Tissue component measurement method, device, and wearable device

By determining a measurement area and adjusting posture based on inherent features, the method and device stabilize measurement conditions, addressing reproducibility issues and enhancing the accuracy of tissue constituent measurements.

JP7745285B2Active Publication Date: 2025-09-29SUNRISE TECH
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Patent Information

Application Number
JP2023548641
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2021-02-11
Filing Date
2021-12-31
Publication Date
2025-09-29
Estimated Expiration
2041-12-31

AI Technical Summary

Technical Problem

Existing methods struggle to achieve reproducibility of measurement conditions for tissue components, particularly due to fluctuations in controllable measurement conditions and changes in measurement posture, leading to inaccuracies in tissue constituent measurements.

Method used

A method and device that determine a measurement area based on positioning features, ensuring reproducibility by adjusting the measurement posture to a target posture and placing a measurement probe at a corresponding position, using inherent features of the object being measured to stabilize the measurement conditions.

Benefits of technology

Enhances the reproducibility of measurement conditions, reducing positioning errors and improving the accuracy of tissue constituent measurements by maintaining consistent measurement posture and area positioning.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method, apparatus (1400) and wearable device (2700) for measuring tissue components are provided, the method including determining positioning features (S110), determining a measurement area based on the positioning features (S120), the measurement area being an area that satisfies a measurement repeatability condition, placing a measurement probe (1405) at a position corresponding to the measurement area (S130), and performing a tissue component measurement using the measurement probe (1405) (S140).
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Description

[Technical Field]

[0001] TECHNICAL FIELD Embodiments of the present disclosure relate to the technical field of spectral sensing, and more particularly to a method, apparatus, and wearable device for measuring tissue constituents. [Background technology]

[0002] The body fluids of the human body contain various tissue components, such as blood glucose, fat, and white blood cells, and as long as the concentration of each tissue component is within its corresponding concentration range, the healthy operation of the human body can be ensured. However, for some individuals, imbalances in the tissue components are likely to occur, i.e., the concentrations of the tissue components are not within the numerical range, which can cause illness and endanger health or life. Therefore, for such subjects, it is necessary to measure the tissue components in real time. In the process of measuring tissue components, it is necessary to ensure the reproducibility of the measurement conditions to ensure measurement accuracy. Summary of the Invention [Problem to be solved by the invention]

[0003] In the process of realizing the concept of the present disclosure, the inventors have discovered that the related art has at least a problem in that it is difficult to achieve reproducibility of measurement conditions by employing the related art. [Means for solving the problem]

[0004] In view of this, embodiments of the present disclosure provide a method, apparatus, and wearable device for measuring tissue constituents.

[0005] One aspect of an embodiment of the present disclosure provides a method for measuring tissue components, the method including: determining a positioning feature; determining a measurement area that satisfies a measurement reproducibility condition based on the positioning feature; placing the measurement probe at a position corresponding to the measurement area; and performing tissue component measurement using the measurement probe.

[0006] Another aspect of an embodiment of the present disclosure provides a tissue component measurement device, the device including: a first determination module that determines a positioning feature; a second determination module that determines a measurement area, which is an area that satisfies a measurement reproducibility condition, based on the positioning feature; an installation module that installs a measurement probe at a position corresponding to the measurement area; and a measurement module that performs tissue component measurement using the measurement probe.

[0007] Another aspect of an embodiment of the present disclosure provides a wearable device, the device including the tissue constituent measuring device as described above.

[0008] The above and other objects, features, and advantages of the present disclosure will become more apparent from the following description of the embodiments of the present disclosure with reference to the drawings. [Brief explanation of the drawings]

[0009] [Figure 1] FIG. 1 is a schematic flowchart of a tissue component measurement method according to an embodiment of the present disclosure. [Figure 2] FIG. 1 is a schematic diagram illustrating a method for realizing measurement area positioning based on an optical method according to an embodiment of the present disclosure. [Figure 3] FIG. 10 is a schematic diagram illustrating another schematic diagram for realizing measurement area positioning based on an optical method according to an embodiment of the present disclosure. [Figure 4] FIG. 1 is a schematic diagram illustrating a method for determining a measurement area based on an image matching method according to an embodiment of the present disclosure; [Figure 5] FIG. 10 is a schematic diagram illustrating another schematic diagram for realizing measurement area positioning based on an image matching method according to an embodiment of the present disclosure. [Figure 6] FIG. 1 is a schematic diagram illustrating a method for realizing measurement region positioning based on an imaging method according to an embodiment of the present disclosure; [Figure 7] FIG. 10 is a schematic diagram illustrating another schematic diagram for realizing positioning of a measurement region based on an imaging method according to an embodiment of the present disclosure. [Figure 8] FIG. 1 is a schematic diagram illustrating a measurement pose positioning based on an optical method according to an embodiment of the present disclosure; [Figure 9] FIG. 1 is a schematic diagram illustrating a measurement posture positioning method according to an embodiment of the present disclosure; [Figure 10] FIG. 1 is a schematic diagram illustrating a measurement posture positioning based on an imaging method according to an embodiment of the present disclosure; [Figure 11] FIG. 10 is a schematic diagram illustrating a method for receiving emitted light using a small-area photosensitive surface when shaking occurs, according to an embodiment of the present disclosure. [Figure 12] FIG. 10 is a schematic diagram illustrating a method for receiving emitted light using a wide-area photosensitive surface when shaking occurs, according to an embodiment of the present disclosure. [Figure 13] FIG. 10 is a schematic diagram of measurement results obtained based on a Monte Carlo simulation method according to an embodiment of the present disclosure. [Figure 14] FIG. 1 is a block diagram of a tissue component measuring device according to an embodiment of the present disclosure. [Figure 15] FIG. 1 is a diagram illustrating a schematic diagram of the positional relationship between a measurement probe and a fixed portion according to an embodiment of the present disclosure. [Figure 16] FIG. 1 is a schematic diagram of a fixing portion according to an embodiment of the present disclosure. [Figure 17] FIG. 1 is a schematic diagram of a first engagement member according to an embodiment of the present disclosure; [Figure 18] FIG. 10 is a schematic diagram of another first engagement member according to an embodiment of the present disclosure. [Figure 19] FIG. 1 is a schematic diagram of a region locator according to an embodiment of the present disclosure; [Figure 20] FIG. 10 is a schematic diagram of another region locator according to an embodiment of the present disclosure. [Figure 21] FIG. 1 is a schematic diagram of a first image collection unit according to an embodiment of the present disclosure; [Figure 22] FIG. 1 is a schematic diagram of a first attitude positioning unit according to an embodiment of the present disclosure; [Figure 23] FIG. 10 is a schematic diagram of another first attitude positioning unit according to an embodiment of the present disclosure; [Figure 24] FIG. 10 is a schematic diagram of a third image collection unit according to an embodiment of the present disclosure. [Figure 25] FIG. 1 is a schematic diagram illustrating a measurement posture and positioning of a measurement area according to an embodiment of the present disclosure; [Figure 26] 1A and 1B are schematic diagrams illustrating another measurement posture and positioning of a measurement area according to an embodiment of the present disclosure; [Figure 27] FIG. 1 is a schematic diagram of a wearable device according to an embodiment of the present disclosure. [Figure 28] FIG. 1 is a schematic diagram illustrating an assembly process of a wearable device according to an embodiment of the present disclosure. [Figure 29] FIG. 10 is a schematic diagram illustrating how a wearable device according to an embodiment of the present disclosure maintains the average optical path length of the emitted light received by the measurement probe within a predetermined optical path length range during the skin shaking process when the device conforms to the skin shaking rule. [Figure 30] FIG. 10 is a schematic diagram showing how a wearable device according to an embodiment of the present disclosure maintains the average optical path length of emitted light received by a measurement probe within a predetermined optical path length range during skin shaking when the movement width of the skin in a measurement area is equal to or less than a movement width threshold. DETAILED DESCRIPTION OF THE INVENTION

[0010] Hereinafter, embodiments of the present disclosure will be described with reference to the drawings. However, it should be understood that these descriptions are merely illustrative and do not limit the scope of the present disclosure. In the following detailed description, for ease of explanation, numerous specific details are set forth to provide a thorough understanding of the embodiments of the present disclosure. However, it will be apparent that one or more embodiments may be practiced without these specific details. Furthermore, in the following description, descriptions of known structures and techniques are omitted to avoid unnecessarily confusing the concepts of the present disclosure.

[0011] The terminology used herein is for the purpose of describing particular embodiments only and is not intended to limit the present disclosure. As used herein, the terms "comprises," "including," and the like indicate the presence of said features, steps, operations, and / or components, but do not exclude the presence or addition of one or more other features, steps, operations, or components.

[0012] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the meanings commonly understood by those skilled in the art. It should be noted that the terms used herein should be interpreted to have meanings consistent with the context of this specification and should not be interpreted in an idealized or rigid manner.

[0013] When an expression similar to "at least one of A, B, and C, etc." is used, it should generally be interpreted in accordance with the general understanding of the meaning of the expression by a person skilled in the art (e.g., "a system having at least one of A, B, and C" includes, but is not limited to, systems having A alone, having B alone, having C alone, having A and B, having A and C, having B and C, and / or having A, B, and C). When an expression similar to "at least one of A, B, or C, etc." is used, it should generally be interpreted in accordance with the general understanding of the meaning of the expression by a person skilled in the art (e.g., "a system having at least one of A, B, or C" includes, but is not limited to, systems having A alone, having B alone, having C alone, having A and B, having A and C, having B and C, and / or having A, B, and C).

[0014] Research into measuring biological tissue constituents using optical methods has progressed for the past 50 years, and many scientific research institutions and companies have devoted great attention and effort to this field. However, the absorption of the measured tissue constituents themselves is generally weak, and the concentration range of the measured tissue constituents in the measured subject itself is generally small. Therefore, the measured tissue constituent signals are generally weak, and the weak measured tissue constituent signals are easily buried in noise due to interference such as fluctuations in measurement conditions. Therefore, a solution to accurately measure biological tissue constituents has not yet emerged. Therefore, measuring biological tissue constituents is a global challenge that urgently needs to be solved. Here, tissue constituents can include blood glucose, fat, white blood cells, etc. The measured tissue constituent signal indicates a change in output light intensity due to a change in the concentration of the measured tissue constituent. Measurement conditions can be understood as conditions that affect the propagation path of light within the tissue. Measurement conditions may include controllable measurement conditions and uncontrollable measurement conditions. Controllable measurement conditions are those that can be controlled to remain within a predetermined range of variation (i.e., remain constant or essentially constant) by employing effective control methods during each measurement of biological tissue components. Uncontrollable measurement conditions are those that have unpredictable and uncontrollable characteristics. Controllable measurement conditions may include temperature, pressure, measurement area, measurement position, etc. Uncontrollable measurement conditions may include physiological background fluctuations and drift of the measurement device, etc.

[0015] In order to control the controllable measurement conditions, the inventors discovered that it is difficult to suppress the influence of fluctuations in the controllable measurement conditions on the measurement results using a mathematical algorithm because the mechanisms by which fluctuations in the controllable measurement conditions affect the measurement results are different. However, by adopting an effective control method, the reproducibility of such measurement conditions can be ensured, thereby reducing the influence of fluctuations in the controllable measurement conditions on the measurement results to a negligible level, and the influence of fluctuations in the controllable measurement conditions on the measurement results to a level comparable to that of random noise. Therefore, the inventors provide a method for controlling the controllable measurement conditions, and a reasonable method for controlling the controllable measurement conditions is to adopt an effective control method to control them and achieve their reproducibility, where the effective control method can be implemented in accordance with the hardware design. The reproducibility of the controllable measurement conditions means that the controllable measurement conditions can be maintained unchanged or essentially unchanged by maintaining the controllable measurement conditions within a predetermined variation range each time a tissue component is measured.

[0016] In the embodiments of the present disclosure, the measurement posture repeatability and measurement area repeatability will be mainly described, where the measurement posture is the posture supporting the limb of the measurement site, and no related content for the measurement posture has been found in the related art.

[0017] The first is the reproducibility of the measurement area. Positioning errors of the measurement area are caused by uneven tissue distribution and differences in the flatness of the skin surface. If a deviation occurs in the relative position between the measurement probe and the measurement area, the transmission path of light within the tissue will change. For these reasons, in order to achieve controllable reproducibility of measurement conditions, it is necessary to ensure the reproducibility of the measurement area as much as possible.

[0018] The second is measurement posture reproducibility. In tissue constituent measurement, it is difficult for the object being measured to maintain the same measurement posture. Changes in the measurement posture change the skin condition of the measurement area, and further change the transmission path of light within the tissue. Therefore, changes in the measurement posture will generate positioning errors and affect the ability to obtain actual measured tissue constituent signals. Here, skin conditions can include the skin surface shape and internal skin structure. Therefore, achieving measurement posture reproducibility is very necessary. The purpose of measurement posture positioning is to match the measurement posture when performing tissue constituent measurement with the target measurement posture. That is, when performing tissue constituent measurement, if the current measurement posture is not the target measurement posture, the current measurement posture needs to be adjusted to the target measurement posture. The target measurement posture is a measurement posture that satisfies the reproducibility of controllable measurement conditions.

[0019] However, in reality, the importance of achieving measurement posture repeatability is often ignored, and this is embodied in the following two aspects.

[0020] First, they have not discovered that the repeatability of measurement posture is an important factor affecting the ability to obtain actual measured tissue constituent signals. In the related art, under generally controllable measurement conditions, the main factor affecting the repeatability of the controllable measurement conditions is the repeatability of the measurement area. That is, by achieving the repeatability of the measurement area, it is possible to improve the likelihood of obtaining actual measured tissue constituent signals from the controllable measurement conditions, without having to consider other factors. In other words, the related art focuses on how to improve the positioning accuracy of the measurement area, but has not discovered that under controllable measurement conditions, the repeatability of measurement posture is also an important factor affecting the ability to obtain actual measured tissue constituent signals.

[0021] Furthermore, as can be seen from the above analysis, even if the repeatability of the measurement area is achieved, if the posture of the limb at the measurement site is changed, the internal structure of the skin at the measurement area will change, which will change the transmission path of light within the tissue, thus affecting the possibility of acquiring the actual measured tissue component signal. In other words, if we only ensure the repeatability of the measurement area and ignore the repeatability of the measurement posture, it will also be disadvantageous to improving the possibility of acquiring the actual measured tissue component signal.

[0022] Second, they do not achieve measurement posture reproducibility using an effective method. They have not conducted in-depth research into the factors that affect the acquisition of actual measured tissue constituent signals, and have not recognized the importance of achieving measurement posture reproducibility. Therefore, when measuring tissue constituents, measurement posture can be controlled by adopting a method in which the subject maintains physical stability. That is, when the subject's physical condition is considered to be unchanged, measurement posture can be well controlled. However, in many cases, changes in measurement posture are not sensed by the subject, resulting in large errors in such methods of achieving measurement posture reproducibility, which significantly interferes with the measurement results. In other words, even if a method is adopted to control measurement posture, the importance of achieving measurement posture reproducibility is not recognized, and therefore, such a method cannot actually guarantee measurement posture reproducibility.

[0023] Therefore, in order to achieve the reproducibility of the measurement area, it is necessary to ensure the reproducibility of the measurement posture as much as possible, that is, to achieve accurate positioning of the measurement posture. Based on the above, the reproducibility of the measurement area must be premised on the reproducibility of the measurement posture, and therefore the positioning of the measurement area must be premised on the positioning of the measurement posture.

[0024] In line with this idea, an embodiment of the present disclosure provides a tissue component measurement solution, namely, determining a measurement area based on positioning features, the measurement area being an area that satisfies a measurement repeatability condition, placing a measurement probe at a position corresponding to the measurement area, and measuring the tissue component using the measurement probe, wherein the positioning features are used to realize the measurement posture and / or positioning of the measurement area, as will be described below with reference to specific embodiments.

[0025] FIG. 1 is a schematic flow chart of a method for measuring tissue constituents according to an embodiment of the present disclosure.

[0026] As shown in FIG. 1, the method includes operations S110 to S140.

[0027] In operation S110, a positioning feature is determined.

[0028] According to an embodiment of the present disclosure, positioning can be performed based on positioning features during the positioning process. Here, the positioning features may include posture positioning features and area positioning features, where the posture positioning features are used to position the measurement posture and the area positioning features are used to position the measurement area. The posture positioning features may be installed on the object to be measured or a non-object to be measured, and the area positioning features may be installed on the object to be measured or a non-object to be measured, where the non-object to be measured may include a measurement probe or other device. The positioning features may include artificially set positioning features or unique features of the object to be measured, where the unique features of the object to be measured may include a palm print, fingerprint, birthmark, birthmark, mole, etc.

[0029] According to the embodiments of the present disclosure, if a method of manually setting positioning features is adopted, the manually set positioning features will generally gradually fade over time and therefore need to be reset, which may introduce new errors and affect the positioning accuracy. However, the inherent features of the object to be measured have high stability and are less likely to cause setting errors.

[0030] To reduce the complexity of positioning and improve positioning accuracy, a setting method can be adopted in which the inherent features of the object being measured are used as positioning features. However, even if a setting method is adopted in which the inherent features of the object being measured are used as positioning features in posture, the internal structure of the skin is affected by changes in measurement posture, which also generates positioning deviations in the measurement area. Therefore, the position of the positioning feature on the object being measured is not arbitrary and must be determined based on the measurement site and the skeletal and muscular relationship between the measurement site and surrounding sites. For example, if the measurement site is the extensor side of the forearm, the surrounding site includes the wrist. Since changes in the wrist condition significantly affect the skin condition on the extensor side of the forearm, positioning features can be set on the extensor side of the forearm and the back of the hand to improve positioning accuracy. It should be noted that if there are no inherent features of the object being measured that can be used as positioning features, positioning features can be set artificially. For example, the positioning feature may be a dot-like mark or a figure mark, and the figure mark may include a cross mark.

[0031] In operation S120, a measurement area is determined based on the positioning features, where the measurement area is an area that satisfies a measurement repeatability condition.

[0032] In operation S130, the measurement probe is placed at a position corresponding to the measurement region.

[0033] In operation S140, the tissue components are measured using the measurement probe.

[0034] According to an embodiment of the present disclosure, the measurement region determined based on the positioning features is a region that satisfies measurement condition reproducibility. A tissue constituent measurement is performed using a measurement probe installed at a position corresponding to the measurement region, i.e., irradiating the measurement region with incident light of at least one predetermined wavelength, each incident light entering from an incident position and then exiting from at least one exit position on the measurement region to form at least one exit light, obtaining light intensity values ​​corresponding to each exit light collected by the measurement probe, and obtaining T output light intensities, where the measurement probe includes M photosensitive surfaces, and each output light intensity is obtained by processing the light intensity values ​​of the exit light collected by one or more photosensitive surfaces, and determining the concentration of the measured tissue constituent based on the at least one output light intensity corresponding to the at least one predetermined wavelength.

[0035] According to the technical solution of the embodiment of the present disclosure, a positioning feature is determined, a measurement area that satisfies the measurement repeatability conditions is determined based on the positioning feature, a measurement probe is installed at a position corresponding to the measurement area, and the measurement probe is used to measure tissue components, thereby realizing relatively accurate positioning of the measurement area and further realizing effective control of the repeatability of the measurement conditions.

[0036] According to an embodiment of the present disclosure, the positioning features include a first pose positioning feature and a region positioning feature. Based on the positioning features, the measurement region is determined, and may include the following operations:

[0037] Based on the first posture positioning feature, a current measurement posture of the object to be measured is adjusted to a target measurement posture, where the target measurement posture is a measurement posture that satisfies measurement condition repeatability. If the current measurement posture is the target measurement posture, a measurement region is determined based on the region positioning feature.

[0038] According to the embodiment of the present disclosure, when positioning the measurement posture and the measurement area, the premise for realizing the positioning of the measurement area is to realize the positioning of the measurement posture, and in the subsequent measurement process after the positioning of the measurement area is completed, there is generally no need to reposition the measurement area, but it may be necessary to position the measurement posture, where the condition for completing the positioning of the measurement posture is that the current measurement posture is the target measurement posture, and the target measurement posture is the measurement posture that satisfies the measurement condition reproducibility.

[0039] According to an embodiment of the present disclosure, the reason why the above-mentioned measurement posture positioning may be necessary is that in order to provide a better user experience for the subject being measured, a policy can be adopted in which the measurement area is allowed to move within a certain range when not being measured, and measurement posture positioning is performed when measuring. When measuring, it is necessary to ensure that the current measurement posture is the target measurement posture. Therefore, if the current measurement posture is not the target measurement posture, it is necessary to adjust the measurement posture to ensure that the current measurement posture is the target measurement posture.

[0040] Based on the above, positioning can be divided into initial measurement posture positioning, measurement area positioning, and re-measurement posture positioning. Here, initial measurement posture positioning can be understood as measurement posture positioning that realizes the measurement area. Furthermore, re-measurement posture positioning can be understood as measurement posture positioning that is performed when the measurement posture is not the target measurement posture after the measurement probe is placed at a position corresponding to the measurement area.

[0041] According to an embodiment of the present disclosure, the region positioning feature is used to position the measurement region. The posture positioning feature used for the initial measurement posture positioning is referred to as the first posture positioning feature. The posture positioning feature used for the re-measurement posture positioning is referred to as the second posture positioning feature. The first posture positioning feature and the second posture positioning feature are both used to position the measurement posture. The region positioning feature, the first posture positioning feature, and the second posture positioning feature may be different, partially the same, or entirely the same. The number of the region positioning feature, the first posture positioning feature, and the second posture positioning feature may include one or more.

[0042] When performing initial measurement posture positioning and measurement area positioning, the current measurement posture of the object to be measured is adjusted based on the first posture positioning feature so that the first posture positioning feature matches a predetermined feature. If the first posture positioning feature matches the predetermined feature, it can be determined that the current measurement posture is the target measurement posture. If the current measurement posture is the target measurement posture, the measurement area is determined based on the area positioning feature. This completes the positioning of the measurement posture and measurement area.

[0043] It should be noted that determining a measurement area based on a region locating feature can be understood to mean determining an area corresponding to the region locating feature as the measurement area, including determining an area in which the region locating feature is located as the measurement area, or determining another area that has a correlation with the region locating feature as the measurement area.

[0044] Based on the first posture positioning feature and the region positioning feature, the positioning of the measurement region and the positioning of the measurement posture can be completed synchronously.

[0045] According to an embodiment of the present disclosure, placing the measurement probe at a position corresponding to the measurement region may include the following operations.

[0046] The measurement probe is placed at a position corresponding to the measurement area via a fixing part, where the fixing part may be integral with the measurement probe, may be partially separate, or may be entirely separate.

[0047] According to an embodiment of the present disclosure, the fixing portion is used to fix the measurement probe, and the fixing portion may be integral with the measurement probe, partially separate, or completely separate. That is, the fixing portion may be a component of the measurement probe, or may be two parts independent of the measurement probe, or part of the fixing portion may be a component of the measurement probe and part of the fixing portion may be independent of the measurement probe. The fixing portion may include a fixing seat and a first engaging member, or the fixing portion may include a second engaging member. The first engaging member is used to position the fixing seat at a position corresponding to the measurement area, and the fixing seat is used to position the measurement probe. The second engaging member is used to position the measurement probe at a position corresponding to the measurement area.

[0048] When the fixing part includes a fixing seat and a first engagement member, the fixing seat is separate from the measurement probe, and the first engagement member is either integral with or separate from the fixing seat. When the fixing part includes a second engagement member, the second engagement member is either integral with or separate from the measurement probe.

[0049] According to an embodiment of the present disclosure, the fixing portion includes a fixing seat and a first engagement member.

[0050] Setting the measurement probe at a position corresponding to the measurement area by the fixing part can include the following operations.

[0051] The first engaging member is used to set the fixing seat at a position corresponding to the measurement area, and the measurement probe is set on the fixing seat.

[0052] According to the embodiment of the present disclosure, the measurement probe is not directly placed at a position corresponding to the measurement area, but is placed at a position corresponding to the measurement area by a fixing seat.

[0053] In the tissue component measurement process, when the measurement probe is installed at a position corresponding to the measurement area by the fixing seat, the fixing seat can be installed in the measurement area for a long time without moving away from the measurement area, so that the measurement probe can be installed in the fixing seat during measurement and moved away from the fixing seat when not measuring. Moreover, because the fixing seat is installed at a position corresponding to the measurement area, when the measurement probe moves away from the fixing seat and then moves back to the fixing seat, high positioning accuracy can still be maintained and the difficulty of positioning the measurement probe is reduced.

[0054] According to an embodiment of the present disclosure, the skin condition of the skin in the measurement area satisfies a first predetermined condition during the process of placing the fixing seat at a position corresponding to the measurement area by the first engaging member.

[0055] According to an embodiment of the present disclosure, the skin condition of the skin in the measurement area satisfies a second predetermined condition during the process of placing the measurement probe on the fixed seat.

[0056] According to an embodiment of the present disclosure, since the operation of fixing the fixing seat affects the skin condition at the corresponding position and further affects the positioning accuracy of the measurement area, in order to ensure the positioning accuracy of the measurement area, it is possible to ensure that the skin condition of the skin at the measurement area satisfies a first predetermined condition during the process of fixing the fixing seat with the first engaging member. Here, the first predetermined condition is that during the process of fixing the fixing seat with the first engaging member, a change in the skin condition at the corresponding position falls within a first predetermined range. The change in the skin condition may include a deformation of the skin. Accordingly, the first predetermined range may include a first predetermined deformation range.

[0057] According to an embodiment of the present disclosure, since the operation of fixing the measurement probe affects the skin condition at the corresponding position, which in turn affects the positioning accuracy of the measurement area, in order to ensure the positioning accuracy of the measurement area, it is possible to ensure that the skin condition of the skin at the measurement area satisfies a second predetermined condition during the process of fixing the measurement probe to the fixing seat. Here, the second predetermined condition is that during the process of fixing the measurement probe to the fixing seat, changes due to the skin condition at the corresponding position of the skin fall within a second predetermined range. The changes due to the skin condition may include skin deformation. Accordingly, the second predetermined range may include a second predetermined deformation range.

[0058] According to an embodiment of the present disclosure, the measurement probe does not move to the fixed seat.

[0059] According to the embodiment of the present disclosure, when the measurement probe is fixed to the fixing seat, the fixing is not firm, which may affect the reproducibility of the measurement conditions. To solve this problem, it is possible to ensure that the measurement probe does not move to the fixing seat during the measurement of tissue components.

[0060] According to an embodiment of the present disclosure, the fixing portion includes a second engagement member.

[0061] Setting the measurement probe at a position corresponding to the measurement area by the fixing part can include the following operations.

[0062] The second engagement member positions the measurement probe at a position corresponding to the measurement region.

[0063] According to an embodiment of the present disclosure, in addition to adopting a method of installing the measurement probe at a position corresponding to the measurement area using a fixing seat as described above, it is also possible to adopt a method of directly installing the measurement probe at a position corresponding to the measurement area, that is, no fixing seat is required and it is necessary to achieve this by incorporating a second engaging member.

[0064] It should be noted that the above-mentioned requirement for a fixing seat can be understood in two ways: one is that the measurement probe is provided with a structure that is integral with it and performs the same function as an independent fixing seat, and the other is that the measurement probe is not provided with a structure that performs the same function as an independent fixing seat.

[0065] According to an embodiment of the present disclosure, the skin condition of the skin in the measurement area satisfies a third predetermined condition during the process of placing the measurement probe at a position corresponding to the measurement area by the second engaging member.

[0066] According to an embodiment of the present disclosure, since the operation of fixing the measurement probe affects the skin condition at the corresponding position, which in turn affects the positioning accuracy of the measurement area, to ensure the positioning accuracy of the measurement area, it is possible to ensure that the skin condition of the skin at the measurement area satisfies a third predetermined condition during the process of fixing the measurement probe with the second engaging member. Here, the third predetermined condition is that during the process of fixing the measurement probe with the second engaging member, changes due to the skin condition at the corresponding position of the skin are within a third predetermined range. The changes due to the skin condition may include skin deformation. Accordingly, the third predetermined range may include a third predetermined deformation range.

[0067] According to an embodiment of the present disclosure, determining the measurement area based on the area positioning feature may include the following operations.

[0068] A first projection feature is acquired. If it is determined that the region positioning feature does not match the first projection feature, the position of the measurement probe and / or the fixed part is adjusted until the region positioning feature matches the first projection feature. If it is determined that the region positioning feature matches the first projection feature, the region corresponding to the measurement probe and / or the fixed part is determined as the measurement region.

[0069] According to an embodiment of the present disclosure, in order to ensure flexibility of use and accuracy of positioning of the measurement area, an optical method can be adopted to realize this, i.e., matching the area positioning feature with a first projected feature, and determining the measurement area based on the matching result, where the first projected feature is formed based on an optical method, i.e., projecting a spot of a predetermined shape by a light source, and the shape of the spot can be determined based on the area positioning feature. Illustratively, the spot of the predetermined shape is a cross spot.

[0070] According to an embodiment of the present disclosure, after acquiring the first projection feature by employing a structure for projecting the first projection feature, it is determined whether the region positioning feature matches the first projection feature, and if it is determined that the region positioning feature does not match the first projection feature, the position of the measurement probe and / or the fixed seat is adjusted so that the region positioning feature matches the first projection feature until the region positioning feature matches the first projection feature. If it is determined that the region positioning feature matches the first projection feature, the region where the measurement probe and / or the fixed seat are currently located can be described as the measurement region.

[0071] According to an embodiment of the present disclosure, the structure for projecting the first projection feature can be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object can refer to an object other than the measurement probe, the fixed part, and the object to be measured. The area positioning feature can be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and another object. The adjustment process realized based on an optical method will be described below from two angles: the installation position of the structure for projecting the first projection feature and the installation position of the area positioning feature.

[0072] The description will be made from the perspective of the installation position of the structure for projecting the first projection feature.

[0073] First, when a structure for projecting the first projection feature is installed on the object to be measured, the region positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixing seat, and another object. It should be noted that when the region positioning feature is installed on the object to be measured or another object, the positioning of the measurement region can be achieved in the following manner: adjust the position of the measurement probe and / or the fixing seat based on the region positioning feature and the first projection feature until the region positioning feature matches the first projection feature. Here, the region positioning feature matching the first projection feature refers to the region positioning feature being blocked by the measurement probe and / or the fixing seat and the first projection feature cannot be projected at the position where the region positioning feature is located. If the region positioning feature does not match the first attitude positioning feature, at least one first projection feature can be projected at the position where the region positioning feature is located.

[0074]

[0013] Second, when a structure for projecting the first projection feature is installed on the measurement probe, the area positioning feature cannot be installed on the measurement probe, but can be installed on the object to be measured, the fixed seat, or another object. It should be noted that if the measurement probe positioning is achieved by installing the area positioning feature on the fixed seat and using the fixing part on the fixed seat to install the measurement probe at a position corresponding to the measurement area, the positioning of the measurement area can be achieved in the following manner: the position of the fixed seat is adjusted. Before the area positioning feature does not match the first projection feature, the position of the measurement probe is fixed, and the position of the fixed seat is adjusted based on the area positioning feature and the first projection feature until the area positioning feature matches the first projection feature. If they match, the area corresponding to the fixed seat is determined as the measurement area, and the measurement probe can then be installed on the fixed seat.

[0075] Third, when the structure for projecting the first projection feature is installed on the fixed seat, the area positioning feature cannot be installed on the fixed seat, but can be installed on the object to be measured, the measurement probe, or other objects. It should be noted that if the area positioning feature is installed on the measurement probe and the measurement probe is positioned at a position corresponding to the measurement area by a fixing part on which the fixed seat is installed, the positioning of the measurement area can be achieved in the following manner, that is, by adjusting the position of the fixed seat. Before the area positioning feature does not match the first projection feature, the position of the measurement probe is fixed, and the position of the fixed seat is adjusted based on the area positioning feature and the first projection feature until the area positioning feature matches the first projection feature. If they match, the area corresponding to the fixed seat is determined as the measurement area, and the measurement probe can then be installed on the fixed seat.

[0076] Fourth, when the structure for projecting the first projection feature is installed on another object, the region positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixing base, and the other object. It should be noted that when the region positioning feature is set on the object to be measured or the other object, the positioning of the measurement region can be achieved in a manner similar to installing the structure for projecting the first projection feature on the object to be measured and installing the region positioning feature on the object to be measured or the other object, and the description thereof will be omitted here.

[0077] The angle of the installation position of the region positioning feature will be explained.

[0078] First, when the region positioning feature is set on the object to be measured, the structure for projecting the first projected feature can be set on the object to be measured, the measurement probe, the fixed seat, or another object. It should be noted that when the structure for projecting the first projected feature is set on the object to be measured or another object, the positioning of the measurement region can be achieved in the following manner: adjust the position of the measurement probe and / or the fixed seat based on the region positioning feature and the first projected feature until the region positioning feature matches the first projected feature. Here, the region positioning feature matching the first projected feature refers to the region positioning feature being blocked by the measurement probe and / or the fixed seat and the first projected feature cannot be projected at the position where the region positioning feature is located. If the region positioning feature does not match the first attitude positioning feature, at least one first projected feature can be projected at the position where the region positioning feature is located.

[0079] Second, when the area positioning feature is installed on the measurement probe, the structure for projecting the first projected feature and the measurement probe are separate and can be installed on the object to be measured, the fixed seat, or other objects. For illustrative purposes, when the structure for projecting the first projected feature is installed on the fixed seat, reference can be made to the corresponding description above, and the description will be omitted here.

[0080] Third, when the area positioning feature is installed on the fixed seat, the structure for projecting the first projected feature and the fixed seat are separate and can be installed on the object to be measured, the measurement probe, or other objects. For illustrative purposes, when the structure for projecting the first projected feature is installed on the measurement probe, reference can be made to the corresponding description above, and the description will be omitted here.

[0081] Fourth, when the area positioning feature is set on another object, the structure for projecting the first projected feature can be set on the object to be measured, the measurement probe, the fixed seat, or another object. It should be noted that when the structure for projecting the first projected feature is set on the object to be measured or another object, reference can be made to the corresponding description above, and the description will be omitted here.

[0082] For example, Fig. 2 shows a schematic diagram of a method for positioning a measurement area based on an optical method according to an embodiment of the present disclosure. The area positioning features in Fig. 2 are installed on a measurement probe. Fig. 3 shows another schematic diagram of a method for positioning a measurement area based on an optical method according to an embodiment of the present disclosure. The area positioning features in Fig. 3 are installed on an object to be measured.

[0083] By using an optical method to position the measurement area, on the one hand, the position and angle of the light source can be flexibly adjusted, so that it can be easily matched with the area positioning feature, and therefore the area positioning feature can be flexibly set, thereby reducing the difficulty of setting the area positioning feature, and on the other hand, the shape of the emission spot can be adjusted, so that it can be better matched with the area positioning feature and improve the positioning accuracy.

[0084] According to an embodiment of the present disclosure, determining the measurement area based on the area positioning feature may include the following operations.

[0085] Acquire a first target image. Acquire a first template image, where the first template image includes region positioning features. If it is determined that the first target image does not match the first template image, acquire a new first target image by adjusting the position of the measurement probe and / or fixture until the new first target image matches the first template image. If it is determined that the first target image matches the first template image, determine a region corresponding to the measurement probe and / or fixture as the measurement region.

[0086] According to an embodiment of the present disclosure, to ensure flexibility of use and accuracy of measurement area positioning, an image matching method can be used to match a first target image with a first template image and determine the measurement area based on the matching result. Here, the first template image can include a region positioning feature, and the position of the region positioning feature in the first template image is a predetermined position. In the process of matching the first target image with the first template image, the first target image may be a target image that does not include a region positioning feature, a target image that includes a region positioning feature but whose position in the first target image is not a predetermined position, or a target image that includes a region positioning feature and whose position in the first target image is a predetermined position. Since the first template image includes a region positioning feature located at a predetermined position, when the first target image is matched with the first template image, it can be said that the first target image includes a region positioning feature and that the position of the region positioning feature in the first target image is a predetermined position. In other words, the purpose of matching the first target image with the first template image is to ensure that the acquired first target image includes a region positioning feature and that the position of the region positioning feature in the first target image is a predetermined position.

[0087] According to an embodiment of the present disclosure, when it is determined that the first target image matches the first template image, the area where the measurement probe and / or the fixed seat are currently located can be described as the measurement area. Here, determining whether the first target image matches the first template image can include determining a similarity between the first target image and the first template image. If the similarity is equal to or greater than a similarity threshold, it is determined that the first target image matches the first template image. If the similarity is less than the similarity threshold, it is determined that the first target image does not match the first template image. Determining the similarity between the first target image and the first template image can include performing a correlation analysis between the first target image and the first template image to obtain a correlation coefficient, and determining the similarity between the first target image and the first template image based on the correlation coefficient.

[0088] According to an embodiment of the present disclosure, the structure for collecting a first target image may be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object may refer to an object other than the measurement probe, the fixed part, and the object to be measured. The region positioning feature may be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and another object. For the description of the structure for collecting a first target image and the region positioning feature, please refer to the description of the structure for projecting a first projection feature and the region positioning feature, and the description will be omitted here. Differently, when the structure for collecting a first target image is installed on the measurement probe, the region positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed seat, and another object. When the structure for collecting a first target image is installed on the fixed seat, the region positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed seat, and another object.

[0089] For example, Fig. 4 shows a schematic diagram of a measurement area positioning method based on an image matching method according to an embodiment of the present disclosure. The area positioning features in Fig. 4 are installed on a measurement probe. Fig. 5 shows another schematic diagram of a measurement area positioning method based on an image matching method according to an embodiment of the present disclosure. The area positioning features in Fig. 5 are installed on an object to be measured.

[0090] According to an embodiment of the present disclosure, determining the measurement area based on the area positioning feature may include the following operations.

[0091] A second target image is acquired, where the second target image includes the region positioning feature. If it is determined that the position of the region positioning feature in the second target image is not the first predetermined position, a new second target image is acquired by adjusting the position of the measurement probe and / or the fixture until the position of the region positioning feature in the new second target image is the first predetermined position. If it is determined that the position of the region positioning feature in the new second target image is the first predetermined position, a region corresponding to the measurement probe and / or the fixture is determined to be the measurement region.

[0092] According to an embodiment of the present disclosure, in order to ensure flexibility of use and accuracy of positioning of the measurement area, an imaging method can be adopted to achieve this, that is, it can be stated that positioning of the measurement area is completed when the position of the area positioning feature in the second target image is a first predetermined position.

[0093] According to an embodiment of the present disclosure, the process of employing an imaging method to position the measurement area is a process of determining whether the position of the area positioning feature in the second target image is a first predetermined position, and if the position of the area positioning feature in the second target image is not the first predetermined position, acquiring a new second target image by adjusting the position of the measurement probe and / or the fixing seat until the position of the area positioning feature in the new second target image is the first predetermined position. If the position of the area positioning feature in the new second target image is the first predetermined position, the area where the measurement probe and / or the fixing seat are currently located can be described as the measurement area.

[0094] According to an embodiment of the present disclosure, the structure for acquiring the second target image may be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object may represent an object other than the measurement probe, the fixed part, and the object to be measured. The region positioning feature may be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and the other object. For the description of the structure for acquiring the second target image and the region positioning feature, please refer to the description of the structure for projecting the first projection feature and the region positioning feature, and the description will be omitted here.

[0095] For example, Fig. 6 shows a schematic diagram of a method for positioning a measurement area based on an imaging method according to an embodiment of the present disclosure. The area positioning feature in Fig. 6 is installed on a measurement probe. Fig. 7 shows another schematic diagram of a method for positioning a measurement area based on an imaging method according to an embodiment of the present disclosure. The area positioning feature in Fig. 7 is installed on an object to be measured. In Fig. 7, the relative positions of the measurement probe and the fixed seat change, and the position of the area positioning feature displayed on the image is positioned at a first predetermined position.

[0096] According to an embodiment of the present disclosure, adjusting the current measurement posture of the object to be measured to the target measurement posture based on the first posture positioning feature may include the following operations.

[0097] A second projection feature is acquired. If it is determined that the first pose positioning feature does not match the second projection feature, the current measurement pose is adjusted until the first pose positioning feature matches the second projection feature. If it is determined that the first pose positioning feature matches the second projection feature, the current measurement pose is determined to be the target measurement pose.

[0098] According to an embodiment of the present disclosure, in order to ensure flexibility of use and accuracy of measurement posture positioning, an optical method can be adopted to achieve this, i.e., matching a first posture positioning feature with a second projection feature, and determining a target measurement posture based on the matching result, where the second projection feature is formed based on an optical method, i.e., forming the second projection feature by projecting a spot of a predetermined shape using a light source, and the shape of the spot can be determined based on the first posture positioning feature. That is, for the object to be measured, a second projection feature matching the first posture positioning feature is set, and the current measurement posture where the first posture positioning feature and the second projection feature match is the target measurement posture.

[0099] According to an embodiment of the present disclosure, the structure for projecting the second projection feature can be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object can refer to an object other than the measurement probe, the fixed part, and the object to be measured. The first positioning feature may be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and another object. The adjustment process achieved based on an optical method will be described below from two angles: the installation position of the structure for projecting the second projection feature and the installation position of the first positioning feature.

[0100] The installation position angle of the structure for projecting the second projection feature will be explained.

[0101] First, when the structure for projecting the second projection feature is installed on the object to be measured, the first positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixing seat, and another object. It should be noted that when the first positioning feature is installed on the measurement probe, the position of the measurement probe needs to be constant during the initial positioning of the measurement posture in order to achieve positioning of the measurement posture. Similarly, when the first positioning feature is installed on the fixing seat, the position of the fixing seat needs to be constant during the initial positioning of the measurement posture in order to achieve positioning of the measurement posture.

[0102] Second, when a structure for projecting the second projection feature is installed on the measurement probe, the first positioning feature cannot be installed on the measurement probe, but can be installed on the object to be measured, a fixed seat, or another object. It should be noted that the position of the measurement probe must be constant during the initial measurement positioning step. Furthermore, when the first positioning feature is installed on the fixed seat, the initial measurement positioning can be achieved by the following method: the current measurement position of the object to be measured can be adjusted based on the first and second projection features until the first positioning feature matches the second projection feature. Here, matching the first positioning feature with the second projection feature refers to the first positioning feature being blocked by the object to be measured and the second projection feature being unable to be projected at the position where the first positioning feature is located. If the first positioning feature does not match the second positioning feature, at least one second projection feature can be projected at the position where the first positioning feature is located. When the first positioning feature is installed on another object, the measurement positioning can be achieved by a method similar to installing the first positioning feature on the fixed seat, and the description thereof will be omitted here.

[0103] Third, if the structure for projecting the second projection feature is installed on the fixed seat, the first positioning feature cannot be installed on the fixed seat, but can be installed on the object to be measured, the measurement probe, or other objects. It should be noted that the position of the fixed seat must be constant during the initial measurement positioning stage. Furthermore, if the first positioning feature is installed on the measurement probe or other objects, the structure for projecting the second projection feature can be installed on the measurement probe, and the measurement positioning can be achieved in a manner similar to installing the first positioning feature on the fixed seat or other objects, and this description will be omitted here.

[0104] Fourth, when the structure for projecting the second projection feature is installed on another object, the first positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed seat, and the other object. It should be noted that when the first positioning feature is installed on the measurement probe, the fixed seat, or the other object, the structure for projecting the second projection feature is installed on the measurement probe, and the positioning of the measurement position can be achieved in a manner similar to that of installing the first positioning feature on the fixed seat or the other object, and the description thereof will be omitted here.

[0105] The first posture positioning feature, the installation position angle, will be explained.

[0106] First, when the first positioning feature is installed on the object to be measured, the structure for projecting the second projected feature can be installed on the object to be measured, the measurement probe, the fixed seat, or another object. It should be noted that when the structure for projecting the second projected feature is installed on the measurement probe, the position of the measurement probe must be constant during the initial positioning of the measurement position. Similarly, when the structure for projecting the second projected feature is installed on the fixed seat, the position of the fixed seat must be constant during the initial positioning of the measurement position.

[0107] Second, when the first positioning feature is installed on the measurement probe, the structure for projecting the second projection feature and the measurement probe are separate and can be installed on the object to be measured, the fixed base, or other objects. It should be noted that when the structure for projecting the second projection feature is installed on the object to be measured, the fixed base, or other objects, reference can be made to the corresponding descriptions above, and the description will be omitted here.

[0108] Third, when the first positioning feature is installed on the fixed seat, the structure for projecting the second projection feature and the fixed seat are separate and can be installed on the object to be measured, the measurement probe, or other objects. It should be noted that when the structure for projecting the second projection feature is installed on the object to be measured, the measurement probe, or other objects, reference can be made to the corresponding descriptions above, and further description will be omitted here.

[0109] Fourth, when the first positioning feature is installed on another object, the structure for projecting the second projection feature can be installed on the object to be measured, the measurement probe, the fixed seat, or another object. It should be noted that when the structure for projecting the second projection feature is installed on the object to be measured, the measurement probe, the fixed seat, or another object, reference can be made to the corresponding descriptions above, and further description will be omitted here.

[0110] 8 is a schematic diagram illustrating a measurement posture positioning method according to an embodiment of the present disclosure, in which a first posture positioning feature is placed on the object to be measured.

[0111] When the measurement posture is positioned by an optical method, on the one hand, the position and angle of the light source can be flexibly adjusted, so that it can be easily matched with the first posture positioning feature, and therefore the first posture positioning feature can be flexibly set, thereby reducing the difficulty of setting the first posture positioning feature, and on the other hand, the shape of the output spot can be adjusted to better match with the first posture positioning feature, thereby improving the positioning accuracy.

[0112] According to an embodiment of the present disclosure, adjusting the current measurement posture of the object to be measured to the target measurement posture based on the first posture positioning feature may include the following operations.

[0113] Acquire a third target image. Acquire a second template image, where the second template image includes the first pose positioning feature. If it is determined that the third target image does not match the second template image, acquire a new third target image by adjusting the current measured pose until the new third target image matches the second template image. If it is determined that the new third target image matches the second template image, determine that the current measured pose is the target measured pose.

[0114] According to an embodiment of the present disclosure, to ensure flexibility of use and accuracy of measurement pose positioning, an image matching method can be used to match a third target image with a second template image, and the target measurement pose can be determined based on the matching result. Here, the second template image may include a first pose positioning feature, and the position of the first pose positioning feature in the second template image may be a predetermined position. In the process of matching the third target image with the second template image, the third target image may be a target image that does not include the first pose positioning feature, a target image that includes the first pose positioning feature but the position of the first pose positioning feature in the third target image is not a predetermined position, or a target image that includes the first pose positioning feature and the position of the first pose positioning feature in the third target image is a predetermined position. If the third target image matches the second template image because the second template image includes the first pose positioning feature at a predetermined position, it can be said that the third target image includes the first pose positioning feature and the position of the first pose positioning feature in the third target image is a predetermined position. In other words, the purpose of matching the third target image with the second template image is that the acquired third target image includes the first pose positioning feature and the position of the first pose positioning feature in the third target image is a predetermined position.

[0115] According to an embodiment of the present disclosure, the structure for collecting a third target image may be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object may represent an object other than the measurement probe, the fixed part, and the object to be measured. The first attitude positioning feature may be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and another object. For the description of the structure for collecting a third target image and the first attitude positioning feature, reference may be made to the description of the structure for projecting a second projection feature and the first attitude positioning feature, and further description will be omitted here. Differently, when the structure for collecting a third target image is installed on the measurement probe, the first attitude positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed seat, and another object. When the structure for collecting a third target image is installed on the fixed seat, the first attitude positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed seat, and another object.

[0116] 9 is a schematic diagram illustrating a measurement posture registration process using an image matching method according to an embodiment of the present disclosure, in which a first posture registration feature is placed on the object to be measured.

[0117] According to an embodiment of the present disclosure, adjusting the current measurement posture of the object to be measured to the target measurement posture based on the first posture positioning feature may include the following operations.

[0118] A fourth target image is acquired, where the fourth target image includes the first pose positioning feature. If it is determined that the position of the first pose positioning feature in the fourth target image is not at the second predetermined position, a new fourth target image is acquired by adjusting the current measurement pose until the position of the first pose positioning feature in the new fourth target image is at the second predetermined position. If it is determined that the position of the first pose positioning feature in the new fourth target image is at the second predetermined position, it is determined that the current measurement pose is the target measurement pose.

[0119] According to an embodiment of the present disclosure, in order to ensure flexibility of use and accuracy of measurement posture positioning, an imaging method can be adopted to achieve this, that is, it can be stated that measurement posture positioning is completed when the position of the first posture positioning feature in the fourth target image is a second predetermined position.

[0120] According to an embodiment of the present disclosure, the process of employing an imaging method to realize measurement posture positioning is a process of determining whether the position of the first posture positioning feature in the fourth target image is a second predetermined position, and if the position of the first posture positioning feature in the fourth target image is not the second predetermined position, a new fourth target image can be obtained by adjusting the current measurement posture until the position of the first posture positioning feature in the new fourth target image is the second predetermined position. If the position of the first posture positioning feature in the new fourth target image is the second predetermined position, the current measurement posture can be described as the target measurement posture.

[0121] According to an embodiment of the present disclosure, the structure for acquiring a fourth target image may be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object may represent an object other than the measurement probe, the fixed part, and the object to be measured. The first orientation positioning feature may be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and another object. For the description of the structure for acquiring a fourth target image and the first orientation positioning feature, please refer to the description of the structure for projecting the second projection feature and the first orientation positioning feature, and the description will be omitted here.

[0122] 10 is a schematic diagram illustrating a measurement posture positioning method according to an embodiment of the present disclosure, in which a first posture positioning feature is placed on the object to be measured.

[0123] According to an embodiment of the present disclosure, the method may further include the following operations.

[0124] When the measurement probe is placed at a position corresponding to the measurement region, if it is determined that the current measurement posture is not the target measurement posture, a second posture positioning feature is determined, and the current measurement posture is adjusted to the target measurement posture based on the second posture positioning feature.

[0125] According to an embodiment of the present disclosure, when the measurement probe is placed at a position corresponding to the measurement area, if it is determined that the current measurement posture is not the target measurement posture, the above-mentioned re-measurement posture positioning must be performed. That is, after completing the positioning of the measurement area, if the current measurement posture is not the target measurement posture, the above-mentioned re-measurement posture positioning must be performed. Based on the second posture positioning feature, the current measurement posture can be adjusted until it is the target measurement posture. The second posture positioning feature may be the same as or different from the first posture positioning feature.

[0126] According to an embodiment of the present disclosure, adjusting the current measured posture to the target measured posture based on the second posture positioning feature may include the following operations.

[0127] A third projection feature is acquired. If it is determined that the second pose positioning feature does not match the third projection feature, the current measurement pose is adjusted until the second pose positioning feature matches the third projection feature. If it is determined that the second pose positioning feature matches the third projection feature, the current measurement pose is determined to be the target measurement pose.

[0128] According to an embodiment of the present disclosure, in order to ensure flexibility of use and accuracy of measurement posture positioning, an optical method can be adopted to match the second posture positioning feature with the third projection feature, and the target measurement posture can be determined based on the matching result, where the third projection feature is formed based on an optical method, i.e., a spot of a predetermined shape can be projected by a light source to form the third projection feature, and the shape of the spot can be determined based on the second posture positioning feature. That is, for the object to be measured, a third projection feature matching the second posture positioning feature is set, and the current measurement posture where the second posture positioning feature matches the third projection feature is the target measurement posture.

[0129] According to an embodiment of the present disclosure, the structure for projecting the third projection feature may be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object may represent an object other than the measurement probe, the fixed part, and the object to be measured. The second positioning feature may be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and another object. The adjustment process achieved based on an optical method will be described below from two angles: the installation position of the structure for projecting the third projection feature and the installation position of the second positioning feature.

[0130] The installation position angle of the configuration for projecting the third projection feature will be explained.

[0131] First, when the structure for projecting the third projection feature is installed on the object to be measured, the second orientation positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed base, and another object.

[0132] Second, when the structure for projecting the third projection feature is installed on the measurement probe, the second attitude positioning feature cannot be installed on the measurement probe and the fixed seat, but can be installed on the object to be measured or another object, because the measurement probe is installed at a position corresponding to the measurement area and then the measurement probe is installed on the fixed seat.

[0133] Third, when the structure for projecting the third projection feature is installed on the fixed seat, the second positioning feature cannot be installed on the measurement probe and the fixed seat, but can be installed on the object to be measured or other objects, similarly because the measurement probe is installed at a position corresponding to the measurement area and then the measurement probe is installed on the fixed seat.

[0134] Fourth, when the structure for projecting the third projection feature is installed on the other object, the second attitude positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed base, and the other object. It is to be noted that when the second attitude positioning feature is installed on the other object, the measurement attitude can be positioned in the following manner: if it is determined that the second attitude positioning feature does not match the third projection feature, the current measurement attitude is adjusted until the second attitude positioning feature matches the third projection feature; if it is determined that the second attitude positioning feature matches the third projection feature, the current measurement attitude is determined to be the target measurement attitude. Here, the second attitude positioning feature matching the third projection feature refers to the second attitude positioning feature being blocked by the object to be measured and the third projection feature cannot be projected at the position where the second attitude positioning feature is located; if the second attitude positioning feature does not match the third projection feature, at least one third projection feature can be projected at the position where the second attitude positioning feature is located.

[0135] The second posture positioning feature, the installation position angle, will be explained first.

[0136] First, when the second orientation positioning feature is installed on the object to be measured, the structure for projecting the third projection feature can be installed on the object to be measured, the measurement probe, the fixed base, or another object.

[0137] Second, when the second attitude positioning feature is installed on the measurement probe, the structure for projecting the third projection feature, the measurement probe, and the fixed seat are separate and may be installed on the object to be measured or other object, by installing the measurement probe at a position corresponding to the measurement area and then installing the measurement probe on the fixed seat.

[0138] Third, when the second positioning feature is installed on the fixed seat, the structure for projecting the third projection feature, the measurement probe, and the fixed seat are separate and may be installed on the object to be measured or other objects, similarly by installing the measurement probe at a position corresponding to the measurement area and then installing the measurement probe on the fixed seat.

[0139] Fourth, when the second positioning feature is installed on another object, the structure for projecting the third projection feature can be installed on the object to be measured, the measurement probe, the fixed base, or another object. For illustrative purposes, when the structure for projecting the third projection feature is installed on another object, the description will be omitted here, with reference to the corresponding parts above.

[0140] When the measurement posture is positioned by an optical method, on the one hand, the position and angle of the light source can be flexibly adjusted, so that it can easily match with the second posture positioning feature, and therefore the second posture positioning feature can be flexibly set, thereby reducing the difficulty of setting the second posture positioning feature, and on the other hand, the shape of the output spot can be adjusted to better match with the second posture positioning feature, thereby improving the positioning accuracy.

[0141] According to an embodiment of the present disclosure, adjusting the current measured posture to the target measured posture based on the second posture positioning feature may include the following operations.

[0142] Acquire a fifth target image. Acquire a third template image, where the third template image includes a second pose positioning feature. If it is determined that the fifth target image does not match the third template image, acquire a new fifth target image by adjusting the current measured pose until the new fifth target image matches the third template image. If it is determined that the new fifth target image matches the third template image, determine that the current measured pose is the target measured pose.

[0143] According to an embodiment of the present disclosure, to ensure flexibility of use and accuracy of measurement pose positioning, an image matching method can be adopted to achieve this, i.e., matching a fifth target image with a third template image and determining a target measurement pose based on the matching result. Here, the third template image may include a second pose positioning feature, and the position of the second pose positioning feature in the third template image may be a predetermined position. In the process of matching the fifth target image with the third template image, the fifth target image may be a target image that does not include the second pose positioning feature, a target image that includes the second pose positioning feature but whose position in the fifth target image is not a predetermined position, or a target image that includes the second pose positioning feature and whose position in the fifth target image is a predetermined position. If the third template image includes the second pose positioning feature located at a predetermined position, then when the fifth target image matches with the third template image, it can be said that the fifth target image includes the second pose positioning feature and whose position in the fifth target image is a predetermined position. In other words, the purpose of matching the fifth target image with the third template image is that the acquired fifth target image includes the second pose positioning feature and the position of the second pose positioning feature in the fifth target image is a predetermined position.

[0144] According to an embodiment of the present disclosure, if it is determined that the fifth target image matches the third template image, the current measurement posture can be described as the target measurement posture.

[0145] According to an embodiment of the present disclosure, the structure for acquiring a fifth target image may be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object may represent an object other than the measurement probe, the fixed part, and the object to be measured. The second attitude positioning feature may be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and another object. For the description of the structure for acquiring a fifth target image and the second attitude positioning feature, please refer to the description of the structure for projecting a third projection feature and the second attitude positioning feature, and the description will be omitted here. Differently, when the structure for acquiring a fifth target image is installed on the measurement probe, the second attitude positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed seat, and another object. When the structure for acquiring a fifth target image is installed on the fixed seat, the second attitude positioning feature may be installed on at least one of the object to be measured, the measurement probe, the fixed seat, and another object.

[0146] According to an embodiment of the present disclosure, adjusting the current measured posture to the target measured posture based on the second posture positioning feature may include the following operations.

[0147] A sixth target image is acquired, where the sixth target image includes a second pose positioning feature. If it is determined that the position of the second pose positioning feature in the sixth target image is not at the third predetermined position, a new sixth target image is acquired by adjusting the current measurement pose until the position of the second pose positioning feature in the new sixth target image is at the third predetermined position. If it is determined that the position of the second pose positioning feature in the new sixth target image is at the third predetermined position, it is determined that the current measurement pose is the target measurement pose.

[0148] According to an embodiment of the present disclosure, in order to ensure flexibility of use and accuracy of measurement posture positioning, an imaging method can be adopted to achieve this, that is, it can be stated that measurement posture positioning is completed when the position of the second posture positioning feature in the sixth target image is a third predetermined position.

[0149] According to an embodiment of the present disclosure, the process of implementing the measurement attitude positioning using the imaging method includes determining whether the position of the second attitude positioning feature in the sixth target image is a third predetermined position, and if the position of the second attitude positioning feature in the sixth target image is not the third predetermined position, a new sixth target image can be obtained by adjusting the current measurement attitude until the position of the second attitude positioning feature in the new sixth target image is the third predetermined position. If the position of the second attitude positioning feature in the new sixth target image is the third predetermined position, the current measurement attitude can be described as the target measurement attitude.

[0150] According to an embodiment of the present disclosure, the structure for acquiring the sixth target image may be installed on the object to be measured, the measurement probe, the fixed seat, or another object. The other object may represent an object other than the measurement probe, the fixed part, and the object to be measured. The second attitude positioning feature may be installed on at least one of the measurement probe, the fixed seat, the object to be measured, and another object. For the description of the structure for acquiring the sixth target image and the second attitude positioning feature, please refer to the description of the structure for projecting the third projection feature and the second attitude positioning feature, and the description will be omitted here.

[0151] According to an embodiment of the present disclosure, the method may further include the following operations.

[0152] Generate presentation information, where the presentation information is used to present that the measurement posture positioning and / or measurement area positioning is completed, and the form of the presentation information includes at least one of image, sound, and vibration.

[0153] According to an embodiment of the present disclosure, presentation information may be generated after the measurement posture positioning and / or measurement area positioning is completed so that the user can know in a timely manner whether the measurement posture positioning and / or measurement area positioning is completed. Here, the specific presentation format of the presentation information may include at least one of an image, a sound, and a vibration.

[0154] According to an embodiment of the present disclosure, the method may further include the following operations.

[0155] If it is determined that the fixed seat is installed at a position corresponding to the measurement area and the measurement probe is not installed at the fixed part, the measurement probe is installed on the fixed seat. If it is determined that the fixed seat is not installed at a position corresponding to the measurement area, the first engaging member is used to install the fixed seat at a position corresponding to the measurement area, and the measurement probe is installed on the fixed seat.

[0156] According to the embodiment of the present disclosure, when the measurement probe is placed at a position corresponding to the measurement area by the fixing seat, during the process of measuring the tissue components, the fixing seat can be detached from the measurement area, and the measurement probe can be detached from the fixing seat. When measurement is required, if the fixing seat is not placed at a position corresponding to the measurement area, the first engaging member can be used to place the fixing seat at a position corresponding to the measurement area, and the measurement probe can be placed on the fixing seat. If the fixing seat is placed at a position corresponding to the measurement area and the measurement probe is not placed on the fixing seat, the measurement probe can be placed on the fixing seat.

[0157] For example, for short-term measurement, the fixing seat can be installed at a position corresponding to the measurement area, and the measurement probe can be detached from the fixing seat, and when measurement is required, the measuring probe is installed on the fixing seat. For long-term measurement, the fixing seat can be detached from the measurement area, and when measurement is required, the fixing seat can be installed at a position corresponding to the measurement area by the first engaging member, and the measuring probe is installed on the fixing seat.

[0158] According to an embodiment of the present disclosure, the method may further include the following operations.

[0159] If it is determined that the measurement probe is not located at a position corresponding to the measurement region, the second engagement member is used to locate the measurement probe at a position corresponding to the measurement region.

[0160] According to an embodiment of the present disclosure, when the measurement probe is directly placed at a position corresponding to the measurement area, during the tissue component measurement process, the measurement probe can be removed from the measurement area, and when measurement is required, the measurement probe is further placed at a position corresponding to the measurement area by the second engagement member.

[0161] According to embodiments of the present disclosure, performing tissue constituent measurements using a measurement probe may include the following operations.

[0162] The measurement area is irradiated with incident light of at least one predetermined wavelength, where each incident light enters from an incident position and then exits from at least one exit position in the measurement area to form at least one exit light. A light intensity value corresponding to each exit light collected by the measurement probe is obtained, and T output light intensities are obtained, where the measurement probe includes M photosensitive surfaces, and each output light intensity is obtained by processing based on the light intensity values ​​of the exit light collected by one or more photosensitive surfaces, where 1≦T≦M. The concentration of the measured tissue constituent is determined based on the at least one output light intensity corresponding to the at least one predetermined wavelength.

[0163] According to the embodiments of the present disclosure, different measurement sites have different skin characteristics, which may include smoothness, hair, flatness, skin thickness, and softness, etc. Therefore, it is necessary to select an appropriate measurement site based on the actual situation, such as the structure of the measurement probe. The measurement site may include at least one of a finger, a palm, an arm, a forehead, and an earlobe. The measurement region may be a region in the measurement site.

[0164] According to an embodiment of the present disclosure, the predetermined wavelength may be a wavelength sensitive to the tissue constituent to be measured. The wavelength band to which the predetermined wavelength belongs may include an ultraviolet wavelength band, a visible light wavelength band, a near-infrared wavelength band, a mid-infrared wavelength band, or a far-infrared wavelength band. For example, if the tissue constituent to be measured is blood glucose, the single predetermined wavelength may be a wavelength sensitive to blood glucose, specifically 1550 nm or 1609 nm. The incident light may be collimated or non-collimated light. The incident position of the incident light may include one or more.

[0165] In the embodiments of the present disclosure, each of the M photosensitive surfaces can be used alone, in partial combination, or in full combination, where a combination means outputting a single output light intensity. In the embodiments of the present disclosure, photosensitive surfaces that output a single output light intensity are referred to as similar photosensitive surfaces, and similar photosensitive surfaces can include one or more photosensitive surfaces. Here, the condition for using different photosensitive surfaces in combination is that the average optical path length of the output light received by each photosensitive surface falls within an average optical path length range. The average optical path length range may be greater than or equal to a first average optical path length threshold and less than or equal to a second average optical path length threshold. The first average optical path length threshold and the second average optical path length threshold can be determined according to the average optical path length and the optical path length change width. The average optical path length is the average calculated from the average optical path lengths of the output light received at each photosensitive position of the similar photosensitive surfaces. For example, if the optical path length average value is a and the optical path length variation range is ±30%, the first average optical path length threshold may be 0.7a and the second average optical path length threshold may be 1.3a.

[0166] The mean optical path length is explained below. The transmission path of light in tissue can be expressed by optical path length and penetration depth, where optical path length is used to indicate the total distance light propagates through tissue, and penetration depth is used to indicate the maximum vertical distance light can reach in tissue. For a determined source-probe distance, mean optical path length is used to indicate the average optical path length of light in tissue. The probability distribution function of the optical path length can be understood to be a function of the source-probe distance and tissue optical parameters, where the source-probe distance indicates the radial distance between the center of the incident light and the center of the photosensitive surface. Correspondingly, in a mathematical formula, the mean optical path length can be understood to be a function of the source-probe distance and tissue optical parameters, where the tissue optical parameters can include the absorption coefficient, scattering coefficient, and anisotropy factor. Note that factors that affect the mean optical path length include the absorption coefficient, scattering coefficient, anisotropy factor, and source-probe distance.

[0167] According to the embodiments of the present disclosure, the same photosensitive surface may be an annular photosensitive surface or a non-annular photosensitive surface. The expression "the same photosensitive surface is an annular photosensitive surface" refers to a case where the same photosensitive surface includes one photosensitive surface and the same photosensitive surface is an independent annular photosensitive surface. The expression "the same photosensitive surface is an annular photosensitive surface" refers to a case where the same photosensitive surface includes multiple photosensitive surfaces and the same photosensitive surface is an annular photosensitive surface formed by combining multiple photosensitive surfaces. The expression "the same photosensitive surface is an annular photosensitive surface" refers to a case where the same photosensitive surface includes one photosensitive surface and the same photosensitive surface is an independent non-annular photosensitive surface. The expression "the same photosensitive surface is an annular photosensitive surface formed by combining multiple photosensitive surfaces" refers to a case where the same photosensitive surface includes multiple photosensitive surfaces and the same photosensitive surface is an annular photosensitive surface formed by combining multiple photosensitive surfaces.

[0168] After obtaining at least one output light intensity corresponding to a predetermined wavelength, a differential measurement method can be adopted to process the at least one output light intensity to determine the concentration of the measured tissue constituent. The differential measurement method can include a time differential measurement method, a position differential measurement method, or a wavelength differential measurement method. Alternatively, a non-differential measurement method can also be adopted to process the at least one output light intensity to determine the concentration of the measured tissue constituent.

[0169] According to an embodiment of the present disclosure, determining the concentration of the measured tissue constituent based on at least one output light intensity corresponding to at least one predetermined wavelength may include the following operations.

[0170] For each predetermined wavelength among at least one predetermined wavelength, a first output light intensity and a second output light intensity are determined from the two output light intensities corresponding to the predetermined wavelength, a differential signal is obtained by differential processing of the first output light intensity and the second output light intensity corresponding to the predetermined wavelength, and a concentration of the measured tissue constituent is determined based on the differential signal corresponding to each predetermined wavelength.

[0171] According to an embodiment of the present disclosure, the mean optical path length of output light corresponding to a first output light intensity is different from the mean optical path length of output light corresponding to a second output light intensity. The differential processing when differentially processing the first output light intensity and the second output light intensity corresponding to a predetermined wavelength may include a hardware processing method and a software processing method. Here, the hardware processing method may include processing using a differential circuit. The software processing method may include performing the differential calculation using a differential algorithm. The differential algorithm may include a direct differential calculation and a logarithmic differential calculation. Here, the direct differential calculation is a process of directly calculating the difference between two parameters. The logarithmic differential calculation is a process of first taking the logarithm of two parameters, obtaining the parameter after taking the logarithm, and then calculating the difference between the two logarithmic parameters.

[0172] According to the embodiment of the present disclosure, each photosensitive surface can collect light intensity values ​​of the emitted light from an emission position within a predetermined anti-blur range corresponding to the photosensitive surface.

[0173] According to the embodiments of the present disclosure, in the process of realizing the concept of the present disclosure, the inventors further discovered that, when other conditions remain unchanged, changing only the intensity distribution of the spot that irradiates the measurement area with incident light results in different measurement results. When a photosensitive surface is placed close to a blood vessel, the measurement results obtained when the same photosensitive surface is placed farther from the blood vessel are compared, when other conditions remain unchanged, and the measurement results obtained when the surface is placed farther from the blood vessel are superior to the measurement results obtained when the surface is placed closer to the blood vessel. Here, the measurement results can be expressed by the relative change in the light intensity value received by the photosensitive surface or the standard deviation of the light intensity value. The smaller the relative change in the light intensity value, the better the measurement result, and the smaller the standard deviation of the light intensity value, the better the measurement result. When investigating the causes of the different measurement results, changing the intensity distribution of the spot that irradiates the measurement area with incident light can indicate the randomness of the light source illumination, and the proximity of the measurement area to the blood vessel can indicate the strength or weakness of the pulse pulsation. The randomness of the light source illumination and the pulse pulsation are both sources of blur. This led to the discovery that one of the reasons for the low measurement accuracy was shaking.

[0174] Based on the study of blur, it has been found that blur can be divided into internal and external sources based on the different causes of blur. Here, internal sources can include not only pulse pulsation but also physiological background fluctuations. External sources can include not only the randomness of light source illumination but also the uncertainty of the transmission of the incident light itself. The randomness of light source illumination can be embodied by the distribution of the intensity of the incident light irradiated on the measurement area. It has been found that blur caused by internal sources and blur caused by external sources both affect the transmission path of light within the tissue, and further affect the intensity distribution of the output light on the measurement area.

[0175] To solve the problem of difficulty in obtaining actual measured tissue component signals due to blur, the inventors discovered that a solution using a large-area photosensitive surface to collect the light intensity values ​​of the emitted light can be adopted, thereby effectively suppressing the adverse effects of blur on the measurement results. That is, a large-area photosensitive surface can effectively suppress the adverse effects of blur, and a so-called "large-area photosensitive surface" can be understood as a photosensitive surface that, due to its area, can collect the light intensity values ​​of the emitted light from an emission position within a predetermined blur-prevention range. Below, the reasons for adopting a solution using a large-area photosensitive surface to collect the output light intensity of the emitted light will be specifically explained, and the adverse effects of blur on the measurement results can be effectively suppressed.

[0176] A large-area photosensitive surface can increase the ratio of the area of ​​the photosensitive surface that stably receives the emitted light to the area of ​​the photosensitive surface, thereby improving the stability of the emitted light, thereby reducing the adverse effects of changes in the intensity distribution of the emitted light due to shaking, and thereby improving the possibility of acquiring an actual signal of the tissue component to be measured. Here, stability is expressed by the relative change in the light intensity value of the emitted light received by the photosensitive surface or the standard deviation of the light intensity value, and the smaller the relative change in the light intensity value, the higher the stability, and the smaller the standard deviation of the light intensity value, the higher the stability.

[0177] Schematically, blurring caused by pulse pulsation will be described as an example. Pulsation of the pulse can be reflected by the state of blood vessels. FIG. 11 is a schematic diagram illustrating a small-area photosensitive surface receiving emitted light when blurring occurs according to an embodiment of the present disclosure. FIG. 12 is a schematic diagram illustrating a large-area photosensitive surface receiving emitted light when blurring occurs according to an embodiment of the present disclosure. The blurring occurring in FIGS. 11 and 12 is the same. The area of ​​photosensitive surface A in FIG. 11 is smaller than the area of ​​photosensitive surface B in FIG. 12. Both photosensitive surface A and photosensitive surface B are square photosensitive surfaces. In FIGS. 11 and 12, vascular state 1 indicates a vasoconstricted state, vascular state 2 indicates a vasodilated state, skin state 1 indicates a skin state corresponding to vascular state 1, and skin state 2 indicates a skin state corresponding to vascular state 2. Blurring occurs from skin state 1 to skin state 2.

[0178] When the same vibration occurs, the measurement results obtained using photosensitive surfaces with different areas are compared. The measurement results are represented by the relative change in the light intensity value or the standard deviation of the light intensity value when the photosensitive surface receives the emitted light within a predetermined time period. Here, the relative change in the light intensity value can be determined as follows: That is, the difference between the maximum light intensity value and the minimum light intensity value within the predetermined time period is calculated, the average emitted light value within the predetermined time period is calculated, and the ratio between the difference value and the average value is calculated, and this ratio is used as the relative change in the light intensity value. The predetermined time period may be one pulsation period.

[0179] The measurement results are expressed using the relative change in the light intensity value when the outgoing light is received on the photosensitive surface, or the standard deviation in the light intensity value when the outgoing light is received on the photosensitive surface. Both the measurement results obtained using photosensitive surface B are superior to the measurement results obtained using photosensitive surface A.

[0180] It can be explained that the area of ​​photosensitive surface B is larger than that of photosensitive surface A, and therefore the large-area photosensitive surface can improve the stability of receiving the emitted light, thereby reducing the adverse effects of changes in the intensity distribution of the emitted light due to shaking, and thereby improving the possibility of obtaining the actual measured tissue component signal.

[0181] It should be noted that the large-area photosensitive surface described in the embodiments of the present disclosure can achieve high stability and efficiency in receiving the emitted light when it is close to the surface of the measurement area, i.e., when it is close to the surface of the measurement area. This cannot be achieved by receiving using a single-point optical fiber or a combination of multiple single optical fibers. The reasons for this are, first, that it is limited by the numerical aperture of the optical fiber. Second, it is limited by the change in the state of the optical fiber. The change in the state of the optical fiber is easily affected by the environment, which has a significant impact on the stability of receiving the emitted light.

[0182] It should be noted that a large-area photosensitive surface can generally be used to improve the signal-to-noise ratio of the output light intensity, in other words, a large-area photosensitive surface can not only improve the efficiency of the output light intensity, but also effectively suppress blur.

[0183] To improve the likelihood of obtaining actual measured tissue component signals, it is necessary to ensure that each photosensitive surface can collect the light intensity values ​​of the emitted light from the emission position within the predetermined anti-blur range corresponding to the photosensitive surface, and therefore the area of ​​the photosensitive surface must be as large as possible. Each photosensitive surface has a corresponding predetermined anti-blur range, and the predetermined anti-blur ranges of different photosensitive surfaces may be the same or different. The following examples will be used to explain from three perspectives that the larger the area of ​​the photosensitive surface, the greater the blur suppression effect. The area of ​​photosensitive surface A is preset to be smaller than the area of ​​photosensitive surface B. Photosensitive surface A and photosensitive surface B are both square photosensitive surfaces.

[0184] First, it suppresses fluctuations caused by pulse pulsation. Photosensitive surface A and photosensitive surface B are placed at the same position in the measurement area, close to the blood vessels. Under other conditions, the measurement results obtained using photosensitive surface A and photosensitive surface B are compared, where the measurement results are expressed as the relative change in light intensity value or the standard deviation of light intensity value when the photosensitive surface receives the emitted light within one pulsation cycle. The calculation method for the relative change in light intensity value has been described above, and its explanation will be omitted here. It is found that the relative change in light intensity value when the photosensitive surface B receives the emitted light is smaller than the relative change in light intensity value when the photosensitive surface A receives the emitted light, and the standard deviation of light intensity value when the photosensitive surface B receives the emitted light is smaller than the standard deviation of light intensity value when the photosensitive surface A receives the emitted light. As can be seen, whether the measurement results are expressed as the relative change in the light intensity value of the outgoing light received by the photosensitive surface or the standard deviation of the light intensity value of the outgoing light received by the photosensitive surface, the measurement results obtained using photosensitive surface B are superior to the measurement results obtained using photosensitive surface A.

[0185] The measurement results obtained using photosensitive surface B are superior to those obtained using photosensitive surface A, and at the same time, the area of ​​photosensitive surface B is larger than that of photosensitive surface A. This explains why the larger the area of ​​the photosensitive surface, the greater the effect of suppressing blurring caused by pulse pulsation.

[0186] Second, blurring caused by changes in the intensity distribution of the spot where incident light is irradiated onto the measurement area is suppressed. When other conditions remain unchanged, only the intensity distribution of the spot where incident light is irradiated onto the measurement area is changed. The measurement results obtained using photosensitive surface A and photosensitive surface B are compared. Here, the measurement results are expressed as the relative change in the light intensity value or the standard deviation of the light intensity value when the photosensitive surface receives the outgoing light within a specified time period. The calculation method for the relative change in the light intensity value has been described above, and will not be explained here. The change in the light intensity value when photosensitive surface B receives the outgoing light is smaller than the change in the light intensity value when photosensitive surface A receives the outgoing light, and the standard deviation of the light intensity value when photosensitive surface B receives the outgoing light is smaller than the standard deviation of the light intensity value when photosensitive surface A receives the outgoing light. As can be seen, whether the measurement results are expressed as the relative change in the light intensity value when the photosensitive surface receives the outgoing light or the standard deviation of the light intensity value when the photosensitive surface receives the outgoing light, the measurement results obtained using photosensitive surface B are superior to the measurement results obtained using photosensitive surface A.

[0187] The measurement results obtained using photosensitive surface B are superior to those obtained using photosensitive surface A, and at the same time, the area of ​​photosensitive surface B is larger than that of photosensitive surface A. This explains why the larger the area of ​​the photosensitive surface, the greater the effect of suppressing blurring caused by changes in the intensity distribution of the spot where incident light is irradiated onto the measurement area.

[0188] Third, the blurring caused by the uncertainty of the transmission of the incident light itself is suppressed. The Monte Carlo simulation method is used. The number of photons is 10 15The incident light was centered on the photosensitive surface, and photosensitive surface A and photosensitive surface B were each positioned 2.4 mm away from the center of the incident light. The simulation was performed 22 times. The measurement results obtained using photosensitive surface A and photosensitive surface B were compared. The measurement results were expressed in terms of the standard deviation of the number of emitted photons per unit area. It was noted that the smaller the standard deviation of the number of emitted photons per unit area, the higher the suppression effect. Figure 13 shows a schematic diagram of the measurement results obtained based on the Monte Carlo simulation method according to an embodiment of the present disclosure. It was found that the standard deviation of the number of emitted photons per unit area corresponding to photosensitive surface B was smaller than the standard deviation of the number of emitted photons per unit area corresponding to photosensitive surface A. That is, the measurement results obtained using photosensitive surface B were superior to those obtained using photosensitive surface A.

[0189] The measurement results obtained using photosensitive surface B are superior to those obtained using photosensitive surface A, and at the same time, the area of ​​photosensitive surface B is larger than the area of ​​photosensitive surface A. This explains why the larger the area of ​​the photosensitive surface, the greater the effect of suppressing blurring due to uncertainty in the transmission of the incident light itself.

[0190] The above three examples illustrate that the larger the area of ​​the photosensitive surface, the greater the effect of suppressing the adverse effects of shaking on the measurement results.

[0191] According to an embodiment of the present disclosure, the percentage of the average optical path length in the target tissue layer of the emitted light received by each photosensitive surface to the total optical path length is greater than or equal to a proportionality threshold, where the total optical path length is the total distance transmitted within the measurement area of ​​the emitted light.

[0192] According to an embodiment of the present disclosure, the tissue model of the object to be measured generally has a layered structure, i.e., it can be divided into one layer or multiple layers. Because the information of the measured tissue constituents in different tissue layers is different, to improve the possibility of acquiring an actual measured tissue constituent signal, the transmission path of the emitted light should be primarily through a tissue layer that carries information of the measured tissue constituent in abundance. The target tissue layer can be understood as a tissue layer that carries information of the measured tissue constituent in abundance, or as a tissue layer that is the main source of the measured tissue constituent. In the following description, the object to be measured is a human body, and the measured tissue constituent is blood glucose, as an example.

[0193] The human skin tissue model can be understood as a three-layer model, consisting of the epidermis layer, dermis layer, and subcutaneous fat layer from the outside to the inside. Here, the epidermis layer contains a small amount of tissue fluid but does not contain plasma or lymph. The dermis layer contains a large amount of tissue fluid and, due to the presence of abundant capillaries, contains more plasma and a small amount of lymph. The subcutaneous fat layer contains a small amount of intercellular fluid and, due to the presence of blood vessels such as veins and arteries, contains a large amount of plasma and a small amount of lymph. As can be seen, the information on the measured tissue components in different tissue layers is different.

[0194] The epidermis layer is not a suitable source of blood glucose information because it contains a small amount of tissue fluid. Although the subcutaneous fat layer contains a large amount of plasma and a relatively small amount of tissue fluid, the subcutaneous fat layer is also not a suitable source of blood glucose information due to the limited penetration depth of incident light. Because the dermis layer contains abundant capillaries and a large amount of tissue fluid, and incident light can reach the dermis layer relatively easily, the dermis layer can be the main source of blood glucose information. Accordingly, the target tissue layer can be the dermis layer.

[0195] According to embodiments of the present disclosure, the average optical path length of the emitted light in each tissue layer can be determined based on the optical path length and penetration depth.

[0196] To ensure that the transmission path of the output light is mainly the output light passing through the target tissue layer, the proportion of the average optical path length in the target tissue layer of the output light received by each photosensitive surface to the total optical path length must be equal to or greater than a proportional threshold, where the total optical path length may be the total distance the output light travels within the measurement area, i.e., the total distance the incident light travels from entering the measurement area to transmitting within the measurement area and reaching the output position, where the proportional threshold is related to the light source-probe distance between the center of the photosensitive surface and the center of the incident light and the tissue optical parameters.

[0197] It should be noted that the embodiment of the present disclosure limits the proportion of the average optical path length in the target tissue layer of the emitted light received by the photosensitive surface that accounts for the total optical path length, so the area of ​​the photosensitive surface of the embodiment of the present disclosure cannot be too large, which is a large area within the area range.

[0198] According to an embodiment of the present disclosure, the method may further include the following operations.

[0199] A total area of ​​the similar photosensor surface is determined based on the tissue structure features within the measurement region, where the similar photosensor surface includes one or more photosensor surfaces, and the similar photosensor surface is used to output one output light intensity.

[0200] According to embodiments of the present disclosure, the total area of ​​the homogeneous photosensitive surface can be determined based on the texture features within the measurement area, where the texture features can be understood to be structural features possessed by the measurement area.

[0201] For example, if the measurement area is an area where three blood vessels intersect, and the same photosensitive surface is placed in the area where the three blood vessels intersect, the total area of ​​the same photosensitive surface is limited to the area where the three blood vessels intersect, that is, the total area of ​​the same photosensitive surface needs to be determined based on the area where the three blood vessels intersect.

[0202] For example, if the measurement area is the area where the finger is located and the similar photosensitive surface is placed in the area where the finger is located, the total area of ​​the similar photosensitive surface is limited to the area of ​​the area where the finger is located, that is, the total area of ​​the similar photosensitive surface needs to be determined based on the area of ​​the area where the finger is located.

[0203] It should be noted that the area of ​​the photosensitive surface in the embodiments of the present disclosure can be determined based on the tissue structure characteristics, and generally, the area determined based on the tissue structure characteristics cannot be too large, therefore, the area of ​​the photosensitive surface in the embodiments of the present disclosure cannot be too large, and it is a large area within the area range.

[0204] According to an embodiment of the present disclosure, the ratio of the area of ​​each photosensitive surface to the perimeter of the photosensitive surface is equal to or greater than a ratio threshold.

[0205] According to an embodiment of the present disclosure, in order to reduce the influence of the uncertainty of transmission of incident light, the randomness of the light source, physiological background fluctuations, and pulse fluctuations on the distribution of emitted light in the measurement area, the ratio of the area of ​​the photosensitive surface to the perimeter of the photosensitive surface can be made as large as possible for the following reasons:

[0206] For ease of explanation, the photosensitive surface is divided into two parts: an edge part and a non-edge part (or inner part). Generally, blurring mainly affects the emitted light collected at the edge part, while the non-edge part is less affected, meaning that the non-edge part can stably collect the emitted light. From another perspective, when blurring occurs, subtle changes occur in the intensity distribution of the emitted light in the measurement area, and the light intensity value of the emitted light received by the edge part changes significantly in accordance with the change in the intensity distribution of the emitted light. Since most of the emitted light located in the non-edge part is stably collected by the photosensitive surface, the light intensity value of the emitted light received by the non-edge part can be maintained relatively stable. Therefore, to effectively suppress the adverse effects of blurring on measurement results, the ratio of the area corresponding to the non-edge part to the area of ​​the photosensitive surface can be maximized; the greater the ratio, the greater the effect of reducing the adverse effects. Here, the edge part can be represented by the perimeter of the photosensitive surface, and the non-edge part can be represented by the area of ​​the photosensitive surface. Therefore, the ratio of the area of ​​the photosensitive surface to the perimeter of the photosensitive surface can be maximized.

[0207] For example, if photosensitive surface 1 is a circular photosensitive surface and photosensitive surface 2 is a square photosensitive surface, and the perimeters are the same, the area of ​​photosensitive surface 1 is larger than the area of ​​photosensitive surface 2, and therefore the ratio of the area to the perimeter of photosensitive surface 1 is larger than the ratio of the area to the perimeter of photosensitive surface 2, and therefore the effect of reducing the adverse effects of photosensitive surface 1 is greater than the effect of reducing the adverse effects of photosensitive surface 2.

[0208] It should be explained that the ratio of the area of ​​the photosensitive surface to the perimeter of the photosensitive surface equal to or greater than the ratio threshold satisfies the condition that the area of ​​the photosensitive surface is equal to or greater than the area threshold. For most shapes of photosensitive surfaces, if the ratio of the area of ​​the photosensitive surface to the perimeter of the photosensitive surface is equal to or greater than the ratio threshold, then the size of the area of ​​the photosensitive surface is actually limited. Generally, for most shapes of figures, the ratio of the area to the perimeter of the figure has a positive correlation with the size of the area, i.e., the larger the ratio of the area to the perimeter of the figure, the larger the area of ​​the figure. For example, for a circle, the area of ​​the circle is πR 2The ratio of the area to the perimeter of a circle is R / 2, where R represents the radius. The size of the ratio of the area to the perimeter of a circle is related only to the radius, and the size of the area of ​​a circle is related only to the radius. Therefore, the ratio of the area to the perimeter of a circle has a positive correlation with the size of the area, and if you limit the ratio of the area to the perimeter of a circle, the size of the area of ​​the circle will also be limited. For example, if the area of ​​a square is a 2 The ratio of the square's area to its perimeter is a / 4, where a represents the side length. The size of the ratio of the square's area to its perimeter is related only to the side length, and the size of the square's area is related only to the side length. Therefore, the ratio of the square's area to its perimeter has a positive correlation with the size of the area, and limiting the ratio of the square's area to its perimeter also limits the size of the square's area.

[0209] According to an embodiment of the present disclosure, the ratio threshold is 0.04 mm or greater.

[0210] According to an embodiment of the present disclosure, the area of ​​the photosensitive surface of the present disclosure is relatively large, that is, the area of ​​the photosensitive surface is large within the area range.

[0211] First, the area of ​​the photosensitive surface cannot be too small. The large-area photosensitive surface of the embodiment of the present disclosure allows the photosensitive surface to collect light intensity values ​​of the output light from the output position within a predetermined anti-shake range, so the large area of ​​the large-area photosensitive surface of the embodiment of the present disclosure is a large area for achieving anti-shake, and at the same time, the ratio of the area of ​​the photosensitive surface to the perimeter of the photosensitive surface indicates that the area of ​​the photosensitive surface allows the photosensitive surface to collect light intensity values ​​of the output light from the output position within a predetermined anti-shake range. Generally, the ratio of the area of ​​the photosensitive surface to the perimeter of the photosensitive surface has a positive correlation with the area of ​​the photosensitive surface. Therefore, when the ratio of the area of ​​the photosensitive surface to the perimeter of the photosensitive surface is equal to or greater than a ratio threshold, the size of the area of ​​the photosensitive surface is actually limited, that is, when the ratio of the area of ​​the photosensitive surface to the perimeter of the photosensitive surface is equal to or greater than a ratio threshold, it can be limited that the area of ​​the photosensitive surface cannot be too small.

[0212] Second, the area of ​​the photosensitive surface cannot be too large. The embodiments of the present disclosure require that the ratio of the average optical path length of the emitted light received by the photosensitive surface to the total optical path length in the target tissue layer is equal to or greater than a proportional threshold, and / or the area of ​​the photosensitive surface is determined based on the tissue structure characteristics, and the area of ​​the photosensitive surface as described above cannot be too large.

[0213] As can be explained by this, the photosensitive surface area of ​​the embodiments of the present disclosure is relatively large, i.e., large within the area range.

[0214] In addition, the area of ​​the photosensitive surface may be large, but the perimeter of the photosensitive surface may also be large, resulting in a low ratio between the area of ​​the photosensitive surface and the perimeter of the photosensitive surface, i.e., the ratio between the area of ​​the photosensitive surface and the perimeter of the photosensitive surface is smaller than the ratio threshold, making it difficult for an absolutely large-area photosensitive surface to meet the anti-shake requirements.In addition, the area of ​​the photosensitive surface may be too small, the perimeter of the photosensitive surface may be large, and the ratio between the area of ​​the photosensitive surface and the perimeter of the photosensitive surface may be smaller than the ratio threshold, making it difficult for an area of ​​the photosensitive surface to meet the anti-shake requirements.

[0215] FIG. 14 shows a schematic block diagram of a tissue constituent measuring device according to an embodiment of the present disclosure.

[0216] As shown in FIG. 14, the tissue constituent measuring device 1400 includes a first determining module 1410, a second determining module 1420, a setting module 1430, and a measuring module 1440.

[0217] A first determination module 1410 determines a positioning feature.

[0218] The second determination module 1420 determines a measurement area, which is an area that satisfies measurement condition reproducibility, based on the positioning feature.

[0219] The setting module 1430 places the measurement probe 1450 at a position corresponding to the measurement area.

[0220] The measurement module 1440 performs tissue constituent measurements using a measurement probe 1450 .

[0221] According to the technical solution of the embodiment of the present disclosure, by determining the positioning feature, a measurement area that satisfies the measurement reproducibility conditions is determined based on the positioning feature, a measurement probe is installed at a position corresponding to the measurement area, and tissue component measurements are performed using the measurement probe, thereby realizing accurate positioning of the measurement area and further realizing effective control of the measurement condition reproducibility.

[0222] According to an embodiment of the present disclosure, the positioning features include a first pose positioning feature and a region positioning feature.

[0223] The second determining module 1420 includes a first adjusting unit and a first determining unit.

[0224] The first adjustment unit adjusts the current measurement posture of the object to a target measurement posture based on the first posture positioning feature, where the target measurement posture is a measurement posture that satisfies measurement condition repeatability. The first determination unit determines a measurement region based on the region positioning feature when the current measurement posture is the target measurement posture.

[0225] As shown in FIG. 15 , according to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a fixing unit 1460, which positions the measuring probe 1450 at a position corresponding to the measurement area, and wherein the fixing unit 1460 is integral with the measuring probe 1450, partially separate from the measuring probe 1450, or completely separate from the measuring probe 1450.

[0226] According to an embodiment of the present disclosure, the fixed portion 1460 and the measurement probe 1450 in FIG. 15 may be integral or separate.

[0227] As shown in FIG. 16, according to an embodiment of the present disclosure, the fixing portion 1460 includes a fixing seat 1461 and a first engagement member 1462 .

[0228] The first engaging member 1462 positions the fixing seat 1461 at a position corresponding to the measurement area. The fixing seat 1461 fixes the measurement probe 1450.

[0229] According to an embodiment of the present disclosure, the hardness of the first engaging member 1462 includes a first hardness and a second hardness, where the first hardness is smaller than the second hardness, the first hardness is the hardness corresponding to the process in which the first engaging member 1462 fixes the fixing seat 1461, and the second hardness is the hardness corresponding to the process in which the first engaging member 1462 fixes the fixing seat 1461.

[0230] According to the embodiment of the present disclosure, the first engaging member 1462 needs to be hard so that it can perform a fixing function on the fixing seat 1461. At the same time, the first engaging member 1462 needs to have a certain flexibility so as to minimize the impact generated when the first engaging member 1462 fixes the fixing seat 1461. For these reasons, there are requirements for the hardness of the first engaging member 1462.

[0231] To solve the above problem, a method of changing the hardness of the first engaging member 1462 may be adopted, that is, the hardness of the first engaging member 1462 includes a first hardness and a second hardness, where the first hardness indicates the hardness corresponding to the process in which the first engaging member 1462 fastens the fixing seat 1461, and the second hardness indicates the hardness corresponding to the first engaging member after the first engaging member fastens the fixing seat 1461, and the first hardness is smaller than the second hardness, so that the first engaging member not only fulfills the fixing role, but also minimizes the impact generated when the first engaging member 1462 fastens the fixing seat 1461.

[0232] According to an embodiment of the present disclosure, the first engagement member 1462 includes a first hook-and-loop fastener or a first tension band.

[0233] For example, Figure 17 shows a schematic diagram of a first engagement member according to an embodiment of the present disclosure. In Figure 17, the first engagement member 1462 is a Velcro. The furry surface of the Velcro is very soft, which can reduce the impact generated when the first engagement member 1462 fastens the fastening seat 1461. At this time, the hardness of the first engagement member 1462 is a first hardness. At the same time, to achieve the fastening function, after the first engagement member 1462 fastens the fastening seat 1461, the hook surface is attached to the furry surface, increasing the hardness of the first engagement member 1462. At this time, the hardness of the first engagement member 1462 is a second hardness.

[0234] According to the embodiment of the present disclosure, the hardness corresponding to the process in which the first engaging member 1462 fixes the fixing seat 1461 is the first hardness, which can reduce the influence generated when the first engaging member 1462 fixes the fixing seat 1461, and therefore can ensure as much as possible that the skin condition of the skin in the measurement area meets the first predetermined condition during the process in which the first engaging member 1462 installs the fixing seat 1461 at a position corresponding to the measurement area.

[0235] According to an embodiment of the present disclosure, holes are provided on the surface of the first engagement member 1462 .

[0236] According to an embodiment of the present disclosure, the hardness of the first engagement member 1462 is greater than or equal to a first hardness threshold and less than or equal to a second hardness threshold.

[0237] According to an embodiment of the present disclosure, in addition to the above methods, to meet the hardness requirements of the first engaging member 1462, a method of manufacturing the first engaging member 1462 using a material whose hardness is equal to or greater than the first hardness threshold and equal to or less than the second hardness threshold can be adopted, so that the first engaging member 1462 can perform the fixing function on the fixing seat 1461 and minimize the impact generated when the first engaging member 1462 fixes the fixing seat 1461. It should be noted that the first hardness threshold and the second hardness threshold can be set according to actual circumstances and are not specifically limited herein.

[0238] As shown in FIG. 18 , according to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a magnetic part 1470, and all or part of the first engaging member 1462 is a metal hinge, and the magnetic part 1470 engages with the first engaging member 1462 to fix the fixing seat 1461.

[0239] According to an embodiment of the present disclosure, in addition to the above method, in order to meet the hardness requirements of the first engaging member 1462, a method in which all or part of the first engaging member 1462 is a metal hinge can also be adopted, which can also allow the first engaging member 1462 to perform a fixing function on the fixing seat 1461 and minimize the impact generated when the first engaging member 1462 fixes the fixing seat 1461.

[0240] The fixing function is achieved as follows. After the first engaging member 1462 is fixed to the fixing seat 1461, the magnetic part 1470 can be attached to the first engaging member 1462, so that the magnetic part 1470 engages with the first engaging member 1462 to fix the fixing seat 1461, thereby achieving the fixing function. Please refer to FIG. 18. FIG. 18 schematically shows a schematic view of another first engaging member 1462 according to an embodiment of the present invention. In FIG. 18, all of the first engaging members 1462 are metal hinges. After the first engaging member 1462 is fixed to the fixing seat 1461, the magnetic part 1470 can be attached to the first engaging member 1462. The magnetic part 1470 may be a micro-electromagnetic part 1470.

[0241] In addition, since the metal hinge is made of a ferromagnetic metal, the metal is prone to heat absorption, and if the metal hinge comes into direct contact with the skin, it will have a significant effect on the skin temperature. Therefore, to avoid the effect of metal heat absorption on the skin temperature, a method of placing an insulating material under the metal hinge can be adopted. Alternatively, the insulating material can be cotton cloth.

[0242] The above is possible for the following reasons: the high flexibility of the metal hinge reduces the impact generated when the first engaging member 1462 engages the fixing seat 1461. At the same time, after the first engaging member 1462 is fixed to the fixing seat 1461, the magnetic portion is attracted to the first engaging member 1462, and the engagement between the two makes the first engaging member 1462 harder, thereby achieving the fixing effect.

[0243] It should be noted that since all or part of the first engaging member 1462 is a metal hinge, the flexibility of the metal hinge is high, which can reduce the impact generated when the first engaging member 1462 fixes the fixing seat 1461, and therefore can ensure as much as possible that the skin condition of the skin in the measurement area meets the first predetermined condition during the process of the first engaging member 1462 positioning the fixing seat 1461 at a position corresponding to the measurement area.

[0244] According to an embodiment of the present disclosure, the measurement probe 1450 is fixed to the fixing seat 1461 by at least one of the following methods: the measurement probe 1450 is fixed to the fixing seat 1461 by tape; the measurement probe 1450 is fixed to the fixing seat 1461 by a fastening member; or the measurement probe 1450 is fixed to the fixing seat 1461 by magnetic force; and the coefficient of friction between the measurement probe 1450 and the fixing seat 1461 is greater than or equal to a friction coefficient threshold.

[0245] According to an embodiment of the present disclosure, to ensure that the measurement probe 1450 is fixed to the fixed seat 1461 and that the measurement probe 1450 does not move within the fixed seat 1461, at least one of the following methods can be adopted:

[0246] Method 1: The measuring probe 1450 can be fixed to the fixing seat 1461 by tape. Method 2: The measuring probe 1450 can be fixed to the fixing seat 1461 by a fastening member. Method 3: The measuring probe 1450 can be fixed to the fixing seat 1461 by magnetic force. Method 4: The coefficient of friction between the measuring probe 1450 and the fixing seat 1461 is greater than or equal to the friction coefficient threshold. Alternatively, the material of the fixing seat 1461 is rubber.

[0247] According to an embodiment of the present disclosure, the securing portion 1460 includes a second engaging member.

[0248] The second engagement member positions the measurement probe 1450 at a location corresponding to the measurement area.

[0249] According to an embodiment of the present disclosure, the hardness of the second engaging member includes a third hardness and a fourth hardness, wherein the third hardness is smaller than the fourth hardness, the third hardness is the hardness corresponding to the process in which the second engaging member fixes the measurement probe 1450, and the fourth hardness is the hardness corresponding to the process in which the second engaging member fixes the measurement probe 1450.

[0250] According to an embodiment of the present disclosure, the second engagement member includes a second hook-and-loop fastener or a second tension band.

[0251] According to an embodiment of the present disclosure, a hole is provided on the surface of the second engagement member.

[0252] According to an embodiment of the present disclosure, the hardness of the second engagement member is greater than or equal to a third hardness threshold and less than or equal to a fourth hardness threshold.

[0253] According to an embodiment of the present disclosure, the related description of the second engaging member can refer to the above description of the first engaging member 1462, and will not be described in detail here. Differently, the second engaging member is used to fix the measurement probe 1450.

[0254] According to an embodiment of the present disclosure, a first determination unit acquires a first projection feature. If it determines that the region positioning feature does not match the first projection feature, it adjusts the position of the measurement probe 1450 and / or the fixed part 1460 until the region positioning feature matches the first projection feature. If it determines that the region positioning feature matches the first projection feature, it determines a region corresponding to the measurement probe 1450 and / or the fixed part 1460 as a measurement region.

[0255] As shown in Figures 19 and 20, according to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes an area positioning unit 1480, which is installed on the object to be measured, the measurement probe 1450, the fixed unit 1460, or other objects, and the area positioning unit 1480 is used to project the first projection feature.

[0256] According to an embodiment of the present disclosure, if it is determined that the region locator 1480 is to be installed on the measurement probe 1450, then no region locating features are installed on the measurement probe 1450. If it is determined that the region locator 1480 is to be installed on the fixed portion 1460, then no region locating features are installed on the fixed portion 1460.

[0257] 19 is a schematic diagram of a region positioning unit 1480 according to an embodiment of the present disclosure. The measurement probe 1450 and the fixed unit 1460 are not shown in FIG. 19, and the region positioning unit 1480 projects a first projected feature, which is a cross spot. The region positioning feature is a cross mark.

[0258] 20 is a schematic diagram of another region positioning unit 1480 according to an embodiment of the present invention. In FIG. 20, the region positioning unit 1480 is integrated with the measurement probe 1450 and the fixed unit 1460, and the region positioning feature is placed on the back of the hand of the subject to be measured. The region positioning unit 1480 is used to project a first projection feature, which is a cross spot.

[0259] According to an embodiment of the present disclosure, the region locator 1480 includes a first laser.

[0260] According to embodiments of the present disclosure, the first laser can project a spot of a predetermined shape to form the first projected feature.

[0261] According to an embodiment of the present disclosure, a first determination unit acquires a first target image; acquires a first template image including region positioning features; if it determines that the first target image does not match the first template image, acquires a new first target image by adjusting the position of the measurement probe 1450 and / or the fixed part 1460 until the new first target image matches the first template image; if it determines that the first target image matches the first template image, determines a region corresponding to the measurement probe 1450 and / or the fixed part 1460 as the measurement region.

[0262] As shown in FIG. 21 , according to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a first image acquisition unit 1490, which is mounted on the object to be measured, the measurement probe 1450, the fixed part 1460, or other objects, and the first image acquisition unit 1490 is used to acquire a first target image.

[0263] According to an embodiment of the present disclosure, FIG. 21 schematically illustrates a schematic diagram of a first image capture unit according to an embodiment of the present disclosure. In FIG. 21, the first image capture unit 1490 is integrated with the measurement probe 1450 and the fixed part 1460, and the region positioning feature is placed on the back of the hand of the subject to be measured. The first image capture unit 1490 is used to capture a first target image. The first image capture unit 1490 may be an image sensor.

[0264] According to an embodiment of the present disclosure, the first determination unit acquires a second target image, where the second target image includes a region positioning feature. If it determines that the position of the region positioning feature in the second target image is not the first predetermined position, it acquires a new second target image by adjusting the position of the measurement probe 1450 and / or the fixed part 1460 so that the position of the region positioning feature in the new second target image is the first predetermined position. If it determines that the position of the region positioning feature in the new second target image is the first predetermined position, it determines a region corresponding to the measurement probe 1450 and / or the fixed part 1460 as the measurement region.

[0265] According to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a second image acquisition unit, which is mounted on the object to be measured, the measuring probe 1450, the fixed part 1460, or other objects, and the second image acquisition unit is used to acquire a second target image.

[0266] According to an embodiment of the present disclosure, if it is determined that the second image capture unit is to be installed on the measurement probe 1450, the region positioning feature is not installed on the measurement probe 1450. If it is determined that the second image capture unit is to be installed on the fixed unit 1460, the region positioning feature is not installed on the fixed unit 1460.

[0267] According to an embodiment of the present disclosure, the second image capture unit may be the same as or different from the first image capture unit 1490 .

[0268] According to an embodiment of the present disclosure, the first adjustment unit acquires the second projection features, adjusts the current measurement posture until the first positioning features match the second projection features if it determines that the first positioning features do not match the second projection features, and determines that the current measurement posture is the target measurement posture if it determines that the first positioning features match the second projection features.

[0269] As shown in Figures 22 and 23, according to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a first posture positioning unit 1500, which is installed on the object to be measured, the measurement probe 1450, the fixed unit 1460, or other objects, and the first posture positioning unit 1500 is used to project the second projection feature.

[0270] According to an embodiment of the present disclosure, if it is determined that the first orientation positioning unit 1500 is to be installed on the measurement probe 1450, the first orientation positioning feature is not installed on the measurement probe 1450. If it is determined that the first orientation positioning unit 1500 is to be installed on the fixed unit 1460, the first orientation positioning feature is not installed on the fixed unit 1460.

[0271] According to an embodiment of the present disclosure, Fig. 22 shows a schematic diagram of a first positioning unit according to an embodiment of the present disclosure. The measurement probe 1450 and the fixed unit 1460 are not shown in Fig. 22, and the first positioning unit 1500 is used to project a second projection feature, which is a cross spot. The first positioning feature is a cross mark.

[0272] 23 is a schematic diagram of another first positioning unit according to an embodiment of the present invention. In FIG. 23, the first positioning unit 1500 is integrated with the measurement probe 1450 and the fixed unit 1460, and the first positioning feature is placed on the back of the hand of the subject to be measured. The first positioning unit 1500 is used to project the second projection feature, which is a cross spot.

[0273] According to an embodiment of the present disclosure, the first positioning unit 1500 includes a second laser.

[0274] According to embodiments of the present disclosure, the second laser can project a spot of a predetermined shape to form a second projected feature.

[0275] According to an embodiment of the present disclosure, the first adjustment unit acquires a third target image; acquires a second template image including a first pose positioning feature; if it is determined that the third target image does not match the second template image, acquires a new third target image by adjusting the current measured pose until the new third target image matches the second template image; if it is determined that the new third target image matches the second template image, determines that the current measured pose is the target measured pose.

[0276] As shown in FIG. 24 , according to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a third image acquisition unit 1510, which is installed on the object to be measured, the measurement probe 1450, the fixed part 1460, or other objects, and the third image acquisition unit 1510 is used to acquire a third target image.

[0277] According to an embodiment of the present disclosure, FIG. 24 schematically illustrates a schematic diagram of a third image capture unit according to an embodiment of the present disclosure. In FIG. 24, the third image capture unit 1510 is integrated with the measurement probe 1450 and the fixed unit 1460, and the first pose positioning feature is located on the back of the hand of the subject to be measured. The third image capture unit 1510 acquires a third target image. The third image capture unit 1510 may be an image sensor.

[0278] According to an embodiment of the present disclosure, the third image capture unit 1510, the first image capture unit 1490, and the second image capture unit may be different, some of them may be the same, or all of them may be the same.

[0279] According to an embodiment of the present disclosure, the first adjustment unit acquires a fourth target image, where the fourth target image includes a first pose positioning feature. If it is determined that the position of the first pose positioning feature in the fourth target image is not at a second predetermined position, it acquires a new fourth target image by adjusting the current measurement pose until the position of the first pose positioning feature in the new fourth target image is at the second predetermined position. If it is determined that the position of the first pose positioning feature in the new fourth target image is at the second predetermined position, it determines that the current measurement pose is the target measurement pose.

[0280] According to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a fourth image acquisition unit, which is installed on the object to be measured, the measuring probe 1450, the fixed part 1460, or other objects, and the fourth image acquisition unit is used to acquire a fourth target image.

[0281] According to an embodiment of the present disclosure, the fourth image acquisition unit, the third image acquisition unit 1510, the first image acquisition unit 1490, and the second image acquisition unit may be different, some of them may be the same, or all of them may be the same.

[0282] According to an embodiment of the present disclosure, if it is determined that the fourth image acquisition unit is to be installed on the measurement probe 1450, the first pose positioning feature is not installed on the measurement probe 1450. If it is determined that the fourth image acquisition unit is to be installed on the fixed unit 1460, the first pose positioning feature is not installed on the fixed unit 1460.

[0283] According to an embodiment of the present disclosure, the tissue constituent measuring device 1400 further includes a third determining module and an adjusting module.

[0284] The third determination module determines a second posture positioning feature when the current measurement posture is not the target measurement posture when the measurement probe 1450 is placed at a position corresponding to the measurement area, and the adjustment module adjusts the current measurement posture to the target measurement posture based on the second posture positioning feature.

[0285] According to an embodiment of the present disclosure, the adjustment module includes a first obtaining unit, a second adjusting unit, and a second determining unit.

[0286] The first acquisition unit acquires the third projection feature. If the second adjustment unit determines that the second pose positioning feature does not match the third projection feature, it adjusts the current measurement pose until the second pose positioning feature matches the third projection feature. If the second determination unit determines that the second pose positioning feature matches the third projection feature, it determines that the current measurement pose is the target measurement pose.

[0287] According to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a second positioning unit, which is mounted on the object to be measured, the measuring probe 1450, the fixed unit 1460, or other object, and which projects a third projection feature.

[0288] According to an embodiment of the present disclosure, if it is determined that the second orientation positioning unit is to be installed on the measurement probe 1450, the second orientation positioning feature is not installed on the measurement probe 1450 and the fixed unit 1460. If it is determined that the second orientation positioning unit is to be installed on the fixed unit 1460, the second orientation positioning feature is not installed on the measurement probe 1450 and the fixed unit 1460.

[0289] According to an embodiment of the present disclosure, the second orientation positioning unit may be the same as or different from the first orientation positioning unit 1500 .

[0290] According to an embodiment of the present disclosure, the second attitude positioning unit includes a third laser.

[0291] According to an embodiment of the present disclosure, the third laser can project a spot of a predetermined shape to form a third projected feature.

[0292] According to an embodiment of the present disclosure, the adjustment module includes a second obtaining unit, a third obtaining unit, a third adjusting unit, and a third determining unit.

[0293] The second acquisition unit acquires a fifth target image. The third acquisition unit acquires a third template image including the second pose positioning feature. If the third adjustment unit determines that the fifth target image does not match the third template image, it acquires a new fifth target image by adjusting the current measured pose until the new fifth target image matches the third template image. If the third determination unit determines that the new fifth target image matches the third template image, it determines that the current measured pose is the target measured pose.

[0294] According to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a fifth image acquisition unit, which is installed on the object to be measured, the measuring probe 1450, the fixed part 1460, or other objects, and the fifth image acquisition unit acquires a fifth target image.

[0295] According to an embodiment of the present disclosure, the adjustment module includes a fourth obtaining unit, a fourth adjusting unit, and a fourth determining unit.

[0296] The fourth acquisition unit acquires a sixth target image, where the sixth target image includes the second pose positioning feature. If the fourth adjustment unit determines that the position of the second pose positioning feature in the sixth target image is not at the third predetermined position, it acquires a new sixth target image by adjusting the current measurement pose until the position of the second pose positioning feature in the new sixth target image is at the third predetermined position. If the fourth determination unit determines that the position of the second pose positioning feature in the new sixth target image is at the third predetermined position, it determines that the current measurement pose is the target measurement pose.

[0297] According to an embodiment of the present disclosure, the tissue component measuring device 1400 further includes a sixth image acquisition unit, which is installed on the object to be measured, the measuring probe 1450, the fixed part 1460, or other objects, and the sixth image acquisition unit acquires a sixth target image.

[0298] According to an embodiment of the present disclosure, if it is determined that the sixth image acquisition unit is installed on the measurement probe 1450, the second pose positioning feature is not installed on the measurement probe 1450 and the fixed unit 1460. If it is determined that the sixth image acquisition unit is installed on the fixed unit 1460, the second pose positioning feature is not installed on the measurement probe 1450 and the fixed unit 1460.

[0299] According to an embodiment of the present disclosure, the sixth image acquisition unit, the fifth image acquisition unit, the fourth image acquisition unit, the third image acquisition unit 1510, the first image acquisition unit 1490 and the second image acquisition unit may be different, some of them may be the same, or all of them may be the same.

[0300] According to an embodiment of the present disclosure, when an optical method is used to position the measurement region and measurement posture, the region positioning unit 1480, the first posture positioning unit 1500, and the second posture positioning unit may be all the same, partially the same, or completely different, where partially the same refers to two of the three structures being the same. If all three structures are the same, it can be understood that the same structure is used to generate the first projection feature, the second projection feature, and the third projection feature. This method can simplify the complexity of the positioning structure.

[0301] When using an image matching method to locate the measurement area and measurement posture, the first image acquisition unit 1490, the third image acquisition unit 1510, and the fifth image acquisition unit may be all the same, partially the same, or completely different, where partially the same refers to two of the three structures being the same. If all three structures are the same, it can be understood that the same structure is used to generate the first target image, the third target image, and the fifth target image. This method can simplify the complexity of the positioning structure.

[0302] When an imaging method is used to position the measurement area and measurement posture, the second image acquisition unit, the fourth image acquisition unit, and the sixth image acquisition unit may all be the same, some of them may be the same, or all of them may be different. The aforementioned partial sameness refers to two of the three types of structures being the same. If all three types of structures are the same, it can be explained that the same structure is used to generate the second target image, the fourth target image, and the sixth target image. The above method can simplify the complexity of the positioning structure. The following explanation takes the optical method as an example.

[0303] The region positioning unit 1480, the first posture positioning unit 1500, and the second posture positioning unit have the same configuration. The second posture positioning features and the region positioning features are completely the same, and are partially the same as the first posture positioning features. The measurement region is the extensor side of the forearm.

[0304] 25 is a schematic diagram illustrating the positioning of the measurement posture and the measurement region according to an embodiment of the present disclosure. The region positioning unit 1480, the first posture positioning unit 1500, and the second posture positioning unit all include a laser 1 and a laser 2. The laser 1 and the laser 2 are provided on the measurement probe 1450.

[0305] When performing the initial measurement posture positioning, the measurement probe 1450 is placed on the base, and the position of the measurement probe 1450 is constant before the initial measurement posture positioning is completed. Based on the first posture positioning feature and the second projection feature, the current measurement posture is adjusted until the first posture positioning feature matches the second projection feature. When the two match, the initial measurement posture positioning is completed.

[0306] When positioning the measurement area, the measurement probe 1450 is placed on the object to be measured, and the position of the measurement probe 1450 is adjusted based on the area positioning feature and the first projection feature until the area positioning feature matches the first projection feature, and when the two match, the positioning of the measurement area is completed.

[0307] After the measurement probe 1450 is placed on the object to be measured, if the current measurement posture is not the target posture, re-measurement posture positioning must be performed before measurement. The current measurement posture is adjusted based on the second posture positioning feature and the third projection feature until the second posture positioning feature matches the third projection feature, and when the two match, re-measurement posture positioning is completed.

[0308] The region positioning unit 1480, the first posture positioning unit 1500, and the second posture positioning unit have the same configuration. The region positioning features and the second posture positioning features are completely the same, and some parts are the same as the first posture positioning features. The measurement region is the extensor side of the forearm.

[0309] 26 is a schematic diagram illustrating another measurement posture and measurement region positioning according to an embodiment of the present disclosure. Region positioning unit 1480 and second posture positioning unit in FIG. 26 both include laser 3 and laser 4. First posture positioning unit 1500 includes laser 5 and laser 6. Laser 3 and laser 4 are provided on measurement probe 1450. Laser 5 and laser 6 are installed on the base.

[0310] According to an embodiment of the present disclosure, the tissue constituent measuring device 1400 further includes a presentation module.

[0311] The presentation module generates presentation information, where the presentation information is used to present that the measurement posture positioning and / or measurement area positioning has been completed, and the form of the presentation information includes at least one of an image, sound, or vibration.

[0312] According to an embodiment of the present disclosure, the measurement module includes a light source unit, a collecting unit, and a seventh determining unit.

[0313] The light source unit illuminates the measurement area with incident light of at least one predetermined wavelength, where each incident light enters from an incident position and then exits from at least one exit position in the measurement area to form at least one exit light. The collection unit obtains light intensity values ​​corresponding to each exit light collected by the measurement probe 1450 and obtains T output light intensities, where the measurement probe 1450 includes M photosensitive surfaces, and each output light intensity is obtained by processing based on the light intensity values ​​of the exit light collected by one or more photosensitive surfaces, where 1≦T≦M. The seventh determination unit determines the concentration of the measured tissue constituent based on the at least one output light intensity corresponding to the at least one predetermined wavelength.

[0314] According to an embodiment of the present disclosure, the seventh determination unit determines, for each of the at least one predetermined wavelength, a first output light intensity and a second output light intensity from the at least two output light intensities corresponding to the predetermined wavelengths, performs differential processing between the first output light intensity and the second output light intensity corresponding to the predetermined wavelengths to obtain differential signals, and determines the concentrations of the measured tissue constituents based on the differential signals corresponding to each predetermined wavelength.

[0315] According to the embodiment of the present disclosure, each photosensitive surface can collect light intensity values ​​of the emitted light from an emission position within a predetermined anti-blur range corresponding to the photosensitive surface.

[0316] According to an embodiment of the present disclosure, the percentage of the average optical path length in the target tissue layer of the emitted light received by each photosensitive surface to the total optical path length is greater than or equal to a proportionality threshold, where the total optical path length is the total distance transmitted within the measurement area of ​​the emitted light.

[0317] According to an embodiment of the present disclosure, the total area of ​​the similar photosensitive surface is determined based on the tissue structure features within the measurement area, where the similar photosensitive surface includes one or more photosensitive surfaces, and the similar photosensitive surface outputs one output light intensity.

[0318] According to an embodiment of the present disclosure, the ratio of the area of ​​each photosensitive surface to the perimeter of the photosensitive surface is equal to or greater than a ratio threshold.

[0319] According to an embodiment of the present disclosure, the ratio threshold is 0.04 mm or greater.

[0320] According to embodiments of the present disclosure, the photosensitive surface may or may not be in contact with the surface of the measurement area.

[0321] According to an embodiment of the present disclosure, the distance from the surface to the measurement area of ​​the photosensitive surface is equal to or less than a distance threshold, and the efficiency of the photosensitive surface receiving the emitted light is equal to or greater than an efficiency threshold.

[0322] Any of the modules and units according to the embodiments of the present disclosure, or at least some of the functions of any of the modules and units, may be implemented in a single module. Any of the modules and units according to the embodiments of the present disclosure may be divided into multiple modules. Any of the modules and units according to the embodiments of the present disclosure may be at least partially implemented in a hardware circuit, such as a field programmable gate array (FPGA), a programmable logic array (PLA), an on-chip system, a system on a board, a system on a package, or an application specific integrated circuit (ASIC), or in any other reasonable form of hardware or firmware integrated or packaged in a circuit, or in any one of the three implementation forms of software, hardware, and firmware, or any suitable combination thereof. Alternatively, any of the modules and units according to the embodiments of the present disclosure may be at least partially implemented as a computer program module, which can perform a corresponding function when executed.

[0323] For example, any of the measurement modules may be integrated into a single module / unit, or any one of the modules / units may be divided into multiple modules / units. Alternatively, at least some of the functions of one or more of these modules / units may be combined with at least some of the functions of other modules / units and implemented in a single module / unit. According to embodiments of the present disclosure, at least one of the measurement modules may be at least partially implemented as a hardware circuit, such as a field programmable gate array (FPGA), a programmable logic array (PLA), an on-chip system, a system on a board, a system on a package, or an application-specific integrated circuit (ASIC), or any other reasonable manner integrated or packaged in a circuit, or may be implemented in hardware or firmware, or in any one of three implementation manners: software, hardware, and firmware, or any suitable combination thereof. Alternatively, at least one of the measurement modules may be at least partially implemented as a computer program module, which, when executed, can perform a corresponding function.

[0324] It should be noted that the tissue component measuring device in the embodiments of the present disclosure corresponds to the tissue component measuring method in the embodiments of the present disclosure, and the explanation of the tissue component measuring device portion specifically refers to the tissue component measuring method portion, and the explanation will be omitted here.

[0325] 27 is a schematic diagram of a wearable device according to an embodiment of the present disclosure. The wearable device 2700 shown in FIG. 27 is an example and does not impose any limitations on the functionality and scope of use of the embodiment of the present disclosure.

[0326] As shown in FIG. 27, a wearable device 2700 includes the tissue constituent measuring device 1400.

[0327] According to the technical solution of the embodiment of the present disclosure, by determining the positioning feature, a measurement area that meets the measurement reproducibility conditions is determined based on the positioning feature, the measurement probe 1450 is installed at a position corresponding to the measurement area, and tissue component measurement is performed by the measurement probe 1450, thereby realizing accurate positioning of the measurement area and further realizing effective control of the measurement condition reproducibility.

[0328] 28 , according to an embodiment of the present disclosure, the wearable device 2700 further includes a latch 2710 and a main body 2720. The latch 2710 and the main body 2720 cooperate to fix the tissue component measuring device 1400.

[0329] According to an embodiment of the present disclosure, FIG. 28 schematically illustrates a schematic diagram of an assembly process of a wearable device according to an embodiment of the present disclosure.

[0330] According to an embodiment of the present disclosure, the mass of the wearable device 2700 is equal to or less than the mass threshold, thereby realizing that the movement rule of the wearable device 2700 and the vibration rule of the skin in the measurement area coincide with each other.

[0331] According to an embodiment of the present disclosure, in order to improve the reliability of the measurement results, the mass of the wearable device 2700 can be made lighter, so that when the wearable device 2700 is placed at a position corresponding to the measurement area, the wearable device 2700 can follow the skin fluctuation in the measurement area, i.e., the movement pattern of the wearable device 2700 is consistent with the skin fluctuation pattern in the measurement area, so that the average optical path length of the emitted light received by the measurement probe 1450 is maintained within a predetermined optical path length range during the skin fluctuation process. The reason why the above enables the average optical path length of the output light received by the measurement probe 1450 to be maintained within a predetermined optical path length range during skin fluctuation in the measurement area is as follows: if the wearable device 2700 can track skin fluctuation in the measurement area, the relative position of the measurement probe 1450 in the measurement area can be kept constant or essentially constant, so that the measurement probe 1450 can receive output light emitted from a fixed output position, where the fixed output position refers to an output position whose relative position with respect to the measurement area is constant or essentially constant. At the same time, during skin fluctuation in the measurement area, the relative position of the incident position of the incident light in the measurement area can be kept constant or essentially constant, so that when determining the incident position of the incident light and the output position of the output light, it can be ensured that the average optical path length of the output light does not change as much as possible.

[0332] 29 is a schematic diagram illustrating how the average optical path length of the output light received by the measurement probe is maintained within a predetermined optical path length range during the skin blur process when a wearable device according to an embodiment of the present disclosure conforms to the skin blur rule. During the skin blur process, the measurement probe 1450 (not shown in FIG. 29) can stably receive the output light that is output from the output position B in the measurement area after the incident light is incident from the input position A in the measurement area. If the movement range of the skin is denoted by ζ1 and the movement range of the measurement probe 1450 is denoted by ζ2, then ζ1 = ζ2.

[0333] According to an embodiment of the present disclosure, the wearable device 2700 keeps the movement amplitude of the skin in the measurement area below a movement amplitude threshold.

[0334] According to an embodiment of the present disclosure, in order to improve the reliability of the measurement results, the mass of the wearable device 2700 can be increased, and when the wearable device 2700 is placed at a position corresponding to the measurement area, it can press against skin fluctuations in the measurement area, i.e., the movement width of the skin in the measurement area is equal to or less than the movement width threshold, so that the average optical path length of the emitted light received by the measurement probe 1450 is maintained within a predetermined optical path length range during the skin movement process. As described above, the reason why the average optical path length of the emitted light received by the measurement probe 1450 is maintained within a predetermined optical path length range during the skin movement process in the measurement area is that if the wearable device 2700 can press against skin fluctuations in the measurement area, the relative position of the measurement probe 1450 in the measurement area can be kept constant or essentially constant, so that the measurement probe 1450 can receive the emitted light emitted from a fixed emission position. At the same time, during the process of skin shaking in the measurement area, the relative position of the incident position of the incident light in the measurement area can be kept constant or essentially constant, so that when the incident position of the incident light and the exit position of the exit light are determined, the average optical path length of the exit light can be ensured to be constant as much as possible.

[0335] 30 is a schematic diagram illustrating that the average optical path length of the emitted light received by the measurement probe is maintained within a predetermined optical path length range during the skin shaking process when the skin movement amplitude in the measurement area is equal to or less than a movement amplitude threshold value in a wearable device according to an embodiment of the present disclosure. The skin movement amplitude in the measurement area in FIG. 30 is close to zero.

[0336] According to an embodiment of the present disclosure, a detailed description of the tissue constituent measuring device can be found in the corresponding sections above and will not be described in detail here. The tissue constituent measuring device also includes a processor, which can perform various appropriate operations and processes based on a program stored in a read-only memory (ROM) or loaded from a memory portion into a random access memory (RAM). The processor may include, for example, a general-purpose microprocessor (e.g., a CPU), an instruction processor and / or an associated chipset and / or a dedicated microprocessor (e.g., an application specific integrated circuit (ASIC)). The processor may further include on-board memory for caching. The processor may include a single processing unit or multiple processing units that perform different operations of the method flow according to an embodiment of the present disclosure.

[0337] Various programs and data necessary for the operation of the tissue component measuring device are stored in the RAM. The processor, ROM, and RAM are interconnected by a bus. The processor executes the programs in the ROM and / or RAM to perform various operations of the method flow according to the embodiment of the present disclosure. Note that the programs may be stored in one or more memories other than the ROM and RAM. The process may execute the programs stored in one or more memories to perform various operations of the method flow according to the embodiment of the present disclosure.

[0338] According to an embodiment of the present disclosure, the wearable device further includes an input / output (I / O) interface, which is also connected to the bus. The wearable device may further include one or more of the following components connected to the I / O interface: an input section such as a keyboard or a mouse; an output section including, for example, a cathode ray tube (CRT), a liquid crystal display (LCD), or a speaker; a storage section including a hard disk; and a communication section including, for example, a network interface card such as a LAN card or a modem. The communication section performs communication processing via a network such as the Internet. A drive is also connected to the I / O interface as needed. Removable media such as a magnetic disk, optical disk, magneto-optical disk, or semiconductor memory is installed in the drive as needed, and a computer program read from the drive is then installed in the storage section as needed.

[0339] The present disclosure further provides a computer-readable storage medium, which may be included in the device / apparatus / system described in the above embodiments, or may exist independently or not integrated into the device / apparatus / system, and which carries one or more programs that, when executed, realize the method according to the embodiments of the present disclosure.

[0340] According to an embodiment of the present disclosure, the computer-readable storage medium may be a non-volatile computer-readable storage medium, such as, but not limited to, a portable computer magnetic disk, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM) or flash memory, a portable compact magnetic disk read-only memory (CD-ROM), an optical storage device, a magnetic memory device, or any suitable combination of the above. In the present disclosure, a computer-readable storage medium may be any tangible medium that contains or stores a program, which may be used by or in combination with an instruction execution system, apparatus, or device.

[0341] For example, according to an embodiment of the present disclosure, a computer-readable storage medium may include one or more memories other than the above-mentioned ROM and / or RAM and / or ROM and RAM. The embodiments of the present disclosure further include a computer program product, which includes a computer program, the computer program including program code for performing the methods provided by the embodiments of the present disclosure.

[0342] When the computer program is executed by a processor, it performs the functions defined in the system / apparatus according to the embodiments of the present disclosure. According to the embodiments of the present disclosure, the systems, apparatuses, modules, units, etc. can be realized by computer program modules.

[0343] In one embodiment, the computer program may rely on a tangible storage medium, such as an optical storage device, a magnetic storage device, etc. In another embodiment, the computer program may be transmitted in the form of a signal over a network medium, distributed, downloaded and installed via a communication portion, and / or installed from a removable medium. The program code included in the computer program may be transmitted over any suitable network medium, including, but not limited to, wireless, wired, etc., or any suitable combination thereof.

[0344] According to embodiments of the present disclosure, program code for executing the computer programs provided by embodiments of the present disclosure can be written in any combination of one or more programming languages. Specifically, these computer programs can be implemented using high-level process and / or object-oriented programming languages ​​and / or assembly / machine languages. Programming languages ​​include, but are not limited to, Java, C++, Python, "C," or similar programming languages. The program code may be executed entirely on the user computing device, partially on the user device, partially on a remote computing device, or entirely on a remote computing device or server. In the context of a remote computing device, the remote computing device may be connected to the user computing device via any type of network, including a local area network (LAN) or a wide area network (WAN), or may be connected to an external computing device (e.g., via the Internet using an Internet Service Provider).

[0345] The flowcharts and block diagrams in the drawings illustrate possible system architectures, functions, and operations of systems, methods, and computer program products according to various embodiments of the present disclosure. In this regard, each block in a flowchart or block diagram may represent a module, program segment, or portion of code, which includes executable instructions for implementing one or more predetermined logical functions. It should be noted that in some alternative implementations, the functions marked in the blocks may occur in a different order from that shown in the drawings. For example, two successively shown blocks may actually be executed essentially in parallel, or they may be executed in the reverse order, depending on the functionality. It should be noted that each block in a block diagram or flowchart, and combinations of blocks in a block diagram or flowchart, may be implemented in a system based on dedicated hardware that performs the predetermined functions or operations, or may be implemented using a combination of dedicated hardware and computer instructions. As will be understood by those skilled in the art, various combinations and / or combinations of the features described in each embodiment and / or claims of the present disclosure may be implemented, even if such combinations or combinations are not explicitly described in the present disclosure. In particular, various combinations and / or combinations of features described in each embodiment and / or claims of the present disclosure may be made without departing from the spirit and teachings of the present disclosure, and all such combinations and / or combinations are intended to fall within the scope of the present disclosure.

[0346] The above describes embodiments of the present disclosure. However, these embodiments are for illustrative purposes only and do not limit the scope of the present disclosure. Although each embodiment has been described above, this does not mean that the measures in each embodiment cannot be advantageously combined and used. The scope of the present disclosure is limited by the claims and their equivalents. Those skilled in the art may make various substitutions and modifications without departing from the scope of the present disclosure, and all of these substitutions and modifications should fall within the scope of the present disclosure.

Claims

1. determining a positioning feature including an artificially set positioning feature or an inherent feature of the object to be measured, the artificially set positioning feature including a point-like mark or a figure mark; determining a measurement area that satisfies measurement condition reproducibility based on the positioning features; placing a measurement probe at a position corresponding to the measurement area; measuring tissue constituents with the measurement probe; the positioning features include a first pose positioning feature and an area positioning feature; Determining a measurement area based on the positioning features includes: adjusting a current measurement posture of the object to be measured to a target measurement posture that satisfies the measurement condition repeatability based on the first posture positioning feature; If the current measurement posture is the target measurement posture, determining the measurement region based on the region positioning feature; Measuring tissue components using the measurement probe includes: illuminating a measurement area with incident light of at least one predetermined wavelength, wherein each of the incident light beams enters from an incident location and then exits from at least one exit location in the measurement area to form at least one exit light beam; Obtaining a light intensity value corresponding to each of the output light beams collected by the measurement probe, and obtaining T output light intensities, where the measurement probe includes M photosensitive surfaces, and each of the output light intensities is obtained by processing based on the light intensity value of the output light beams collected by one or more of the photosensitive surfaces, where 1≦T≦M; determining a concentration of the measured tissue constituent based on at least one output light intensity corresponding to the at least one predetermined wavelength. Methods for measuring tissue constituents.

2. Placing the measurement probe at a position corresponding to the measurement area includes: a fixing part for fixing the measurement probe at a position corresponding to the measurement area, wherein the fixing part may be integral with the measurement probe, partially separate from the measurement probe, or completely separate from the measurement probe; the fixing portion includes a fixing seat and a first engaging member; The fixing unit is configured to fix the measurement probe to a position corresponding to the measurement area, The first engaging member is used to set the fixing seat at a position corresponding to the measurement area; and placing the measurement probe in the fixed seat; or the fixing portion includes a second engaging member; The fixing unit is configured to fix the measurement probe to a position corresponding to the measurement area, and positioning the measurement probe at a position corresponding to the measurement region by the second engagement member. The method for measuring tissue components according to claim 1.

3. the skin condition of the skin in the measurement area satisfies a first predetermined condition during the process of installing the fixing seat at a position corresponding to the measurement area by the first engaging member, the first predetermined condition being that during the process of fixing the fixing seat by the first engaging member, a change due to the skin condition of the skin at the corresponding position is within a first predetermined deformation range, and the change due to the skin condition includes deformation of the skin; the skin condition of the skin in the measurement area satisfies a second predetermined condition during the process of placing the measurement probe on the fixing seat, and the second predetermined condition is that during the process of fixing the measurement probe on the fixing seat, the change due to the skin condition of the skin at the corresponding position is within a second predetermined deformation range; the skin condition of the skin in the measurement area satisfies a third predetermined condition during the process of installing the measurement probe at a position corresponding to the measurement area by the second engaging member, and the third predetermined condition is that the change due to the skin condition of the skin at the corresponding position during the process of fixing the measurement probe by the second engaging member is within a third predetermined deformation range; The method for measuring tissue components according to claim 2.

4. Determining the measurement area based on the area positioning features includes: obtaining a first projection feature; if it is determined that the region positioning feature does not match the first projected feature, adjusting the position of the measurement probe and / or the fixture until the region positioning feature matches the first projected feature; and determining a region corresponding to the measurement probe and / or the fixture as the measurement region if it is determined that the region positioning feature matches the first projection feature; acquiring a first target image; obtaining a first template image including the region locating features; if it is determined that the first target image does not match the first template image, acquiring a new first target image by adjusting the position of the measurement probe and / or the fixture until the new first target image matches the first template image; and If it is determined that the first target image matches the first template image, determining an area corresponding to the measurement probe and / or the fixed part as the measurement area; acquiring a second target image including the region locating features; if it is determined that the position of the region positioning feature in the second target image is not at a first predetermined position, acquiring a new second target image by adjusting the positions of the measurement probe and the fixture until the position of the region positioning feature in the new second target image is at the first predetermined position; and and determining, when it is determined that the position of the region positioning feature in the new second target image is the first predetermined position, a region corresponding to the measurement probe and the fixed part as the measurement region. The method for measuring tissue components according to claim 2.

5. adjusting the current measurement posture of the object to be measured to the target measurement posture based on the first posture positioning feature, obtaining a second projection feature; if it is determined that the first pose positioning feature does not match the second projection feature, adjusting the currently measured pose until the first pose positioning feature matches the second projection feature; and determining that the current measured pose is the target measured pose if it is determined that the first pose positioning feature matches the second projected feature; acquiring a third target image; acquiring a second template image including the first pose positioning features; if it is determined that the third target image does not match the second template image, acquiring the new third target image by adjusting the current measured attitude until the new third target image matches the second template image; and determining that the current measurement attitude is the target measurement attitude when it is determined that the new third target image matches the second template image; acquiring a fourth target image including the first pose positioning feature; if it is determined that the position of the first pose positioning feature in the fourth target image is not at the second predetermined position, acquiring the new fourth target image by adjusting the current measured pose until the position of the first pose positioning feature in the new fourth target image is at the second predetermined position; and determining that the current measured orientation is the target measured orientation when the position of the first orientation positioning feature in the new fourth target image is determined to be the second predetermined position; The method for measuring tissue components according to claim 2.

6. When the measurement probe is placed at a position corresponding to the measurement region, determining a second orientation positioning feature if it is determined that the current measurement orientation is not the target measurement orientation; adjusting the current measured attitude to the target measured attitude based on the second attitude positioning feature; adjusting the current measured attitude to the target measured attitude based on the second attitude positioning feature; obtaining a third projection feature; if it is determined that the second pose positioning feature does not match the third projection feature, adjusting the currently measured pose until the second pose positioning feature matches the third projection feature; and determining that the current measured pose is the target measured pose if it is determined that the second pose positioning feature matches the third projected feature; acquiring a fifth target image; acquiring a third template image including the second pose positioning features; if it is determined that the fifth target image does not match the third template image, acquiring the new fifth target image by adjusting the current measured attitude until the new fifth target image matches the third template image; and determining that the current measurement posture is the target measurement posture when it is determined that the new fifth target image matches the third template image; acquiring a sixth target image including the second pose positioning features; if determining that the position of the second pose positioning feature in the sixth target image is not at a third predetermined position, acquiring the new sixth target image by adjusting the current measured pose until the position of the second pose positioning feature in the new sixth target image is at the third predetermined position; and determining that the current measured orientation is the target measured orientation when the position of the second orientation positioning feature in the new sixth target image is determined to be the third predetermined position; The method for measuring tissue components according to claim 2.

7. determining a concentration of a measured tissue constituent based on at least one output light intensity corresponding to the at least one predetermined wavelength; for each predetermined wavelength in the at least one predetermined wavelength, determining a first output light intensity and a second output light intensity from at least two output light intensities corresponding to the predetermined wavelength; performing differential processing on the first output light intensity and the second output light intensity corresponding to the predetermined wavelength to obtain a differential signal; determining a concentration of the measured tissue constituent based on a differential signal corresponding to each of the predetermined wavelengths; The method for measuring tissue components according to claim 1.

8. Each of the photosensitive surfaces can collect light intensity values ​​of emitted light from an emission position within a predetermined anti-shake range corresponding to the photosensitive surface, and the predetermined anti-shake range is a range that can suppress the adverse effects of shake on measurement results. The method for measuring tissue components according to claim 1.

9. a proportion of the average optical path length in the target tissue layer of the emitted light received by each of the photosensor surfaces to the total optical path length is equal to or greater than a proportionality threshold, wherein the total optical path length is the total distance traveled by the emitted light within the measurement area; The method for measuring tissue components according to claim 1.

10. determining a total area of ​​the same photosensitive surface based on the tissue structure characteristics within the measurement area, wherein the same photosensitive surface includes one or more of the photosensitive surfaces, and the same photosensitive surface is used to output one of the output light intensities; a distance from the photosensitive surface to a surface of the measurement area is equal to or less than a distance threshold, and an efficiency of the photosensitive surface receiving the emitted light is equal to or greater than an efficiency threshold; The method for measuring tissue components according to claim 1.

11. the ratio between the area of ​​each of the photosensitive surfaces and the perimeter of the photosensitive surface is equal to or greater than a ratio threshold, and the ratio threshold is equal to or greater than 0.04 mm; The method for measuring tissue components according to claim 1.

12. a first determination module for determining a positioning feature including an artificially set positioning feature or an inherent feature of the object to be measured, the artificially set positioning feature including a point-like mark or a figure mark; a second determination module that determines a measurement area that satisfies measurement condition reproducibility based on the positioning features; a setting module for setting a measurement probe at a position corresponding to the measurement area; a measurement module for measuring tissue components using the measurement probe; the positioning features include a first pose positioning feature and an area positioning feature; The second determination module: a first adjustment unit that adjusts a current measurement posture of the object to a target measurement posture that satisfies the measurement condition repeatability based on the first posture positioning feature; a first determination unit for determining the measurement region based on the region positioning feature when the current measurement position is the target measurement position; Including, The measurement module includes: a light source unit configured to illuminate a measurement area with incident light of at least one predetermined wavelength, wherein each of the incident light beams is incident from an incident position and then emitted from at least one emission position in the measurement area to form at least one emission light beam; a collecting unit for obtaining a light intensity value corresponding to each of the output light beams collected by the measurement probe, and obtaining T output light intensities, wherein the measurement probe includes M photosensitive surfaces, and each of the output light intensities is obtained by processing the light intensity value of the output light beams collected by one or more of the photosensitive surfaces, where 1≦T≦M; a seventh determining unit for determining a concentration of the measured tissue constituent based on the at least one output light intensity corresponding to the at least one predetermined wavelength; Including, A device for measuring tissue components.

13. A wearable device, The tissue constituent measuring device according to claim 12, The mass of the wearable device is equal to or less than a mass threshold, thereby realizing that the movement rule of the wearable device and the skin vibration rule in the measurement area are consistent; or The wearable device determines that the movement width of the skin in the measurement area is equal to or less than a movement width threshold. Wearable devices.

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