Method, system, medium and device for image processing in analyte detection

The image processing method using infrared and ultraviolet light segmentation and reference point selection addresses skin interference issues, improving the accuracy and stability of non-invasive analyte detection by accurately distinguishing blood vessels and non-vessel areas.

JP2026013379APending Publication Date: 2026-01-28SENSURA PTE LTD
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Patent Information

Application Number
JP2025115734
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-07-16
Filing Date
2025-07-09
Publication Date
2026-01-28

AI Technical Summary

Technical Problem

Existing non-invasive analyte detection methods, such as Raman spectroscopy, are inaccurate due to interference from skin stains and chemicals, while invasive methods like electrochemical reactions are less preferred, and existing image-based methods fail to accurately distinguish between areas with and without blood vessels, leading to inaccurate analyte detection results.

Method used

An image processing method using infrared and ultraviolet light to segment blood vessels and non-blood vessel areas, followed by selecting reference points and calculating an average grayscale value to remove interference, allowing for accurate analyte detection.

Benefits of technology

This method enhances the accuracy and stability of analyte detection by accurately locating blood vessels, reducing skin interference, and enabling non-invasive, low-cost, real-time detection of analytes like glucose without electrochemical reactions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The accuracy and stability of blood glucose detection are improved by accurately locating the blood vessel and eliminating the interference from the skin.SOLUTION: The method includes: acquiring a first image by irradiating and imaging a first region with infrared light; dividing the first image into different grayscale regions according to a grayscale distribution in the first image; selecting a grayscale region having a grayscale value satisfying a preset requirement as a candidate detection point region, and selecting a candidate reference point region from an edge of the candidate detection point region; acquiring a second image by irradiating and imaging the first region with ultraviolet light; selecting a plurality of image points having grayscale values satisfying a requirement as reference points from the candidate reference point region according to a grayscale value in the second image; and calculating a grayscale average value according to the reference points, and removing a reference point having a largest difference value between the grayscale value and the grayscale average value.SELECTED DRAWING: Figure 9
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Description

[Technical Field]

[0001] The present invention relates to the field of optical analysis, and in particular to image processing methods, systems, media and devices in analyte detection. [Background technology]

[0002] Fluorescence analysis refers to a method in which a specific substance is excited after being irradiated with ultraviolet light, and then undergoes a de-excitation process in which excited state molecules collide and emit light, generating a fluorescence emission signal that reflects the properties of the substance, which can be used for qualitative or quantitative analysis.

[0003] When collecting fluorescence spectrum data from the body surface, a problem arises in that stains or chemicals on the skin affect the fluorescence emission signal at the corresponding position in the image captured by capturing the fluorescence emission signal. If spectral data is collected by selecting such points, the final detection results will be inaccurate. Therefore, it is necessary to reduce the influence of these points as much as possible.

[0004] Therefore, the present application provides a method, system, medium and device for removing skin noise, which can accurately locate blood vessels and eliminate interference from the skin, thereby improving the accuracy and stability of blood glucose detection.

[0005] Patent document US20100065441A1 discloses an analyte monitoring system, device, and method in which a sensor is implanted subcutaneously in the human body and undergoes an electrochemical reaction with subcutaneous glucose to obtain glucose levels. The electrochemical method for such a solution targets the skin, not the blood vessels deep within the skin, eliminating the need to distinguish between the skin area and the area where blood vessels are located. However, the solution is invasive, and non-invasive detection is becoming a trend in technological development. Patent document US20160287147A1 discloses a non-invasive in-vivo measurement device using Raman spectroscopy to measure blood glucose levels in vivo. The advantage of such a solution is that it is more accurate than the electrochemical method of US20100065441A1, but the disadvantage is that it currently relies on a large and expensive laboratory-level Raman spectroscopy system for implementation.

[0006] Furthermore, Patent Document CN118078277A discloses a non-invasive blood glucose detection method based on hyperspectral data analysis to achieve non-invasive detection. The image collected during detection in this document is of a skin area, which includes venous blood vessels and areas without venous blood vessels, and the blood glucose content in the two areas is completely different. This solution does not disclose a method for removing areas without venous blood vessels in the image, so the detection result is inaccurate. Similarly, Patent Document CN108542402A also has a similar problem. Summary of the Invention [Problem to be solved by the invention]

[0007] SUMMARY OF THE INVENTION In view of the shortcomings of the prior art, it is an object of the present invention to provide an image processing method, system, medium and device for analyte detection. [Means for solving the problem]

[0008] The image processing method for analyte detection provided by the present invention comprises: a first imaging step of illuminating and imaging a first area on the skin with infrared light to obtain a first image of the imaging area; a segmentation step of segmenting the imaging region into different grayscale regions based on the grayscale distribution in the first image; a blood vessel positioning step of selecting a grayscale region having a grayscale value that satisfies a preset requirement as a region where a blood vessel is located; a skin positioning step of selecting a grayscale area having a grayscale value of the area where blood vessels are located that is within a preset deviation range from the edge of the area where blood vessels are located as an area where non-blood vessels are located; a second imaging step of illuminating and imaging the first area on the skin with ultraviolet light to obtain a second image of the imaging area; a selection step of selecting, as reference points, a plurality of image points whose grayscale values ​​satisfy a requirement from positions corresponding to regions where non-blood vessels are located, based on the grayscale values ​​of the second image; and a screening step of calculating an average grayscale value based on the selected reference points, removing the reference points with the largest difference between their grayscale values ​​and the average grayscale value, and retaining the remaining reference points.

[0009] Additionally, the first imaging step includes collecting a first image of the imaging area under illumination with infrared light in the wavelength range of 800 to 1000 nanometers.

[0010] Furthermore, the dividing step may include: setting a region in which the image grayscale value is equal to or less than a preset value as a first region based on a grayscale distribution of image points in the first image; In the blood vessel locating step, the first region is used as a region where a blood vessel is located.

[0011] Additionally, the second imaging step includes collecting a second image of the imaging area under ultraviolet illumination in the wavelength range of 300 to 390 nanometers. Furthermore, the selection step includes selecting, based on the grayscale value of the image point in the second image, an image point having a grayscale value of the selected detection point that is within a predetermined deviation range from a position corresponding to an area where a non-blood vessel is located, as a reference point, or selecting, as a reference point, a combination of the image point and multiple adjacent image points.

[0012] Further, the first imaging step includes collecting a first image of the imaging area under illumination with infrared light in a wavelength range of 800 to 1000 nanometers; The dividing step includes setting a region in which an image grayscale value is equal to or less than a predetermined value as a first region based on a grayscale distribution of image points in the first image; the step of locating the blood vessel includes using the first region as a region in which the blood vessel is located; the second imaging step includes collecting a second image of the imaging area under ultraviolet illumination in a wavelength range of 300 to 390 nanometers; The selection step includes selecting, based on the grayscale values ​​of the image points in the second image, an image point having a grayscale value of the selected detection point that is within a predetermined deviation range from a position corresponding to an area where non-blood vessels are located, as a reference point, or selecting, as a reference point, a combination of the image point and multiple adjacent image points.

[0013] The analyte detection method provided by the present invention includes the image processing method for analyte detection described above.

[0014] The image processing system for analyte detection provided by the present invention comprises: a first imaging module that irradiates a first area on the skin with infrared light and captures an image of the first area to obtain a first image of the imaging area; a segmentation module for segmenting the image area into different grayscale areas based on the grayscale distribution in the first image; a blood vessel positioning module for selecting a grayscale region having a grayscale value that satisfies a preset requirement as a region where a blood vessel is located; a skin positioning module for selecting a grayscale region having a grayscale value of the region where the blood vessel is located within a preset deviation range from the edge of the region where the blood vessel is located as a region where the non-blood vessel is located; a second imaging module that illuminates and images a first area on the skin with ultraviolet light to obtain a second image of the imaging area; a selection module for selecting, as reference points, a plurality of image points whose grayscale values ​​satisfy a requirement from positions corresponding to regions where non-blood vessels are located, based on the grayscale values ​​of the second image; and a screening module for calculating a grayscale average value based on the selected reference points, removing the reference points with the largest difference between their grayscale values ​​and the grayscale average value, and retaining the remaining reference points.

[0015] Further, the first imaging module includes collecting a first image of an imaging area under irradiation with infrared light within a wavelength range of 800 to 1000 nanometers.

[0016] Furthermore, the division module setting a region in which the image grayscale value is equal to or less than a preset value as a first region based on a grayscale distribution of image points in the first image; The blood vessel locating module: uses the first region as a region where a blood vessel is located.

[0017] Further, the second imaging module includes collecting a second image of the imaging area under ultraviolet illumination in a wavelength range of 300 to 390 nanometers.

[0018] Further, the selection module includes selecting, based on the grayscale values ​​of the image points in the second image, an image point having a grayscale value of the selected detection point within a predetermined deviation range from a position corresponding to an area where a non-blood vessel is located, as a reference point, or selecting a combination of the image point and multiple adjacent image points as a reference point.

[0019] Further, the first imaging module includes collecting a first image of the imaging area under irradiation with infrared light within a wavelength range of 800 to 1000 nanometers; The segmentation module includes setting a region where an image grayscale value is equal to or less than a preset value as a first region based on a grayscale distribution of image points in the first image; the blood vessel locating module includes using the first region as a region where a blood vessel is located; the second imaging module includes collecting a second image of the imaging area under ultraviolet illumination in a wavelength range of 300 to 390 nanometers; The selection module includes selecting, based on the grayscale values ​​of the image points in the second image, an image point having a grayscale value of the selected detection point that is within a predetermined deviation range from a position corresponding to an area where a non-blood vessel is located, as a reference point, or selecting, as a reference point, a combination of the image point and multiple adjacent image points.

[0020] The analyte detection system provided by the present invention includes the image processing system for analyte detection described above.

[0021] The present invention provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, realizes the steps of the image processing method for analyte detection described above.

[0022] The present invention provides an electronic device including a memory, a processor, and a computer program stored in the memory and executable on the processor, which, when executed by the processor, realizes the steps of the image processing method for analyte detection described above. [Effects of the Invention]

[0023] Compared with the prior art, the present invention has the following beneficial effects: 1. The image processing method, system, medium, and device for analyte detection provided by the present application can accurately locate blood vessels and reduce interference caused by factors such as skin stains, thereby improving the accuracy and stability of analyte detection. 2. Based on the image processing method, system, medium and device for analyte detection provided by this application, the position of blood vessels can be accurately located, the interference of skin can be eliminated, and fluorescence spectrum data can be collected in combination with ultraviolet light, thereby realizing non-invasive analyte detection. Therefore, taking the detection of glucose in the human body as an example, this technical solution does not require electrochemical reaction with blood glucose levels, and the detection method is simpler, thereby achieving the goal of non-invasive detection. 3. The present application utilizes the characteristics of uneven distribution of the analyte in the imaging area to obtain spectral data in different areas, and since the distribution of other components other than the analyte in the imaging area is relatively uniform, the difference in spectral data in different areas directly reflects the information of the analyte, such as the concentration of the analyte, which is correlated with the spectral data that basically eliminates the influence of non-analytes, so the detection result is more accurate, and thus the reminder to the user is more accurate. 4. The present application avoids the traditional method of using Raman to measure analytes, and instead uses fluorescence spectroscopy for detection, thereby achieving low-cost and compact detection systems and achieving the purpose of real-time detection.

[0024] Other features, objects and advantages of the present invention will become more apparent through the detailed description given below, given by way of non-limiting example with reference to the drawings in which: [Brief explanation of the drawings]

[0025] [Figure 1] 1 is a flowchart of the first embodiment. [Figure 2] FIG. 1 is a schematic diagram of a first image collected in Example 2. [Figure 3] FIG. 10 is a schematic diagram of a second image collected in Example 2. [Figure 4] FIG. 10 is a diagram illustrating the principle of a detection model according to a second embodiment. [Figure 5] FIG. 1 is a schematic diagram of detection point-reference point spectrum data obtained in Example 2. [Figure 6] These are experimental results of the accuracy of the analytical results of the analytical model. [Figure 7] 1 is a structural schematic diagram of an analyte detection device provided by Example 5. FIG. [Figure 8] FIG. 1 is a structural schematic diagram of an electronic device provided by Example 6. [Figure 9] 10 is a flowchart of a second embodiment. [Figure 10] 1 is a structural schematic diagram of an analyte detection watch provided by Example 5. FIG. [Figure 11] FIG. 1 is a schematic diagram of the back of an analyte detection watch. [Figure 12] FIG. 1 is an exploded view of an analyte detection watch. [Figure 13] FIG. 1 is a schematic diagram of an analyte detection wristwatch in use. DETAILED DESCRIPTION OF THE INVENTION

[0026] The present invention will be described in detail below with reference to specific examples. The following examples will help those skilled in the art to further understand the present invention, but are not intended to limit the present invention in any way. It should be noted that those skilled in the art may make some modifications and improvements without departing from the concept of the present invention, all of which fall within the protection scope of the present invention.

[0027] Example 1 FIG. 1 is a flow chart of this embodiment, in which the method for detecting an analyte includes the following steps:

[0028] Imaging step: Irradiating a first region with light within a predetermined wavelength range through a light source, and imaging the first region through an imaging spectrum detector to obtain an image of the imaging region. By irradiating the first region with light within the predetermined wavelength range, distribution data and spectral data of the reflected or excited signals generated by the analyte when the light is irradiated in the imaging region can be reflected in the image. The first region may be a specific region on the surface of human skin. To prevent external light such as ambient light from affecting the detection, the collection window of the imaging spectrum detector must be tightly attached to the surface of the human skin in the first region. The imaging region refers to the region within the lens range of the imaging spectrum detector. Generally, the imaging region may be a part of the first region or the same region as the first region.

[0029] Since light rays with different wavelength ranges are required to obtain analyte distribution data and spectral data, two methods can be used: light rays with a wider wavelength range provided by one light source, or light rays with narrower wavelength ranges provided by two light sources. When one light source is used, the wavelength range of the light rays provided by the light source must simultaneously cover the wavelength range for obtaining analyte distribution data and the wavelength range for obtaining analyte spectral data. When two light sources are used, the two light sources provide different light rays, with the wavelength of one light ray covering the wavelength range for obtaining analyte distribution data and the wavelength of the other light ray covering the wavelength range for obtaining analyte spectral data. At the same time, when one light source is used, only one image is captured, and when two light sources are used, two images are captured. For ease of processing, the capturing areas of the two images must be the same, i.e., the collection window of the imaging spectrum detection device does not move on the surface of human skin.

[0030] In the present application, the analyte may be glucose, ketones, alcohol, lactate, oxygen, hemoglobin A1C, acetylcholine, amylase, bilirubin, cholesterol, chorionic gonadotropin, creatine kinase (e.g., CK-MB), creatine, creatinine, DNA, fructosamine, glutamine, growth hormone, hormones, peroxides, prostate-specific antigen, prothrombin, RNA, thyroid-stimulating hormone, or troponin in blood, or may be a drug such as an antibiotic (e.g., gentamicin, vancomycin, etc.), digitoxin, digoxin, a drug of abuse, theophylline, or warfarin. In embodiments where more than one analyte is detected, the analytes may be monitored at the same or different times. In other embodiments, the analyte may be any other substance within a body surface that can be noninvasively detected using the present invention.

[0031] Spectral acquisition step: Acquire spectral data from the image, which reflects the non-uniform distribution of reflected or excited signals generated by the object to be analyzed when the light beam is irradiated in the imaging region via the imaging spectral detection device. Specifically, the imaging region can be divided based on different distribution status data, and positions for acquiring spectral data from different sections can be selected.

[0032] Analysis stage: Based on the acquired spectral data, information about the analyte in the imaging area is acquired, including information about the analyte correlated with the spectral data. Because the distribution of the analyte in different sections is different, the reflected or excited signals generated by the analyte when irradiated with light also differ. Taking human skin as an example, it is divided into three parts: the epidermis, the dermis, and the subcutaneous tissue, and blood vessels such as veins are located in the subcutaneous tissue. UV light can be used to irradiate skin areas with blood vessels and skin areas without blood vessels to acquire corresponding spectral data, or to irradiate skin areas with thick blood vessels and skin areas with thin blood vessels to acquire corresponding spectral data. The difference between the two spectral data can reflect information about the analyte correlated with the spectral data in the blood vessels. Intermediate information, such as data about the degree of impact of the analyte on the spectral data, can be acquired for further analysis, or information such as the concentration of the analyte can be directly acquired through an analytical model.

[0033] Example 2 FIG. 9 is a flow chart of this embodiment, and the image processing method for analyte detection of this embodiment includes the following steps:

[0034] First imaging step: Irradiate and image a first area on the skin with infrared light to obtain a first image of the imaging area, specifically, collect the first image of the imaging area under irradiation with infrared light in a wavelength range of 800 to 1000 nanometers.

[0035] Segmentation step: based on the grayscale distribution in the first image, divide the imaging area into different grayscale areas. Specifically, in the first image, part of the infrared rays penetrates the skin of the human body, and part is absorbed by the skin of the human body. At the same time, even in the area where venous blood vessels are located, a large amount of infrared rays is absorbed by the venous blood vessels. Therefore, the image grayscale value of the area where venous blood vessels are located is small, and the image grayscale value of the area where non-venous blood vessels are located is large. Based on the grayscale distribution of image points in the first image, the area where the image grayscale value is equal to or less than a preset value is set as the first area. Vessel positioning step: A grayscale region having a grayscale value that meets a preset requirement is selected as the region where the blood vessel is located, specifically, the first region is used as the region where the blood vessel is located. Skin positioning step: selecting a grayscale area having a grayscale value of the area where blood vessels are located that is within a preset deviation range from the edge of the area where blood vessels are located as an area where non-blood vessels are located; Second imaging step: Irradiating and imaging the first area on the skin with ultraviolet light to obtain a second image of the imaging area, specifically, collecting the second image of the imaging area under ultraviolet light illumination in the wavelength range of 300 to 390 nanometers.

[0036] A selection step: based on the grayscale values ​​of the second image, select a plurality of image points as reference points whose grayscale values ​​satisfy a requirement from positions corresponding to regions where non-blood vessels are located; Specifically, based on the grayscale value of the image point in the second image, an image point having a grayscale value of the selected detection point within a predetermined deviation range from a position corresponding to an area where non-blood vessels are located is selected as a reference point, or a combination of the image point and multiple adjacent image points is selected as a reference point.

[0037] Screening step: calculate the grayscale average value based on the selected reference points, remove the reference points with the largest difference between their grayscale values ​​and the grayscale average value, and keep the remaining reference points.

[0038] Example 3 This embodiment is based on the first embodiment and takes glucose detection in human blood vessels as an example to provide a non-invasive glucose detection method, which includes the following steps:

[0039] Imaging step: Irradiate the skin where veins are located on the wrist, back of the hand, etc. with infrared light in a first wavelength range of 800 to 1000 nanometers, preferably in the near-infrared band, to capture a first image of the imaging area, and then irradiate the same location with ultraviolet light in a second wavelength range of 300 to 390 nanometers to capture a second image of the imaging area.

[0040] 2, where the horizontal axis is the horizontal coordinate of the first image, the vertical axis is the vertical coordinate of the first image, the white box represents the pixel point block of the detection point selected on the venous blood vessel, and the black box represents the pixel point block of the reference point selected on the surrounding skin. In the first image, some of the infrared light penetrates the human skin, and some of it is absorbed by the human skin. At the same time, the area where the venous blood vessel is located is absorbed in large amounts by the venous blood vessel, so the grayscale value of the pixel in the area where the venous blood vessel is located is smaller, and the grayscale value of the pixel in the area where the non-venous blood vessel is located is larger, which makes it easy to divide the imaging area into the area where the venous blood vessel is located and the area where the non-venous blood vessel is located.

[0041] As shown in Figure 3, the horizontal axis represents the horizontal coordinate of the second image, the vertical axis represents the vertical coordinate of the second image, the white box represents the pixel point block of the detection point selected on the venous blood vessel, and the black box represents the pixel point block of the reference point selected on the surrounding skin. Because it is difficult to distinguish between venous and non-venous blood vessels in the second image, it is necessary to distinguish between them in the first image. The purpose of using excitation light in the second wavelength range of 300-390 nanometers is to obtain a high-quality effective fluorescence spectral signal. This is because the main response band of the imaging spectral detection device is between 400 and 800 nm. If the wavelength of the excitation light used is less than 300 nm, the main peak of the fluorescence spectrum of the excited fluorescence emission signal is located in the <400 nm band, making it difficult for the imaging spectral detection device to obtain a high-quality effective fluorescence spectral signal. If the wavelength of the excitation light used exceeds 390 nm, the excitation light itself will be visible light, and the spectral signal of the excitation light will be superimposed on the fluorescence spectral signal, making it difficult to extract an effective fluorescence spectral signal without interference from the excitation light. Glucose in venous blood vessels absorbs ultraviolet light in the wavelength range of 300-390 nanometers and then emits a fluorescent emission signal in the visible light band of 400-800 nm, which is within the effective response range of the imaging spectral detector. The characteristic spectral intensity of this fluorescent emission signal is positively correlated with the glucose concentration, resulting in higher fluorescence excitation efficiency.

[0042] Spectrum acquisition step: based on the grayscale distribution of the pixel points in the first image, divide the imaging area into an area where venous blood vessels are located and an area where non-venous blood vessels are located, select a detection point from the position of the area where venous blood vessels are located corresponding to the second image, select a reference point from the position of the area where non-venous blood vessels are located corresponding to the second image, and respectively obtain the spectral data of the detection point and the spectral data of the reference point in the second image. Specifically, based on the grayscale values ​​of the pixel points in the second image, select one pixel point having a grayscale value that meets a predetermined requirement as the detection point from the area where venous blood vessels are located, or select a combination of this pixel point and adjacent pixel points as the detection point, and select one pixel point having a grayscale value within a predetermined deviation range from the area where non-venous blood vessels are located as the reference point, or select a combination of this pixel point and multiple adjacent pixel points as the reference point, and calculate and obtain the fluorescence spectral data of the detection point and the fluorescence spectral data of the reference point in the second image. The spectral data can be selected from a single pixel point of the detection point, the reference point, or an average of a combination of multiple pixel points, and can be appropriately selected based on the width of the blood vessel. Averaging a combination of multiple pixel points improves the signal-to-noise ratio but is limited by the width of the blood vessel and avoids acquiring data from areas outside the blood vessel. Selecting a single pixel point provides high spatial resolution and is suitable for situations with thin blood vessels, but has a lower signal-to-noise ratio. As a preset requirement for grayscale values, it is possible to use the point with the smallest grayscale value as the detection point, but this application is not limited to this. The calculation results are shown in Figure 5, where the horizontal axis is wavelength (unit: nm) and the vertical axis is relative radiance (unit: W / nm). The solid line represents the spectral data of the detection point, and the dotted line represents the spectral data of the reference point.Here, the reason why the grayscale value of the reference point and the grayscale value of the selected detection point are within the predetermined deviation range is that the skin in the imaging area has influencing factors such as skin color, blemishes, and cosmetics, which may directly affect the spectral data of the reference point. However, the first image does not distinguish the areas of these influencing factors, so by setting a predetermined deviation range of the grayscale value, these influencing factors can be effectively excluded. Furthermore, because the grayscale value and the grayscale value of the selected detection point are within the predetermined deviation range, it is guaranteed that a reference point close to the detection point, such as the edge of a venous blood vessel, will be selected. This ensures that, excluding the blood vessels, the parameters of the remaining epidermis, dermis, and subcutaneous tissue, such as color and thickness, are closest. This makes it possible to exclude as much as possible the influence of non-analyte objects due to the deviation between the spectral data of the detection point and the spectral data of the reference point.

[0043] In addition to the spectral reconstruction algorithm, the method of obtaining the spectral data is to form the radiation calibration coefficient through the radiation calibration, and calculate the grayscale value * radiation calibration coefficient to obtain the spectral line.

[0044] When a combination of multiple pixel points is selected from the detection point, the fluorescence spectrum data of the detection point can be the average value of the fluorescence spectrum data of these pixel points. At the same time, the number of detection points and reference points can be one or more. When the number of detection points and reference points is multiple, the average value of the fluorescence spectrum data of all the detection points and the average value of the fluorescence spectrum data of all the reference points can be calculated respectively.

[0045] Analysis stage: The acquired spectral data of the detection points and reference points is preprocessed and then input into a trained detection model, which outputs the glucose concentration or an intermediate result showing the correlation between glucose and the spectral data. When training the detection model, it is necessary to simultaneously acquire the subject's spectral data and accurate test results such as blood test results, and use the spectral data as the input of the detection model and the blood test results as the output of the detection model to train the detection model.

[0046] The detection model may employ a convolutional neural network model, which sequentially includes an input layer, at least two convolutional layers, at least two activation function layers, a flattened layer, a fully connected layer, and an output layer, where the convolutional layers and the activation function layers are spaced apart, and the activation function used in the activation function layer is a Relu function.

[0047] Here, the size of the convolution kernel of each layer in the convolutional neural network model is 1, the number of convolution kernels in the first convolutional layer is 32, and the number of convolution kernels in the second layer is 64. Both are used to extract blood glucose features and nonlinearly transform the output of the convolutional layer through an activation function. The Flatten layer flattens the output of the convolutional layer into a one-dimensional vector to facilitate connection to the subsequent fully connected layer, and the final output dimension is 1. In the model training process, the Adam optimizer is used to train the model, and the mean squared error is used as the loss function, and the mean absolute error is simultaneously calculated as the performance indicator for model evaluation.

[0048] If the output result of the detection model is a glucose concentration, the training for obtaining the detection model is stopped when the error between the output result and the measured standard glucose concentration value satisfies a preset condition. If the output result of the detection model is an intermediate result correlating glucose with spectral data, such as an intermediate neuron result, the training for obtaining the detection model is stopped when the error between the output result and the intermediate neuron result satisfies a preset condition. The intermediate neuron result is further processed by model correction to obtain the glucose concentration.

[0049] As shown in Figure 4, the input layer is a spectral data input layer obtained by preprocessing the original spectral data. The hidden layer is an intermediate hidden layer that uses deep learning convolutional operations to combine features and output the final predicted blood glucose concentration value as an output layer. Deep learning convolutional operations can also output one neuron, Output1, as an intermediate result after combining features. The intermediate result, Output1, and the two infrared IR feature intensity values ​​are then used for further model training to further correct the blood glucose prediction error and output the final predicted blood glucose concentration value, Output2. The degree of training of the detection model can be determined by setting different parameters as needed. The extracted glucose feature values ​​are continuously trained according to different parameter settings. When the error between the output result and the standard glucose value of the above label value meets the requirements, the training for obtaining the detection model is stopped.

[0050] Through multiple repeated training, the neurons can learn the corresponding change rules between different glucose concentrations and glucose spectrum features of different samplers, thereby improving the generality of the detection model and achieving the goal of predicting the glucose concentrations of different users.

[0051] The entire glucose detection process does not require blood sampling or skin puncture or skin implantation, but rather obtains the subject's spectral information based on the fluorescence spectrum, and then obtains the subject's glucose detection result based on the spectral information, thereby avoiding pain and discomfort and improving the discomfort and convenience of detection. This method allows for detailed distinction between the spectral signals at the blood vessel site and the skin site, allowing for accurate extraction of the subsequent glucose signal, and at the same time, the intensity of the spectral signal and the glucose concentration are closely correlated, achieving accurate measurement of glucose concentration, more accurate detection results, and more convenient processing.

[0052] Figure 6 shows a schematic diagram of the experimental results of the trained detection model. The horizontal axis represents the reference blood glucose concentration (unit: mmol / L) collected by the blood glucose meter, and the vertical axis represents the blood glucose concentration (unit: mmol / L) predicted by the patented method. The total number of samples collected by the subjects was 2,037, of which 1,537 samples were in the training set and 500 samples were in the prediction set. The figure shows the distribution of the detection results of the detection model. The MARD value of the predicted samples was 11.32%, and they were classified into region A and region B. The samples in region A accounted for 87.03%, and the samples in region B accounted for 12.77%, indicating that the detection accuracy of the detection model is relatively high.

[0053] Example 4 This example builds on Example 3, replaces infrared light with visible light, and provides another non-invasive glucose detection method, including the following steps:

[0054] Imaging step: Visible light is irradiated onto the skin where veins are located, such as on the wrist or back of the hand, to capture a first image of the imaging area, and ultraviolet light within a second wavelength range of 300 to 390 nanometers is irradiated onto the same location to capture a second image of the imaging area.

[0055] In the first image, the color of the area where venous blood vessels are located is different from the color of the area where non-venous blood vessels are located, so the imaged area can be easily divided into areas where venous blood vessels are located and areas where non-venous blood vessels are located.

[0056] Because it is difficult to distinguish between venous and non-venous blood vessels in the second image, it is necessary to distinguish between the first and second images. The purpose of using excitation light in the second wavelength range of 300-390 nanometers is to obtain a high-quality effective fluorescence spectral signal. This is because the main response band of the imaging spectral detection device is 400-800 nm. If the wavelength of the excitation light used is less than 300 nm, the main peak of the fluorescence spectrum of the excited fluorescence emission signal is located in the <400 nm band, making it difficult for the imaging spectral detection device to obtain a high-quality effective fluorescence spectral signal. If the wavelength of the excitation light used is greater than 390 nm, the excitation light itself is visible light, and the spectral signal of the excitation light is superimposed on the fluorescence spectral signal, making it difficult to extract the effective fluorescence spectral signal without interference from the spectral signal of the excitation light. Glucose in the venous blood vessels absorbs ultraviolet light in the wavelength range of 300 to 390 nanometers, and then emits fluorescent radiation signals in the visible light band of 400 to 800 nm, which is located within the effective response range of the imaging spectrum detection device. The characteristic spectral intensity of the fluorescent radiation signals is positively correlated with the glucose concentration and has higher fluorescence excitation efficiency.

[0057] Spectrum acquisition step: based on the grayscale distribution of the pixel points in the first image, divide the imaging area into an area where venous blood vessels are located and an area where non-venous blood vessels are located, select a detection point from the area where venous blood vessels are located and a reference point from the area where non-venous blood vessels are located, and obtain the spectral data of the detection point and the spectral data of the reference point, respectively. Specifically, based on the grayscale values ​​of the pixel points in the second image, select one pixel point having a grayscale value that meets a predetermined requirement from the area where venous blood vessels are located, or select a combination of this pixel point and its adjacent pixel points as the detection point, and select one pixel point from the area where non-venous blood vessels is located, whose grayscale value of the selected detection point is within a predetermined deviation range, or select a combination of this pixel point and multiple adjacent pixel points as reference points, and calculate and obtain the fluorescence spectral data of the detection point and the fluorescence spectral data of the reference point. Here, the reason why the grayscale value of the reference point and the grayscale value of the selected detection point are within a preset deviation range is that the skin in the imaging area has influencing factors such as skin color, blemishes, cosmetics, etc., which may directly affect the spectral data of the reference point. However, in the first image, the areas of all influencing factors are not distinguished at the same time, and by setting a preset deviation range of the grayscale values, these influencing factors can be effectively excluded.

[0058] When a combination of multiple pixel points is selected from the detection point, the fluorescence spectrum data of the detection point can be the average value of the fluorescence spectrum data of these pixel points. At the same time, the number of detection points and reference points can be one or more. When the number of detection points and reference points is multiple, the average value of the fluorescence spectrum data of all the detection points and the average value of the fluorescence spectrum data of all the reference points can be calculated respectively.

[0059] Analysis stage: The acquired spectral data of the detection point and reference point are preprocessed and then input into a trained detection model to output the glucose concentration. When training the detection model, it is necessary to simultaneously acquire the subject's spectral data and accurate test results such as blood test results, use the spectral data as the input of the detection model, and use the blood test results as the output of the detection model to train the detection model.

[0060] The detection model may employ a convolutional neural network model, which sequentially includes an input layer, at least two convolutional layers, at least two activation function layers, a flattened layer, a fully connected layer, and an output layer, where the convolutional layers and the activation function layers are spaced apart, and the activation function used in the activation function layer is a Relu function.

[0061] Here, the size of the convolution kernel of each layer in the convolutional neural network model is 1, the number of convolution kernels in the first convolutional layer is 32, and the number of convolution kernels in the second layer is 64. Both are used to extract blood glucose features and nonlinearly transform the output of the convolutional layer through an activation function. The Flatten layer flattens the output of the convolutional layer into a one-dimensional vector to facilitate connection to the subsequent fully connected layer, and the final output dimension is 1. In the model training process, the Adam optimizer is used to train the model, and the mean squared error is used as the loss function, and the mean absolute error is simultaneously calculated as the performance indicator for model evaluation.

[0062] When the error between the output result of the detection model and the standard glucose value satisfies a preset condition, the training for obtaining the detection model is stopped.

[0063] The degree of training of the detection model needs to set different parameters as needed, and the extracted multiple glucose feature values ​​are continuously learned according to different parameter settings. When the error between the output result and the standard glucose value of the above label value meets the requirement, the training to obtain the detection model is stopped.

[0064] Through multiple repeated training, the neurons can learn the corresponding change rules between different glucose concentrations and glucose spectrum features of different samplers, thereby improving the generality of the detection model and achieving the goal of predicting the glucose concentrations of different users.

[0065] The entire glucose detection process does not require blood sampling or skin puncture, but rather obtains the subject's spectral information based on the fluorescence spectrum, and then obtains the subject's glucose detection result based on the spectral information, thereby avoiding pain and discomfort and improving the discomfort and convenience of detection. This method can finely distinguish the spectral signals from the blood vessel site and the skin site, allowing the subsequent glucose signal to be accurately extracted, and at the same time, the intensity of the spectral signal and the glucose concentration are closely correlated, achieving accurate measurement of the glucose concentration, more accurate detection results, and more convenient processing.

[0066] Example 5 This embodiment provides an analyte detection system, which can be realized by performing the process steps of the analyte detection method, i.e., those skilled in the art can understand the analyte detection method as a preferred embodiment of the analyte detection system. The analyte detection system includes:

[0067] The imaging module includes a light source that provides light within a predetermined wavelength range to illuminate a first region, and an imaging spectrum detector that captures the first region to obtain an image of the imaging region. By irradiating the imaging region with light within the predetermined wavelength range, the image can reflect distribution data and spectral data of the reflected or excited signals generated by the analyte when the light is irradiated in the imaging region. Because different wavelength ranges are required to obtain distribution data and spectral data of the analyte, the light may be light of two corresponding wavelength ranges, or one wavelength range may be wider and cover the two required wavelength ranges. When two types of light are used, two images are obtained, and for ease of processing, the imaging regions of the two images typically need to be the same.

[0068] In the present application, the analyte may be glucose, ketones, alcohol, lactate, oxygen, hemoglobin A1C, acetylcholine, amylase, bilirubin, cholesterol, chorionic gonadotropin, creatine kinase (e.g., CK-MB), creatine, creatinine, DNA, fructosamine, glutamine, growth hormone, hormones, peroxide, prostate-specific antigen, prothrombin, RNA, thyroid-stimulating hormone, troponin, or drugs such as antibiotics (e.g., gentamicin, vancomycin, etc.), digitoxin, digoxin, drugs of abuse, theophylline, and warfarin in an animal's blood vessels. In embodiments where more than one analyte is detected, the analytes can be monitored at the same or different times. In other embodiments, the analyte may be other substances in the fluid.

[0069] Spectral acquisition module: Acquires spectral data from the image, which reflects the non-uniform distribution of reflected or excited signals generated by the object to be analyzed when the imaging area is irradiated with light via the imaging spectrum detection device. Specifically, the imaging area can be divided based on different distribution status data, and positions for acquiring spectral data from different sections can be selected.

[0070] Analysis module: Based on the acquired spectral data, the analysis module acquires information about the analyte in the imaging area, including information about the analyte correlated with the spectral data. Because the distribution of the analyte in different sections is different, the reflected or excited signals generated by the analyte when irradiated with light are also different. By utilizing this characteristic, the difference between the spectral data can be obtained, and the information about the analyte correlated with the spectral data, such as the concentration of the analyte, can be accurately reflected.

[0071] Example 6 This embodiment provides an image processing system for analyte detection, which can be realized by performing the process steps of the image processing method for analyte detection, i.e., those skilled in the art can understand the image processing method for analyte detection as a preferred embodiment of the image processing system for analyte detection. The image processing system for analyte detection includes the following modules:

[0072] First imaging module: Irradiates and images a first area on the skin with infrared light to obtain a first image of the imaging area, specifically, collects the first image of the imaging area under irradiation with infrared light within a wavelength range of 800 to 1000 nanometers.

[0073] a division module: divides the imaging region into different grayscale regions according to the grayscale distribution in the first image; specifically, in the first image, part of the infrared light passes through the skin of the human body, and part is absorbed by the skin of the human body; at the same time, even in the region where the venous blood vessels are located, a large amount of infrared light is absorbed by the venous blood vessels, so that the image grayscale value of the region where the venous blood vessels are located is small, and the image grayscale value of the region where the non-venous blood vessels are located is large; and based on the grayscale distribution of the image points in the first image, sets the region where the image grayscale value is equal to or less than a preset value as the first region; A blood vessel positioning module selects a grayscale region having a grayscale value that meets a preset requirement as a region where a blood vessel is located, and specifically, uses the first region as the region where a blood vessel is located.

[0074] Skin positioning module: selects a grayscale region having a grayscale value of the blood vessel region within a preset deviation range from the edge of the blood vessel region as a non-blood vessel region; Second imaging module: Irradiates and images a first area on the skin with ultraviolet light to obtain a second image of the imaging area, specifically, collects the second image of the imaging area under ultraviolet light irradiation in a wavelength range of 300 to 390 nanometers.

[0075] A selection module: based on the grayscale values ​​of the second image, selects a plurality of image points whose grayscale values ​​satisfy a requirement as reference points from positions corresponding to regions where non-blood vessels are located; Specifically, based on the grayscale value of the image point in the second image, an image point having a grayscale value of the selected detection point within a predetermined deviation range from a position corresponding to an area where non-blood vessels are located is selected as a reference point, or a combination of the image point and multiple adjacent image points is selected as a reference point.

[0076] Screening module: calculates the grayscale average value based on the selected reference points, removes the reference points with the largest difference between their grayscale values ​​and the grayscale average value, and keeps the remaining reference points.

[0077] Those skilled in the art will recognize that in addition to realizing the system provided by the present invention and its respective devices, modules, and units purely in the form of computer-readable program codes, the system provided by the present invention and its respective devices, modules, and units can also realize similar functions in the form of logic gates, switches, application-specific integrated circuits, programmable logic controllers, embedded microcontrollers, etc. by performing logic programming in method steps. Therefore, the system provided by the present invention and its various devices, modules, and units can be considered as hardware components, and the devices, modules, and units included therein that realize various functions can also be considered as structures within the hardware components, and the devices, modules, and units for realizing various functions can also be considered as both software modules for realizing methods or structures within the hardware components.

[0078] Example 7 Shown in Figure 7 is an electronic device of this embodiment, specifically an analyte detection device 200. The detection device 200 is a portable, non-invasive detection device for the human body, which can be used as a standalone detection device or integrated into a wristwatch or mobile phone, realizing convenient and rapid detection of analytes on the body surface.

[0079] The detection device 200 includes a light source 201, an imaging spectrum detector 202, a controller 203, a first bandpass filter 204, a second bandpass filter 206, and a lens 205. The controller 203 establishes an electrical or communication connection with the light source 201 and the imaging spectrum detector 202, respectively.

[0080] The light source 201 can provide light within a predetermined wavelength range. Since light of different wavelength ranges is required to obtain distribution data and spectral data of an analyte, two methods can be used: one light source that can provide light of a wider wavelength range, or two light sources that provide light of narrower wavelength ranges. When a single light source is used, the wavelength range of the light provided by the light source must simultaneously cover the wavelength range for obtaining distribution data of the analyte, such as a halogen lamp, and the wavelength range for obtaining spectral data of the analyte. When two light sources are used, the two light sources provide different light beams, with one light beam having a wavelength covering the wavelength range for obtaining distribution data of the analyte, and the other light beam having a wavelength covering the wavelength range for obtaining spectral data of the analyte, such as a combination of infrared and ultraviolet light, or a combination of visible light and ultraviolet light.

[0081] To uniformly illuminate the imaging area 100, a ring-shaped light source can be used, which has multiple light-emitting modules uniformly distributed on the same circumference. When there are two types of light sources, the light-emitting modules of the two types of light sources are arranged relative to each other.

[0082] The imaging spectral detector 202 can image the imaging region 100 to obtain a corresponding image upon command, and can also obtain corresponding spectral data upon command. The imaging spectral detector 202 includes a sensor and a periodic pixel-level optical filter structure disposed on a surface of the sensor. The periodic pixel-level optical filter structure is used to perform spectral modulation on an incident optical signal, thereby enabling the sensor to generate an image containing the spectral information of interest.

[0083] The periodic pixel-level optical filter structure includes a plurality of optical filter pixel channels having pixel-level structures of different shapes, each having the same specification and size, uniformly arranged, and each having a length and width that is an integer multiple of the pixel point size of the pixel sensor. The optical filter pixel channels of the pixel-level optical filter structures of different shapes correspond to different spectral wave filtering coefficients, and the pixel-level optical filter structures with different spectral wave filtering coefficients are periodically arranged after being combined in a fixed order. The sensor modulates the received first detected light through the periodic pixel-level optical filter structures arranged on its surface to form a mosaic image containing spectral information, and then uses an algorithm to reconstruct a grayscale image containing the test spectral information.

[0084] The controller 203 is configured to control the light source to provide light within a predetermined wavelength range to illuminate a first region, control the imaging spectrum detector to image the first region, and acquire an image of the imaging region. The controller 203 is configured to control the imaging spectrum detector to acquire spectral data from the image, the spectral data reflecting the non-uniform distribution of reflected or excited signals generated by the analyte when the light is irradiated in the imaging region. Based on the acquired spectral data, information about the analyte in the imaging region is acquired, where the information about the analyte correlates with the spectral data. When the light source 201 is one type, one image is acquired; when the light source 201 is two types, two images are acquired. When the first light source is turned on, the second light source is turned off; similarly, when the second light source is turned on, the first light source is turned off, so that the two light sources do not interfere with each other.

[0085] The first bandpass filter 204 is located between the light source 201 and the imaging area 100, and its function is to pass light within a predetermined wavelength range and block light outside the predetermined wavelength range, thereby reducing the influence of other external light on the detection results.

[0086] The second bandpass filter 206 is located between the imaging spectrum detector 202 and the lens 205, and its function is to pass light in the wavelength range in which the reflection signal or excitation signal generated by the analyte when irradiated with light is located, and to block light in other wavelength ranges, thereby reducing the influence of reflection signals or excitation signals other than those of the analyte on the detection results.

[0087] The lens 205 can be used for focusing to obtain a clear image. In another embodiment, the second bandpass filter 206 can be located on one side of the lens 205, away from the imaging spectrum detector 202, but the present invention is not limited thereto.

[0088] According to the above description, FIG. 10 shows a wristwatch for detecting an analyte provided by this embodiment. The front of the wristwatch is a display, and as shown in FIG. 11, the back of the wristwatch is a light-transmitting window with a built-in detection device 200. As shown in FIG. 12, the light source 201 and the first band-pass filter 204 are all annular structures. The light-emitting modules of the light source 201 are distributed in a ring shape, and the emitted light is optically filtered by the first band-pass filter 204 to output light of a required wavelength, which is then irradiated onto the human body through the light-transmitting window on the back of the wristwatch. The reflected signal or excitation signal from the human body enters the light-transmitting window, passes through the central hollow part of the light source 201 and the first band-pass filter 204, and enters the second band-pass filter 206 through the lens 205. After being optically filtered by the second band-pass filter 206, it enters the imaging spectrum detection device 202. The imaging spectrum detector 202 is mounted on a circuit board 207, and at the same time, a controller 203 (not shown) of the detector device 200 is also mounted on the circuit board 207. As shown in Figure 13, the watch can also be worn on the inside of the wrist to more accurately identify the location of the venous blood vessels.

[0089] Example 8 FIG. 8 is a structural schematic diagram of an electronic device provided by an embodiment of the present application, which includes at least one processor 501, as shown in FIG. 8, and a memory 502 communicatively connected to the at least one processor 501, wherein the memory 502 stores instructions executable by the at least one processor 501, the instructions are executed by the at least one processor 501, and the at least one processor 501 can perform the above-mentioned analyte detection method.

[0090] Here, the memory 502 and the processor 501 are connected in a bus manner, which may include any number of interconnected buses and bridges, connecting various circuits of one or more processors 501 and memories 502. The bus may also connect various other circuits, such as peripheral devices, voltage regulators, and power management circuits, which are well known in the art and will not be further described in the present invention. A bus interface provides an interface between the bus and a transceiver. The transceiver may be a single component or multiple components, for example, multiple receivers and transmitters, providing a unit for communicating with various other devices via a transmission medium. Data processed by the processor 501 is transmitted over a wireless medium via an antenna, which receives data and transmits data to the processor 501.

[0091] The processor 501 is responsible for bus management and general processing, and may also provide a variety of functions including timing, peripheral interfaces, voltage regulation, power management, and other control functions. The memory 502 may be used to store data used by the processor 501 when performing operations.

[0092] The present invention further provides a computer-readable storage medium having stored thereon a computer program, which, when executed by a processor, implements the above-described method for detecting an analyte.

[0093] That is, those skilled in the art will understand that all or some of the steps of implementing the methods of the above embodiments can be completed by instructing relevant hardware through a program, and the program can be stored in a storage medium containing some instructions that enable a device (which may be a single-chip microcomputer, chip, etc.) or processor to execute all or some of the steps of the methods described in each embodiment of the present application. The storage medium includes various media that can store program code, such as a U disk, a mobile hard disk, a read-only memory (ROM), a random access memory (RAM), a magnetic disk, or an optical disk.

[0094] Those skilled in the art will understand that the above embodiments are specific examples for realizing the present invention, and that in actual applications, various changes in form and details are possible without departing from the spirit and scope of the present invention.

[0095] The above describes specific examples of the present invention. The present invention is not limited to the above specific embodiments, and it should be understood that those skilled in the art can make various changes or modifications within the scope of the claims without affecting the essential content of the present invention. Unless inconsistent, the examples and features of the examples in this application can be combined with each other in any way. [Explanation of symbols]

[0096] 100: Imaging area 200:Detection device 201: Light source 202: Imaging spectrum detector 203: Controller 204: 1st bandpass filter 205: Lens 206: Second bandpass filter 207: Circuit board 501: Processor 502: Memory

Claims

1. 1. An image processing method for analyte detection, comprising: a first imaging step of irradiating a first area with infrared light and imaging the first area to obtain a first image of the imaging area; a segmentation step of segmenting the image area into different grayscale areas based on the grayscale distribution in the first image; a reference object positioning step of selecting a grayscale area having a grayscale value that satisfies a predetermined requirement as a detection point candidate area, and selecting a grayscale area having a grayscale value of the detection point candidate area that is within a predetermined deviation range from the edge of the detection point candidate area as a reference point candidate area; a second imaging step of illuminating and imaging the first area with ultraviolet light to obtain a second image of the imaging area; a selection step of selecting, based on the grayscale values ​​of the second image, a plurality of image points whose grayscale values ​​satisfy a requirement as reference points from the positions of the reference point candidate regions corresponding to the second image; a screening step of calculating a grayscale average value based on the selected reference points, removing the reference points whose grayscale value has the largest difference between the grayscale value and the grayscale average value, and retaining the remaining reference points.

2. The first imaging step includes collecting a first image of the imaging area under illumination with infrared light in a wavelength range of 800 to 1000 nanometers. The image processing method for detecting an analyte according to claim 1 .

3. The dividing step includes setting a region having an image grayscale value equal to or less than a predetermined value as a first region based on a grayscale distribution of image points in the first image; The step of locating the reference object uses the first region as a detection point candidate region. The image processing method for detecting an analyte according to claim 1 .

4. The second imaging step includes collecting a second image of the imaging area under ultraviolet illumination in the wavelength range of 300 to 390 nanometers. The image processing method for detecting an analyte according to claim 1 .

5. The selecting step includes selecting, as a reference point, an image point having a grayscale value of the selected detection point within a predetermined deviation range from a position corresponding to the reference point candidate region, based on the grayscale value of the image point in the second image, or selecting, as a reference point, a combination of the image point and a plurality of adjacent image points. The image processing method for detecting an analyte according to claim 1 .

6. 1. A method for detecting an analyte, comprising:

6. A method for detecting an analyte, comprising the image processing method for detecting an analyte according to claim 1.

7. 1. An image processing system for analyte detection, comprising: a first imaging module that irradiates a first area on the reference object with infrared light and captures an image of the first area to obtain a first image of the imaged area; a segmentation module for segmenting the image area into different grayscale areas based on the grayscale distribution in the first image; a reference object positioning module that selects a grayscale area having a grayscale value that satisfies a predetermined requirement as a detection point candidate area, and selects a grayscale area having a grayscale value of the detection point candidate area that is within a predetermined deviation range from the edge of the detection point candidate area as a reference point candidate area; a second imaging module that illuminates and images a first area on the reference object with ultraviolet light to obtain a second image of the imaging area; a selection module for selecting, as reference points, a plurality of image points whose grayscale values ​​satisfy a requirement from the positions of the reference point candidate regions corresponding to the second image, based on the grayscale values ​​of the second image; and a screening module that calculates a grayscale average value based on the selected reference points, removes the reference points whose grayscale value has the largest difference value between the grayscale value and the grayscale average value, and retains the remaining reference points.

8. The first imaging module includes collecting a first image of an imaging area under irradiation with infrared light in a wavelength range of 800 to 1000 nanometers.

8. An image processing system for analyte detection according to claim 7.

9. The segmentation module includes setting a region where an image grayscale value is equal to or less than a preset value as a first region based on a grayscale distribution of image points in the first image; The reference object positioning module uses the first region as a detection point candidate region.

8. An image processing system for analyte detection according to claim 7.

10. The second imaging module includes collecting a second image of the imaging area under ultraviolet illumination in a wavelength range of 300 to 390 nanometers.

8. An image processing system for analyte detection according to claim 7.

11. The selection module includes selecting, as a reference point, an image point having a grayscale value of the selected detection point within a predetermined deviation range from a position corresponding to a reference point candidate region, based on a grayscale value of the image point in the second image, or selecting, as a reference point, a combination of the image point and a plurality of adjacent image points.

8. An image processing system for analyte detection according to claim 7.

12. 1. An analyte detection system comprising: An analyte detection system, comprising the image processing system for analyte detection according to any one of claims 7 to 11.

13. A computer-readable storage medium having a computer program stored thereon, A computer-readable storage medium having stored thereon the computer program, characterized in that when the computer program is executed by a processor, the steps of the image processing method for analyte detection according to any one of claims 1 to 5 are realized.

14. 1. An electronic device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, An electronic device comprising the memory, a processor and a computer program stored in the memory and executable on the processor, characterized in that when the computer program is executed by the processor, the steps of the image processing method for analyte detection described in any one of claims 1 to 5 are realized.

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