DEVICE FOR DIAGNOSING ABNORMALITY BY MEASURING MINIMAL CHANGE IN MUSCLE
20230210375 · 2023-07-06
Assignee
- Korea Institute Of Science And Technology (Seoul, KR)
- Korea University Research And Business Foundation (Seoul, KR)
Inventors
- Song Joo LEE (Seoul, KR)
- Jong Woo KANG (Seongnam-si, KR)
- Keun Tae KIM (Seoul, KR)
- Duguma Teshome Gemechu (Seoul, KR)
- Eunyoung SEO (Seoul, KR)
- Taehoon LEE (Seoul, KR)
Cpc classification
A61B5/7264
HUMAN NECESSITIES
A61B5/7275
HUMAN NECESSITIES
A61B5/02007
HUMAN NECESSITIES
A61B5/746
HUMAN NECESSITIES
A61B2562/0219
HUMAN NECESSITIES
A61B5/0022
HUMAN NECESSITIES
International classification
A61B5/00
HUMAN NECESSITIES
A61B5/02
HUMAN NECESSITIES
Abstract
A device for diagnosing an abnormality by measuring a minimal change in a muscle according to an embodiment includes a vibration unit that provides vibration to a body part of a user; a measuring unit that detects a minimal change in a muscle by measuring a change in elasticity of the body part according to the vibration; and a processing unit that calculates an abnormality of the body part based on the change in the elasticity of the body part, wherein the processing unit calculates the abnormality of the body party by using an algorithm that detects a degree to which a specific value of the muscle is far from a distribution chart by analyzing data distribution or an anomaly detection algorithm that detects whether there is anomaly in a variable.
Claims
1. A device for diagnosing an abnormality by measuring a minimal change in a muscle, comprising, a vibration unit that provides vibration to a body part of a user; a measuring unit that detects a minimal change in a muscle by measuring a change in elasticity of the body part according to the vibration; and a processing unit that calculates an abnormality of the body part based on the change in the elasticity of the body part, wherein the processing unit calculates the abnormality of the body party by using an algorithm that detects a degree to which a specific value of the muscle is far from a distribution chart by analyzing data distribution or an anomaly detection algorithm that detects whether there is anomaly in a variable.
2. The device according to claim 1, wherein the abnormality of the body part calculated by the processing unit is a risk of thrombosis.
3. The device according to claim 1, further comprising a display unit that displays the abnormality of the body part.
4. The device according to claim 1, further comprising a control unit that controls an operation of the vibration unit.
5. The device according to claim 4, wherein the vibration unit receives a control signal from the control unit and provides the vibration of a specific frequency through a vibrator attached to the body part.
6. The device according to claim 5, further comprising a pressure sensor positioned between the vibrator and the body part of the user to sense pressure according to the vibration, wherein the processing unit is configured to indicate the pressure according to the vibration through the display unit.
7. The device according to claim 1, wherein the measuring unit includes an accelerometer that detects reflex vibration generated in the body part in response to the vibration.
8. The device according to claim 1, wherein the measuring unit includes an electromyograph that measures an electromyograph signal of the body part.
9. The device according to claim 1, wherein the processing unit obtains an approximate function of each of measurement values of reflex vibration and electromyograph signal of the body part using a distribution of Bayesian probability value based on a change in the measurement values of the reflex vibration and EMG signal of the body part over time, and converts each of the measurement values of the reflex vibration and EMG signal of the body part into a value within a range of 0 to 1 by using the calculated approximate function.
10. The device according to claim 1, wherein an anomaly detection algorithm used by the processing unit includes an isolation forest algorithm that detects anomaly by splitting anomaly data based on a tree.
11. The device according to claim 3, wherein the display unit displays numerically indicates the abnormality of the body part through a display device.
12. The device according to claim 3, wherein the display unit is configured to turn on an LED element when the abnormality of the body part is greater than or equal to a threshold.
13. The device according to claim 1, wherein the device is detachable as a wearable patch.
14. The device according to claim 3, wherein the processing unit is connected to wirelessly communicate with the display unit using one or more of radio frequency (RF), Wi-Fi, cellular, Bluetooth, Bluetooth Low Energy (BLE), personal area network (PAN), short-wavelength UHF, and a combination thereof.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0025]
[0026]
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[0029]
DETAILED DESCRIPTION OF THE INVENTION
[0030] The terms used in the present specification have been selected as widely used general terms as possible while considering their functions, but may vary depending on the intention or custom of those skilled in the art or the advent of new technology. In addition, in a specific case, there is a term arbitrarily selected by the applicant, and in this case, the meaning will be described in the description of the corresponding specification. Therefore, it is intended to clarify that the terms used in this specification are not simply names of terms, but should be interpreted based on the actual meaning of the terms and the contents of the entire specification.
[0031] Hereinafter, the embodiments will be described in detail with reference to the accompanying drawings and the contents described in the accompanying drawings, but the scope of the claims is not limited or restricted by the embodiments.
[0032]
[0033] Although the above components are shown separately for the convenience of conceptual description, they do not necessarily have to be implemented as independent devices or programs. For example, each of the components may be implemented by one processing unit or program, or may be implemented by an organic combination of two or more independent processing units or programs.
[0034] The vibration unit 110 receives a control signal from the control unit 150 and provides the vibration of a specific frequency through a vibrator 111 attached to a body part. The vibration unit 110 receives the control signal, for example, an input for the intensity, frequency, and form of vibration to be provided to the user (regular intensity or periodically repeating strength and weakness) from the control unit 150, and transmit it to the vibration unit 110 by wire or wirelessly.
[0035] The vibrator 111 is a device having a power device such as a motor to convert electrical energy into physical vibration, and is not limited to a specific shape or size. The vibrator 111 may be connected to the diagnosis device 10 by wire or through a wireless network (Bluetooth, WiFi, infrared communication, etc.). In addition, the vibrator 111 may be powered by a motor by wire, or may be powered by a built-in battery. In one embodiment, the vibrator 111 may be attached to the user's body part (arm, leg, etc.) through a fixing part such as a strap or adhesive tape that can be worn on the user's body part.
[0036] According to an embodiment, a pressure sensor (not shown) for sensing pressure according to vibration between the vibrator 111 and the user's body part may be further provided. The processing unit 130 to be described later may display a change in pressure according to the vibration on the display unit 140. This allows the user to know in real time whether the vibrator is providing vibration at the appropriate pressure level. Accordingly, when the pressure is too low or too high, the operations of the vibration unit 110 and vibrator 111 may be controlled through the control unit 150.
[0037] The measuring unit 120 may measure a change in elasticity of a body part according to the vibration provided by the vibration unit 110 to detect a minimal change in a muscle. For example, when deep vein thrombosis (DVT) occurs, blood clots are formed in the vein, which causes muscle stiffness, and the measuring unit 120 measures a change in elasticity of a muscle to detect these symptoms.
[0038] The measuring unit 120 detects a change in elasticity of a body part through an accelerometer 121 and/or an electromyography 122, and warns the user by calculating an abnormality or risk of thrombosis of the body part when an abnormal change occurs.
[0039] According to an embodiment, the measuring unit 120 may sense the reflex vibration generated in the user's body part through an accelerometer 121. Reflex vibration refers to the tremor that occurs in the surrounding muscles when an arbitrary vibrational stimulus is applied to the muscle. In general, in an environment with the same muscle quality or blood flow, when the vibration stimulation of the same characteristic (intensity, frequency, stimulation interval) is applied, the reflex vibration of the corresponding characteristic appears at a constant level. In contrast, when deep vein thrombosis occurs and the muscle becomes stiff or the blood flow changes, the characteristic of the reflex vibration sensed in the muscle changes rapidly. The accelerometer 121 is a device for converting a minimal movement of a muscle into an electrical signal, and detects a change in vibration characteristics due to the muscular dystrophy or thrombosis and transmits it to the processing unit 130. After the development of muscular dystrophy or deep vein thrombosis, the measured value of measured reflex vibration changes significantly.
[0040] According to an embodiment, the measuring unit 120 may measure an electromyograph (EMG) signal of the user's body part through an electromyograph. The electromyograph is a device that records electrical activity according to muscle contraction using the electrodes attached to or inserted into the body parts. As with the above-mentioned reflex vibration, when deep vein thrombosis occurs and the muscle is stiff or there is a change in blood flow, the EMG signal also changes. The EMG 122 detects a change in the EMG signal and transmits it to the processing unit 130. After the development of deep vein thrombosis, the measured value of measured EMG signal changes significantly.
[0041] The processing unit 130 calculates an abnormality of a body part based on a change in elasticity of the body part. The processing unit 130 may calculate an abnormality of a body part by using an algorithm that analyzes data distribution to detect a degree to which a specific value of a muscle moves away from the distribution or an anomaly detection algorithm that detects whether there is anomaly in a variable. In an embodiment, the abnormality of the body part calculated by the processing unit 130 may mean a risk of thrombosis.
[0042] The processing unit 130 combines and simultaneously uses the measurement results of reflex vibration and EMG signal (in this case, each measurement result may be given a weight), or uses each result independently to calculate an abnormality of muscle or a risk of thrombosis.
[0043] The display unit 140 displays the risk of thrombosis calculated by the processing unit 130 to the user through an external device. According to an embodiment, the display unit 140 may display the calculation result as a numerical value on a display device 141 (refer to
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[0045] Referring to
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[0047] Referring to
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[0049] Referring to
[0050] In particular, among wearable devices, a wearable multi-biosignal measuring device such as a wearable electromyography device is a device that uses a sensor such as a patch-type electrode to form a contact point with various body parts (chest, wrist, ankle, etc.) of a subject to measure biosignals such as electromyography. This device is used to predict or diagnose an abnormality in body parts or the occurrence of diseases such as thrombosis by monitoring biosignals.
[0051] By implementing the diagnostic device of the present invention in a detachable manner as a wearable patch, it is possible to easily monitor bio-signals such as electromyography in daily life. Thus, medical personnel can be continuously provided with the patient's condition through the motor unit, measuring unit, and processing unit mounted on the wearable patch, and can rapidly diagnose and treat predicted disease, thereby reducing the risk of death.
[0052]
[0053] The processing unit 130 may be connected to communicate wirelessly with the display unit 140 using one or more of radio frequency (RF), Wi-Fi, cellular, Bluetooth, Bluetooth Low Energy (BLE), personal area network (PAN), short-wavelength UHF, and a combination thereof.
[0054] Referring to
[0055] According to the diagnostic device described above, the vibration of a specific frequency is provided using the vibrator attached to the user's body, and a muscular dystrophy or deep vein thrombosis is diagnosed by measuring the reflex vibration and EMG signal of the muscle sensed in response to the vibration. The diagnosis device according to an embodiment is configured to include the vibrator attached to a body part and the sensor capable of sensing a change in the body part, so that it is easy to install and use. For example, by using the vibrator and sensor provided under an airplane seat, it is possible to automatically measure and warn an abnormality of the body part or a risk of thrombosis of a traveler. According to this, it is possible to diagnose muscular dystrophy and deep vein thrombosis at an earlier stage compared to the conventional ultrasound examination method or blood test method.
[0056] Although the above has been described with reference to the embodiments, it will be understood by those skilled in the art that various modifications and changes can be made in the present invention without departing from the spirit and scope of the present invention as set forth in the following claims.