System for monitoring cardiovascular and brain function in combination with physiological detection device and method thereof
11202577 · 2021-12-21
Assignee
Inventors
Cpc classification
A61B5/4076
HUMAN NECESSITIES
A61B5/4088
HUMAN NECESSITIES
A61B5/4082
HUMAN NECESSITIES
A61B5/0002
HUMAN NECESSITIES
A61B5/6803
HUMAN NECESSITIES
A61B5/02438
HUMAN NECESSITIES
A61B5/029
HUMAN NECESSITIES
A61B5/7275
HUMAN NECESSITIES
A61B5/0205
HUMAN NECESSITIES
International classification
A61B5/0205
HUMAN NECESSITIES
A61B5/00
HUMAN NECESSITIES
Abstract
A system and method for monitoring cardiovascular and brain functions in combination with a physiological detection device, which uses a smart wearable device to detect physiological data such as heart rate and pulse pressure of a user, and transmits the physiological data to an arithmetic function. An electronic device in which a preset function and a calculation formula are built in, and the physiological data can be converted into corresponding determination parameters to monitor the possibility and risk of cardiovascular diseases and neurodegenerative diseases.
Claims
1. A system for monitoring cardiovascular and brain functions in combination with a physiological detection device, comprising: a wearable physiological detecting device has a host and at least one external sensing component, and the host is internally provided with a micro processing unit, a memory unit, a sensing signal receiving module and a communication control module, and the external sensing component worn on a human body is used to detect a heart rate and pulse pressure of the human body and generate a corresponding sensing signal, and the sensing signal is received by the sensing signal receiving module and converted into various physiological data, and then transmitted to the micro processing unit, wherein the memory unit stores a firmware required for the overall operation of the wearable physiological detecting device, and after executing the firmware, the micro processing unit controls the communication control module to transmit the physiological data to a paired external electronic device; an electronic device having a computing function, comprising a central processing unit, a memory module and a communication module, wherein the communication module is capable of receiving the physiological data via a paired communication control module and transmitting the physiological data to the central processing unit, wherein the memory module is provided to store an application, having a database for storing various materials, and the application includes various calculation and derivation functions, and after the central processing unit executing the application, the physiological data is calculated and deduced through the functional formulas to generate cardiovascular and brain monitoring functions and determine the results of the analysis, characterized in that the computing function is performed with the application built-in in the memory module to generate functions, including a first function of the relationship between the washout ratio and the pulse pressure; a second function of the relationship between the washout ratio and heart rate; a third function of the relationship between the washout ratio and the stroke volume index; a fourth function of the relationship between the early heart/mediastinum ratio and the stroke volume index; a fifth function of the relationship between the delayed heart/media ratio and the stroke volume index.
2. The system for monitoring cardiovascular and brain functions in combination with a physiological detection device as described in claim 1, wherein the host has a switching operation module for controlling switching of different physiological detection items and actions, and the memory unit is provided with a data storage unit capable of storing the physiological data.
3. The system for monitoring cardiovascular and brain functions in combination with a physiological detection device as described in claim 1, wherein the external sensing element is disposed on the head, neck, wrist, arm, foot or other human artery part.
4. The system for monitoring cardiovascular and brain functions in combination with a physiological detection device as described in claim 1, wherein the electronic device has an operation module for performing various control actions on the central processing unit; and display modules for presentation of each operation process and calculation analysis results.
5. The system for monitoring cardiovascular and brain functions in combination with a physiological detection device as described in claim 1, wherein the electronic device is a personal computer, a notebook, tablet or a mobile phone.
6. The system for monitoring cardiovascular and brain functions in combination with a physiological detection device as described in claim 1, wherein the external sensing element is of physiological examination detected by optical sensing, electrical signal measurement or pressure sensing.
7. The system for monitoring cardiovascular and brain functions in combination with a physiological detection device as described in claim 1, wherein the transmission between the communication control module and the communication module is wireless communication.
8. A method for monitoring cardiovascular and brain functions in combination with a physiological detection device, comprising steps: receiving a physiological data including a heart rate and a pulse pressure, wherein an electronic device is used to receive the physiological data transmitted by a wearable physiological detecting device; calculating a washout ratio value using the heart rate or pulse pressure data by a second function of the relationship between the heart rate and the washout ratio or by a first function of the relationship between the washout ratio and the pulse pressure; calculating a stroke volume index value with the washout ratio value by a third function of the relationship between the washout ratio and the stroke volume index; calculating an early heart/mediastinum ratio value by a fourth function of the relationship between the early heart/mediastinum ratio and the stroke volume index, and calculating the delayed heart/mediastinum ratio by a fifth function of the relationship between the delayed heart/mediastinum ratio and the stroke volume index; monitoring the risk of heart disease by the early heart/mediastinum ratio or delayed heart/mediastinum ratio, and inputting the early or the delayed heart/mediastinum ratio into a heart disease monitoring diagram to evaluate the risk of developing heart disease; detecting a neurodegenerative disease by the early or delayed heart/mediastinum ratio, and inputting the early or the delayed heart/mediastinum ratio into a neurodegenerative disease monitoring diagram to evaluate the risk of developing neurodegenerative diseases.
9. The method for monitoring cardiovascular and brain functions in combination with a physiological detection device as described in claim 8, wherein the first function of the relationship between the washout ratio and the pulse pressure:
y=−0.6094x+63.325;R.sup.2=0.3284;ρ<0.05 wherein y: washout ratio (WR); x: pulse pressure (PP); ρ: statistical difference value; R.sup.2: coefficient of determination; the second function of the relationship between the washout ratio and the heart rate:
y=0.2459x+12.111;R.sup.2=0.4008;ρ<0.01 wherein y: washout ratio (WR); x: heart rate (HR); R.sup.2: coefficient of determination; the third function of the relationship between the washout ratio and the stroke volume index:
y=−0.7978x+70.826;R.sup.2=0.3578;ρ<0.05 wherein y: stroke volume index (SVI); x: washout ratio (WR); R.sup.2: coefficient of determination; the fourth function of the relationship between the early heart/mediastinum ratio and the stroke volume index:
y=0.0162x+1.3379;R.sup.2=0.4412;ρ<0.01 wherein y: early heart/mediastinum ratio (early H/M); x: stroke volume index (SVI); R.sup.2: coefficient of determination; the fifth function of the relationship between the delayed heart/mediastinum ratio and the stroke volume index:
y=0.0161x+1.0938;R.sup.2=0.3897;ρ<0.01 wherein y: delayed heart/mediastinum ratio (delayed H/M); x: stroke volume index (SVI); R.sup.2: coefficient of determination.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(17) As shown in the
(18) The electronic device 2 can be a personal computer, a notebook computer, a tablet computer, a mobile phone or other computing device, and has a central processing unit 21, a memory module 22, a communication module 23, an operation module 26 and a display module 27, and the communication module 23 can be paired with the communication control module 114 via a wired or wireless manner for receiving the physiological data and transmitting to the central processing unit 21. In addition to storing an application (APP) 24, the memory module 22 is provided with a database 25 for storing various data, and the application 24 has various calculation derivation functions, and the operation module 26 is to execute various control actions with the central processing unit 21; the display module 27 is to display each operation process and calculation analysis result. After the central processing unit 21 executes the application 24, the physiological data can be calculated and derived via each of the functional formulas to generate a monitoring analysis for the cardiovascular and brain function examination.
(19) Referring to
y=−0.6094x+63.325;R.sup.2=0.3284;ρ<0.05
wherein y: washout ratio (WR); x:pulse pressure (PP); R2:coefficient of determination, when R.sup.2 is closer to 1, the ability to interpret y with x is stronger; ρ: statistical difference value; if ρ<0.05), means that there is a significant difference; if ρ<0.01 means that there is a very significant difference; if ρ<0.001 means that there is a outstanding significant difference.
(20) Formula 2. Washout ratio and heart rate relationship function:
y=0.2459x+12.111;R.sup.2=0.4008;ρ<0.01
wherein y:washout ratio (WR); x:heart rate (HR); R.sup.2:coefficient of determination, if R.sup.2 is closer to 1, the ability to interpret y with x is stronger; ρ: statistical difference value; if ρ<0.05, means that there is a significant difference; if ρ<0.01 means that there is a very significant difference; if ρ<0.001 means there is a outstanding significant difference.
(21) Formula 3. Washout ratio and strokestroke volume index function:
y=−0.7978x+70.826;R.sup.2=0.3578;ρ<0.05
wherein y: stroke volume index (SVI); x: washout ratio (WR); R.sup.2: coefficient of determination, if R.sup.2 is closer to 1, the ability to interpret y with x is stronger; ρ: statistical difference value; if ρ<0.05, means that there is a significant difference; if ρ<0.01 means that there is a very significant difference; if ρ<0.001 means there is a outstanding significant difference.
(22) Formula 4. Early heart/mediastinum ratio and stroke volume index function:
y=0.0162x+1.3379;R.sup.2=0.4412;ρ<0.01
wherein y: early heart/mediastinum ratio (early H/M); x: stroke volume index (SVI); R.sup.2: coefficient of determination, if R.sup.2 is closer to 1, the ability to interpret y with x is stronger; ρ: statistical difference value; if ρ<0.05, means that there is a significant difference; if ρ<0.01 means that there is a very significant difference; if ρ<0.001 means there is a outstanding significant difference.
(23) Formula 5. Delayed heart/mediastinum ratio and stroke volume index function:
y=0.0161x+1.0938;R.sup.2=0.3897;ρ<0.01
(24) wherein y: delayed heart/mediastinum ratio (delayed H/M); x: stroke volume index (SVI); R.sup.2: coefficient of determination, if R.sup.2 is closer to 1, the ability to interpret y with x is stronger; ρ: statistical difference value; if ρ<0.05, means that there is a significant difference; if ρ<0.01 means that there is a very significant difference; if ρ<0.001 means there is a outstanding significant difference.
(25) Referring to
Embodiment 1
(26) When the electronic device 2 receives the pulse pressure transmitted by the wearable physiological detecting device 1 is 70 mmHg.
(27) As shown in
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(30) As shown in
(31) As shown in
(32) As shown in
(33) As shown in
Embodiment 2
(34) When the electronic device 2 receives the heart rate transmitted by the wearable physiological detecting device 1 is 150/minute.
(35) As shown in
(36) As shown in
(37) As shown in
(38) As shown in
(39) As shown in
(40) As shown in
(41) As shown in