Excreta analysis device and intestinal environment estimation system

The excrement analysis device analyzes temperature distributions of excrement using infrared radiation to identify singular regions, addressing the limitations of conventional methods and providing effective health management and pathological diagnosis.

JP7843931B1Active Publication Date: 2026-04-10MITSUBISHI ELECTRIC CORP
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
MITSUBISHI ELECTRIC CORP
Filing Date
2025-01-21
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Conventional excrement analysis technologies primarily focus on visual inspection and statistical data comparison, failing to analyze temperature distribution or estimate the intestinal environment effectively.

Method used

An excrement analysis device and method that utilizes infrared radiation to acquire and analyze the temperature distribution of excrement, identifying singular regions to estimate the intestinal environment and rectal health conditions, incorporating a temperature distribution acquisition unit, storage unit, combined calculation unit, and analysis unit to output results.

Benefits of technology

Enables accurate health management and pathological diagnosis by analyzing unique regions in temperature distributions, allowing for the estimation of intestinal environment and rectal health conditions, including detection of abnormalities and tracking changes over time.

✦ Generated by Eureka AI based on patent content.

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Abstract

The excrement analyzer (100) comprises a temperature distribution acquisition unit (11) that acquires the size and temperature distribution of the excrement (1) of a subject during excretion from infrared rays (201) emitted from the excrement (1), a temperature distribution storage unit (12) that stores the temperature distribution in a time series, a combined temperature distribution calculation unit (13) that combines the temperature distributions stored in a time series and calculates a combined temperature distribution (111) within a set time, a singular region analysis unit (14) that analyzes singular regions (4) in the combined temperature distribution, and an analysis result output unit (15) that outputs the analysis results from the singular region analysis unit, and diagnoses abnormalities of the rectum (51) based on the singular regions.
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Description

Technical Field

[0001] This disclosure relates to an excrement analysis device and and an intestinal environment estimation system.

Background Art

[0002] Techniques for obtaining a living body's feces as biological information and examining its state for health management, pathological judgment, etc. are known. For example, observing the color, shape, odor, etc. of feces through visual inspection, camera photography, sensors, etc. can provide clues to the health state. By comparing the data related to these feces with standard data, personal health management, pathological judgment, etc. are performed. For example, Patent Document 1 discloses a technique for extracting average data from the statistical data distribution of multiple people as standard data and evaluating personal biological information based on, for example, the degree of deviation from the average value.

Prior Art Documents

Patent Documents

[0003]

Patent Document 1

Summary of the Invention

Problems to be Solved by the Invention

[0004] However, the conventional technology has a problem in that it only evaluates the relationship between the color, shape, odor, etc. of feces and the statistical health state, and has not reached the technology of analyzing the temperature distribution of feces or estimating the intestinal environment.

[0005] This disclosure has been made to solve the above problems, and an object thereof is to provide an excrement analysis device and an excrement analysis method capable of analyzing the state of excrement. Another object is to provide an intestinal environment estimation system capable of estimating the intestinal environment.

Means for Solving the Problems

[0006] The excrement analysis device according to this disclosure comprises: a temperature distribution acquisition unit that acquires the size and temperature distribution of excrement from infrared radiation emitted from the excrement of a subject during excretion; a temperature distribution storage unit that stores the temperature distribution in a time series; a combined temperature distribution calculation unit that combines the temperature distributions stored in the time series and calculates the combined temperature distribution within a set time; a singular region analysis unit that analyzes singular regions in the combined temperature distribution; and an analysis result output unit that outputs the analysis results from the singular region analysis unit. The combined temperature distribution calculation unit calculates the length of the combined temperature distribution, and the singular region analysis unit identifies the location of the singular region relative to the length of the combined temperature distribution. By correlating the identified location of the singular region with the rectum, the location of the pathological area in the rectum is estimated. .

[0007] Other excrement analysis devices relating to this disclosure include a thermal image acquisition unit that acquires a thermal image of infrared radiation emitted from the excrement mass immediately after the subject's excretion, a mass temperature distribution calculation unit that calculates the mass temperature distribution of the excrement mass from the thermal image, and a singular region analysis unit that analyzes singular regions in the mass temperature distribution. 、 It includes an analysis result output unit that outputs the analysis results from the special region analysis unit. The mass temperature distribution calculation unit calculates the length of the mass temperature distribution, the unique region analysis unit identifies the location of the unique region relative to the length of the mass temperature distribution, and estimates the location of the pathological area in the rectum by relating the identified location of the unique region to the rectum. .

[0008] The intestinal environment estimation system relating to this disclosure comprises a temperature distribution measuring instrument, a stool analysis device relating to this disclosure, and a rectal state estimation device that estimates the state of the rectum based on the analysis results from the stool analysis device. [Effects of the Invention]

[0011] According to this disclosure, by analyzing unique regions in the combined temperature distribution over a set time period, which is obtained by combining the time-series temperature distributions of excrement acquired from infrared radiation emitted from excrement during excretion, or in the mass temperature distribution calculated from thermal images emitted from the mass of excrement immediately after excretion, health management and pathological diagnosis can be performed based on these unique regions. [Brief explanation of the drawing]

[0012] [Figure 1] This is a schematic block diagram showing the functions of the excrement analysis device according to Embodiment 1. [Figure 2] This is an explanatory diagram illustrating the operation of the excrement analysis device according to Embodiment 1. [Figure 3] This is an explanatory diagram illustrating the operation of the excrement analysis device according to Embodiment 1. [Figure 4] It is an explanatory diagram for explaining the operation of the excrement analyzer according to Embodiment 1. [Figure 5] It is an explanatory diagram for explaining the operation of the excrement analyzer according to Embodiment 1. [Figure 6] It is an explanatory diagram for explaining the operation of the excrement analyzer according to Embodiment 1. [Figure 7] It is an explanatory diagram for explaining the operation of the excrement analyzer according to Embodiment 1. [Figure 8] It is an explanatory diagram for explaining the operation of the excrement analyzer according to Embodiment 1. [Figure 9] It is a schematic block diagram showing the functions of the excrement analyzer according to Embodiment 2. [Figure 10] It is an explanatory diagram for explaining the operation of the excrement analyzer according to Embodiment 2. [Figure 11] It is an explanatory diagram for explaining the operation of the excrement analyzer according to Embodiment 2. [Figure 12] It is a schematic block diagram showing the functions of the excrement analyzer according to Embodiment 3. [Figure 13] It is a schematic block diagram showing the functions of the intestinal environment estimation system according to Embodiment 4. [Figure 14] It is a flowchart showing an example of the excrement analysis method according to Embodiment 5. [Figure 15] It is a flowchart showing an example of the excrement analysis method according to Embodiment 5. [Figure 16] It is a schematic block diagram showing an example of a processing circuit for realizing each function of the excrement analyzer according to Embodiment 5.

Modes for Carrying Out the Invention

[0013] The embodiments will be described with reference to the drawings. Here, the same reference numerals are assigned to the same contents and corresponding parts, and the detailed description thereof is omitted.

[0014] Embodiment 1. FIG. 1 is a schematic block diagram showing the functions of the excrement analysis apparatus 100 according to Embodiment 1. The excrement analysis apparatus 100 includes a temperature distribution acquisition unit 11 that acquires the size and temperature distribution of excrement 1 from infrared rays 201 radiated from the excrement 1 of a subject during excretion, a temperature distribution storage unit 12 that stores the temperature distribution in time series, a combined temperature distribution calculation unit 13 that combines the temperature distributions stored in time series to calculate a combined temperature distribution 111 within a set time, a specific region analysis unit 14 that analyzes a specific region 4 in the combined temperature distribution 111, and an analysis result output unit 15 that outputs the analysis result by the specific region analysis unit 14.

[0015] The temperature of the rectum 51 is higher than the oral temperature, axillary temperature, etc., and is useful for health management and pathological judgment in order to more accurately reflect the internal temperature of the body. For example, in the case of severe heat stroke, the temperature of the rectum 51 may rise above 40°C. Therefore, a thermometer is inserted from the buttocks 6 into the rectum 51 to measure the rectal temperature, but this may cause discomfort and damage to the rectum 51. On the other hand, although the temperature of feces (hereinafter, a part of the feces is referred to as excrement 1 and the lump thereof is referred to as excrement lump 2) is close to the rectal temperature, it is difficult to estimate the state of the rectum 51 from the excrement 1 and the excrement lump 2. Therefore, as a result of intensive studies, the inventors have arrived at the excrement analysis apparatus 100 of the present disclosure.

[0016] Figure 2 is an explanatory diagram illustrating the operation of the excrement analysis device 100, showing the operation of acquiring the size and temperature distribution of the excrement 1 over time during excretion. For example, an infrared array sensor 21 is used as the temperature distribution measuring instrument 20, and the infrared radiation distribution of the area where the excrement 1 is excreted is acquired from the infrared radiation 201 emitted from the excrement 1 excreted from the buttocks 6 of the subject during excretion. The infrared radiation 201 acquired by the light receiving unit 211 of the infrared array sensor 21 is converted into a temperature distribution and taken into the temperature distribution acquisition unit 11 along with the size information. The temperature distribution acquired by the temperature distribution acquisition unit 11 is then stored in time series by the temperature distribution storage unit 12. Then, in the combined temperature distribution calculation unit 13, for example, the temperature distributions from time t ti to tn (i is a positive integer, n is a positive integer greater than i) are combined and the combined temperature distribution 111 in the area corresponding to the length of the excrement 1 (the sum of the lengths from length Li to length Ln) within the set time Δt is calculated. Here, Δt = tn - ti. If t = tj is the time when the excretion of excrement 1 ends, then calculating the combined temperature distribution 111 from t = t0 to t = tj will give the temperature distribution of the region relative to the length of the excrement mass 2. The temperature of excrement 1 during excretion is close to the rectal temperature of the body, and is usually higher than the temperature of the buttocks 6. For example, the temperature of the buttocks 6 can be measured, and a temperature exceeding this can be taken as the starting temperature for measurement. If a temperature above the starting temperature is included in the temperature distribution, the start of excretion (t = t0) can be taken. Then, for example, the temperature of the buttocks 6 can be taken as the ending temperature for measurement, and if it falls below the ending temperature, the end of excretion (t = j) can be taken. The measurement end time may be set by time. Since excrement 1 may be excreted as multiple excrement clumps 2, for example, a set measurement time of 1 to 5 minutes may be set, and the measurement may continue from the start of excretion until the set measurement time is exceeded. The start of excretion may be defined as when the subject sits on the toilet seat 30, and the end of the measurement may be defined as when the subject stands up from the toilet seat 30. The start and end of the measurement may be input by the subject or examiner using switches, buttons, etc.

[0017] The temperature distribution of excrement 1 differs at each time t, but the temperature distribution of excrement 1 immediately after excretion largely reflects the temperature of the rectum 51. The temperature of the rectum 51 is said to be around 37.5-38.5°C in good health. The combined temperature distribution 111, obtained by combining the temperature distributions at each time point during the set time Δt of excrement 1, is obtained as temperature data, for example, as shown in Figure 3. For example, by setting the extraction temperature to 36.5°C or higher and extracting the temperature, a temperature distribution shape corresponding to the shape of the excrement mass 2 is obtained, and the state of the excrement can be determined. In other words, the shape of the combined temperature distribution 111 corresponds to the shape of the excrement mass 2, and the temperature of each part corresponds to the temperature of the excrement mass 2. For example, in the example shown in Figure 3, all temperatures from the combined temperature distribution 111 fall within the range of 37.5 to 38.5°C, so the singular region analysis unit 14 analyzes that there is no singular region 4. Based on this analysis result, it is estimated that the subject's health condition is good. For example, in the example shown in Figure 4, the temperatures from the combined temperature distribution 111 are in the range of 38.5 to 40.5°C, which is generally high, so the singular region analysis unit 14 analyzes that the entire combined temperature distribution 111 is singular region 4. Based on this, it is estimated that the subject's health condition is not good. Furthermore, in the example shown in Figure 5, the temperatures from the combined temperature distribution 111 are generally in the range of 37.5 to 38.5°C, but there is a part that is 38.1 to 40.2°C, so the singular region analysis unit 14 analyzes this part as singular region 4. Based on this, it is estimated that there is an abnormality in the subject's health condition.

[0018] The temperature of stool 1 is affected by the time it remains in the rectum 51 and the rectal temperature. For example, in cases of constipation, poor blood circulation in the intestines lowers the temperature in the rectum 51, which can lower the temperature of stool 1. Conversely, an abnormally high temperature of stool 1 may be a sign of infection or inflammation. Furthermore, tumors generally exhibit a high temperature. The appearance of specific region 4 in certain areas can be attributed to various factors. For example, if a low-temperature area is analyzed as specific region 4, as shown in Figure 6A, it can be presumed to be an area with poor blood circulation due to decreased peristalsis, etc. If a high-temperature area is analyzed as specific region 4, as shown in Figure 6B and Figure 6C, it can be presumed to be due to inflammation, a tumor, etc.

[0019] Furthermore, the unique region analysis unit 14 calculates the size of the unique region 4 from the temperature information of the combined temperature distribution 111. The combined temperature distribution calculation unit 13 calculates the length of the combined temperature distribution 111 of the excrement 1, and the unique region analysis unit 14 identifies the position of the unique region 4 relative to the length of the combined temperature distribution 111. The position of the unique region 4 in the combined temperature distribution 111 can be correlated with the position of the pathological area 41 in the rectum 51, which is closest to the anus, the end of the large intestine 5. Therefore, the position of the pathological area 41 in the rectum 51 can be estimated. For example, as shown in Figure 7, if there is a specific region 4 located about 3 cm from the bottom of the combined temperature distribution 111 in excrement A and excrement B, which are 10 cm and 15 cm in length, it can be estimated that there is a pathological area 41 in the rectum 51 located about 3 cm from the anus. This is also true even if the excrement is divided into two pieces of 5 cm in length, as in excrement C. The length of the excrement mass 2 corresponds to the length of the combined temperature distribution 111. If the excrement mass 2 is too fine or liquid, it may not be possible to determine its position. Therefore, it is preferable to estimate that there is an abnormality in the rectum 51 if the specific region 4 is present in the same position more than a set number of times after multiple bowel movements by the subject.

[0020] Furthermore, as shown in Figure 8, by obtaining the temperature distribution of the subject's excrement 1 over time and analyzing the changes in the size, temperature, etc., of the specific region 4 corresponding to the position of the rectum 51, it is possible to estimate the changes in the extent of inflammation in the rectum 51 over time. For example, Figure 8A shows the position, size, and temperature of the specific region 4 in the combined temperature distribution 111 from the first measurement. If we consider Figure 8A as the data for day 1 and look at the data for day 5 shown in Figure 8B, the position of the specific region 4 remains unchanged at 3 cm from the bottom, and there is no change in temperature, for example, represented by color, but the size of the specific region 4 has increased slightly. Looking at the data for day 10 shown in Figure 8C, the position and size of the specific region 4 remain unchanged, but the temperature has increased. Looking at the data for day 15 shown in Figure 8D, the position, size, and temperature of the specific region 4 remain unchanged. Looking at the data for day 20 shown in Figure 8E, the position and temperature of the specific region 4 remain unchanged, but the size has changed. Looking at the data for day 25, shown at 8F in Figure 8, the location, size, and temperature of specific region 4 remain unchanged, suggesting that the inflammation has not subsided. Figure 8 is just one example; for instance, if specific region 4 is tumor-based, it can be used to estimate its expansion by increasing the time interval, or to confirm the effectiveness of treatments such as radiation therapy.

[0021] Thus, by providing a temperature distribution acquisition unit 11 that acquires the size and temperature distribution of the excrement 1 from infrared rays 201 emitted from the excrement 1 of a subject during excretion, a temperature distribution storage unit 12 that stores the temperature distribution in a time series, a combined temperature distribution calculation unit 13 that combines the temperature distributions stored in a time series and calculates a combined temperature distribution 111 within a set time Δt, a singular region analysis unit 14 that analyzes a singular region 4 in the combined temperature distribution 111, and an analysis result output unit 15 that outputs the analysis results from the singular region analysis unit 14, health management and pathological diagnosis based on the singular region 4 can be performed. Furthermore, by acquiring the temperature distribution measured by the temperature distribution measuring instrument 20 which receives infrared rays 201, the state of the excrement, including the size of the unique region 4, can be determined from the temperature information corresponding to the position of the combined temperature distribution 111. Furthermore, by correlating the position of the specific region 4 with the length of the combined temperature distribution 111, calculated based on the excretion rate and time of the excretion of the excrement 1, to the rectum 51, the state of the pathological area 41 in the rectum 51 can be estimated. Furthermore, by obtaining the temperature distribution of the subject's excrement 1 multiple times and estimating an abnormality in the rectum 51 if a specific region 4 corresponding to the position of the rectum 51 exists in the same position more than a set number of times, the reliability of the analysis results can be improved. Furthermore, by obtaining the temperature distribution of the subject's excrement 1 over time and analyzing changes in at least one of the size and temperature of a specific region 4 corresponding to the location of the rectum 51, it is possible to estimate the changes in the state of the rectum 51 over time. This allows for tracking changes in inflammation, tumor size, etc., and provides insight into the worsening of the condition, healing status, etc. In other words, it can help in the detection of disease and the effectiveness of treatment.

[0022] Although an example using an infrared array sensor 21 as the temperature distribution measuring instrument 20 has been described, an infrared sensor 22 may also be used. A radiation thermometer may also be used. The temperature distribution measuring device 20 can be installed anywhere as long as it can receive infrared radiation 201 emitted by the excrement 1, such as the underside of the toilet seat 30, the edge of the toilet bowl, or the rim of the washing bowl 31. It is even preferable to have a function to change the position or angle of the light receiving unit 211 in order to adjust the amount of light received and the position of reception. An alignment function or a confirmation camera may also be provided. Since the light receiving unit 211 may become soiled with excrement 1, it is preferable to make it possible to automatically clean it with a washing nozzle or the like.

[0023] Embodiment 2. Figure 9 is a schematic block diagram showing the functions of the excrement analysis device 100 according to Embodiment 2. Embodiment 2 differs from Embodiment 1 in that it calculates the mass temperature distribution 112 of the excrement mass 2 from a thermal image of infrared radiation emitted from the excrement mass 2 immediately after the subject's excretion. Otherwise, it is the same as Embodiment 1. The excrement analysis device 100 includes a thermal image acquisition unit 16 that acquires a thermal image of infrared radiation 201 emitted from the excrement mass 2 immediately after the subject's excretion, a mass temperature distribution calculation unit 17 that calculates the mass temperature distribution 112 of the excrement mass 2 from the thermal image, a singular region analysis unit 14 that analyzes a singular region 4 in the mass temperature distribution 112, and an analysis result output unit 15 that outputs the analysis results from the singular region analysis unit 14. The device that receives the infrared radiation 201 and generates the thermal image is, for example, a temperature distribution measuring instrument 20 such as an infrared sensor 22.

[0024] The excrement analyzer 100 acquires a thermal image of the excrement mass 2 immediately after excretion, using infrared radiation 201 emitted from the excrement mass 2, for example, in the flushing bowl 31 of a toilet bowl as shown in Figure 10. It then calculates the mass temperature distribution 112 of the excrement mass 2 from the thermal image. The temperature distribution measuring instrument 20 starts measuring, for example, when the subject sits on the toilet seat 30, and measures the thermal image of the excrement mass 2 immediately after excretion. It may acquire a thermal image of the entire excrement mass 2, or it may acquire a thermal image of a portion of it from the side where excretion began. If the temperature distribution measuring instrument 20 cannot cover the entire excrement mass 2 when acquiring a thermal image of the entire excrement mass 2, it may, for example, tilt the light receiving unit 211 and perform an automatic scan. The light receiving unit 211 may also be moved. If it acquires a thermal image of a portion of it from the side where excretion began, for example, it may detect the excrement 1 that has started to be excreted and determine the measurement direction. Then, it calculates the mass temperature distribution 112 from the acquired thermal image, or by superimposing the thermal images. Alternatively, as shown in Figure 11, an inspection sheet 32 ​​may be placed on the washing bowl 31 to acquire a thermal image of the infrared radiation 201 emitted from the excrement mass 2 on the inspection sheet 32. By placing the inspection sheet 32, it is possible to prevent the temperature from changing due to wetting with water on the washing bowl 31. Furthermore, if an inspection sheet 32 ​​made of paper or polymer sheet with low thermal conductivity is used, temperature changes due to the passage of time after excretion can be suppressed.

[0025] The calculated mass temperature distribution 112 of the excrement mass 2 is then analyzed in the same manner as the combined temperature distribution 111 in Embodiment 1. If the specific region analysis unit 14 analyzes that there are no specific regions 4 in the mass temperature distribution 112, it is estimated that the subject's health is good. If the temperature of the entire mass temperature distribution 112 is high and the entire distribution is analyzed as a specific region 4, it is estimated that the subject's health is not good. Furthermore, if the temperature of the mass temperature distribution 112 is generally within a good range, but there are parts that are high or low, these parts are analyzed as specific regions 4, and it is estimated that there is an abnormality in the subject's health. Low-temperature areas suggest poor blood circulation, while high-temperature areas suggest the possibility of inflammation or tumors. In addition, by using the mass temperature distribution 112 calculated from the side where excretion began, the pathological part 41 of the rectum 51 can be estimated from the location of the specific region 4 in the mass temperature distribution 112.

[0026] Thus, by providing a thermal image acquisition unit 16 that acquires a thermal image of infrared rays 201 emitted from the excrement mass 2 immediately after the subject's excretion, an excrement temperature distribution calculation unit 17 that calculates the mass temperature distribution 112 of the excrement mass 2 from the thermal image, a singular region analysis unit 14 that analyzes a singular region 4 in the mass temperature distribution 112, and an analysis result output unit 15 that outputs the analysis results from the singular region analysis unit 14, health management and pathological diagnosis based on the singular region 4 can be performed.

[0027] Embodiment 3. Figure 12 is a schematic block diagram showing the functions of the excrement analyzer 100 according to Embodiment 3. The excrement analyzer 100 in Embodiment 3 differs from Embodiments 1 and 2 in that it acquires the subject's events, calculates the degree of association between the events and the singular region 4, and analyzes the factors of the singular region 4. Otherwise, it is the same as Embodiment 1 or Embodiment 2. The excrement analysis device 100 includes an event acquisition unit 18 that acquires events from a subject, and a relevance calculation unit 181 that calculates the degree of relevance between the events and the singular region 4. The singular region analysis unit 14 analyzes an event as a factor in the singular region 4 if the degree of relevance is equal to or greater than the relevance threshold. The combined temperature distribution calculation unit 13 may store the temperature distribution acquired by the temperature distribution acquisition unit 11 in a time series using the temperature distribution storage unit 12 and calculate the combined temperature distribution 111 within a set time Δt. Alternatively, the thermal image acquisition unit 16 may acquire a thermal image from the excrement mass 2 immediately after excretion and calculate the mass temperature distribution 112. The analysis of the singular region 4 of the combined temperature distribution 111 or mass temperature distribution 112 by the singular region analysis unit 14 is the same as in Embodiment 1 or Embodiment 2. The length, width, and other excrement conditions of the excrement mass 2 may be calculated from the combined temperature distribution 111 or mass temperature distribution 112.

[0028] Events include, for example, meal times, meal amounts, meal types, sleep duration, sleep quality, exercise amount, and exercise type, and are entered by subjects, examiners, etc., via the event input unit 19. For example, it is possible to estimate whether digestion is good or bad from meal times and meal amounts. Also, regarding meal types, for example, if the amount of dietary fiber and vegetables is low, it can be associated with a deterioration of the intestinal environment. Similarly, if the sleep duration is short or the sleep quality is poor, it can be associated with a deterioration of the intestinal environment. Low exercise levels lead to poor blood circulation and a deterioration of metabolism, and can therefore be associated with specific regions 4. The database 119 may store data relating multiple events and singular regions 4, and the degree of relevance may be determined by statistical processing. Alternatively, the subject's own past data may be stored, and the degree of relevance may be determined based on empirical correlations. Although an example of the database 119 being located within the excrement analyzer 100 has been shown, it may also be located outside the excrement analyzer 100, for example, in the cloud, on a server, etc.

[0029] Thus, the system includes an event acquisition unit 18 that acquires events from a subject, and a relevance calculation unit 181 that calculates the degree of relevance between the events and the singular region 4. The singular region analysis unit 14 analyzes the events as factors in the singular region 4 when the degree of relevance is equal to or greater than the relevance threshold, thereby clarifying the factors in the singular region 4 and enabling health management and pathological diagnosis.

[0030] Embodiment 4. Figure 13 is a schematic block diagram showing the functions of the intestinal environment estimation system 1000 according to Embodiment 4. In Embodiments 1 and 2, an example was described in which the pathological part 41 of the rectum 51 was estimated from a specific region 4 in the combined temperature distribution 111 or mass temperature distribution 112 within the excrement analysis device 100. Embodiment 4 differs in that it uses a rectal state estimation device 200 for health management and pathological diagnosis. The intestinal environment estimation system 1000 comprises a temperature distribution measuring instrument 20, a stool analysis device 100, and a rectal state estimation device 200 that estimates the state of the rectum based on the analysis results from the stool analysis device 100. The temperature distribution measuring instrument 20 is a radiation thermometer, an infrared array sensor 21, an infrared sensor 22, etc., and the stool analysis device 100 is one of the devices according to Embodiments 1 to 3. The rectal state estimation device 200 estimates the state of the rectum based on the specific region 4 analyzed by the stool analysis device 100. Similar to Embodiments 1 to 3, the rectal state estimation device 200 may estimate the pathological area 41 in the rectum 51, or it may estimate the subject's physical condition from the rectal temperature. Furthermore, the system may manage a large amount of data in a database 119 and perform factor analysis.

[0031] Thus, by providing a temperature distribution measuring instrument 20, a stool analysis device 100, and a rectal condition estimation device 200 that estimates the state of the rectum based on the analysis results from the stool analysis device 100, the factors of the specific region 4 can be more clearly identified, enabling health management and pathological diagnosis.

[0032] In addition, in the intestinal environment estimation system 1000, a thermal image may be acquired from the temperature distribution measuring instrument 20 and the mass temperature distribution 112 may be calculated by the excrement analysis device 100, or the temperature distribution measuring instrument 20 may be equipped with a function to calculate the mass temperature distribution 112 and the mass temperature distribution 112 may be acquired by the excrement analysis device 100.

[0033] Embodiment 5. In Embodiment 5, the operation of the excrement analysis device 100 will be described. Figure 14 is a flowchart showing an example of the excrement analysis method according to Embodiment 5. First, the size and temperature distribution of the excrement 1 are obtained from the infrared radiation 201 emitted from the excrement 1 of the subject during excretion (step S101). Then, the temperature distribution is stored in time series (step S102). Then, the temperature distributions stored in time series are combined to calculate the combined temperature distribution 111 within a set time Δt (step S103). Furthermore, the singular region 4 in the combined temperature distribution 111 is analyzed (step S104). Finally, the analysis results are output (step S105).

[0034] Figure 15 is a flowchart showing an example of another excrement analysis method according to Embodiment 5. First, a thermal image is obtained using infrared radiation emitted from the excrement mass 2 immediately after the subject's excretion (step S201). Then, the mass temperature distribution 112 of the excrement mass 2 is calculated from the thermal image (step S202). Then, a singular region 4 in the mass temperature distribution 112 is analyzed (step S203). Finally, the analysis results are output (step S204).

[0035] Figure 16 is a schematic block diagram showing an example of a processing circuit that realizes each function of the excrement analyzer 100 according to Embodiment 5. The excrement analyzer 100 is equipped with a processor 90, a memory 91, and a communication I / F (interface) 92. The processor 90 is, for example, a CPU (Central Processing Unit). The memory 91 transmits and receives data to and from the processor 90 and stores the data. Temperature distribution and thermal images are acquired from the temperature distribution measuring instrument 20 via the communication interface 92. Analysis results are also output from the analysis result output unit 15 via the communication interface 92. Each process, such as the calculation of the combined temperature distribution 111 by the combined temperature distribution calculation unit 13, the calculation of the block temperature distribution 112 by the block temperature distribution calculation unit 17, and the analysis of the singular region 4 by the singular region analysis unit 14, is executed by the processor 90. Temperature distribution, thermal images, reference data, calculation formulas, etc., are stored in the memory 91.

[0036] The processor 90 and memory 91 may be shared by a single unit, or there may be multiple units. The processor 90 may also be equipped with logic circuits using, for example, an ASIC (Application Specific Integrated Circuit), IC (Integrated Circuit), DSP (Digital Signal Processor), FPGA (Field Programmable Gate Array), and various signal processing circuits. By providing multiple processors 90 of the same or different types, each process may be divided and executed by multiple arithmetic processing units.

[0037] The memory 91 may include, for example, RAM (Random Access Memory) configured to allow reading and writing of data from the processor 90, ROM (Read Only Memory) configured to allow reading of data from the processor 90, or a hard disk drive (HDD).

[0038] Each function of the excrement analyzer 100 is realized by the processor 90 executing software or programs stored in memory 91 and cooperating with the hardware. The data to be set may be stored in memory 91 as part of the software or program, or it may be entered by the user. A non-temporary recording medium 912 on which the excrement analysis program 911 is recorded may be distributed and installed in the excrement analyzer 100 (memory 91).

[0039] In this way, the size and temperature distribution of the excrement 1 of a subject during excretion are obtained from infrared radiation 201 emitted from the excrement 1, and the combined temperature distribution 111 within a set time Δt, calculated by combining the temperature distributions stored in a time series, or the unique region 4 in the mass temperature distribution 112 of the excrement mass 2, calculated from a thermal image of the excrement mass 2 emitted from infrared radiation 201 immediately after the subject's excretion, is analyzed and the analysis results are output, thereby enabling health management and pathological diagnosis based on the unique region 4.

[0040] While this disclosure describes various exemplary embodiments, the various features, aspects, and functions described in one or more embodiments are not limited to the application of a particular embodiment, but are applicable individually or in various combinations to the embodiments. Accordingly, countless variations not illustrated are conceivable within the scope of the art disclosed herein. These include, for example, modifying, adding, or omitting at least one component, or even extracting at least one component and combining it with components from other embodiments. [Explanation of Symbols]

[0041] 1. Excreta, 2. Excreta mass, 4. Special region, 5. Large intestine, 6. Buttocks, 11. Temperature distribution acquisition unit, 12. Temperature distribution storage unit, 13. Combined temperature distribution calculation unit, 14. Special region analysis unit, 15. Analysis result output unit, 16. Thermal image acquisition unit, 17. Mass temperature distribution calculation unit, 18. Event acquisition unit, 19. Event input unit, 20. Temperature distribution measuring instrument, 21. Infrared array sensor, 22. Infrared sensor, 30. Toilet seat, 31. Washing bowl, 32. Examination sheet, 41. Pathology unit, 51. Rectum, 100. Excreta analysis device, 111. Combined temperature distribution, 112. Mass temperature distribution, 181. Correlation calculation unit, 119. Database, 200. Rectal state estimation device, 201. Infrared, 211. Light receiving unit, 1000. Intestinal environment estimation system

Claims

1. A temperature distribution acquisition unit that acquires the size and temperature distribution of the excrement from infrared radiation emitted from the excrement of a subject during excretion, A temperature distribution storage unit that stores the aforementioned temperature distribution in a time series, A combined temperature distribution calculation unit that combines the temperature distributions stored in a time series and calculates a combined temperature distribution within a set time period, A special region analysis unit analyzes the special region in the aforementioned combined temperature distribution, The system includes an analysis result output unit that outputs the analysis results from the aforementioned special region analysis unit, The combined temperature distribution calculation unit calculates the length of the combined temperature distribution, The excrement analysis device includes a special region analysis unit that identifies the position of the special region relative to the length of the combined temperature distribution, and estimates the position of the pathological area in the rectum by relating the identified position of the special region to the rectum.

2. The excrement analysis apparatus according to claim 1, wherein the singular region analysis unit calculates the size of the singular region from the temperature information of the combined temperature distribution.

3. The temperature distribution acquisition unit acquires the temperature distribution of the subject's excrement multiple times. The excrement analyzer according to claim 1, wherein the specific region analysis unit estimates that there is an abnormality in the rectum if the specific region corresponding to the location of the pathological part of the rectum is present in the same location for a set number of times or more.

4. The temperature distribution acquisition unit acquires the temperature distribution of the subject's excrement over time. The excrement analyzer according to claim 1, wherein the specific region analysis unit analyzes changes in at least one of the size and temperature of the specific region corresponding to the location of the pathological area of ​​the rectum, and estimates the changes in the state of the rectum over time.

5. A thermal imaging unit that acquires a thermal image of infrared radiation emitted from a mass of excrement immediately after the subject's excretion, A mass temperature distribution calculation unit calculates the mass temperature distribution of the excrement mass from the thermal image, A special region analysis unit that analyzes a special region in the aforementioned mass temperature distribution, The system includes an analysis result output unit that outputs the analysis results from the aforementioned special region analysis unit, The aforementioned mass temperature distribution calculation unit calculates the length of the mass temperature distribution, The excrement analysis device includes a special region analysis unit that identifies the location of the special region relative to the length of the mass temperature distribution, and estimates the location of the pathological area in the rectum by correlating the identified location of the special region with the rectum.

6. An event acquisition unit that acquires events of the aforementioned subject, The system includes a correlation calculation unit that calculates the degree of correlation between the event and the singular region, The excrement analysis apparatus according to claim 1 or 5, wherein the singular region analysis unit analyzes the event as a factor in the singular region when the degree of relevance is equal to or greater than the degree of relevance threshold.

7. The excrement analyzer according to claim 6, wherein the event includes at least one of the amount of food eaten, the type of food eaten, the duration of sleep, the quality of sleep, the amount of exercise, and the type of exercise.

8. A temperature distribution measuring instrument, An excrement analyzer according to claim 1 or claim 5, A rectal state estimation device that estimates the state of the rectum based on the analysis results from the aforementioned excrement analysis device, A gut microbiome estimation system equipped with the following features.

Citation Information

Patent Citations

  • Data detecting apparatus and data detecting method

    JP2007252805A

  • Excrement property measuring instrument

    JP2009229315A

  • Biological information measurement system

    JP2016145809A

  • Health management device, health management method, health management system, program, and recording medium

    WO2021149319A1

  • Biological information management system and biological information management method

    JP2023147248A