Foot sole pressure measurement instrument, information provision device, and information provision method
11666244 · 2023-06-06
Assignee
Inventors
- Shingo Tsukada (Atsugi, JP)
- Hiroshi Nakashima (Atsugi, JP)
- Nahoko Kasai (Atsugi, JP)
- Hideo Hatta (Tokyo, JP)
Cpc classification
A63B2230/201
HUMAN NECESSITIES
A63B2071/0675
HUMAN NECESSITIES
A63B22/0023
HUMAN NECESSITIES
A63B2024/0065
HUMAN NECESSITIES
A63B2071/065
HUMAN NECESSITIES
A63B24/0062
HUMAN NECESSITIES
A63B2024/0093
HUMAN NECESSITIES
International classification
A61B5/103
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
Abstract
A foot sole pressure measurement instrument includes a measurement unit which is installed on a foot sole part of a subject and measures a pressure applied to the foot sole part of the subject, and an output unit configured to output data of the measured pressure.
Claims
1. A foot sole pressure measurement instrument, comprising: a measurement unit for installation on a foot sole part of a subject so as to measure a pressure applied to the foot sole part of the subject by a pressure-sensing unit configured to sense a pressure contact, a shape of the pressure-sensing unit being a strip; and an output unit configured to output data of the measured pressure, wherein the pressure-sensing unit is configured to be disposed in a location where a bone of at least one of a big toe ball, a little toe ball and a calcaneal portion of the foot sole part of the subject is located such that the pressure sensing unit will be disposed of along a longitudinal direction of the bone, and wherein the measurement unit includes an adjusting unit configured to adjust a gain and a base line of an amplifier for an analog signal of the pressure-sensing unit by signal processing after analog-to-digital conversion when change in sensitivity due to individual difference in pressure distribution or exhaustion of the pressure sensing unit of the measurement unit is equal to or greater than a threshold.
2. The foot sole pressure measurement instrument according to claim 1, wherein the measurement unit is installed on or near a part at which a pressure is twice or more than an average value of pressure applied to the foot sole part.
3. An information provision device, comprising: a foot sole pressure measurement instrument including a measurement unit for installation on a foot sole part of a subject so as to measure a pressure applied to the foot sole part of the subject by a pressure-sensing unit configured to sense a pressure contact, a shape of the pressure-sensing unit being a strip, and an output unit configured to output data of the measured pressure, wherein the pressure-sensing unit is configured to be disposed in a location where a bone of at least one of a big toe ball, a little toe ball and a calcaneal portion of the foot sole part of the subject is located such that the pressure-sensing unit will be disposed along a longitudinal direction of the bone, and wherein the measurement unit includes an adjusting unit configured to adjust a gain and a base line of an amplifier for an analog signal of the pressure-sensing unit by signal processing after analog-to-digital conversion when change in sensitivity due to individual difference in pressure distribution or exhaustion of the pressure sensing unit of the measurement unit is equal to or greater than a threshold; and an information provision unit configured to determine an indicator of running stability based on a fluctuation in foot sole pressure when the subject is running on the basis of the data of the pressure measured by the foot sole pressure measurement instrument, and to provide load information in accordance with an ability of the subject according to the determined indicator.
4. The information provision device according to claim 3, further comprising: a calculation unit configured to perform a predetermined calculation on the basis of the data of the pressure measured by the foot sole pressure measurement instrument; and a display unit configured to display information based on a result of the calculation performed by the calculation unit.
5. An information provision method, comprising: measuring a data of a pressure by a foot sole pressure measurement instrument including a measurement unit for installation on a foot sole part of a subject so as to measure a pressure applied to the foot sole part of the subject by a pressure-sensing unit configured to sense a pressure contact, a shape of the pressure-sensing unit being a strip, and an output unit configured to output data of the measured pressure, wherein the pressure-sensing unit is configured to be disposed in a location where a bone of at least one of a big toe ball, a little toe ball and a calcaneal portion of the foot sole part of the subject is located such that the pressure-sensing unit will be disposed along a longitudinal direction of the bone, and wherein the measurement unit includes an adjusting unit configured to adjust a gain and a base line of an amplifier for an analog signal of the pressure-sensing unit by signal processing after analog-to-digital conversion when change in sensitivity due to individual difference in pressure distribution or exhaustion of the pressure sensing unit of the measurement unit is equal to or greater than a threshold; determining an indicator of running stability based on a fluctuation in foot sole pressure when the subject is running on the basis of the data of the pressure; and providing load information in accordance with an ability of the subject according to the determined indicator.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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EMBODIMENTS FOR CARRYING OUT THE INVENTION
(17)
(18) The foot pressure sensor 10 is installed on a foot sole part of a subject 50. Here, the subject is a person who is a target for measurement of exercise intensity during walking or running. The foot pressure sensor 10 measures a pressure (hereinafter, referred to as a “foot sole pressure”) applied to the foot sole part of the subject. The foot pressure sensor 10 transmits a result of the measurement (a measured foot sole pressure) to the relay device 20 via the wired cable 40.
(19) The relay device 20 receives the result of the measurement transmitted from the foot pressure sensor 10. The relay device 20 transmits the received result of the measurement to the information provision device 30.
(20) The information provision device 30 is configured using an information processing device such as a personal computer.
(21) The information provision device 30 calculates a standard deviation and the like of a peak value (a maximum foot sole pressure) of a foot sole pressure (force) while the subject 50 is walking or running on the basis of a result of the measurement transmitted from the relay device 20, and displays a result of the calculation. In addition, the information provision device 30 provides information (hereinafter, referred to as “load information”) for providing a load in accordance with an ability of the subject. Here, the load information is, for example, information on an inclination angle θ and a running speed v of the load-applying device 60. In addition, the information provision device 30 sets a fluctuation in foot sole pressure at the time of running as an indicator of running stability, and determines an endurance exercise capacity of a subject, a running technique skill, and a degree of fatigue of a subject in accordance with continuation of exercise or a running method (full-speed running or constant speed running such as a marathon) of the subject.
(22) The load-applying device 60 is a device that applies a load to a subject. The load-applying device 60 assists, for example, walking and running on a treadmill, a room runner, and a stepper. The load-applying device 60 can adjust an angle θ and the running speed v of a conveyor belt.
(23) Next, a configuration and an installation method of the foot pressure sensor 10 will be described using
(24) As shown in
(25) The foot pressure sensor 10 adheres to the part at which the big toe ball 13, the little toe ball 14, and the heel bone 15 of the foot sole part of the subject are located. In addition, the foot pressure sensor 10 may be attached to the foot sole part in which the big toe ball 13, the little toe ball 14, and the heel bone 15 are located in socks worn by the subject. Furthermore, the foot pressure sensor 10 may be attached to insoles of athletic shoes in which the big toe ball 13, the little toe ball 14, and the heel bone 15 are located.
(26) In
(27)
(28) As shown in
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(31) That is, in the case of the short distance runner shown in
(32) In this manner, it can be said that the intermediate distance runner who requires high-efficiency running exercise has less fluctuation in foot sole pressure (ground pressure) as shown in
(33) The intermediate distance runner has higher efficiency in running exercise than the non-experienced person and the short distance runner. As shown in
(34) An exercise intensity at which the fluctuation (variation) in the peak value (maximum foot sole pressure) of the foot sole pressure at the time of contact with the ground described above increases is correlated with an exercise intensity of a lactic acid threshold (lactate threshold). Accordingly, the lactate threshold can be estimated by gradually increasing the exercise intensity and detecting an increase in the fluctuation (variation) of the peak value (maximum foot sole pressure) of the foot sole pressure at the time of contact with the ground as a change point.
(35) The change with time in the foot sole pressure at the time of running is measured, and, as an indicator of running stability, the fluctuation in the peak value of the foot sole pressure (force) in repeated landing and jumping operations is used as a feature value. As the running speed increases, the foot sole pressure (force) at sole surfaces increases, and accordingly, the fluctuation in the peak value of the foot sole pressure gradually increases. The magnitude of the fluctuation is an indicator of the skill of the running technique of the subject. At the same time, a large fluctuation in the peak value of the foot sole pressure indicates that a training intensity for the subject is higher than an optimum intensity. The fluctuation in the peak value of the foot sole pressure changes with time due to running for a long time, and can be used as an indicator of the progress of fatigue of a runner.
(36) Various indicators used in statistical processing can be used to calculate the fluctuation (variation) in the peak value of the foot sole pressure (force). The various indicators include, for example, a standard deviation, a variance, a standard error, a range, an interquartile range, an average difference, an average absolute deviation, and the like. In addition, data may be normalized when necessary in a calculation process of these indicators.
(37) Training on slopes (treadmills with slopes) is known to be more efficient running training. According to a result of measurement using the foot pressure sensor 10, the foot sole pressure at the time of running on a sloping road is 1.1 to 3 times higher compared to that of running on flat ground, and a higher force is exerted. In order to improve running exercise ability, it is regarded important to acquire a larger stride, and it is recommended to exert a greater force. The result of the measurement described above indicates that running exercise on slopes requires an exertion of a greater force than running exercise on flat ground, and suggests that running exercise on slopes is effective training after acquiring a larger stride.
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(39) A change in the magnitude of the fluctuation in the peak value of the foot sole pressure also corresponds to an increase in blood lactate concentration measured simultaneously at a running speed of 260 to 300 m/min or higher. That is, in
(40) In addition, the lactate threshold can be determined non-invasively using such a property of the fluctuation of the peak value of the foot sole pressure. The runner can determine whether the exercise intensity is too high or too low, and the lactate threshold can be used as an indicator for setting an optimum exercise intensity.
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(42) A foot sole pressure (force) and a pitch can be measured at the same time by the foot pressure sensor 10. The information provision device 30 determines a gradient and a speed of the load-applying device 60 to achieve an optimum foot sole pressure (force) in accordance with the ability of the subject, and a pitch, provides these to the load-applying device 60, and provides the subject with more effective training. For example, beginners respond by increasing the pitch more than the stride as the running speed increases, but, if the pitch reaches a certain degree or more, the fluctuation in the peak value of the foot sole pressure (force) increases, and a tendency to decrease the efficiency of running exercise is recognized.
(43) For this reason, the information provision device 30 provides information (the gradient and speed of the load-applying device 60, and the pitch of the subject) which enables a highly efficient and stable running exercise based on a changing point at which the fluctuation of the peak value of the foot sole pressure increases, whereby practicing more effectively and learning to run marathons without withdrawals or weakening is able to be achieved.
(44) In addition, an intermediate runner can increase a force by gradually raising an inclination angle θ while observing the peak value of the foot sole pressure (force) and perform a reinforcement exercise for enabling a larger stride to improve performance by improving the efficiency of running exercise. In this case, since exercises with an excessive inclination angle θ or pitch reduce the efficiency of running exercise and induce sudden fatigue, an efficient reinforcement exercise can be performed by exercising with a load which suppresses the fluctuation of the peak value of the foot sole pressure (force) within a range of not exceeding a predetermined magnitude.
(45) For an advanced runner, it is possible to provide an effective training method with more accuracy than a training method on flat roads in the prior art. Furthermore, since it is possible to ascertain how an influence of force, running exercise, and fatigue changes when running with a varied stride or pitch, such as force measurement in various scenes in a real field, overtaking, or jumping out, is implemented using the load-applying device 60 as numerical values instead of a sensory manner, self-feedback, training with high reproducibility, and competition simulation are possible.
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(47) Training focusing on force (stride) improvement can be implemented by restricting the pitch with respect to an increase in running speed, instructing maintaining a speed by increasing a force (maintaining or increasing the stride), and efficiently improving the force in training based on the points described above.
(48) Since the information provision device 30 can measure the force and the pitch, it is possible to devise an appropriate combination of the gradient, running speed, force, and pitch of the load-applying device 60 in accordance with the ability of a player, and to perform efficient guidance.
(49) For example, the information provision device 30 may provide information of the pitch 160 at the gradient 3% and the speed v=200 m/min to the subject (runner) serving as a measurement target in
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(51) The information provision device 30 includes a central processing unit (CPU), a memory, an auxiliary storage device, and the like connected by a bus, and executes a provision program. According to the execution of the provision program, the information provision device 30 functions as a device which includes an acquisition unit 301, a calculation unit 302, a display controller 303, a display unit 304, and an information provision unit 305. Note that all or some of the functions of the information provision device 30 may be realized using hardware such as an application-specific integrated circuit (ASIC), a programmable logic device (PLD), or a field-programmable gate array (FPGA). In addition, the provision program may also be recorded in a computer-readable recording medium. The computer-readable recording medium is, for example, a portable medium such as a flexible disk, an optical magnetic disc, a ROM, or a CD-ROM, and a storage device such as a hard disk embedded in a computer system. In addition, the provision program may be transmitted or received via a telecommunication line.
(52) The acquisition unit 301 acquires a result of the measurement measured by the foot pressure sensor 10 from the relay device 20. The acquisition unit 301 outputs the acquired result of the measurement to the calculation unit 302.
(53) The calculation unit 302 performs a predetermined calculation on the measurement results output from the acquisition unit 301. Here, the predetermined calculation is, for example, a standard deviation, a variance, a standard error, a range, an interquartile range, an average difference, an average absolute deviation, and the like. The display controller 303 causes the display unit 304 to display information on the basis of a result of the calculation. For example, the display controller 303 causes the display unit 304 to display the graphs shown in
(54) The display unit 304 is an image display device such as a liquid crystal display or an organic electro luminescence (EL) display. The display unit 304 may also be an interface for connecting an image display device to the information provision device 30. In this case, the display unit 304 generates a video signal for displaying information, and outputs the video signal to an image display device connected thereto.
(55) The information provision unit 305 sets a fluctuation in the foot sole pressure at the time of running obtained on the basis of measurement data of the pressure as an indicator of running stability, determines the endurance exercise capacity of a subject, the skill of a running technique, and the degree of fatigue of a subject in accordance with continuation of exercise or a running method (full-speed running or constant speed running such as a marathon) of the subject, and provides load information in accordance with the ability of a subject according to a result of the determination. The information provision unit 305 holds a determination table. The determination table is a table used to determine a state of the subject 50 at the time of exercising. In the determination table, a fluctuation in the foot sole pressure at the time of running and information on a determination target (the endurance exercise capacity of a subject, the skill of a running technique, the degree of fatigue of the subject in accordance with continuation of exercise, and a running method of the subject) are associated with each other. That is, states of the endurance exercise capacity of a subject, the skill of a running technique, the degree of fatigue of the subject in accordance with continuation of exercise, and a running method of the subject are determined in accordance with the fluctuation in the foot sole pressure at the time of running. The information provision unit 305 refers to the determination table and determines the endurance exercise capacity of a subject, the skill of a running technique, the degree of fatigue of the subject in accordance with continuation of exercise, or a running method of the subject in accordance with the fluctuation obtained on the basis of the measurement data of the pressure. Note that it is not necessary that all determination targets be associated with the fluctuation of the foot sole pressure at the time of running, and only some of the determination targets may be associated in the determination table. In addition, the determination targets may be set for each subject or may be set each time.
(56) In addition, the information provision unit 305 holds a load information table. The load information table is used when load information in accordance with the ability of a subject is determined. In the load information table, a result of determination and load information in accordance with the result of the determination are associated with each other. The information provision unit 305 acquires load information in accordance with the ability of a subject according to a result of the determination with reference to the load information table. Thereafter, the information provision unit 305 provides the acquired load information. For example, the information provision unit 305 may provide load information by causing the display unit 304 to display the load information, provide load information by reading the load information using speech, and provide load information by printing the load information.
(57) In addition, the information provision unit 305 evaluates the efficiency and skill of running exercise according to a deviation (variation) of the peak value (maximum foot sole pressure) of the foot sole pressure at the time of contact with the ground. For example, the information provision unit 305 may evaluate that the efficiency and skill of running exercise are very poor when the deviation (variation) of the peak value (maximum foot sole pressure) of the foot sole pressure at the time of contact with the ground is equal to or greater than a first threshold. In addition, for example, the information provision unit 305 evaluates that the efficiency and skill of running exercise are poor when the deviation (variation) of the peak value (maximum foot sole pressure) of the foot sole pressure at the time of grounding is equal to or greater than a second threshold value smaller than the first threshold value, and is smaller than the first threshold. In addition, for example, the information provision unit 305 evaluates that the efficiency and skill of running exercise are good when the deviation (variation) of the peak value (maximum foot sole pressure) of the foot sole pressure at the time of contact with the ground is smaller than the second threshold.
(58) According to the information provision system 100 configured as described above, exercise information can be measured non-invasively. Specifically, in the information provision system 100, the foot pressure sensor 10 is installed in the foot sole part of a subject, and measures a pressure applied to the foot sole part of a subject. As a result, the subject only needs to walk or run. For this reason, it is possible to measure exercise information non-invasively.
(59) The information provision system 100 can expand a width corresponding to a variation in the size of the bone by installing the foot pressure sensor 10 with a different aspect ratio. In addition, since a direction in which a foot sole force is applied is mainly inclined to a longitudinal axis (close to a long axis of the bone) due to a change in a state of running or walking by taking a short side of the pressure-sensing unit slightly wider (for example, a width of 0.5 to 1.0 cm), stable measurement with respect to a change of state can be realized. In a design of the foot pressure sensor 10, an error caused by the above-described shape distortion with a large sensor can be avoided by using a sensor corresponding to bending in one direction.
(60) According to the shape of the foot pressure sensor 10 described above, it is possible to make a pressure-sensing area wider than that of a conventional sensor, to reduce the number of sensors by optimizing a range covered by the pressure-sensing unit 11 and disposition places, and to respond to areas of foot sole parts having individual differences, a pressure distribution, a deformation of a foot sole part due to a change in gait, and a change in a direction of force. Furthermore, sensor replacement and sensitivity adjustment can be simplified for durability issues or sensor sensitivity fluctuation due to mechanical stress according to running exercise.
(61) According to the foot pressure sensor 10 described above, it is possible to ascertain a precise running situation while actually running in the field as well as in a laboratory. This is a general-purpose foot sole pressure sensor system which can be used continuously in competition and daily life.
(62) In addition, by using the foot pressure sensor 10, it is possible to accurately measure an increase in the foot sole pressure (force) due to a change in gradient. For this reason, the information provision device 30 can provide exercise information of an optimal foot sole pressure (force) with which a training effect in accordance with the ability of a user is obtained. Then, the subject can perform more effective training by running with settings (for example, a gradient, a running speed, and the like) in accordance with the provided information.
MODIFIED EXAMPLES
(63) Some of the functional units included in the information provision device 30 may also be included in another device. For example, the display unit 304 included in the information provision device 30 may be included in another device (for example, a single display device), and other functional units except for the display unit 304 may also be included in the information provision device 30. In this case, for example, the information provision device 30 is disposed near the subject 50, and the other device including the display unit 304 is disposed in a place (for example, an adjacent room, or the like) spaced apart from a place where the subject 50 is located. With such a configuration, the display controller 303 transmits information to be displayed on the display unit 304 to another device including the display unit 304.
(64) As a result, a measurer can ascertain information of a subject even if the measurer is not near the subject.
(65) The information provision system 100 may also be configured to further include an adjusting unit that adjusts a load amount to an optimum range by changing the running speed or slopes of the load-applying device 60 that assists walking and running of a treadmill, a room runner, and a stepper on the basis of load information of the information provision unit 305 and a past exercise history. The adjusting unit is included in, for example, the load-applying device 60. With such a configuration, the adjusting unit acquires load information from the information provision unit 305. In addition, the adjusting unit holds information on the past exercise history of the subject 50. The information on the past exercise history is, for example, information related to a running speed and a slope when the subject 50 performed an exercise within a predetermined period using the load-applying device 60. Then, the adjusting unit determines the changed running speed and slope of the load-applying device 60 on the basis of the acquired load information and the held past exercise history. For example, the adjusting unit may also determine an average running speed and a slope on the basis of the load information and the held past exercise history. The adjusting unit adjusts the running speed and slope of the load-applying device 60 to be the determined running speed and slope. Note that the adjusting unit may also determine a running speed and a slope using other statistical values (for example, a mode value, a maximum value, and the like) instead of the average running speed and slope as the changed running speed and slope of the load-applying device 60. Furthermore, based on an endurance ability and the past exercise history of the subject, when an exercise load is too small for the subject, the load may be increased gradually to reach an optimum load or increased for a certain period of time during interval running. Conversely, when the exercise load is excessive with respect to the endurance of the subject, the load amount may be reduced gradually or the load amount may also be optimized by giving a uniformly slowing section.
(66) As a result, the load applied to the subject 50 can be dynamically adjusted.
(67) As described above, the embodiments of the present invention have been described in detail with reference to the drawings, but a specific configuration is not limited to these embodiments, and a design and the like within a scope not departing from the gist of the present invention are included.
INDUSTRIAL APPLICABILITY
(68) According to the foot sole pressure measurement device of the present invention, it is possible to measure an exercise intensity of walking or running without giving an excessive burden to a subject or measurer.
REFERENCE SYMBOLS LIST
(69) 10 Foot pressure sensor
(70) 20 Relay device
(71) 30 Information provision device
(72) 40 Wired cable
(73) 60 Load-applying device
(74) 301 Acquisition unit
(75) 302 Calculation unit
(76) 303 Display controller
(77) 304 Display unit
(78) 305 Information provision unit