Blood pressure measuring device, blood pressure measuring method, blood pressure measuring program, and sorter generation method
By employing constant speed inflation control and a trained classifier for accurate cuff wrapping strength determination, the device achieves clear pressure pulse waves and improved blood pressure measurement accuracy.
Patent Information
- Application Number
- JP2024027772
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Filing Date
- 2024-02-27
- Publication Date
- 2025-09-08
AI Technical Summary
Existing blood pressure measurement devices face challenges in obtaining clear pressure pulse waves due to sudden changes in cuff inflation speed during the transition from cuff wrapping strength determination to blood pressure calculation, leading to noise generation.
Implementing constant speed inflation control during both wrapping strength determination and blood pressure calculation processes, using a trained classifier to accurately determine cuff wrapping strength based on cuff pressure and inflation rate changes, and ensuring the inflation speed remains constant throughout these processes.
This approach suppresses noise associated with control switching and enables the acquisition of clear pressure pulse waves even at low pressures, enhancing the accuracy of blood pressure measurement.
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Figure 2025130540000001_ABST
Abstract
Description
[Technical Field]
[0001] The present invention relates to a blood pressure measurement device, a blood pressure measurement method, a blood pressure measurement program, and a method for generating a classifier. [Background technology]
[0002] In recent years, health management has become commonplace by measuring information about an individual's physical and health, such as blood pressure values, using measuring devices and recording and analyzing the measurement results. One example of such measuring devices is a blood pressure monitor that attaches a cuff to the subject's upper arm, wrist, or other part of the body to be measured, and is equipped with a function to determine the tightness of the cuff wrapping (see Patent Document 1).
[0003] In the blood pressure monitor disclosed in Patent Document 1, after the cuff is attached, a constant voltage is applied to the pump to drive it during initial inflation, and the wrapping strength of the cuff is determined from the cuff pressure-inflation time characteristic (cuff pressure curve) from the initial pressure until the pressure value at the end of initial inflation is reached, and then the blood pressure is calculated.
[0004] However, when the wrapping strength is determined and the constant voltage drive is switched to constant speed inflation control, the inflation speed of the cuff changes suddenly, making it difficult to obtain a clear pressure pulse wave. [Prior art documents] [Patent documents]
[0005] [Patent Document 1] Patent No. 5408142 Summary of the Invention [Problem to be solved by the invention]
[0006] In view of the above-described conventional techniques, an object of the present invention is to provide a technique that can suppress the generation of noise that accompanies switching of control from determining the cuff wrapping strength to calculating blood pressure, and can acquire a clean pressure pulse wave even from low pressure. [Means for solving the problem]
[0007] In order to solve the above problems, the present invention provides: a cuff that is wrapped around the part to be measured; a pressure detection unit that detects a cuff pressure in the cuff; a pressure control unit that controls the cuff pressure; a blood pressure calculation unit that performs a blood pressure calculation process to calculate the blood pressure of the subject based on the detected cuff pressure; a wrapping strength determination unit that performs a wrapping strength determination process to determine the wrapping strength of the cuff around the measurement target part; Equipped with The pressure control unit is This blood pressure measurement device is characterized by performing constant speed inflation control in which the cuff pressure is increased at a constant speed through the wrapping strength determination process, which is performed after the start of cuff pressure inflation, and the blood pressure calculation process, which is performed after the wrapping strength determination process is completed.
[0008] This allows constant velocity inflation control to be performed through the wrapping strength determination process and the subsequent blood pressure calculation process, thereby suppressing the generation of noise associated with control switching and enabling clear pressure pulse waves to be obtained even at low pressures during blood pressure measurement.
[0009] In addition, in the present invention, The winding strength determination unit In the wrapping strength determination process, the wrapping strength may be determined based on the cuff pressure and the change over time in the inflation rate of the cuff pressure.
[0010] In addition, in the present invention, The winding strength determination unit In the wrapping strength determination process, the wrapping strength may be determined by a trained classifier that classifies the wrapping strength based on the input cuff pressure and the change over time in the inflation rate of the cuff pressure.
[0011] In this way, by using a trained classifier, the wrapping strength of the cuff can be determined with greater accuracy.
[0012] In addition, in the present invention, The apparatus may further include a determination condition determining unit that determines whether a condition for starting the wrapping strength determination process is met.
[0013] This allows the winding strength to be determined when the conditions for starting winding strength determination are satisfied, thereby enabling more accurate determination.
[0014] In addition, in the present invention, The device may further include a circumference determining unit that determines the circumference of the measurement target portion around which the cuff is wrapped.
[0015] This makes it possible to determine the winding strength taking into consideration the circumferential length of the part to be measured.
[0016] In addition, in the present invention, The blood pressure calculation unit It may be possible to determine whether or not to perform the blood pressure calculation process depending on the result of the wrapping strength determination process.
[0017] This allows the blood pressure calculation process to be performed when the wrapping strength of the cuff is appropriate, thereby enabling more accurate blood pressure measurement.
[0018] In addition, in the present invention, The target value of the inflation speed of the cuff pressure in the constant speed inflation control when the wrapping strength determination process is performed may be equal to the inflation speed of the cuff pressure in the constant speed inflation control when the blood pressure calculation process is performed.
[0019] This allows constant-speed inflation control to be performed at the same inflation speed throughout the wrapping strength determination process and the subsequent blood pressure calculation process, thereby further reducing noise caused by switching between controls.
[0020] The present invention also provides detecting a cuff pressure in a cuff wrapped around the measurement target part; performing constant speed inflation control to maintain the inflation speed of the cuff pressure at a constant target value; a step of performing a winding strength determination process to determine the winding strength around the measurement portion during the constant speed pressurization control; performing a blood pressure calculation process to calculate the blood pressure of the subject based on the cuff pressure during the constant velocity inflation control; The blood pressure measurement method is characterized by comprising:
[0021] According to this, constant velocity inflation control is performed through the wrapping strength determination process and the blood pressure calculation process, which suppresses the generation of noise associated with control switching and enables a clear pressure pulse wave to be obtained even at low pressures during blood pressure measurement.
[0022] The present invention also provides On the computer, detecting a cuff pressure in a cuff wrapped around the measurement target part; performing constant speed inflation control to maintain the inflation speed of the cuff pressure at a constant target value; a step of performing a winding strength determination process to determine the winding strength around the measurement portion during the constant speed pressurization control; performing a blood pressure calculation process to calculate the blood pressure of the subject based on the cuff pressure during the constant velocity inflation control; The blood pressure measurement program is characterized by executing the following.
[0023] According to this, constant velocity inflation control is performed through the wrapping strength determination process and the blood pressure calculation process, which suppresses the generation of noise associated with control switching and enables a clear pressure pulse wave to be obtained even at low pressures during blood pressure measurement.
[0024] The present invention also provides On the computer, detecting a cuff pressure in a cuff wrapped around the measurement target part; performing constant speed inflation control to maintain the inflation speed of the cuff pressure at a constant target value; a step of performing a winding strength determination process to determine the winding strength around the measurement portion during the constant speed pressurization control; performing a blood pressure calculation process to calculate the blood pressure of the subject based on the cuff pressure during the constant velocity inflation control; A method for generating a classifier used in the wrapping strength determination process in a blood pressure measurement program that executes a classifier is machine-trained to output a classification result of the wrapping strength around the measurement target part in response to an input of the cuff pressure and the cuff pressure inflation rate, using the time change of the cuff pressure, the time change of the inflation rate of the cuff pressure, and the wrapping strength around the measurement target part as learning data; A method for generating a classifier for generating the trained classifier.
[0025] This makes it possible to provide classification that enables accurate classification of the wrapping strength of the cuff in blood pressure measurement. [Effects of the Invention]
[0026] According to the present invention, it is possible to suppress the generation of noise that accompanies switching of control from determining the wrapping strength of the cuff to calculating the blood pressure, and to acquire a clear pressure pulse wave even from low pressure. [Brief explanation of the drawings]
[0027] [Figure 1] FIG. 1 is a diagram illustrating an outline of a hardware configuration of a blood pressure measurement device according to a first embodiment. [Figure 2] FIG. 2 is a functional block diagram of the blood pressure measurement device according to the first embodiment. [Figure 3] FIG. 3 is a flowchart illustrating the procedure of the overall process of the blood pressure measurement device according to the first embodiment. [Figure 4] 4A and 4B are graphs showing changes over time in cuff pressure, inflation speed, and pulse wave amplitude for subjects with different arm circumferences in the blood pressure measurement device according to Example 1. [Figure 5]FIG. 5 is a flowchart illustrating a procedure of the wrapping strength determination process in the blood pressure measurement device according to the first embodiment. [Figure 6] FIG. 6 is a graph showing the change over time in the cuff pressure for each wrapping strength of the blood pressure measurement device according to Example 1. [Figure 7] FIG. 7 is a functional block diagram of a blood pressure measurement device according to the second embodiment. [Figure 8] FIG. 8 is a flowchart illustrating the procedure of the arm circumference discrimination and wrapping strength determination process in the blood pressure measurement device according to the second embodiment. [Figure 9] FIG. 9 is a graph showing the change over time in cuff pressure for each arm circumference and wrapping strength of the blood pressure measuring device according to Example 2. DETAILED DESCRIPTION OF THE INVENTION
[0028] Hereinafter, specific embodiments of the present invention will be described with reference to the drawings.
[0029] Example 1 An example of an embodiment of the present invention will be described below. However, unless otherwise specified, the dimensions, materials, shapes, relative positions, etc. of the components described in this example are not intended to limit the scope of the present invention to those only.
[0030] (Device configuration) FIG. 1 is a schematic diagram of a hardware configuration of a blood pressure measurement device 1 according to this embodiment.
[0031] The blood pressure measurement device 1 includes a cuff 11, a pressure sensor 12, a pressure pump 13, an exhaust valve 14, an air tube 15, an oscillator circuit 21, a pump drive circuit 22, a valve drive circuit 23, a display unit 25, a memory 24, an operation switch 26, a power supply 27, and a CPU 100. The blood pressure measurement device 1 corresponds to the blood pressure measurement device of the present invention. The cuff 11 corresponds to the cuff of the present invention.
[0032] Cuff 11 includes air bag 11a containing air. Cuff 11 is provided with pressure sensor 12 for detecting the pressure inside air bag 11a of cuff 11 (hereinafter referred to as "cuff pressure") via air tube 15, pressure pump 13 for supplying air to air bag 11a, and exhaust valve 14 that opens and closes to maintain the pressure inside air bag 11a or to exhaust air from air bag 11a.
[0033] Furthermore, the blood pressure measurement device 1 includes a CPU (Central Processing Unit) 100 for controlling each part of the device, and a trained classifier for determining the wrapping strength, which will be described later. The device is equipped with a memory 24 for storing programs and parameters executed for the blood pressure measurement process, programs executed for the blood pressure measurement process, and data such as cuff pressure, inflation speed, and blood pressure measurement results, a display unit 25 for displaying various information such as the wrapping strength judgment results and blood pressure measurement results, an operation switch 26 for inputting various instructions for measurement, and a power supply 27 for supplying power to each part of the device such as the CPU.
[0034] Furthermore, the oscillator circuit 21 outputs a signal having an oscillation frequency corresponding to the output value of the pressure sensor 12 to the CPU 100. The pump drive circuit 22 controls the drive of the pressure pump 13 based on a control signal output from the CPU 100. The valve drive circuit 23 controls the opening and closing of the exhaust valve 14 based on the control signal output from the CPU 100.
[0035] FIG. 2 is a functional block diagram of the blood pressure measurement device 1. The CPU 100 includes a pressure detection unit 110, a pressure control unit 120, a blood pressure calculation unit 130, and a wrapping unit. It includes a strength determination input value calculation unit 140 and a wrapping strength determination unit 150. The pressure detection unit 110, pressure control unit 120, blood pressure calculation unit 130, and wrapping strength determination unit 150 correspond to the pressure detection unit, pressure control unit, blood pressure calculation unit, and wrapping strength determination unit of the present invention, respectively.
[0036] The output signal of the oscillator circuit 21 is input to the pressure detection unit 110. The pressure detection unit 110 detects the oscillation frequency of the input signal and converts the detected oscillation frequency into a pressure value signal. The pressure detection unit 110 comprises an HPF (High Pass Filter) unit that processes the pressure value signal with HPF to extract and output a pressure pulse wave signal, and an LPF (Low Pass Filter) unit that processes the pressure value signal with LPF to extract and output a pressure pulse wave signal. The LPF section of the pressure detection section 110 extracts and outputs a cuff pressure signal from the LPF section of the pressure detection section 110. The cuff pressure signal, which indicates the cuff pressure detected in time series from the LPF section of the pressure detection section 110, is stored in a predetermined area of the memory 24.
[0037] The pressure control unit 120 controls the operation of the pump drive circuit 22 and the valve drive circuit 23 to control the cuff pressure of the cuff 11 .
[0038] The blood pressure calculation unit 130 receives the pressure pulse wave signal extracted by the HPF unit of the pressure detection unit 110 and processes the received pressure pulse wave signal according to the oscillometric method to calculate the diastolic blood pressure (minimum blood pressure) and the systolic blood pressure (maximum blood pressure).
[0039] A cuff pressure signal indicating the cuff pressure detected in time series from the LPF unit of the pressure detection unit 110 is input to the wrapping strength determination input value calculation unit 140. Based on the cuff pressure signal input in time series, the wrapping strength determination input value calculation unit 140 calculates a wrapping strength determination input value to be input to a trained classifier used for wrapping strength determination, which will be described later. The wrapping strength determination input value will be described later.
[0040] The wrapping strength determination unit 150 reads out a trained classifier for winding strength determination from the trained classifier storage unit 240 in the memory 24, and inputs the winding strength determination input value calculated by the winding strength determination input value calculation unit 140 to this trained classifier for winding strength determination. The trained classifier for winding strength determination outputs a classification result of the input, indicating the winding strength as either loose, tight, or tight. The method for determining the winding strength will be described in detail later.
[0041] (Blood pressure measurement method) Fig. 3 is a flowchart showing the procedure of the overall processing of the blood pressure measurement method by the blood pressure measurement device 1. The overall processing of blood pressure measurement shown in Fig. 3 is stored in advance in a predetermined area of the memory 24 as a blood pressure measurement program, and is realized by the CPU 100 reading and executing the program from the memory 24. The program may be stored in a computer-readable storage medium and read into the blood pressure measurement device 1 from the storage medium.
[0042] When measuring blood pressure, the subject wraps cuff 11 around the part to be measured in advance. In the following, an example in which the part to be measured is the upper arm will be described, but the part to be measured is not limited to this and may be the wrist, etc. In addition, the description will be given assuming that the subject performs predetermined settings using operation switch 26 and issues an instruction to start blood pressure measurement. Note that, upon receiving the instruction to start blood pressure measurement, blood pressure measurement device 1 performs predetermined initialization, such as opening exhaust valve 14 and setting the cuff pressure to atmospheric pressure (initial pressure).
[0043] When blood pressure measurement is started, the pressure control unit 120 starts constant speed inflation control (step S1). At this time, the pressure control unit 120 controls the pump drive circuit 22 so that the inflation speed of the cuff pressure becomes a predetermined target value (referred to as "constant speed inflation control"). This constant speed inflation control can be performed by, for example, PID control, but the control method is not limited to this.
[0044] Figure 4(A) shows the time changes in cuff pressure, inflation speed, and pulse wave amplitude under constant velocity inflation control for a subject with an upper arm circumference of 22 cm. Figure 4(B) shows the time changes in cuff pressure, inflation speed, and pulse wave amplitude under constant velocity inflation control for a subject with an upper arm circumference of 36 cm. As shown in Figures 4(A) and 4(B), even when similar constant speed inflation control is performed, the changes in cuff pressure and inflation speed over time differ depending on the circumference of the upper arm on which the subject wears the blood pressure measurement device 1.
[0045] In the process of the constant speed pressurization control, the wrapping strength determination unit 150 executes the wrapping strength determination process shown in Fig. 5 based on the determination input value calculated by the wrapping strength determination input value calculation unit 140 (step S3). In this way, the wrapping strength determination process is performed under the constant speed pressurization control.
[0046] In the wrapping strength determination process of step S3, the wrapping strength of the cuff 11 is determined to be one of three categories: loosely wrapped, tightly wrapped, or tightly wrapped. When the cuff 11 is wrapped around the part to be measured, such as the upper arm, to form a cylinder, if the circumferential length of this cylinder is approximately equal to the circumferential length of the part to be measured, the pressure applied by the cuff 11 to the part to be measured is at an appropriate level for blood pressure measurement, and this state is considered to be tightly wrapped. If the circumferential length of the cylinder formed by the cuff 11 is shorter than the circumferential length of the part to be measured, the cuff 11 is wrapped tightly around the part to be measured, and the pressure applied by the cuff 11 to the part to be measured is higher than the appropriate level, and this state is considered to be tightly wrapped. On the other hand, if the circumferential length of the cylinder formed by the cuff 11 is longer than the circumferential length of the part to be measured, the cuff 11 is wrapped loosely around the part to be measured, and the pressure applied by the cuff 11 to the part to be measured is lower than the appropriate level, and this state is considered to be loosely wrapped.
[0047] The winding strength determination process will be described below with reference to FIG. First, the wrapping strength judgment input value calculation unit 140 calculates the time change ΔT1 of the cuff pressure at P1±ΔP1, i.e., the time ΔT1 until the cuff pressure changes from P1-ΔP1 to P1+ΔP1, from the output from the LPF unit of the pressure detection unit 110 (which may be data read from memory 24) (step S201).
[0048] Next, the wrapping strength judgment input value calculation unit 140 calculates the time ΔT2 required for the inflation rate to change from Pd1-ΔPd1 to Pd1+Pd1, based on the output from the LPF unit of the pressure detection unit 110 (which may be data read from memory 24), i.e., when the inflation rate (differential value of the cuff pressure) corresponding to the cuff pressure P1 is Pd1 (step S202).
[0049] Then, ΔT1 and ΔT2 calculated by the wrapping strength determination input value calculation unit 140 are input to a trained classifier for wrapping strength determination read from the memory 24. This trained classifier for wrapping strength determination is a classifier generated by machine learning so that, in response to input of changes in cuff pressure and inflation speed, it classifies the wrapping strength into loose, tight, or tight, and outputs the result. The trained classifier for wrapping strength determination classifies the wrapping strength of the blood pressure measurement device 1 by the subject based on the input ΔT1 and ΔT2, thereby determining the wrapping strength (step S203).
[0050] This trained classifier for determining wrapping strength can be generated as follows: (1) First, ΔT, which indicates the time change in cuff pressure as described above, ΔT2, which indicates the time change in the inflation rate of the cuff pressure, and the wrapping strength of the cuff 11 at the time of measurement when such data was obtained are obtained. (2) A classification model is generated that receives as input the time change in cuff pressure ΔT1 and the time change in the inflation rate of the cuff pressure ΔT2, classifies the wrapping strength into loose, tight, or tight wrapping, and outputs the result. (3) The acquired data is used as learning data and machine learning is performed on the prepared classification model. Any appropriate model can be used as the classification model. Furthermore, any appropriate method, such as deep learning, can be used as the machine learning method. Such a classifier can be generated or updated based on the acquired data by a learning device in a system external to the blood pressure measurement device 1, by acquiring, via a network, ΔT indicating the change in cuff pressure over time, ΔT2 indicating the change in the inflation rate over time, and the wrapping strength of the cuff 11 during measurement from multiple blood pressure measurement devices 1, and then acquiring the acquired trained classifier via the network and storing it in the memory 24 of the blood pressure measurement device 1. Alternatively, the acquired trained classifier can be provided in a form that can be imported by the blood pressure measurement device 1 from a recording medium that stores the trained classifier together with parameters, etc.
[0051] Returning to the flowchart of FIG. 4, the overall blood pressure measurement process will be explained below. If it is determined in step S203 that the wrapping strength is perfect, the blood pressure calculation unit 130 acquires a pressure pulse wave for blood pressure measurement from the HPF unit of the pressure detection unit 110, and performs blood pressure calculation processing to calculate blood pressure values such as systolic blood pressure and diastolic blood pressure using the oscillometric method (step S4).
[0052] Here, following the end of the wrapping strength determination process in step S2, the blood pressure calculation process in step S4 is performed while maintaining constant velocity inflation control. This prevents noise caused by control switching after the end of the wrapping strength determination process, and allows for the acquisition of clear pressure pulse waves even from low pressures.
[0053] The CPU 100 displays the measurement results, such as the blood pressure values calculated in step S4, on the display unit 25 of the blood pressure measurement device 1 (step S5). Then, the CPU 100 records the measurement results, such as the blood pressure values calculated in step S4, in a predetermined area of the memory 24 of the blood pressure measurement device 1 (step S6), and ends the blood pressure measurement process.
[0054] If the wrapping strength is determined to be insufficient in the wrapping strength determination process of step S2, i.e., if the wrapping strength is determined to be loose or tight, blood pressure calculation unit 130 does not perform the blood pressure calculation process, and instead controls valve drive circuit 23 via pressure control unit 120 to open exhaust valve 14 and discharge air from air bag 11a of cuff 11 (step S7). CPU 100 then displays an error on display unit 25 (step S8) and ends the blood pressure measurement process.
[0055] <Example 2> 7 is a functional block diagram of a blood pressure measurement device 2 according to Example 2. The configuration of the blood pressure measurement device 2, excluding the CPU 100A, is the same as that of the blood pressure measurement device 1 according to Example 1, and therefore detailed description thereof will be omitted. The blood pressure measurement device 2 has a function of determining the arm circumference of the upper arm on which the blood pressure measurement device 2 is worn, prior to the wrapping strength determination process.
[0056] The CPU 100A includes a pressure detection unit 110, a pressure control unit 120, a blood pressure calculation unit 130, a wrapping strength determination input value calculation unit 140, a wrapping strength determination unit 150, as well as a wrapping strength determination condition determination unit 160, an arm circumference discrimination input value calculation unit 170, and an arm circumference determination unit 180.
[0057] The winding strength determination condition determining unit 160 determines whether the conditions for determining the winding strength are met. The conditions for determining the winding strength will be described later.
[0058] A cuff pressure signal indicating the cuff pressure detected in time series from the LPF section of the pressure detection section 110 is input to the arm circumference discrimination input value calculation section 170. Based on the cuff pressure signal input in time series, the arm circumference discrimination input value calculation section 170 calculates an arm circumference discrimination input value to be input to a trained classifier used for arm circumference discrimination, which will be described later. The arm circumference discrimination input value will be described later.
[0059] The arm circumference discrimination unit 180 reads out a trained classifier for arm circumference discrimination from the trained classifier storage unit 240 in the memory 24, and the arm number discrimination input value calculated by the arm circumference discrimination input value calculation unit 170 is input to this trained classifier for arm circumference discrimination. The trained classifier for arm circumference discrimination discriminates and outputs the arm circumference for the input. The arm circumference discrimination method will be described in detail later. Here, the arm circumference discrimination unit 180 corresponds to the circumference discrimination unit of the present invention.
[0060] The wrapping strength determination process in the blood pressure measurement device according to the second embodiment will be described with reference to Fig. 8. Fig. 9 is a graph showing the change over time in cuff pressure for each arm circumference and wrapping strength.
[0061] First, arm circumference discrimination input value calculation unit 170 calculates the time change ΔT3 of cuff pressure when P'1±ΔP'1 is reached, that is, the time change ΔT3 from P'1-ΔP'1 to P'1+ΔP'1, from the output from the LPF unit of pressure detection unit 110 (which may be data read from memory 24) (step S211). Here, a value corresponding to the initial rise of cuff pressure in constant velocity inflation control is set as cuff pressure P'. Cuff pressure P'1 may be the same as P1 described in the first embodiment.
[0062] Next, ΔT3 calculated by the arm circumference discrimination input value calculation unit 170 is input to the trained classifier for arm circumference discrimination read from the trained classifier storage unit 240 of the memory 24. This trained classifier for arm circumference discrimination is a classifier generated by machine learning to discriminate and output the arm circumference in response to the input of the initial rising waveform change in constant velocity inflation control. For the input ΔT3, the trained classifier for arm circumference discrimination discriminates the arm circumference of the subject wearing the blood pressure measurement device 1 (step S212). As the machine learning method, an appropriate method such as deep learning can be adopted.
[0063] Next, wrapping strength determination input value calculation unit 140 calculates the change in time ΔT4 when cuff pressure is P2±ΔP2, that is, the change in time ΔT4 when the cuff pressure changes from P2−ΔP2 to P2+ΔP2, from the output from the LPF unit of pressure detection unit 110 (which may be data read from memory 24) (step S213). Cuff pressure P2 may be set according to the arm circumference determined in step S212.
[0064] Then, the wrapping strength determination condition determining unit 160 determines whether the wrapping strength determination condition, that is, whether the inflation rate Sp2 is equal to or less than ±X1 mmHg / sec and the cuff pressure P2 is equal to or greater than X2 mmHg at the time of cuff pressure P2, is met. This wrapping strength determination condition is essentially for determining whether the inflation rate is stable and whether information necessary for determining the wrapping strength has been obtained. X1 and X2 are set from this perspective and stored in memory 24, and the wrapping strength determination condition determining unit 160 reads them out and makes a determination. For example, X2 can be set to a value approximately twice that of P1. Here, the wrapping strength determination condition determining unit 160 corresponds to the determination condition determining unit of the present invention.
[0065] If it is determined in step S214 that the winding strength determination condition is not satisfied, the process returns to step S213, and the processes of steps S213 and S214 are repeated for the new P2.
[0066] If it is determined in step S214 that the wrapping strength determination conditions are met, the process proceeds to step S215. Here, ΔT4 calculated by the wrapping strength determination input value calculation unit 140 in step S213 is input to the trained classifier for wrapping strength determination read from the trained classifier storage unit 240 in the memory 24. This trained classifier for wrapping strength determination is a classifier generated by machine learning so that, in response to an input of a change in cuff pressure, it classifies the wrapping strength into one of loose, tight, and tight wrapping and outputs the result. For the input ΔT4, the trained classifier for determining wrapping strength classifies the wrapping strength of the blood pressure measurement device 1 by the subject, thereby determining the wrapping strength. Here, a trained classifier for determining wrapping strength that determines the wrapping strength using the change in cuff pressure as input is used, but it is also possible to use a trained classifier for determining wrapping strength that determines the wrapping strength using the input that also includes the arm circumference determined in step S212. The trained classifier for determining wrapping strength can be generated in the same way as in the first embodiment.
[0067] The blood pressure measurement process and the like in the blood pressure measurement device 2 after the wrapping strength determination process is completed are the same as steps S4 to S8 described for the blood pressure measurement device 1 according to the first embodiment with reference to the flowchart in FIG. In this embodiment, following the completion of the wrapping strength determination process in step S2, the blood pressure calculation process in step S4 is performed while maintaining constant velocity inflation control. This prevents noise caused by control switching after the completion of the wrapping strength determination process, and allows for the acquisition of clear pressure pulse waves even at low pressures.
[0068] In this embodiment, the arm circumference determination process and the wrapping strength determination process are performed for the cuff pressures P1' and P2, respectively, but they may be performed for a plurality of cuff pressures. Also, the wrapping strength determination process according to the first embodiment may be adopted as the wrapping strength determination process. [Explanation of symbols]
[0069] 1,2 Blood pressure measuring device 11. Cuff 110 Pressure detection unit 120 Pressure control section 130 Blood pressure calculation unit 150 Winding strength judgment section
Claims
1. a cuff that is wrapped around the part to be measured; a pressure detection unit that detects a cuff pressure in the cuff; a pressure control unit that controls the cuff pressure; a blood pressure calculation unit that performs a blood pressure calculation process to calculate the blood pressure of the subject based on the detected cuff pressure; a wrapping strength determination unit that performs a wrapping strength determination process to determine the wrapping strength of the cuff around the measurement target part; Equipped with The pressure control unit is A blood pressure measurement device characterized by performing constant speed inflation control in which the cuff pressure is increased at a constant speed through the wrapping strength determination process, which is performed after the start of cuff pressure inflation, and the blood pressure calculation process, which is performed after the wrapping strength determination process is completed.
2. The winding strength determination unit 2. The blood pressure measurement device according to claim 1, wherein the wrapping strength determination process determines the wrapping strength based on a change over time in the cuff pressure and an inflation rate of the cuff pressure.
3. The winding strength determination unit The blood pressure measurement device according to claim 2, wherein the wrapping strength determination process determines the wrapping strength using a trained classifier that classifies the wrapping strength based on the input cuff pressure and the change over time in the inflation rate of the cuff pressure.
4. The blood pressure measurement device according to claim 1 , further comprising a determination condition determination unit that determines whether a condition for starting the wrapping strength determination process is met.
5. 4. The blood pressure measurement device according to claim 1, further comprising a circumference determination unit that determines the circumference of the measurement target portion around which the cuff is wrapped.
6. The blood pressure calculation unit 4. The blood pressure measurement device according to claim 1, wherein whether or not to perform the blood pressure calculation process is determined depending on a result of the wrapping strength determination process.
7. 4. The blood pressure measurement device according to claim 1, wherein a target value of the inflation speed of the cuff pressure in the constant-speed inflation control when performing the wrapping strength determination process is equal to a target value of the inflation speed of the cuff pressure in the constant-speed inflation control when performing the blood pressure calculation process.
8. detecting a cuff pressure in a cuff wrapped around the measurement target part; performing constant speed inflation control to maintain the inflation speed of the cuff pressure at a constant target value; a step of performing a winding strength determination process to determine the winding strength around the measurement portion during the constant speed pressurization control; performing a blood pressure calculation process to calculate the blood pressure of the subject based on the cuff pressure during the constant velocity inflation control; A blood pressure measurement method comprising:
9. On the computer, detecting a cuff pressure in a cuff wrapped around the measurement target part; performing constant speed inflation control to maintain the inflation speed of the cuff pressure at a constant target value; During the constant speed pressurization control, a winding strength determination process is performed to determine the winding strength around the measurement target portion. performing a process; performing a blood pressure calculation process to calculate the blood pressure of the subject based on the cuff pressure during the constant velocity inflation control; A blood pressure measurement program characterized by executing the above.
10. On the computer, detecting a cuff pressure in a cuff wrapped around the measurement target part; performing constant speed inflation control to maintain the inflation speed of the cuff pressure at a constant target value; a step of performing a winding strength determination process to determine the winding strength around the measurement portion during the constant speed pressurization control; performing a blood pressure calculation process to calculate the blood pressure of the subject based on the cuff pressure during the constant velocity inflation control; A method for generating a classifier used in the wrapping strength determination process in a blood pressure measurement program that executes a classifier is machine-trained to output a classification result of the wrapping strength around the measurement target part in response to an input of the cuff pressure and the cuff pressure inflation rate, using the time change of the cuff pressure, the time change of the inflation rate of the cuff pressure, and the wrapping strength around the measurement target part as learning data; A method for generating a classifier that generates the trained classifier.
Citation Information
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