Motion state monitoring system, method for controlling the same, and control program
By displaying multiple sensor icons on the display unit of the operating status monitoring system and causing the corresponding sensors to perform different operations according to the icon display mode, the problem of difficult-to-understand the correspondence relationship between the sensor icon and the body part is solved, and the intuitiveness and accuracy of the operation are improved.
Patent Information
- Application Number
- JP2023182860
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2023-10-24
- Publication Date
- 2025-05-09
- Estimated Expiration
- 2043-10-24
AI Technical Summary
When setting up the sensor, it is difficult to understand which sensor icon corresponds to which body part.
By displaying a plurality of sensor icons on the display unit, and using the control unit, the corresponding sensors perform different operations according to the display mode of the icon, such as changing the icon color, flashing light, sound output, etc.
It effectively avoids the problem of difficult to understand the correspondence between sensor icons and body parts, and improves the intuitiveness and accuracy of the operation.
Smart Images

Figure 2025072250000001_ABST
Abstract
Description
[Technical field]
[0001] The present invention relates to an operation status monitoring system, a control method thereof, and a control program thereof. [Background technology]
[0002] Patent Document 1 discloses a motion state monitoring system that monitors the motion state of a subject based on the detection results of a plurality of sensors attached to a plurality of parts of the subject's body. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Patent Publication No. 2022-34448 Summary of the Invention [Problem to be solved by the invention]
[0004] When configuring sensors (e.g. associating a sensor with a body part) using a sensor icon displayed on the display unit of a terminal, there is a problem in that it is difficult to know which sensor the sensor icon corresponds to.
[0005] The present disclosure has been made in consideration of the above background, and aims to provide an operation status monitoring system, a control method thereof, and a control program that can prevent it from becoming difficult to know which sensor each sensor icon on the display unit corresponds to. [Means for solving the problem]
[0006] The operating status monitoring system according to the present disclosure comprises: A motion status monitoring system for monitoring a motion of a subject in accordance with detection results from a plurality of measuring instruments associated with a plurality of body parts of the subject, the system comprising: a display unit that displays a plurality of sensor icons respectively associated with the plurality of measuring instruments; a control unit that causes the plurality of measuring instruments to perform different operations based on the display modes of the plurality of sensor icons; Equipped with. The subject's motion state may be estimated using a trained model generated by machine learning or the like.
[0007] The control unit may execute a process of making a display color of each sensor icon the same as a light emitting color of a light emitting unit provided in the measuring device corresponding to the sensor icon.
[0008] The control unit may change a display mode of a selected sensor icon, and cause the measuring instrument corresponding to the selected sensor icon to perform a predetermined operation.
[0009] The predetermined action may be an action of blinking a light emitting unit provided in the measuring device.
[0010] The predetermined action may be an action of outputting a sound from the measuring instrument.
[0011] The predetermined action may be an action of vibrating the measuring device.
[0012] The predetermined action may be an action of emitting an odor from the measuring device.
[0013] The control method for the operation status monitoring system according to the present disclosure includes: 1. A control method for a motion status monitoring system that monitors motion of a subject in accordance with detection results from a plurality of measuring instruments associated with a plurality of body parts of the subject, comprising: displaying a plurality of sensor icons corresponding to the plurality of measuring instruments on a display unit; Based on the display modes of the plurality of sensor icons, the corresponding plurality of measuring instruments are caused to execute different operations from one another.
[0014] The control program according to the present disclosure includes: A control program for causing a computer to execute a control process in a motion status monitoring system for monitoring a motion of a subject in accordance with detection results from a plurality of measuring instruments attached to a plurality of parts of the body of the subject, the control program comprising: A process of displaying a plurality of sensor icons corresponding to the plurality of measuring instruments on a display unit; A process of causing the plurality of measuring instruments to perform different operations according to the display modes of the plurality of sensor icons. to be executed by the computer. Effect of the Invention
[0015] The present disclosure makes it possible to provide an operation status monitoring system that can prevent it from becoming difficult to know which sensor corresponds to which sensor icon on the display unit, and a control method and control program therefor. [Brief description of the drawings]
[0016] [Figure 1] 1 is a block diagram showing a configuration example of an operation state monitoring system according to a first embodiment; [Diagram 2] FIG. 2 is a diagram showing an example of a target attachment portion of a measuring device attached to a subject; [Diagram 3] FIG. 2 is a diagram illustrating a configuration example of a measuring instrument provided in the operation status monitoring system according to the first embodiment. [Figure 4] FIG. 4 is a diagram showing an example of how the measuring device shown in FIG. 3 is attached to a subject. [Diagram 5] FIG. 4 is a diagram showing an example of a display screen. [Figure 6] 2 is a flowchart showing the operation of the operation status monitoring system shown in FIG. 1. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0017] The present invention will be described below through embodiments of the invention, but the invention according to the claims is not limited to the following embodiments. In addition, not all of the configurations described in the embodiments are necessarily essential as means for solving the problems. For clarity of explanation, the following description and drawings are omitted and simplified as appropriate. In each drawing, the same elements are given the same reference numerals, and repeated explanations are omitted as necessary.
[0018] <Embodiment 1> Fig. 1 is a block diagram showing a configuration example of a motion state monitoring system 1 according to the first embodiment. The motion state monitoring system 1 is a system that monitors the motion state of a subject. Based on the monitoring results, a user such as a caregiver can provide support to bring the motion of the subject closer to a desired motion. A specific description will be given below.
[0019] As shown in FIG. 1, the operation state monitoring system 1 includes an operation state monitoring device 10 and a plurality of measuring instruments 20. The operation state monitoring device 10 can be referred to as an operation state monitoring system by itself. The operation state monitoring device 10 and the plurality of measuring instruments 20 are configured to be able to communicate with each other via a wired or wireless network. The operation state monitoring device 10 and the plurality of measuring instruments 20 may perform wireless communication conforming to the Bluetooth (registered trademark) standard, or short-distance wireless communication conforming to NFC (Near field communication), UWB (Ultra Wideband), WiFi (registered trademark), or the like. In this embodiment, an example will be described in which eleven measuring instruments 20 are provided. Hereinafter, the twenty measuring instruments 20 are also referred to as measuring instruments 20_1 to 20_11 to distinguish each other.
[0020] The measuring instruments 20_1 to 20_11 are attached to the parts p1 to p11 of the body of the subject P that are motion detection targets, respectively, and detect the motion of the parts p1 to p11 using motion sensors (hereinafter simply referred to as sensors) 21_1 to 21_11 including a gyro sensor, an acceleration sensor, etc. The measuring instruments 20_1 to 20_11 are associated with the parts p1 to p11, respectively, by a pairing process performed with the motion state monitoring device 10.
[0021] The plurality of measuring instruments 20 may include a light-emitting unit capable of changing the light emission color. For example, a full-color LED (Light Emitting Diode) can be used as the light-emitting unit. As an example, the light-emitting unit may have a configuration in which a red LED chip, a green LED chip, and a blue LED chip are sealed with a light-transmitting resin. The light-emitting unit can realize a variety of light emission colors by controlling the brightness of three types of LED chips.
[0022] The sensors 21 may include hardware other than the light-emitting unit (e.g., a speaker, a vibration motor, an odor emitting unit, a low-frequency current generator, electronic paper, a display, a thermoelectric element, a shape-changing unit, etc.). The odor emitting unit includes, for example, a fragrance and a shutter.
[0023] Each measuring instrument 20 may also include a control unit that controls hardware such as an LED. The control unit may include a processor and a memory in which various control programs are stored. In this case, the control unit has a function as a computer and performs processing based on the various control programs.
[0024] FIG. 2 is a diagram showing an example of target parts of the body of the subject P for the measuring devices 20_1 to 20_11. In the example of FIG. 2, target parts p1 to p11 for the measuring devices 20_1 to 20_11 are the right upper arm, the right forearm, the head, the chest (trunk), the waist (pelvis), the left upper arm, the left forearm, the right thigh, the right lower leg, the left thigh, and the left lower leg, respectively. It is not necessary to attach all of the measuring devices 20_1 to 20_11 to the body of the subject P. It is sufficient that only the measuring devices necessary to measure the monitoring target motion (including the movement of the body part) that the user wants to monitor are attached to the body of the subject P, among the measuring devices 20_1 to 20_11.
[0025] The monitored motions include, for example, right shoulder flexion and extension, right shoulder abduction and abduction, right shoulder internal and external rotation, right elbow flexion and extension, right forearm pronation and external rotation, head flexion and extension, head rotation, thoracic and lumbar flexion and extension, thoracic and lumbar rotation, thoracic and lumbar lateral bending, left shoulder flexion and extension, left shoulder abduction and abduction, left shoulder internal and external rotation, left elbow flexion and extension, left forearm pronation and external rotation, etc. The monitored motions also include the movement of the part itself to which the sensor is attached.
[0026] For example, the monitored motions include angles of joints in the body of the subject P measured based on the detection results of multiple sensors, and angles of joints in an arbitrary coordinate system measured based on the detection result of any one of the sensors. The monitored motions can be specified by a user such as a caregiver.
[0027] Here, as an example, the right elbow flexion and extension movement of the subject P is monitored. The right elbow flexion and extension movement can be measured based on the detection results of sensors attached to the right upper arm (site p1) and the right forearm (site p2). In this case, for example, two different measuring devices are attached to the right upper arm (site p1) and the right forearm (site p2) of the subject P, respectively.
[0028] The user may simultaneously select a plurality of different monitoring target motion items. For example, the user may select "right elbow flexion / extension" and "right shoulder internal / external rotation" or "left elbow flexion / extension" and "left shoulder internal / external rotation".
[0029] The right elbow flexion and extension movement can be measured based on the detection results of the sensors attached to the right upper arm (part p1) and the right forearm (part p2). Similarly, the right shoulder internal and external rotation movement can be measured based on the detection results of the sensors attached to the right upper arm (part p1) and the right forearm (part p2). Furthermore, the left elbow flexion and extension movement can be measured based on the detection results of the sensors attached to the left upper arm (part p6) and the left forearm (part p7). Similarly, the left shoulder internal and external rotation movement can be measured based on the detection results of the sensors attached to the left upper arm (part p6) and the left forearm (part p7).
[0030] (Example of configuration of measuring instruments 20_1 to 20_11) 3 is a diagram showing an example of the configuration of the measuring instrument 20_1. Note that the configurations of the measuring instruments 20_2 to 20_11 are similar to that of the measuring instrument 20_1, and therefore the description thereof will be omitted.
[0031] 3, the measuring device 20_1 has a sensor 21_1, an attachment pad 22_1, and a belt 23_1. The belt 23_1 is formed so as to be able to be wrapped around a motion detection target part of the subject P. The sensor 21_1 is incorporated in, for example, the attachment pad 22_1. The attachment pad 22_1 in which the sensor 21_1 is incorporated is formed so as to be able to be attached to and detached from the belt 23_1.
[0032] Hardware such as LEDs may be attached to the mounting pads 22_1 or belt 23_1, for example.
[0033] Fig. 4 is a diagram showing an example of how to attach the measuring device 20_1 to the subject P. In the example of Fig. 4, a belt 23_1 is wrapped around the right upper arm (part p1), which is one of the motion detection target parts of the subject P. The sensor 21_1 is attached to the belt 23_1 via the attachment pad 22_1 after the matching process, calibration, etc. are completed.
[0034] (Example of configuration of operation status monitoring device 10) The operating state monitoring device 10 is a device that outputs a calculation result representing the operating state of the subject P based on the detection results (sensing values) of the sensors 21_1 to 21_11. The operating state monitoring device 10 may be, for example, a PC (Personal Computer), a mobile phone terminal, a smartphone, a tablet terminal, or the like. The operating state monitoring device 10 is configured to be able to communicate with the sensors 21_1 to 21_11 via a network (not shown). The operating state monitoring device 10 can also be called an operating state monitoring system. The operating state monitoring device 10 may include a processor and a memory in which various control programs are stored. In this case, the operating state monitoring device 10 has a function as a computer and performs processing based on various control programs, etc.
[0035] As shown in FIG. 1, the operational state monitoring device 10 includes a display unit 11, a control unit 12, a reception unit 13, and a processing unit 14.
[0036] The display unit 11 is, for example, a display device, and displays a plurality of sensor icons corresponding to the plurality of sensors 21_1 to 21_11, respectively. Fig. 5 shows an example of a display screen S displayed on the display unit 11. An area of the display screen S that displays the sensor icons is defined as a sensor icon display area S1. The display screen including the sensor icon display area S1 includes a human body schematic diagram S2 showing the parts to which the sensors are to be attached. The display screen S shown in Fig. 5 is displayed when performing a process of associating one of the plurality of sensors 21 with one of the parts p of the subject P to which the sensors are to be attached, on a one-to-one basis.
[0037] In the example shown in Fig. 5, the front side and the back side of the human body are displayed separately. The parts p1 to p11 of the attachment target of the subject P in Fig. 2 correspond to p_1 to p_11 in the human body schematic diagram S2 in Fig. 5, respectively. Hereinafter, p_1 to p_11 in the human body schematic diagram S2 will be referred to as the right upper arm, right forearm, head, back (trunk), waist (pelvis), left upper arm, left forearm, right thigh, right lower leg, left thigh, and left lower leg, respectively, as necessary. In addition, the display unit 11 can display, for example, a graph of the calculation result based on the detection result of each of one or more sensors.
[0038] The control unit 12 causes the display unit 11 to display a plurality of sensor icons. The control unit 12 may cause the display modes (e.g., colors) of the plurality of sensor icons to differ from one another. For example, the display color of the sensor icon i21_1 in Fig. 5 may be red, the display color of the sensor icon i21_2 may be blue, the display color of the sensor icon i21_3 may be yellow, the display color of the sensor icon i21_4 may be green, and the display color of the sensor icon i21_5 may be light blue. The display colors may be the colors of the outer frames (e.g., rounded rectangles) of the sensor icons.
[0039] Furthermore, the control unit 12 may change the display mode (e.g., color, shape) of a sensor icon selected by a tap operation or the like. For example, the display color of the selected sensor icon may flash. The selected sensor icon may also change to an icon indicating that the measuring device is outputting sound, or to an icon indicating that the measuring device is vibrating. The control unit 12 can both make the colors of multiple sensor icons different from one another and change the display mode of the selected sensor icon.
[0040] The control unit 12 causes the corresponding measuring instruments to perform different operations according to the display modes of the multiple sensor icons. Specifically, the control unit 12 controls the operation of outputting at least one of sound, text, vibration, movement, light, odor, electric current, image, and heat for notifying the surroundings of the measuring instruments. The control unit 12 may execute a process of making the display color of each sensor icon the same as the light emission color of the light-emitting unit provided on the measuring instrument corresponding to the sensor icon. The user can select a sensor with the same light emission color as the display color of the sensor icon, check the human body schematic diagram S2, and actually attach the sensor to the target site p of the subject P. This can prevent mistakes in attaching the sensor. The control unit 12 may transmit information indicating the light emission color of the light-emitting unit of the sensor to each sensor.
[0041] The control unit 12 may cause the measuring instrument corresponding to the sensor icon selected by the user's tap operation or the like to execute different operations from the other measuring instruments. The control unit 12 changes the display mode (e.g., color, blinking, shading, etc.) of the selected sensor icon, and causes the measuring instrument corresponding to the selected sensor icon to perform a predetermined operation. The predetermined operation may be an operation of blinking an LED. The predetermined operation may be an operation of outputting a sound from the measuring instrument, or an operation of vibrating the measuring instrument with a vibration motor or the like. The predetermined operation may be an operation of releasing an odor from the measuring instrument by opening a shutter disposed between the fragrance and the outside air. The predetermined operation may be an operation of supplying a low-frequency current to a conductive material provided on a belt or the like of the measuring instrument. The predetermined operation may be an operation of displaying any text information or image information on a display or electronic paper attached to the measuring instrument. The predetermined operation may be an operation of operating a thermoelectric element to generate heat. In the case where the pads or band of the measuring instrument are configured to be shape-changeable, the predetermined operation may be an operation of changing the shape of the band or the like.
[0042] The above-mentioned multiple sensor icons are selected by the user to associate the sensor 21 with the site p to which the sensor is to be attached. The reception unit 13 receives a setting operation for the sensor icon displayed on the display unit 11. The setting operation is an input operation for the sensor icon to associate the sensor corresponding to the sensor icon with any of the sites p to which the sensor is to be attached. For example, the user moves the sensor icon i21_1 displayed in the sensor icon display area S1 to the right upper arm p_1 on the human body schematic diagram S2. Specifically, the user drags and drops the sensor icon i21_1 displayed in the sensor icon display area S1 to the right upper arm p_1 on the human body schematic diagram S2 by a mouse operation, a touch operation, or the like. This setting operation is indicated by a dotted line in FIG. 5. Thereby, the reception unit 13 receives the setting operation for the sensor icon by the user.
[0043] 1, in response to the setting operation, the processing unit 14 associates the sensor corresponding to the sensor icon with the attachment target part of the subject P. This association process is performed by pairing the operation state monitoring device 10 and the sensor 21 in advance, and linking the identification information of the attachment target part p with the identification information of the sensor 21 on the application of the operation state monitoring device 10.
[0044] The operational status monitoring system 1 according to the first embodiment can prevent the user from becoming confused as to which sensor the sensor icon on the display unit corresponds to.
[0045] The setting operation is not limited to drag and drop. The setting operation may be an operation input for the displayed attachment position. The reception unit 13 may receive the setting operation by the user clicking the sensor icon displayed in the sensor icon display area S1 and the attachment target part in the human body schematic diagram S2 within a predetermined time.
[0046] Alternatively, the user may click on an attachment target part in the human body schematic diagram S2, causing the reception unit 13 to receive a setting operation. In response to the setting operation, the processing unit 14 can automatically associate any one of the sensors corresponding to the multiple sensor icons displayed on the display unit 11 with the attachment target part p of the subject P.
[0047] (Operation of the operation status monitoring device 10) Next, the operation of the motion state monitoring device 10 will be described with reference to Fig. 6. Fig. 6 is a flowchart showing the operation of the motion state monitoring device 10. As described above, the motion state monitoring device 10 monitors the right elbow flexion and extension motion of the subject P. That is, sensors are attached to the right upper arm (site p1) and the right forearm (site p2) of the subject P, respectively.
[0048] First, the operating state monitoring device 10 causes the display unit 11 to display a plurality of sensor icons i21_1 to i21_11 corresponding to a plurality of measuring instruments, respectively (S11).
[0049] The display unit 11 displays a display screen including a sensor icon display area S1 and a human body schematic diagram S2 showing target attachment sites, as shown in FIG.
[0050] When the user specifies the motion of the subject P to be monitored, the display unit 11 may display the parts to which the sensors used to measure the specified motion to be monitored are attached. The display unit 11 of the motion state monitoring device 10 may highlight the right upper arm p1 and the right forearm p2 in the human body schematic diagram S2 in a display mode (color, blinking, shading, etc.) different from the other parts p3 to p11. That is, in the human body schematic diagram S2 of FIG. 5, the right upper arm p1 and the right forearm p2 may be displayed in a display mode different from the other parts p3 to p11.
[0051] Then, the control unit 12 causes the corresponding measuring instruments to perform different operations according to the display modes of the multiple sensor icons (S12). The control unit 12 may cause the display modes (e.g., colors) of the multiple sensor icons to differ from one another and cause the corresponding measuring instruments to perform an operation according to the display mode (e.g., emitting light of the same luminescent color as the display color of the sensor icon). The control unit 12 may also change the display mode (e.g., color, shape) of a selected sensor icon and cause the sensor corresponding to the selected sensor icon to perform a predetermined operation (e.g., outputting sound).
[0052] Then, in the motion state monitoring device 10, the user drags and drops, for example, one sensor icon i21_1 from among the sensor icons i21_1 to i21_11 displayed in the sensor icon display area S1 onto the right upper arm p_1 of the human body schematic diagram S2. This causes the accepting unit 13 to accept the setting operation (S13).
[0053] Thereafter, the operating state monitoring device 10 links the identification information of the sensor 21_1 corresponding to the sensor icon i21_1 with the identification information of the right upper arm (site p1) of the subject P to which the sensor is to be attached, in accordance with the setting operation. This results in a process of associating the sensor 21_1 with the right upper arm (site p1) of the subject P (S14). Note that similarly, for another attachment site (right forearm (site p2)), the sensor icon i21_2 is dragged and dropped, and the process of associating the sensor 21_2 with the right forearm (site p2) of the subject is performed. That is, S12 and S13 in FIG. 6 can be repeated the number of times corresponding to the number of attachment sites of the subject.
[0054] After the sensor 21_1 and the attachment target part p1, and the sensor 21_2 and the attachment target part p2 are associated with each other, the sensors 21_1 and 21_2 used to measure the monitored motion are calibrated (S15). The calibration is, for example, a process of measuring an output value (error component) of the sensor used to measure the monitored motion in a stationary state and subtracting the error component from an actual measurement value. In this example, calibration is performed on at least the sensors 21_1 and 21_2. However, the calibration is not limited to the case where it is performed on the sensor used to measure the monitored motion, and may be performed on all the sensors 21_1 to 21_11, for example, before a process of displaying a sensor icon corresponding to a paired sensor.
[0055] After the calibration is completed, the sensors 21_1 and 21_2 are attached to the subject P (S16). Then, the motion to be monitored is measured based on the detection results of the sensors 21_1 and 21_2 (S17).
[0056] The calculation result showing the motion state of "right elbow flexion and extension" can be calculated by the difference between the detection result of the sensor 21_1 attached to the right upper arm (site p1) of the subject P and the detection result of the sensor 21_2 attached to the right forearm (site p2). The motion state monitoring device 10 generates a calculation result showing the motion state of "right elbow flexion and extension" based on the detection results of the sensors 21_1 and 21_2. The display unit 11 displays details of the measurement result (e.g., a graph of the measurement result, etc.).
[0057] In this way, the operational status monitoring system according to the present embodiment operates the sensor according to the display mode of the sensor icon, thereby making it possible to prevent the sensor icon from becoming difficult to understand which sensor it corresponds to.
[0058] The order of the processes of the operational state monitoring system 1 is not limited to the order of the processes shown in Fig. 6. For example, calibration may be performed before the display process of the sensor icon corresponding to the paired sensor.
[0059] The operating state monitoring device 10 may be a PC, but may also be a server that is not necessarily a personal computer.
[0060] Furthermore, in the present disclosure, a part or all of the processing of the operational state monitoring system 1 can be realized by causing a CPU (Central Processing Unit) to execute a computer program.
[0061] The above-mentioned program includes a set of instructions (or software code) for making the computer perform one or more functions described in the embodiment when the program is loaded into the computer. The program may be stored in a non-transitory computer-readable medium or a tangible storage medium. By way of example and not limitation, the computer-readable medium or the tangible storage medium includes a random-access memory (RAM), a read-only memory (ROM), a flash memory, a solid-state drive (SSD) or other memory technology, a CD-ROM, a digital versatile disc (DVD), a Blu-ray® disk or other optical disk storage, a magnetic cassette, a magnetic tape, a magnetic disk storage or other magnetic storage device. The program may be transmitted on a transitory computer-readable medium or a communication medium. By way of example and not limitation, the transitory computer-readable medium or the communication medium includes an electrical, optical, acoustic, or other form of propagating signal. [Explanation of symbols]
[0062] 1 Operation status monitoring system 10. Operation status monitoring device 11 Display section 12 Control section 13 Reception 14 Processing section 20 Measuring Instruments 20_1~20_11 Measuring Instruments 21 Sensors 21_1~21_11 Sensor 22_1 Pad 23_1 Belt P Subject p1~p11 site S display screen S1 Sensor icon display area S2 Human body schematic diagram
Claims
1. A motion status monitoring system for monitoring a motion of a subject in accordance with detection results from a plurality of measuring instruments associated with a plurality of body parts of the subject, the system comprising: a display unit that displays a plurality of sensor icons respectively associated with the plurality of measuring instruments; a control unit that causes the plurality of measuring instruments to perform different operations based on the display modes of the plurality of sensor icons; An operating condition monitoring system equipped with
2. The control unit executes a process of making the display color of each sensor icon the same as the light emission color of a light emitting unit provided in the measuring device corresponding to the sensor icon. The operating condition monitoring system according to claim 1 .
3. The control unit changes a display mode of the selected sensor icon, and causes the measuring instrument corresponding to the selected sensor icon to perform a predetermined operation.
3. The operating state monitoring system according to claim 1 or 2.
4. The predetermined operation is an operation of blinking a light emitting unit provided in the measuring device. The operating condition monitoring system according to claim 3 .
5. The predetermined operation is an operation of outputting a sound from the measuring device. The operating condition monitoring system according to claim 3 .
6. The predetermined operation is an operation of vibrating the measuring device. The operating condition monitoring system according to claim 3 .
7. The predetermined action is an action of emitting an odor from the measuring device. The operating condition monitoring system according to claim 3 .
8. 1. A control method for a motion status monitoring system that monitors motion of a subject in accordance with detection results from a plurality of measuring instruments associated with a plurality of body parts of the subject, comprising: displaying a plurality of sensor icons corresponding to the plurality of measuring instruments on a display unit; Based on the display modes of the plurality of sensor icons, the corresponding plurality of measuring instruments are caused to execute different operations from one another. A method for controlling an operational status monitoring system.
9. A control program for causing a computer to execute a control process in a motion status monitoring system for monitoring a motion of a subject in accordance with detection results from a plurality of measuring instruments attached to a plurality of parts of the body of the subject, the control program comprising: A process of displaying a plurality of sensor icons corresponding to the plurality of measuring instruments on a display unit; A process of causing the plurality of measuring instruments to perform different operations according to the display modes of the plurality of sensor icons. A control program that causes a computer to execute the above.
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