infrared signals, the signal strength and changes of the acupuncture points on the human meridians before and after the application of excitation can be analyzed, thereby obtaining the congestion situation of a unilateral meridian. The difference between the two sides can further characterize the difference in congestion of the meridians on both sides and characterize the health status analysis results of the target organs corresponding to the meridians.

[0164] Before applying stimulation to the second acupoint in the second acupoint set corresponding to the first acupoint in the first acupoint set through the ultrasonic module, in order to ensure the normal operation of the ultrasonic module, the ultrasonic module may be self-tested, such as Figure 7 As shown, the process specifically includes:

[0165] S701 , collecting multiple groups of ultrasonic data, each group of ultrasonic data including an ultrasonic frequency value and an ultrasonic intensity value.

[0166] After the ultrasonic module is turned on, N groups of ultrasonic data may be continuously collected, each group of ultrasonic data including an ultrasonic frequency value and an ultrasonic intensity value, wherein N is an even number.

[0167] S702: Perform elimination processing on multiple groups of ultrasonic data to obtain ultrasonic frequency target values ​​and ultrasonic intensity target values.

[0168] Optionally, the maximum and minimum values ​​in the ultrasonic data can be removed, and the mean of the remaining N-2 groups of ultrasonic data can be calculated to obtain the ultrasonic frequency target value and the ultrasonic intensity target value. The maximum values ​​of the removed ultrasonic data include the maximum ultrasonic frequency value and the maximum ultrasonic intensity value.

[0169] S703 : Determine the working state of the ultrasonic module according to the ultrasonic frequency target value and the preset frequency range, the ultrasonic intensity target value and the preset intensity range.

[0170] The preset frequency range is used to represent the frequency range when the ultrasonic module works normally, and the preset intensity range is used to represent the intensity range when the ultrasonic module works normally.

[0171] The following is a further explanation of how to eliminate the above-mentioned multiple sets of ultrasonic data to obtain the ultrasonic frequency target value and the ultrasonic intensity target value. Figure 8 As shown, the above step S702 includes:

[0172] S801 , sorting the ultrasonic frequency values ​​in each ultrasonic data according to the magnitude of the ultrasonic frequency values ​​to obtain an ultrasonic frequency value sorting result.

[0173] S802 , sorting the ultrasonic intensity values ​​in each ultrasonic data according to the magnitude of the ultrasonic intensity values ​​to obtain an ultrasonic intensity value sorting result.

[0174] Optionally, the ultrasonic frequency values ​​and ultrasonic intensity values ​​in each group of ultrasonic data may be sorted in order from large to small or from small to large to obtain ultrasonic frequency value sorting results and ultrasonic intensity value sorting results.

[0175] S803: Remove the maximum value and the minimum value from the ultrasonic frequency value sorting results and the ultrasonic intensity value sorting results to obtain an ultrasonic frequency value set and an ultrasonic intensity value set.

[0176] Optionally, the maximum frequency value and the minimum frequency value in the ultrasonic frequency sorting result can be removed, and the remaining ultrasonic frequency values ​​can be used as elements in the ultrasonic frequency value set; the maximum intensity value and the minimum intensity value in the ultrasonic intensity sorting result can be removed, and the remaining ultrasonic intensity values ​​can be used as elements in the ultrasonic intensity value set.

[0177] S804: Taking the mean of each data in the ultrasonic frequency value set as the ultrasonic frequency target value, and taking the mean of each data in the ultrasonic intensity value set as the ultrasonic intensity target value.

[0178] Optionally, an average value may be calculated for the ultrasonic frequency values ​​in the ultrasonic frequency value set and used as the ultrasonic frequency target value; an average value may be calculated for the ultrasonic intensity values ​​in the ultrasonic intensity value set and used as the ultrasonic intensity target value.

[0179] The following is a further explanation of determining the working state of the ultrasonic module based on the ultrasonic frequency target value and the preset frequency range, the ultrasonic intensity target value and the preset intensity range. The above step S703 includes:

[0180] If the ultrasonic frequency target value is within the frequency range, and the ultrasonic intensity target value is within the intensity range, it is determined that the working state of the ultrasonic module is normal.

[0181] If the ultrasonic frequency target value is not within the frequency range, or the ultrasonic intensity target value is not within the intensity range, it is determined that the working state of the ultrasonic module is abnormal.

[0182] If the frequency range is [Fmin, Fmax] and the intensity range is [Imin, Imax], then when the ultrasonic frequency target value is greater than Fmin and less than Fmax, and the ultrasonic intensity target value is greater than Imin and less than Imax, the ultrasonic module self-test is determined to be successful, meaning the ultrasonic module is operating normally and can be used to apply stimulation to the acupoint. Conversely, if the ultrasonic frequency target value is less than Fmin or greater than Fmax, or the ultrasonic intensity target value is less than Imin or greater than Imax, the ultrasonic module self-test is determined to have failed, and stimulation cannot be applied to the acupoint.

[0183] like Figure 9 The figure shows a flow chart of ultrasonic module self-test. Figure 9 After starting the ultrasonic self-test, N groups of ultrasonic data are continuously collected. The maximum and minimum values ​​of the collected ultrasonic data are removed, and the remaining N-2 groups of data are summed and averaged to obtain the ultrasonic frequency target value and the ultrasonic intensity target value. If the ultrasonic frequency target value is within the preset frequency range and the ultrasonic intensity target value is also within the preset intensity range, the ultrasonic module self-test is successful. Otherwise, the self-test fails and a prompt message is sent to the user to enable the user to repair the ultrasonic module.

[0184] Figure 10A structural schematic diagram of an electronic device provided in an embodiment of the present application is shown, including: a processor 1001, a storage medium 1002 and a bus 1003. The electronic device can be a processing module of the above-mentioned acupoint information detection and processing device. The storage medium 1002 stores machine-readable instructions executable by the processor 1001. When the electronic device is running, the processor 1001 communicates with the storage medium 1002 through the bus 1003. The processor 1001 executes the machine-readable instructions and the preamble of the method item of the processor 1001 to execute the steps performed by the processing module in the above-mentioned acupoint information detection and processing device.

[0185] An embodiment of the present application further provides a computer-readable storage medium having a computer program stored thereon. The computer program is executed when a processor is running, and the processor executes the steps executed by the processing module in the above-mentioned acupoint information detection and processing device.

[0186] In the embodiment of the present application, the computer program can also execute other machine-readable instructions when run by the processor to execute other methods described in the embodiment. For the specific execution method steps and principles, please refer to the description of the embodiment and will not be repeated here.

[0187] In the embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. The device embodiments described above are merely schematic. For example, the division of the units is only a logical function division. There may be other division methods in actual implementation. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some communication interface, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.

[0188] The units described as separate components may or may not be physically separate, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed across multiple network units. Some or all of these units may be selected to achieve the purpose of this embodiment according to actual needs.

[0189] In addition, each functional unit in the embodiments provided in the present application may be integrated into one processing unit, or each unit may exist physically separately, or two or more units may be integrated into one unit.

[0190] If the functions are implemented in the form of software functional units and sold or used as independent products, they can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application, or the part that contributes to the prior art or the part of the technical solution, can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes several instructions for enabling a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the method described in each embodiment of the present application. The aforementioned storage medium includes various media that can store program codes, such as a USB flash drive, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk or an optical disk.

[0191] It should be noted that similar numbers and letters represent similar items in the following figures. Therefore, once an item is defined in one figure, it does not need to be further defined and explained in subsequent figures. In addition, the terms "first", "second", "third", etc. are only used to distinguish the description and are not to be understood as indicating or implying relative importance.

[0192] Finally, it should be noted that the above-described embodiments are only specific implementation methods of the present application, which are used to illustrate the technical solutions of the present application, rather than to limit them. The scope of protection of the present application is not limited thereto. Although the present application has been described in detail with reference to the above-described embodiments, those skilled in the art should understand that any person skilled in the art can modify or easily conceive of changes to the technical solutions described in the above-described embodiments within the technical scope disclosed in the present application, or make equivalent replacements for some of the technical features thereof. However, these modifications, changes, or replacements do not deviate from the spirit and scope of the technical solutions of the embodiments of the present application. They should all be included in the scope of protection of the present application. Therefore, the scope of protection of the present application should be based on the scope of protection of the claims.

Claims

1. An acupoint information detection and processing device, characterized in that: The acupoint information detection and processing device includes: an ultrasonic module, an infrared detection module and a processing module; The infrared detection module collects a first infrared signal and a first infrared signal group of a first acupoint in the first acupoint set; While applying stimulation to a second acupoint corresponding to the first acupoint in the second acupoint set by the ultrasonic module, the infrared detection module collects a second infrared signal of the first acupoint, wherein the two corresponding acupoints in the first acupoint set and the second acupoint set correspond to the same target organ, and the second acupoint is a contralateral acupoint symmetrical to the first acupoint, or the second acupoint is an acupoint adjacent to the contralateral acupoint symmetrical to the first acupoint; The infrared detection module collects the third infrared signal and the second infrared signal group of the second acupuncture point; While applying stimulation to the first acupuncture point through the ultrasonic module, the infrared detection module collects a fourth infrared signal from the second acupuncture point; The processing module determines the analysis result of the target organ based on the first infrared signal, the second infrared signal and the first infrared signal group of each acupoint in the first acupoint set, and the third infrared signal, the fourth infrared signal and the second infrared signal group of each acupoint in the second acupoint set.

2. The device according to claim 1, characterized in that The process of the infrared detection module collecting the first infrared signal of the first acupoint in the first acupoint set and the first infrared signal group includes: Starting the infrared detection module and continuously sampling the first acupoint in the first acupoint set to obtain K groups of infrared signal data, where K is a positive integer greater than 1; Taking the K groups of infrared signal data as the first infrared signal group, and sorting the K groups of infrared signal data according to the size of the data values ​​to obtain a sorting result; The middle value of the sorting results is used as the first infrared signal of the first acupuncture point.

3. The device according to claim 1, characterized in that The process of applying stimulation to the second acupoint corresponding to the first acupoint in the second acupoint set by the ultrasonic module and collecting the second infrared signal of the first acupoint by the infrared detection module includes: The ultrasonic module applies N seconds of excitation to the second acupoint corresponding to the first acupoint in the second acupoint set, and starting from the second second, the infrared detection module is started to sample at the first acupoint to obtain a second infrared signal of the first acupoint, where N is a positive integer greater than 1.

4. The device according to claim 1, characterized in that The process of determining, by the processing module, an analysis result of the target organ based on the first infrared signal, the first infrared signal group, and the second infrared signal of each acupoint in the first acupoint set, and the third infrared signal, the second infrared signal group, and the fourth infrared signal of each acupoint in the second acupoint set includes: If the number of acupoints in the first acupoint set is one, and the number of acupoints in the second acupoint set is one, and the first acupoint in the first acupoint set is symmetrical with the second acupoint in the second acupoint set, determining a first infrared difference of the first acupoint based on the first infrared signal and the second infrared signal of the first acupoint, and performing Fourier transform on the first infrared signal group to obtain a first frequency spectrum; determining a second infrared difference corresponding to the second acupoint based on a third infrared signal of a second acupoint symmetrical to the first acupoint and the fourth infrared signal, and performing Fourier transform on the second infrared signal group to obtain a second spectrum diagram; An analysis result of the target organ is determined according to the first infrared difference, the second infrared difference, the first spectrum graph, and the second spectrum graph.

5. The device according to claim 4, characterized in that The process of determining the analysis result of the target organ according to the first infrared difference, the second infrared difference, the first spectrum graph, and the second spectrum graph includes: If the first infrared difference value and the second infrared difference value are within a first change value interval, or the difference between the first infrared difference value and the second infrared difference value is within a first difference value interval, determining an analysis result of the target organ according to the first infrared difference value and the second infrared difference value; If the first infrared difference and the second infrared difference are not within the first change value interval, and the difference between the first infrared difference and the second infrared difference is not within the first difference interval, the analysis result of the target organ is determined based on the first spectrum graph and the second spectrum graph.

6. The device according to claim 1, characterized in that The process of determining, by the processing module, an analysis result of the target organ based on the first infrared signal, the first infrared signal group, and the second infrared signal of each acupoint in the first acupoint set, and the third infrared signal, the second infrared signal group, and the fourth infrared signal of each acupoint in the second acupoint set includes: If the number of acupoints in the first acupoint set is multiple, and the number of acupoints in the second acupoint set is multiple, and the acupoints in the first acupoint set are symmetrical with the acupoints in the second acupoint set, then determining the initial infrared difference value of each acupoint according to the first infrared signal and the second infrared signal of each acupoint in the first acupoint set, and determining the final infrared difference value of each acupoint in the second acupoint set according to the third infrared signal and the fourth infrared signal of each acupoint in the second acupoint set; Determine the difference between the initial infrared difference and the final infrared difference based on the initial infrared difference of each acupoint in the first acupoint set and the final infrared difference of each acupoint in the second acupoint set that is symmetrical to each acupoint in the first acupoint set; Performing a Fourier transform on the first infrared signal group to obtain a first frequency spectrum, and performing a Fourier transform on the second infrared signal group to obtain a second frequency spectrum; An analysis result of the target organ is determined according to the first spectrum graph, the second spectrum graph, and the difference between the initial infrared difference value and the final infrared difference value.

7. The device according to claim 6, characterized in that The process of determining the analysis result of the target organ according to the first spectrum graph, the second spectrum graph, and the difference between the initial infrared difference value and the final infrared difference value includes: If the difference between the initial infrared difference value and the final infrared difference value is within a second variation value interval, determining the analysis result of the target organ according to the difference between the initial infrared difference value and the final infrared difference value; If the difference between the initial infrared difference value and the final infrared difference value is not within the second change value interval, the analysis result of the target organ is determined according to the first spectrum graph and the second spectrum graph.

8. The device according to claim 1, characterized in that The ultrasonic module performs self-detection when it is started. The process of the ultrasonic module self-detection includes: Collecting multiple sets of ultrasonic data, each set of ultrasonic data includes an ultrasonic frequency value and an ultrasonic intensity value; Performing elimination processing on the multiple sets of ultrasonic data to obtain ultrasonic frequency target values ​​and ultrasonic intensity target values; The working state of the ultrasonic module is determined according to the ultrasonic frequency target value and the preset frequency range, and the ultrasonic intensity target value and the preset intensity range.

9. The device according to claim 8, characterized in that The process of eliminating the plurality of sets of ultrasonic data to obtain the ultrasonic frequency target value and the ultrasonic intensity target value includes: sorting the ultrasonic frequency values ​​according to the magnitude of the ultrasonic frequency values ​​in the ultrasonic data to obtain an ultrasonic frequency value sorting result; sorting the ultrasonic intensity values ​​according to the magnitude of the ultrasonic intensity values ​​in the ultrasonic data to obtain an ultrasonic intensity value sorting result; Eliminate the maximum and minimum values ​​from the ultrasonic frequency value sorting results and the ultrasonic intensity value sorting results to obtain an ultrasonic frequency value set and an ultrasonic intensity value set; The average value of each data in the ultrasonic frequency value set is used as the ultrasonic frequency target value, and the average value of each data in the ultrasonic intensity value set is used as the ultrasonic intensity target value.

10. The device according to claim 8, characterized in that The process of determining the working state of the ultrasonic module according to the ultrasonic frequency target value and the preset frequency range, the ultrasonic intensity target value and the preset intensity range includes: If the ultrasonic frequency target value is within the frequency range, and the ultrasonic intensity target value is within the intensity range, it is determined that the working state of the ultrasonic module is normal; If the ultrasonic frequency target value is not within the frequency range, or the ultrasonic intensity target value is not within the intensity range, it is determined that the working state of the ultrasonic module is abnormal.

11. The device according to any one of claims 1 to 10, characterized in that The ultrasonic module includes: an ultrasonic unit and an ultrasonic probe connected to the ultrasonic unit; The ultrasonic unit controls the ultrasonic probe to apply excitation to the acupuncture point; The infrared detection module includes: an infrared detection unit and an infrared detection probe connected to the infrared detection unit; The infrared detection unit controls the infrared detection probe to collect infrared signals of acupuncture points.

12. The device according to claim 11, characterized in that The acupoint information detection and processing device further includes: a button module and a display module; The button module includes a plurality of buttons; Each button and the display module are connected to the processing module; The processing module generates control instructions for the ultrasonic module and the infrared detection module according to the trigger status of each button; The processing module also sends the analysis result of the target organ to the display module for display.

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