Method and Device for Assessing Meridian Health Status Based on Acupoint Detection Data

By collecting impedance data from the original acupoints of the twelve meridians, calculating the deficiency and excess values ​​and the cold and heat values, and conducting multi-dimensional analysis, the problems of long cycle and low accuracy of traditional health assessment methods are solved, and accurate assessment of meridian health status is achieved.

CN122135959APending Publication Date: 2026-06-02BEIJING SHIFANG TAIHE INST OF TRADITIONAL CHINESE MEDICINE

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
BEIJING SHIFANG TAIHE INST OF TRADITIONAL CHINESE MEDICINE
Filing Date
2026-01-21
Publication Date
2026-06-02

AI Technical Summary

Technical Problem

Traditional health assessment methods rely on Western medicine's chemical indicators and imaging examinations, which have long testing cycles, high costs, and are difficult to meet the needs of daily health monitoring and rapid assessment. Furthermore, health assessment methods based on meridian detection do not extract features comprehensively, affecting the accuracy and reliability of the assessment results.

Method used

By collecting impedance data from the original acupoints of the twelve meridians, calculating the deficiency/excess value and the cold/heat value, and performing multi-dimensional calculations, a meridian score is obtained. Combined with the relationship between the meridians, a health status assessment is conducted, including the abnormal level and weight allocation of dimensions such as deficiency/excess, cold/heat, and imbalance.

Benefits of technology

It enables multi-dimensional assessment of meridian health status, improves the accuracy and reliability of the assessment, and meets the needs of daily health monitoring and assessment.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN122135959A_ABST
    Figure CN122135959A_ABST
Patent Text Reader

Abstract

This application provides a method and apparatus for assessing meridian health status based on acupoint detection data, relating to the field of medical and health information technology. The method includes: collecting impedance data of the twelve meridian acupoints of a target object, and calculating assessment parameters corresponding to each meridian acupoint based on the impedance data; performing multi-dimensional calculations on each meridian based on the assessment parameters of each acupoint to obtain scores and weights for each dimension; calculating a meridian score for each meridian based on the scores and weights for each dimension; and assessing the target's corresponding health status based on the meridian score to obtain the assessment result. The method and apparatus for assessing meridian health status based on acupoint detection data provided in this application, by performing multi-dimensional analysis and calculations on the collected data and assessing the user's meridian status, can, to a certain extent, meet the user's needs for daily meridian health monitoring and assessment.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This application relates to the field of medical and health information technology, and in particular to a method and device for assessing the health status of meridians based on acupoint detection data. Background Technology

[0002] With increasing health awareness, the demand for health assessments is growing. Traditional health assessment methods largely rely on Western medicine's biochemical indicator testing and imaging examinations. These methods often require specialized medical equipment and facilities, and suffer from long testing cycles and high costs, making it difficult to meet people's needs for daily health monitoring and rapid assessment. Traditional Chinese medicine's meridian theory holds that the body's meridians are the channels for the flow of Qi and blood. Acupoints on the meridians are closely connected to the body's internal organs, and changes in organ function are manifested through the bioelectrical properties of meridian acupoints.

[0003] However, health assessment methods based on meridian detection in related technologies generally suffer from problems such as incomplete feature extraction and a single assessment model, which greatly affect the accuracy and reliability of health assessment results. Summary of the Invention

[0004] The purpose of this application is to provide a method and device for assessing meridian health status based on acupoint detection data. By performing multi-dimensional analysis and calculation on the collected data and assessing the user's meridian status, it can meet the user's needs for daily meridian health monitoring and assessment to a certain extent.

[0005] This application provides a method for assessing meridian health status based on acupoint detection data, including: Impedance data of the twelve meridian acupoints of the target object are collected, and evaluation parameters corresponding to each meridian acupoint are calculated based on the impedance data of each meridian acupoint. The evaluation parameters include at least: deficiency / excess value and cold / heat value. Based on the evaluation parameters of each acupoint, multi-dimensional calculations are performed on each meridian to obtain the scores and weights of each dimension for each meridian. Based on the scores and weights of each dimension for each meridian, a meridian score is calculated for each meridian, and the health status of the target is evaluated based on the meridian score of each meridian to obtain the evaluation result.

[0006] Optionally, the step of calculating the evaluation parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint includes: obtaining the voltage and current values ​​corresponding to the target acupoint at the target time point; using the ratio of the obtained voltage and current values ​​as the virtual and real values ​​of the target acupoint; wherein, the target acupoint is any one of the twelve meridian acupoints; and the target time point is the time point corresponding to the preset time after the measurement begins using the meridian detection device.

[0007] Optionally, the step of calculating the evaluation parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint includes: obtaining the voltage-time relationship curve of the target acupoint from the start of measurement to the target time point; taking the slope of the voltage-time relationship curve at the target time point as the cold / heat value of the target acupoint; wherein, the target acupoint is any one of the twelve meridian acupoints; and the target time point is the time point corresponding to the preset time after the start of measurement using the meridian detection device.

[0008] Optionally, the step of performing multi-dimensional calculations on each meridian based on the evaluation parameters of each acupoint to obtain the scores for each dimension of each meridian includes: dividing each meridian into four dimensions: cold and heat, deficiency and excess, imbalance of cold and heat, and imbalance of deficiency and excess; and determining the abnormality level corresponding to each dimension of each meridian based on the values ​​of the evaluation parameters corresponding to each acupoint; and calculating the dimension score corresponding to each dimension of each meridian based on the abnormality level corresponding to each dimension of each meridian according to the score corresponding to different abnormality levels.

[0009] Optionally, determining the abnormality level of each dimension of each meridian based on the values ​​of the evaluation parameters corresponding to each acupoint includes: for each meridian, determining the abnormality levels of the left meridian's cold / heat dimension and the left meridian's deficiency / excess dimension based on the cold / heat value and deficiency / excess value of the left meridian's acupoints, and determining the abnormality levels of the right meridian's cold / heat dimension and the right meridian's deficiency / excess dimension based on the cold / heat value and deficiency / excess value of the right meridian's acupoints; determining the abnormality level of the cold / heat imbalance dimension based on the comparison results of the cold / heat values ​​of the left and right meridian acupoints, and determining the abnormality level of the deficiency / excess imbalance dimension based on the comparison results of the deficiency / excess values ​​of the left and right meridian acupoints; and converting the abnormality levels of each dimension into corresponding dimension scores.

[0010] Optionally, the evaluation parameters based on each acupoint are used to perform multi-dimensional calculations on each meridian to obtain the weights of each dimension corresponding to each meridian, including: assigning different weight coefficients to the four dimensions of cold and heat, deficiency and excess, cold and heat imbalance, and deficiency and excess imbalance based on preset screening rules, and determining the weight corresponding to each dimension of each meridian; wherein, the screening rules are used to characterize the weight between each dimension.

[0011] Optionally, the step of calculating the meridian score for each meridian based on the scores and weights of each dimension corresponding to each meridian includes: calculating the first product of the score and weight of the left meridian's emptiness / fullness dimension corresponding to the target meridian, and the second product of the score and weight of the left meridian's cold / heat dimension corresponding to the target meridian, and adding the first product and the second product to obtain the first score; calculating the third product of the score and weight of the right meridian's emptiness / fullness dimension corresponding to the target meridian, and the third product of the score and weight of the right meridian's cold / heat dimension corresponding to the target meridian. The fourth product of the dimension weights is calculated, and the third product is added to the fourth product to obtain the second score; the fifth product of the virtual-real imbalance dimension score and the virtual-real imbalance dimension weights corresponding to the target meridian, and the sixth product of the cold-heat imbalance dimension score and the cold-heat imbalance dimension weights corresponding to the target meridian are calculated, and the fifth product is added to the sixth product to obtain the third score; the first score, the second score, and the third score are added to obtain the meridian score of the target meridian; wherein, the target meridian is any one of the twelve meridians.

[0012] Optionally, the assessment of the health status corresponding to the target based on the meridian score of each meridian to obtain the assessment result includes: identifying the meridian with the highest meridian score as the primary meridian, and assigning weights to other meridians besides the primary meridian based on the exterior-interior relationship, the five-element mutual restraint relationship, the five-element mutual generation relationship, and the same-name meridian relationship among the meridians, to obtain the relationship weight of each of the other meridians; performing a weighted calculation on each of the other meridians based on the relationship weight and meridian score of each of the other meridians, to obtain the weighted score of each of the other meridians, and identifying the meridian with the highest weighted score as the secondary meridian.

[0013] Optionally, the step of evaluating the health status of the target based on the meridian score of each meridian to obtain the evaluation result includes: adding the meridian scores of each meridian to obtain the total meridian score; and determining the health status of the target based on the health level corresponding to the total meridian score.

[0014] This application also provides a meridian health status assessment device based on acupoint detection data, comprising: The system comprises: an acquisition module for collecting impedance data of the twelve meridian acupoints of the target object; a calculation module for calculating evaluation parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint; the evaluation parameters include at least: a value of emptiness / excess and a value of cold / heat; the calculation module is also used to perform multi-dimensional calculations on each meridian based on the evaluation parameters of each acupoint, obtaining the scores and weights of each dimension for each meridian; the calculation module is also used to calculate the meridian score of each meridian based on the scores and weights of each dimension; and an evaluation module for evaluating the health status of the target based on the meridian score of each meridian, obtaining the evaluation result.

[0015] Optionally, the acquisition module is specifically used to acquire the voltage and current values ​​corresponding to the target acupoint at the target time point; the calculation module is specifically used to use the ratio of the acquired voltage value to the current value as the virtual and real value of the target acupoint; wherein, the target acupoint is any one of the twelve meridian acupoints; the target time point is the time point corresponding to the preset time after the meridian detection device starts measuring.

[0016] Optionally, the acquisition module is specifically used to acquire the voltage-time relationship curve of the target acupoint from the start of measurement to the target time point; the calculation module is specifically used to take the slope of the voltage-time relationship curve at the target time point as the cold / heat value of the target acupoint; wherein, the target acupoint is any one of the twelve meridian acupoints; the target time point is the time point corresponding to the preset time after the start of measurement using the meridian detection device.

[0017] Optionally, the calculation module is specifically used to divide each meridian into four dimensions: cold and heat, deficiency and excess, imbalance of cold and heat, and imbalance of deficiency and excess, and to determine the abnormality level corresponding to each dimension of each meridian based on the values ​​of various evaluation parameters corresponding to each acupoint; the calculation module is also specifically used to calculate the dimension score corresponding to each dimension of each meridian based on the abnormality level corresponding to each dimension of each meridian, according to the score corresponding to different abnormality levels.

[0018] Optionally, the calculation module is specifically used to determine the abnormality level of the left meridian's cold-heat dimension and the left meridian's deficiency-excess dimension for each meridian, based on the cold-heat value and deficiency-excess value of the left meridian's original acupoints, and to determine the abnormality level of the right meridian's cold-heat dimension and the right meridian's deficiency-excess dimension, based on the cold-heat value and deficiency-excess value of the right meridian's original acupoints; the calculation module is also specifically used to determine the abnormality level of the cold-heat imbalance dimension based on the comparison result of the cold-heat values ​​of the left and right meridian's original acupoints, and to determine the abnormality level of the deficiency-excess imbalance dimension based on the comparison result of the deficiency-excess values ​​of the left and right meridian's original acupoints; the calculation module is also specifically used to convert the abnormality level of each dimension into the corresponding dimension score.

[0019] Optionally, the calculation module is specifically used to assign different weight coefficients to the four dimensions of cold and heat, deficiency and excess, cold and heat imbalance, and deficiency and excess imbalance based on preset screening rules, and to determine the weight corresponding to each dimension of each meridian; wherein, the screening rules are used to characterize the weight between each dimension.

[0020] Optionally, the calculation module is specifically used to calculate the first product of the left meridian's solid / empty dimension score and the left meridian's solid / empty dimension weight corresponding to the target meridian, and the second product of the left meridian's cold / heat dimension score and the left meridian's cold / heat dimension weight corresponding to the target meridian, and add the first product and the second product to obtain the first score value; the calculation module is also specifically used to calculate the third product of the right meridian's solid / empty dimension score and the right meridian's solid / empty dimension weight corresponding to the target meridian, and the fourth product of the right meridian's cold / heat dimension score and the right meridian's cold / heat dimension weight corresponding to the target meridian, and add the third product to the second product to obtain the first score value; The fourth product is added together to obtain the second score; the calculation module is further used to calculate the fifth product of the virtual-real imbalance dimension score and the virtual-real imbalance dimension weight corresponding to the target meridian, and the sixth product of the cold-heat imbalance dimension score and the cold-heat imbalance dimension weight corresponding to the target meridian, and add the fifth product and the sixth product to obtain the third score; the calculation module is further used to add the first score, the second score, and the third score to obtain the meridian score of the target meridian; wherein, the target meridian is any one of the twelve meridians.

[0021] Optionally, the evaluation module is specifically used to identify the meridian with the highest meridian score as the primary meridian, and to assign weights to other meridians besides the primary meridian based on the exterior-interior relationship, the five-element mutual restraint relationship, the five-element mutual generation relationship, and the same-name meridian relationship among the meridians, thereby obtaining the relationship weight of each of the other meridians; the evaluation module is also specifically used to perform a weighted calculation on each of the other meridians based on the relationship weight and meridian score of each of the other meridians, thereby obtaining a weighted score of each of the other meridians, and to identify the meridian with the highest weighted score as the secondary meridian.

[0022] Optionally, the calculation module is further configured to add up the meridian scores of each meridian to obtain a total meridian score; the evaluation module is specifically configured to determine the health status of the target object based on the health level corresponding to the total meridian score.

[0023] This application also provides a computer program product, including a computer program / instructions that, when executed by a processor, implement the steps of the meridian health status assessment method based on acupoint detection data as described above.

[0024] This application also provides an electronic device, including a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the program to implement the steps of the meridian health status assessment method based on acupoint detection data as described above.

[0025] This application also provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the steps of the meridian health status assessment method based on acupoint detection data as described above.

[0026] The method and apparatus for assessing meridian health status based on acupoint detection data provided in this application first collect impedance data of the twelve meridian acupoints of the target object, and calculate the assessment parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint; the assessment parameters include at least: deficiency / excess value and cold / heat value; then, based on the assessment parameters of each acupoint, perform multi-dimensional calculations on each meridian to obtain the scores and weights of each dimension for each meridian; finally, based on the scores and weights of each dimension for each meridian, calculate the meridian score for each meridian, and assess the health status of the target based on the meridian score of each meridian to obtain the assessment result. Thus, by performing multi-dimensional analysis and calculation on the collected data and assessing the user's meridian status, it can meet the user's needs for daily meridian health monitoring and assessment to a certain extent. Attached Figure Description

[0027] To more clearly illustrate the technical solutions in this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0028] Figure 1 This is a schematic diagram of the structure of the meridian measurement device provided in this application; Figure 2 This is a flowchart illustrating the meridian health status assessment method based on acupoint detection data provided in this application. Figure 3 This is a schematic diagram of the meridian health status assessment device based on acupoint detection data provided in this application; Figure 4 This is a schematic diagram of the structure of the electronic device provided in this application. Detailed Implementation

[0029] To make the objectives, technical solutions, and advantages of this application clearer, the technical solutions of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of this application, not all embodiments. Based on the embodiments of this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0030] The terms "first," "second," etc., used in the specification and claims of this application are used to distinguish similar objects and not to describe a specific order or sequence. It should be understood that such use of data can be interchanged where appropriate so that embodiments of this application can be implemented in orders other than those illustrated or described herein, and the objects distinguished by "first," "second," etc., are generally of the same class and the number of objects is not limited; for example, a first object can be one or more. Furthermore, "and / or" in the specification and claims indicates at least one of the connected objects, and the character " / " generally indicates that the preceding and following objects are in an "or" relationship. All actions involving the acquisition of signal information or data in this application are performed in accordance with the relevant data protection laws and policies of the country where the application is located and with authorization from the owner of the relevant device.

[0031] The following provides a detailed explanation of the technical terms used in the embodiments of this application: The Twelve Meridians: The human body has twelve major meridians (such as the Lung Meridian of Hand-Taiyin and the Stomach Meridian of Foot-Yangming), which are symmetrically distributed bilaterally, meaning each meridian is divided into a left and a right meridian. Left Meridian: Refers to the path and function of a meridian on the left side of the body. For example, the "left lung meridian" refers to the left Lung Meridian of Hand-Taiyin. Right Meridian: Refers to the path and function of the same meridian on the right side of the body. For example, the "right lung meridian" refers to the right Lung Meridian of Hand-Taiyin.

[0032] The primary acupoints of meridians: Each meridian has only one primary acupoint (for example, the primary acupoint of the Lung Meridian is Taiyuan, and the primary acupoint of the Large Intestine Meridian is Hegu). Traditional Chinese medicine theory holds that primary acupoints are the locations where the original Qi of the internal organs passes through and resides, and best reflect the fundamental state of the meridian and its corresponding internal organs. In the embodiments of this application, the representative state of the "twelve meridians" (12 on each side) is obtained by measuring the impedance data of the "twelve primary acupoints" (24 points in total, symmetrical on both sides).

[0033] To address the issues of incomplete feature extraction and a single evaluation model in related technologies, this application provides a method for assessing meridian health status based on acupoint detection data. This method measures the impedance data of each acupoint to determine the deficiency / excess, cold / heat, and balance of the left and right meridians, thereby calculating a score for each meridian and assessing the user's health status based on the meridian score.

[0034] like Figure 1 The diagram shows the structure of the meridian measurement device used in this embodiment. The device includes a meridian acupoint electrical signal acquisition component and a computing device. The meridian acupoint electrical signal acquisition component includes measuring electrodes and auxiliary electrodes, with the auxiliary electrodes suitable for fixing to the body surface. The measuring electrodes are used to sequentially contact the acupoints of a given individual to acquire electrical signals from the acupoints and generate volt-ampere characteristic data of the acupoints based on the electrical signals. The computing device is used to calculate and obtain the virtual / real value and cold / heat value of a given individual based on the volt-ampere characteristic data corresponding to the acupoints. The proposed virtual / real and cold / heat analysis instrument and method based on meridian acupoint measurement make the virtual / real and cold / heat values ​​applicable to each specific individual, improving the accuracy of meridian acupoint virtual / real and cold / heat analysis for individuals.

[0035] The method for assessing meridian health status based on acupoint detection data provided in this application will be described in detail below with reference to the accompanying drawings, through specific embodiments and application scenarios.

[0036] like Figure 2 As shown in the embodiment of this application, a method for assessing meridian health status based on acupoint detection data is provided. This method may include the following steps 201 to 203: Step 201: Collect impedance data of the twelve meridian acupoints of the target object, and calculate the evaluation parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint.

[0037] The evaluation parameters include at least: virtual and real values ​​and cold and hot values.

[0038] For example, the meridian detection device measures the impedance of biological tissue. Impedance itself is a physical quantity calculated by applying a known current and measuring the voltage generated, or applying a known voltage and measuring the current generated, and then calculating it according to Ohm's law.

[0039] For example, using such Figure 1 The meridian detection device shown measures the twelve meridian acupoints (a total of 24 acupoints) of the target object, obtains the impedance data of each acupoint, and calculates the evaluation parameters of the meridian acupoints based on the measured impedance data.

[0040] Specifically, in step 201 above, the calculation of the virtual and real values ​​may include the following steps 201a1 and 201a2: Step 201a1: Obtain the voltage and current values ​​corresponding to the target acupoint at the target time point.

[0041] Step 201a2: The ratio of the obtained voltage value to the current value is used as the virtual and real value of the target cavity.

[0042] The target acupoint is any one of the twelve meridian acupoints; the target time point is the time point corresponding to the preset duration after the meridian detection device starts measuring.

[0043] Specifically, in step 201 above, the calculation of the cold / heat value may include the following steps 201b1 and 201b2: Step 201b1: Obtain the voltage-time relationship curve of the target cavity from the start of measurement to the target time point.

[0044] Step 202b2: Take the slope of the voltage-time relationship curve at the target time point as the cold / heat value of the target acupoint.

[0045] The target acupoint is any one of the twelve meridian acupoints.

[0046] For example, in the embodiments of this application, the sum of the deficiency / excess value and the cold / heat value of the meridian source acupoint can be calculated by the following method: The "Virtual Value" reflects the strength or weakness of the body's vital energy and the depth of pathogenic factors in the meridians and viscera. The "-" and "+" signs before the numbers in this row indicate the tendency of the deficiency or excess, while the magnitude of the value indicates the degree of deficiency or excess.

[0047] "-" indicates "deficiency", which means that the meridians and blood are weak and the body's vital energy is insufficient, which can easily lead to abnormal vital signals such as fatigue, weakness, soreness, and decreased function.

[0048] "+" indicates "excessive", meaning that the stagnation of pathogenic factors in the meridian leads to blockage and obstruction, which can easily cause abnormal vital signs such as stuffiness, bloating, pain, and hyperfunction.

[0049] Cold / Heat Value: This reflects the nature of the pathogenic factor. The "-" and "+" signs before the numbers in the Cold / Heat Value row indicate the tendency of cold or heat, and the magnitude of the value indicates the degree of cold or heat.

[0050] "-" indicates "predominantly cold," meaning that the pathogenic factors in this meridian are mainly cold, which can easily manifest as abnormal vital signs such as coldness, tightness, contraction, stagnation, and diarrhea. Psychologically, it can easily lead to feelings of depression, anxiety, fear, and grief.

[0051] "+" indicates "predominantly hot," meaning that the pathogenic factors in this meridian are mainly heat-related. Physically, this can manifest as dryness, heat, itching, and bloating. Psychologically, it can lead to irritability, anxiety, anger, and a feeling of heat.

[0052] For example, after obtaining the deficiency / excess value and cold / heat value of each meridian's primary acupoint, a balance value for each meridian can be calculated based on the differences between the primary acupoints of the left and right meridians. This balance value can include a deficiency / excess balance value and a cold / heat balance value, i.e., the degree of deficiency / excess balance and the degree of cold / heat balance of the left and right meridians. The balance value is used to characterize the balance between the left and right sides of each meridian.

[0053] For example, the balance value in this application embodiment represents the balance degree of each meridian. The closer the deviation direction and degree of the left and right meridians are, the more balanced the left and right meridians are; the greater the difference in the deviation direction and degree of the left and right meridians, the more unbalanced the left and right meridians are, which is equivalent to an "earthquake" occurring in the body. The unbalanced situation is divided into two types: "imbalance" and "contrast".

[0054] Step 202: Based on the evaluation parameters of each acupoint, perform multi-dimensional calculations on each meridian to obtain the scores and weights of each dimension for each meridian.

[0055] For example, in this embodiment of the application, the degree of abnormality can also be graded in multiple dimensions based on the cold / heat value and deficiency / excess value of the meridian acupoints, as well as the balance value of the meridians. The specific grading method is as follows: For example, for virtual and real values: normal range: 0 to +50; mild abnormality: +(-)50 to +(-)100; moderate abnormality: +(-)100 to +(-)150; severe abnormality: above +150.

[0056] For example, for cold / heat values ​​and balance values: normal range: 0 to +100; mild abnormality: +(-)100 to +(-)150; moderate abnormality: +(-)150 to +(-)200; severe abnormality: above +200.

[0057] It is understood that in the embodiments of this application, the degree of abnormality can be judged based on the absolute value of the cold / heat value or the deficiency / excess value; that is, the larger the absolute value, the more severe the abnormality. Similarly, the greater the difference between the left and right meridians, the worse the balance.

[0058] Specifically, step 202 above may also include the following steps 202a and 202b: Step 202a: Divide each meridian into four dimensions: cold and heat, deficiency and excess, imbalance of cold and heat, and imbalance of deficiency and excess. Based on the values ​​of the various evaluation parameters corresponding to each acupoint, determine the abnormality level corresponding to each dimension of each meridian.

[0059] Step 202b: Based on the abnormality level corresponding to each dimension of each meridian, calculate the dimension score corresponding to each dimension of each meridian according to the score corresponding to different abnormality levels.

[0060] For example, in this embodiment of the application, based on the above-mentioned grading results, the dimensional severity scores can be converted in the following manner. The degree of abnormality for each dimension is divided into normal, mild, moderate, and severe, and the converted scores are shown in Table 1 below: Table 1

[0061] Specifically, step 202a above may also include steps 202a1 to 202a3: Step 202a1: For each meridian, based on the cold / heat value and deficiency / excess value of the original acupoint of the left meridian, determine the abnormality level of the cold / heat dimension and the deficiency / excess dimension of the left meridian, respectively. Based on the cold / heat value and deficiency / excess value of the original acupoint of the right meridian, determine the abnormality level of the cold / heat dimension and the deficiency / excess dimension of the right meridian, respectively.

[0062] Step 202a2: Based on the comparison of the cold and heat values ​​of the primary acupoints of the left and right meridians, determine the abnormal level of the cold and heat imbalance dimension, and based on the comparison of the deficiency and excess values ​​of the primary acupoints of the left and right meridians, determine the abnormal level of the deficiency and excess imbalance dimension.

[0063] Step 202a3: Convert the anomaly levels of each dimension into corresponding dimension scores.

[0064] For example, in this embodiment of the application, weights can also be assigned to each dimension according to the screening rules (i.e.: contrast > imbalance > virtual and real = cold and hot), and the weight allocation method is shown in Table 2 below: Table 2

[0065] Specifically, step 202b above may also include the following step 202b1: Step 202b1: Based on the preset screening rules, assign different weight coefficients to the four dimensions of cold and heat, deficiency and excess, imbalance of cold and heat, and imbalance of deficiency and excess, and determine the weight corresponding to each dimension of each meridian.

[0066] The filtering rules are used to characterize the weight of each dimension. The weights of the imbalance between hot and cold and the imbalance between virtual and real are the same, and both are greater than the weights of the hot and cold and virtual and real dimensions; the weights of the hot and cold dimension are the same as the weights of the virtual and real dimension.

[0067] For example, after calculating the scores and assigning the weights according to the contents shown in Tables 1 and 2 above, the meridian score for each meridian can be calculated.

[0068] Step 203: Calculate the meridian score for each meridian based on the scores and weights of each dimension corresponding to each meridian, and evaluate the health status corresponding to the target based on the meridian score of each meridian to obtain the evaluation result.

[0069] For example, in the embodiments of this application, each meridian can be scored using the following formula: Meridian score = ∑ (Left meridian deficiency / excess / cold / heat basic score × corresponding dimension weight) + ∑ (Right meridian deficiency / excess / cold / heat basic score × corresponding dimension weight) + ∑ (Deficiency / excess / cold / heat imbalance score × corresponding dimension weight).

[0070] Specifically, based on the above formula, step 203 may further include steps 203a1 to 203a4: Step 203a1: Calculate the first product of the left meridian virtual and real dimension score and the left meridian virtual and real dimension weight corresponding to the target meridian, and the second product of the left meridian cold and heat dimension score and the left meridian cold and heat dimension weight corresponding to the target meridian, and add the first product and the second product to obtain the first score value.

[0071] Step 203a2: Calculate the third product of the right meridian virtual and real dimension score and the right meridian virtual and real dimension weight corresponding to the target meridian, and the fourth product of the right meridian cold and heat dimension score and the right meridian cold and heat dimension weight corresponding to the target meridian, and add the third product and the fourth product to obtain the second score value.

[0072] Step 203a3: Calculate the fifth product of the virtual-real imbalance dimension score and the virtual-real imbalance dimension weight corresponding to the target meridian, and the sixth product of the cold-heat imbalance dimension score and the cold-heat imbalance dimension weight corresponding to the target meridian, and add the fifth product and the sixth product to obtain the third score value.

[0073] Step 203a4: Add the first score, the second score, and the third score to obtain the meridian score of the target meridian.

[0074] The target meridian is any one of the twelve meridians.

[0075] For example, after calculating the meridian score for each meridian, health status can be judged based on the meridian score.

[0076] Specifically, step 203 above may include steps 203a1 and 203a2: Step 203a1: Determine the meridian with the highest meridian score as the main meridian, and assign weights to other meridians other than the main meridian based on the exterior-interior relationship, the five elements mutual restraint relationship, the five elements mutual generation relationship, and the same name meridian relationship, so as to obtain the relationship weight of each of the other meridians.

[0077] Step 203a2: Based on the relationship weight and meridian score of each meridian in the other meridians, perform a weighted calculation on each meridian in the other meridians to obtain the weighted score of each meridian in the other meridians, and determine the meridian with the highest weighted score as the secondary meridian.

[0078] Among them, the weight of the relationship between the inner and outer parts is greater than the weight of the relationship between the two parts; the weight of the relationship between the two parts is the same as the weight of the relationship between the same name and is the lowest.

[0079] For example, based on the meridian score of each meridian, the most important meridians affecting the body (the meridians with the highest scores) can be identified. Then, according to the selection rules (internal-external relationship > mutual restraint relationship > mutual generation relationship = same-name relationship), the other meridians are weighted according to the method shown in Table 3 below: Table 3

[0080] Then, based on their relationship with the main meridian, the secondary meridians are identified by weighted calculation and reordering according to their scores.

[0081] For example, the main meridians are identified through scoring, and the theories of the Five Elements and Yin-Yang are weighted and calculated to find the secondary meridians that affect the health status of the main meridians, providing data support for the development of meridian health plans.

[0082] For example, in the embodiments of this application, the meridian-related relationships can be represented by the following Table 4: Table 4

[0083] Alternatively, in this embodiment of the application, the user's health status can also be determined directly through meridian scores.

[0084] Specifically, step 203 above may also include the following steps 203b1 and 203b2: Step 203b1: Add up the meridian scores of each meridian to obtain the total meridian score.

[0085] Step 203b2: Determine the health status of the target object based on the health level corresponding to the total meridian score.

[0086] For example, the overall meridian score = ∑ meridian score; the overall score is divided into 5 levels based on the overall meridian score in 20% increments, with level 1 being the highest and level 5 the lowest. A comprehensive evaluation is then conducted.

[0087] It should be noted that the state of acupoints (Yuan-Qiu) – whether they are deficient or excessive, cold or hot – can reflect the health status of an individual point. However, existing technical solutions, while capable of assessing the state of the meridians from dimensions such as deficiency, excess, cold, heat, and balance, cannot evaluate the overall health status. The meridian health status assessment method based on Yuan-Qiu detection data provided in this application's embodiments enables a systematic assessment from the state of Yuan-Qiu to the overall health status of the meridian system, providing a basis for health assessment and guidance. Furthermore, by using numerical weighting, it quantifies traditional Five Elements and Yin-Yang theories, offering a new approach to combining traditional cultural theories with modern technological applications.

[0088] The meridian health status assessment method based on acupoint detection data provided in this application first collects impedance data of the twelve meridian acupoints of the target object, and calculates the corresponding assessment parameters for each meridian acupoint based on the impedance data of each meridian acupoint. The assessment parameters include at least: deficiency / excess value and cold / heat value. Then, based on the assessment parameters of each acupoint, multi-dimensional calculations are performed on each meridian to obtain the scores and weights of each dimension for each meridian. Finally, based on the scores and weights of each dimension for each meridian, a meridian score is calculated for each meridian, and the health status of the target is assessed based on the meridian score of each meridian to obtain the assessment result. In this way, by performing multi-dimensional analysis and calculation on the collected data and assessing the user's meridian status, the user's needs for daily meridian health monitoring and assessment can be met to a certain extent.

[0089] It should be noted that the meridian health status assessment method based on acupoint detection data provided in this application can be executed by a meridian health status assessment device based on acupoint detection data, or by a control module within that device for executing the meridian health status assessment method based on acupoint detection data. This application uses the example of a meridian health status assessment device based on acupoint detection data executing the meridian health status assessment method based on acupoint detection data to illustrate the meridian health status assessment device based on acupoint detection data provided in this application.

[0090] It should be noted that, in the embodiments of this application, the meridian health status assessment methods based on acupoint detection data are illustrated in the accompanying drawings of each method. These methods are exemplified by using one accompanying drawing from one of the embodiments of this application as an example. In specific implementations, the meridian health status assessment methods based on acupoint detection data illustrated in the accompanying drawings of each method can also be implemented in conjunction with any other accompanying drawings shown in the above embodiments, which will not be elaborated further here.

[0091] The meridian health status assessment device based on acupoint detection data provided in this application is described below. The meridian health status assessment method based on acupoint detection data described below can be referred to in correspondence with the method described above.

[0092] Figure 3 This is a schematic diagram of the structure of the meridian health status assessment device based on acupoint detection data provided in the embodiments of this application, as shown below. Figure 3 As shown, it specifically includes: The acquisition module 301 is used to collect impedance data of the twelve meridian acupoints of the target object; the calculation module 302 is used to calculate the evaluation parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint; the evaluation parameters include at least: the value of deficiency and excess and the value of cold and heat; the calculation module 302 is also used to perform multi-dimensional calculations on each meridian based on the evaluation parameters of each acupoint to obtain the scores and weights of each dimension for each meridian; the calculation module 302 is also used to calculate the meridian score of each meridian based on the scores and weights of each dimension for each meridian; the evaluation module 303 is used to evaluate the health status of the target based on the meridian score of each meridian to obtain the evaluation result.

[0093] Optionally, the acquisition module 301 is specifically used to acquire the voltage and current values ​​corresponding to the target acupoint at the target time point; the calculation module 302 is specifically used to use the ratio of the acquired voltage value to the current value as the virtual and real value of the target acupoint; wherein, the target acupoint is any one of the twelve meridian acupoints; the target time point is the time point corresponding to the preset time after the meridian detection device starts measuring.

[0094] Optionally, the acquisition module 301 is specifically used to acquire the voltage-time relationship curve of the target acupoint from the start of measurement to the target time point; the calculation module 302 is specifically used to take the slope of the voltage-time relationship curve at the target time point as the cold or heat value of the target acupoint; wherein, the target acupoint is any one of the twelve meridian acupoints; the target time point is the time point corresponding to the preset time after the start of measurement using the meridian detection device.

[0095] Optionally, the calculation module 302 is specifically used to divide each meridian into four dimensions: cold and heat, deficiency and excess, imbalance of cold and heat, and imbalance of deficiency and excess, and to determine the abnormality level corresponding to each dimension of each meridian based on the values ​​of various evaluation parameters corresponding to each acupoint; the calculation module 302 is also specifically used to calculate the dimension score corresponding to each dimension of each meridian based on the abnormality level corresponding to each dimension of each meridian, according to the score corresponding to different abnormality levels.

[0096] Optionally, the calculation module 302 is specifically used to determine the abnormality level of the cold-heat dimension and the deficiency-excess dimension of the left meridian for each meridian, based on the cold-heat value and deficiency-excess value of the left meridian's original acupoints, and to determine the abnormality level of the cold-heat dimension and the deficiency-excess dimension of the right meridian, based on the cold-heat value and deficiency-excess value of the right meridian's original acupoints; the calculation module 302 is also specifically used to determine the abnormality level of the cold-heat imbalance dimension based on the comparison result of the cold-heat values ​​of the left and right meridian's original acupoints, and to determine the abnormality level of the deficiency-excess imbalance dimension based on the comparison result of the deficiency-excess values ​​of the left and right meridian's original acupoints; the calculation module 302 is also specifically used to convert the abnormality level of each dimension into the corresponding dimension score.

[0097] Optionally, the calculation module 302 is specifically used to assign different weight coefficients to the four dimensions of cold and heat, deficiency and excess, cold and heat imbalance, and deficiency and excess imbalance based on preset screening rules, and to determine the weight corresponding to each dimension of each meridian; wherein, the screening rules are used to characterize the weight between each dimension.

[0098] Optionally, the calculation module 302 is specifically used to calculate the first product of the left meridian's solid / empty dimension score and the left meridian's solid / empty dimension weight corresponding to the target meridian, and the second product of the left meridian's cold / heat dimension score and the left meridian's cold / heat dimension weight corresponding to the target meridian, and add the first product and the second product to obtain the first score value; the calculation module 302 is also specifically used to calculate the third product of the right meridian's solid / empty dimension score and the right meridian's solid / empty dimension weight corresponding to the target meridian, and the fourth product of the right meridian's cold / heat dimension score and the right meridian's cold / heat dimension weight corresponding to the target meridian, and add the third product to the second product to obtain the first score value; The fourth product is added together to obtain the second score; the calculation module 302 is further used to calculate the fifth product of the virtual-real imbalance dimension score and the virtual-real imbalance dimension weight corresponding to the target meridian, and the sixth product of the cold-heat imbalance dimension score and the cold-heat imbalance dimension weight corresponding to the target meridian, and add the fifth product and the sixth product to obtain the third score; the calculation module 302 is further used to add the first score, the second score, and the third score to obtain the meridian score of the target meridian; wherein, the target meridian is any one of the twelve meridians.

[0099] Optionally, the evaluation module 303 is specifically used to determine the meridian with the highest meridian score as the primary meridian, and to assign weights to other meridians besides the primary meridian based on the exterior-interior relationship, the five-element mutual restraint relationship, the five-element mutual generation relationship, and the same-name meridian relationship among the meridians, thereby obtaining the relationship weight of each of the other meridians; the evaluation module 303 is also specifically used to perform a weighted calculation on each of the other meridians based on the relationship weight and meridian score of each of the other meridians, thereby obtaining the weighted score of each of the other meridians, and to determine the meridian with the highest weighted score as the secondary meridian.

[0100] Optionally, the calculation module 302 is further configured to add up the meridian scores of each meridian to obtain a total meridian score; the evaluation module 303 is specifically configured to determine the health status of the target object based on the health level corresponding to the total meridian score.

[0101] The meridian health status assessment device based on acupoint detection data provided in this application first collects impedance data of the twelve meridian acupoints of the target object, and calculates the assessment parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint. The assessment parameters include at least: deficiency / excess value and cold / heat value. Then, based on the assessment parameters of each acupoint, multi-dimensional calculations are performed on each meridian to obtain the scores and weights of each dimension for each meridian. Finally, based on the scores and weights of each dimension for each meridian, a meridian score is calculated for each meridian, and the health status of the target is assessed based on the meridian score of each meridian to obtain the assessment result. In this way, by performing multi-dimensional analysis and calculation on the collected data and assessing the user's meridian status, the user's needs for daily meridian health monitoring and assessment can be met to a certain extent.

[0102] Figure 4 An example is a schematic diagram of the physical structure of an electronic device, such as... Figure 4As shown, the electronic device may include: a processor 410, a communication interface 420, a memory 430, and a communication bus 440, wherein the processor 410, the communication interface 420, and the memory 430 communicate with each other through the communication bus 440. The processor 410 can call logical instructions in the memory 430 to execute a meridian health status assessment method based on acupoint detection data. The method includes: first, collecting impedance data of the twelve meridian acupoints of the target object, and calculating the assessment parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint; the assessment parameters include at least: virtual and real values ​​and cold and hot values; then, based on the assessment parameters of each acupoint, performing multi-dimensional calculations on each meridian to obtain the scores and weights of each dimension corresponding to each meridian; finally, based on the scores and weights of each dimension corresponding to each meridian, calculating the meridian score of each meridian, and assessing the health status of the target based on the meridian score of each meridian to obtain the assessment result. In this way, by performing multi-dimensional analysis and calculation on the collected data and evaluating the user's meridian status, the user's needs for daily meridian health monitoring and evaluation can be met to a certain extent.

[0103] Furthermore, the logical instructions in the aforementioned memory 430 can be implemented as software functional units and, when sold or used as independent products, can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or a part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.

[0104] On the other hand, this application also provides a computer program product, which includes a computer program stored on a computer-readable storage medium. The computer program includes program instructions, and when the program instructions are executed by the computer, the computer can execute the meridian health status assessment method based on acupoint detection data provided by the above methods. This method includes: first, collecting impedance data of the twelve meridian acupoints of the target object, and calculating the assessment parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint; the assessment parameters include at least: a value of emptiness / excess and a value of cold / heat; then, based on the assessment parameters of each acupoint, performing multi-dimensional calculations on each meridian to obtain the scores and weights of each dimension corresponding to each meridian; finally, based on the scores and weights of each dimension corresponding to each meridian, calculating the meridian score of each meridian, and assessing the health status of the target based on the meridian score of each meridian to obtain the assessment result. In this way, by performing multi-dimensional analysis and calculation on the collected data and assessing the user's meridian status, the user's needs for daily meridian health monitoring and assessment can be met to a certain extent.

[0105] Furthermore, this application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, performs the aforementioned meridian health status assessment methods based on acupoint detection data. This method includes: first, collecting impedance data of the twelve meridian acupoints of the target object, and calculating assessment parameters corresponding to each meridian acupoint based on the impedance data of each acupoint; the assessment parameters include at least: a value of emptiness / fullness and a value of cold / heat; then, based on the assessment parameters of each acupoint, performing multi-dimensional calculations on each meridian to obtain scores and weights for each dimension corresponding to each meridian; finally, calculating a meridian score for each meridian based on the scores and weights for each dimension, and assessing the health status of the target based on the meridian scores of each meridian to obtain an assessment result. Thus, by performing multi-dimensional analysis and calculations on the collected data and assessing the user's meridian status, the user's needs for daily meridian health monitoring and assessment can be met to a certain extent.

[0106] The device embodiments described above are merely illustrative. The units described as separate components may or may not be physically separate. 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 the modules can be selected to achieve the purpose of this embodiment according to actual needs. Those skilled in the art can understand and implement this without any creative effort.

[0107] Through the above description of the embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus necessary general-purpose hardware platforms, and of course, it can also be implemented by hardware. Based on this understanding, the above technical solutions, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product can be stored in a computer-readable storage medium, such as ROM / RAM, magnetic disk, optical disk, etc., and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) to execute the methods described in the various embodiments or some parts of the embodiments.

[0108] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application.

Claims

1. A method for assessing meridian health status based on acupoint detection data, characterized in that, include: The impedance data of the twelve meridian acupoints of the target object are collected, and the evaluation parameters corresponding to each meridian acupoint are calculated based on the impedance data of each meridian acupoint. The evaluation parameters include at least: virtual and real values ​​and cold and hot values; Based on the evaluation parameters of each acupoint, multi-dimensional calculations are performed on each meridian to obtain the scores and weights of each dimension for each meridian. Based on the scores and weights of each dimension corresponding to each meridian, a meridian score is calculated for each meridian, and the health status corresponding to the target is evaluated based on the meridian score of each meridian to obtain the evaluation result.

2. The method according to claim 1, characterized in that, The impedance data of the twelve meridian acupoints of the target object are collected, and the evaluation parameters corresponding to each meridian acupoint are calculated based on the impedance data of each meridian acupoint, including: Obtain the voltage and current values ​​corresponding to the target acupoint at the target time point; The ratio of the obtained voltage value to the current value is used as the virtual and real value of the target cavity. The target acupoint is any one of the twelve meridian acupoints; the target time point is the time point corresponding to the preset duration after the meridian detection device starts measuring.

3. The method according to claim 1, characterized in that, The impedance data of the twelve meridian acupoints of the target object are collected, and the evaluation parameters corresponding to each meridian acupoint are calculated based on the impedance data of each meridian acupoint, including: Obtain the voltage-time relationship curve of the target acupoint from the start of measurement to the target time point; The slope of the voltage-time relationship curve at the target time point is taken as the cold or heat value of the target acupoint. The target acupoint is any one of the twelve meridian acupoints; the target time point is the time point corresponding to the preset duration after the meridian detection device starts measuring.

4. The method according to claim 1, characterized in that, The evaluation parameters based on each acupoint are used to perform multi-dimensional calculations on each meridian to obtain scores for each meridian in each dimension, including: Each meridian is divided into four dimensions: cold and heat, deficiency and excess, imbalance of cold and heat, and imbalance of deficiency and excess. Based on the values ​​of various evaluation parameters corresponding to each acupoint, the abnormality level corresponding to each dimension of each meridian is determined. Based on the abnormality level corresponding to each dimension of each meridian, the dimension score corresponding to each dimension of each meridian is calculated according to the score corresponding to different abnormality levels.

5. The method according to claim 4, characterized in that, The abnormality level corresponding to each dimension of each meridian is determined based on the values ​​of various evaluation parameters corresponding to each acupoint, including: For each meridian, based on the cold / heat value and deficiency / excess value of the original acupoints of the left meridian, the abnormality level of the cold / heat dimension and the deficiency / excess dimension of the left meridian are determined respectively. Based on the cold / heat value and deficiency / excess value of the original acupoints of the right meridian, the abnormality level of the cold / heat dimension and the deficiency / excess dimension of the right meridian are determined respectively. Based on the comparison of the cold and heat values ​​of the primary acupoints of the left and right meridians, the abnormality level of the cold and heat imbalance dimension is determined, and based on the comparison of the deficiency and excess values ​​of the primary acupoints of the left and right meridians, the abnormality level of the deficiency and excess imbalance dimension is determined. Convert the anomaly level of each dimension into the corresponding dimension score.

6. The method according to claim 1, characterized in that, The evaluation parameters based on each acupoint are used to perform multi-dimensional calculations on each meridian to obtain the weights of each dimension corresponding to each meridian, including: Based on preset screening rules, different weight coefficients are assigned to the four dimensions of cold and heat, deficiency and excess, imbalance of cold and heat, and imbalance of deficiency and excess, to determine the weight corresponding to each dimension of each meridian. The filtering rules are used to characterize the weight of each dimension.

7. The method according to claim 6, characterized in that, The dimensions of imbalance between cold and heat and imbalance between emptiness and reality have the same weight, and both are greater than the weights of the dimensions of imbalance between cold and heat and imbalance between emptiness and reality; the weight of the dimension of imbalance between cold and heat is the same as the weight of the dimension of imbalance between emptiness and reality.

8. The method according to claim 1, characterized in that, The process of calculating a meridian score for each meridian based on the scores and weights of each dimension includes: Calculate the first product of the left meridian's solid / empty dimension score and the left meridian's solid / empty dimension weight corresponding to the target meridian, and the second product of the left meridian's cold / heat dimension score and the left meridian's cold / heat dimension weight corresponding to the target meridian. Then, add the first product and the second product to obtain the first score value. Calculate the third product of the right meridian's solid / empty dimension score and the right meridian's solid / empty dimension weight corresponding to the target meridian, and the fourth product of the right meridian's cold / heat dimension score and the right meridian's cold / heat dimension weight corresponding to the target meridian. Then, add the third product and the fourth product to obtain the second score value. Calculate the fifth product of the virtual-real imbalance dimension score and the virtual-real imbalance dimension weight corresponding to the target meridian, and the sixth product of the cold-heat imbalance dimension score and the cold-heat imbalance dimension weight corresponding to the target meridian, and add the fifth product and the sixth product to obtain the third score value. The meridian score of the target meridian is obtained by adding the first score, the second score, and the third score together. The target meridian is any one of the twelve meridians.

9. The method according to claim 1 or 8, characterized in that, The assessment of the health status corresponding to the target is based on the meridian score of each meridian, and the assessment results include: The meridian with the highest meridian score is identified as the primary meridian. Based on the exterior-interior relationship, the five elements mutual restraint relationship, the five elements mutual generation relationship, and the same-name meridian relationship between meridians, weights are assigned to other meridians besides the primary meridian to obtain the relationship weight of each of the other meridians. Based on the relationship weight and meridian score of each of the other meridians, a weighted calculation is performed on each of the other meridians to obtain a weighted score for each of the other meridians, and the meridian with the highest weighted score is determined as the secondary meridian.

10. The method according to claim 9, characterized in that, The weight of the relationship between the inner and outer parts is greater than that of the relationship between the two parts; the weight of the relationship between the two parts is the same as that of the relationship between the same name and is the lowest.

11. The method according to claim 1 or 8, characterized in that, The assessment of the health status corresponding to the target is based on the meridian score of each meridian, and the assessment results include: The total meridian score is obtained by adding up the scores of each meridian. The health status of the target individual is determined based on the health level corresponding to the total meridian score.

12. A meridian health status assessment device based on acupoint detection data, characterized in that, The device includes: The acquisition module is used to collect impedance data of the twelve meridian acupoints of the target object; The calculation module is used to calculate the evaluation parameters corresponding to each meridian acupoint based on the impedance data of each meridian acupoint; the evaluation parameters include at least: the deficiency / excess value and the cold / heat value; The calculation module is also used to perform multi-dimensional calculations on each meridian based on the evaluation parameters of each acupoint, so as to obtain the scores and weights of each dimension for each meridian. The calculation module is also used to calculate the meridian score of each meridian based on the scores and weights of each dimension corresponding to each meridian. The assessment module is used to evaluate the health status corresponding to the target based on the meridian score of each meridian, and obtain the assessment result.

13. An electronic device, characterized in that, The method includes a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor executes the program to implement the steps of the meridian health status assessment method based on acupoint detection data as described in any one of claims 1 to 11.

14. A computer-readable storage medium, characterized in that, It stores a computer program, which, when executed by a processor, implements the steps of the meridian health status assessment method based on acupoint detection data as described in any one of claims 1 to 11.