WO2024022416A1 - 测量设备、方法及存储介质 - Google Patents
测量设备、方法及存储介质 Download PDFInfo
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- WO2024022416A1 WO2024022416A1 PCT/CN2023/109470 CN2023109470W WO2024022416A1 WO 2024022416 A1 WO2024022416 A1 WO 2024022416A1 CN 2023109470 W CN2023109470 W CN 2023109470W WO 2024022416 A1 WO2024022416 A1 WO 2024022416A1
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- A—HUMAN NECESSITIES
- A61—MEDICAL OR VETERINARY SCIENCE; HYGIENE
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- A61B5/00—Measuring for diagnostic purposes; Identification of persons
- A61B5/145—Measuring characteristics of blood in vivo, e.g. gas concentration or pH-value ; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid or cerebral tissue
- A61B5/1455—Measuring characteristics of blood in vivo, e.g. gas concentration or pH-value ; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid or cerebral tissue using optical sensors, e.g. spectral photometrical oximeters
- A61B5/14551—Measuring characteristics of blood in vivo, e.g. gas concentration or pH-value ; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid or cerebral tissue using optical sensors, e.g. spectral photometrical oximeters for measuring blood gases
- A61B5/14552—Details of sensors specially adapted therefor
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- A61B5/022—Measuring pressure in heart or blood vessels by applying pressure to close blood vessels, e.g. against the skin; Ophthalmodynamometers
- A61B5/0225—Measuring pressure in heart or blood vessels by applying pressure to close blood vessels, e.g. against the skin; Ophthalmodynamometers the pressure being controlled by electric signals, e.g. derived from Korotkoff sounds
- A61B5/02255—Measuring pressure in heart or blood vessels by applying pressure to close blood vessels, e.g. against the skin; Ophthalmodynamometers the pressure being controlled by electric signals, e.g. derived from Korotkoff sounds the pressure being controlled by plethysmographic signals, e.g. derived from optical sensors
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- A61B5/14551—Measuring characteristics of blood in vivo, e.g. gas concentration or pH-value ; Measuring characteristics of body fluids or tissues, e.g. interstitial fluid or cerebral tissue using optical sensors, e.g. spectral photometrical oximeters for measuring blood gases
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Definitions
- Embodiments of the present disclosure relate to the technical field of medical equipment, and specifically relate to a measurement device, a method and a storage medium.
- ECG and blood oxygen measurement requires ECG measurement equipment and blood oxygen measurement equipment to be detected separately, which not only consumes too much measurement time of the user, but also the above two measurement equipment are large in size, making it inconvenient for users to record heart rate anytime and anywhere. Electrical and blood oxygen data. Especially when medical staff are required to intervene in the user's diagnosis and treatment process, two measuring devices are required to alternately detect, and ECG and blood oxygen data cannot be obtained at the same time, making it impossible to provide accurate physiological reference data for medical staff.
- the purpose of embodiments of the present disclosure is to provide a leakage compensation circuit, a chip and an electronic device that can sample the leakage current of an output stage and input the sampled current back to the output stage, thereby compensating for the leakage current in the output stage.
- the purpose of the embodiments of the present disclosure is to provide a measurement device, method and storage medium.
- a blood oxygen measurement device By integrating a blood oxygen measurement device into an ECG measurement device, simultaneous measurement of ECG and blood oxygen is achieved, and the volume of the measurement device is reduced. .
- a first aspect of the embodiment of the present disclosure provides a measuring device, including: an upper housing, a lower housing, a blood oxygen collection device embedded in a groove of the upper housing, and an ECG collection device. device and display screen lens, as well as a power supply device, a circuit mainboard and a button disposed between the upper case and the lower case, wherein the ECG collection device includes a first electrode piece and a second Electrode pads, and two electrode pads are respectively embedded in the grooves at both ends of the upper housing; a hollow is provided at the center of any one of the electrode pads, and the blood oxygen collection device is arranged in the hollow.
- through holes are provided on the upper housing and the circuit mainboard, and pins are provided on both the first electrode sheet and the second electrode sheet, and the two pins pass through the upper housing.
- the through holes and the through holes on the circuit main board connect the two electrode sheets with the circuit main board.
- the circuit mainboard includes a blood oxygen sensor, a display screen, and a data processing module.
- the blood oxygen sensor includes a luminescent tube and a receiving tube.
- the luminous tube is used to emit red light and infrared light;
- the receiving tube Tube used to receive multi-channel optical signals after the red light and infrared light are reflected or transmitted by human tissue, convert the multi-channel optical signals into digital signals and send them to the data processing module.
- the data signals Including red light PPG (Photoplethysmography, photoplethysmography) waveform data and infrared light PPG waveform data;
- the data processing module is used to receive the digital signal and ECG data, and convert the digital signal into blood oxygen data , obtain the blood pressure value by processing the infrared PPG waveform data and the ECG data;
- the display screen is used to display the blood oxygen data through the display screen lens in the groove of the upper housing; The ECG data and the blood pressure value.
- a first light hole, a baffle and a second light hole are arranged side by side in the groove of the upper housing directly below the hollow, wherein the first light hole is used for The red light and infrared light emitted by the luminous tube are transmitted to the blood oxygen collection device; the second light hole is used to transmit the multi-channel optical signals to the receiving tube; the baffle A board is used to isolate the light emitted by the light emitting tube from the multiple optical signals received by the receiving tube.
- the blood oxygen collection device includes a luminous lens, a reflective lens and a light-shielding pad.
- the light-shielding pad is provided with a third light hole and a fourth light hole, and the third light hole is provided on the first Above the light hole, the fourth light hole is disposed above the second light hole, wherein the luminescent lens is disposed above the third light hole for transmitting the luminescent tube to emit red light.
- the reflective lens is disposed above the fourth light hole, used to transmit the multiple optical signals, and filter out the Other optical signals besides multi-channel optical signals;
- the light-shielding pad is used to block the influence of external light on the transmission of the red light, infrared light and multi-channel optical signals.
- the material of the two electrode sheets is gold-plated copper or nickel-plated copper.
- the button is used to start acquiring the user's ECG data and blood oxygen data or to stop acquiring the user's ECG data and blood oxygen data after being pressed once.
- the measuring device further includes a through hole, which is provided on any side of the measuring device and is used for hanging the measuring device.
- the power supply device includes a wireless charging receiving module and a power supply module, wherein the wireless charging receiving module is used to receive electric energy and charge the power supply module; the power supply module is used to charge the blood oxygen The sensor, the display screen, and the data processing module provide electrical energy.
- the data processing module includes an AFE (Analog Front End) chip, a first MCU (Microprogrammed Control Unit, microprocessor), a serial interface, a second MCU, a data storage module, a clock module and a communication module.
- AFE Analog Front End
- MCU Microprogrammed Control Unit, microprocessor
- serial interface a serial interface
- second MCU a data storage module
- clock module a communication module.
- the AFE chip is used to simultaneously collect the digital signal and ECG data, and convert the digital signal into blood oxygen data;
- the first MCU is used to process the infrared PPG waveform data and The ECG data obtains a blood pressure value;
- the serial interface is used to transfer the blood oxygen data, the ECG data and the blood pressure value from the first MCU to the second MCU;
- a second MCU configured to receive the blood oxygen data, the ECG data and the blood pressure value, and send the blood oxygen data, the ECG data and the blood pressure value to the data storage module;
- the data storage module is used to store the blood oxygen data, the ECG data and the blood pressure value;
- the communication module is used to store the blood oxygen data, The ECG data and the blood pressure value are transmitted to the communication terminal;
- the clock module is used to provide time.
- the processing of the infrared light PPG waveform data and the electrocardiogram data to obtain the blood pressure value includes: after the waveform of the electrocardiogram data is stabilized, each time an electrocardiogram peak value is obtained, the infrared light PPG waveform data is Obtain the pulse wave peak value after the ECG peak value, and determine the ECG peak value and the pulse wave peak value as an ECG and pulse wave peak group; the ECG wave in the ECG and pulse wave peak group Between the time corresponding to the peak value and the time corresponding to the pulse wave peak value, select the specified time value in the infrared light PPG waveform data; according to the first preset parameter, the second preset parameter and the specified time value, we obtain Each of the ECG and pulse wave peak groups corresponds to blood pressure value.
- the specified time value is the maximum value in the infrared PPG waveform data between the time corresponding to the ECG peak in the ECG and pulse wave peak group and the time corresponding to the pulse wave peak.
- the first-order derivative is the maximum value of the difference between two adjacent data in the infrared PPG waveform data
- the second-order derivative is the maximum value of the difference between the two adjacent differences. the maximum value.
- the blood pressure value includes diastolic blood pressure and systolic blood pressure
- the first preset parameter includes a first preset parameter of diastolic blood pressure and a first preset parameter of systolic blood pressure
- the second preset parameter includes a second preset parameter of diastolic blood pressure. The preset parameter and the second preset parameter of systolic blood pressure.
- a second aspect of the embodiment of the present disclosure provides a measurement method according to the measurement device as described above, including: simultaneously acquiring infrared light PPG waveform data, blood oxygen data, and ECG data; After the waveform is stabilized, each time an electrocardiogram peak value is obtained, the pulse wave peak value after the electrocardiogram peak value is obtained from the infrared light PPG waveform data, and the electrocardiogram peak value and the pulse wave peak value are determined as the electrocardiogram and pulse wave peak values.
- Pulse wave peak group between the time corresponding to the ECG peak in the ECG and pulse wave peak group and the time corresponding to the pulse wave peak, select the specified time value in the infrared PPG waveform data; according to The first preset parameter, the second preset parameter and the specified time value are used to obtain the blood pressure value corresponding to each of the ECG and pulse wave peak groups.
- the specified time value is between the time corresponding to the ECG peak in the ECG and pulse wave peak group and the time corresponding to the pulse wave peak, and the infrared PPG wave The time corresponding to the maximum value, minimum value, first derivative, second derivative or cut point value in the shape data.
- the first-order derivative is the maximum value of the difference between two adjacent data in the infrared PPG waveform data
- the second-order derivative is the maximum value of the difference between the two adjacent differences. the maximum value.
- the blood pressure value includes diastolic blood pressure and systolic blood pressure
- the first preset parameter includes a first preset parameter of diastolic blood pressure and a first preset parameter of systolic blood pressure
- the second preset parameter includes a second preset parameter of diastolic blood pressure. The preset parameter and the second preset parameter of systolic blood pressure.
- a third aspect of the embodiments of the present disclosure provides a machine-readable storage medium having instructions stored on the machine-readable storage medium, the instructions being used to cause a machine to perform the measurement method as described above.
- the blood oxygen measurement equipment and the ECG measurement equipment are integrated together, which reduces the size of the measurement equipment and is convenient for users to carry.
- the blood oxygen data and ECG data at the same time can be collected at the same time through one measurement. , reducing the number of user measurements and improving user measurement efficiency.
- Figure 1 is a schematic structural diagram of a measuring device provided by an embodiment of the present disclosure
- Figure 2 is a schematic top view of a measurement device provided by an embodiment of the present disclosure
- FIG. 3 is a schematic diagram of the electrode sheet pin installation provided by an embodiment of the present disclosure.
- FIG. 4 is a schematic structural diagram of the circuit mainboard 17 provided by an embodiment of the present disclosure.
- Figure 5 is a schematic structural diagram of a data processing module provided by an embodiment of the present disclosure.
- Figure 6 is a schematic structural diagram of the blood oxygen collection device 13, the upper housing 11 and the blood oxygen sensor 171 provided by the embodiment of the present disclosure;
- Figure 7 is a schematic diagram of the application architecture of the measurement equipment provided by an embodiment of the present disclosure.
- FIG. 8 is a schematic flowchart of a measurement method according to the measurement device as described above provided by an embodiment of the present disclosure.
- Figure 1 is a schematic structural diagram of a measuring device provided by an embodiment of the present disclosure.
- the measurement equipment 100 includes an upper housing 11, a lower housing 12, a blood oxygen collection device 13, an ECG collection device 14 and a display screen embedded in the groove of the upper housing 11.
- the lens 15 as well as the power supply device 16 , the circuit motherboard 17 and the buttons 18 are disposed between the upper housing 11 and the lower housing 12 .
- the ECG collection device 14 includes a first electrode sheet 141 and a second electrode sheet 142, And the two electrode pieces are respectively embedded in the grooves at both ends of the upper housing.
- a hollow 143 is provided at the center of any electrode sheet, and the blood oxygen collection device 13 is arranged in the hollow 143 .
- the blood oxygen collection device 13 is disposed at the center of the first electrode sheet 141 .
- the user's left and right hands touch the first electrode pad 141 and the second electrode pad 142 respectively, they will inevitably come into contact with the blood oxygen collection device 13, so that the user's blood oxygen data and ECG data can be collected simultaneously.
- Combining two measuring devices into one reduces the size of the measuring device and is convenient for users to carry.
- two types of data can be obtained at the same time in one measurement, which reduces the number of user measurements and improves the user's measurement efficiency.
- the upper case 11 is provided with a through hole 10
- the circuit mainboard 17 is provided with another through hole 170
- the first electrode sheet 141 and the second electrode sheet are 142 are each provided with pins 31, and the two pins 31 connect the two electrode sheets 141, 142 to the circuit mainboard 17 through the through hole 10 of the upper housing 11 and the through hole 170 on the circuit mainboard 17. , so that the circuit mainboard can obtain the ECG data collected by the two electrode pads.
- the material of the two electrode sheets is gold-plated copper or nickel-plated copper.
- the circuit mainboard 17 includes a blood oxygen sensor 171 , a display screen 172 and a data processing module 173 .
- the blood oxygen sensor 171 includes a luminescent tube 41 and a receiving tube 42 .
- the luminescent tube 41 is used to emit red light and infrared light.
- the receiving tube 42 is used to receive multiple optical signals after the red light and infrared light are reflected or transmitted by human tissue, and convert the multiple optical signals into digital signals and send them to the data processing module 173 .
- the data signal includes red light PPG waveform data and infrared light PPG waveform data.
- the data processing module 173 is configured to receive the digital signal and the ECG data, convert the digital signal into blood oxygen data, and obtain the blood pressure value by processing the infrared PPG waveform data and the ECG data.
- the display screen 172 is used to display the blood oxygen data, the ECG data and the blood pressure value through the display screen lens in the groove of the upper housing.
- the size of the display screen can be determined according to the size of the measuring device, and is preferably 0.49 inches in the embodiment of the present disclosure.
- the data processing module 173 includes an AFE chip 51, a first MCU 52, a serial interface 53, a second MCU 54, a data storage module 55, a clock module 56 and a communication module 57.
- the AFE chip 51 is used to simultaneously collect the digital signal and ECG data, and convert the digital signal into blood oxygen data; the first MCU 52 is used to process the infrared PPG waveform data. and the ECG data to obtain a blood pressure value; the serial interface 53 is used to transfer the blood oxygen data, the ECG data and the blood pressure value from the first MCU to the second MCU; The second MCU 54 is used to receive the blood oxygen data, the ECG data and the blood pressure value, and send the blood oxygen data, the ECG data and the blood pressure value to the data
- the blood oxygen data, the ECG data and the blood pressure value are transmitted to the communication terminal; the clock module 56 is used to provide time.
- the specific implementation method of processing the infrared PPG waveform data and the ECG data to obtain the blood pressure value is as follows:
- the pulse wave peak after the ECG peak is obtained in the infrared PPG waveform data, and the ECG peak is compared with the pulse
- the peak value of the wave is determined as the group of ECG and pulse wave peaks. That is to say, when the waveform of the ECG data is stable, the first ECG peak value is obtained, and the first pulse wave peak value that appears after the first ECG peak value is obtained in the infrared light PPG waveform data, and the first pulse wave peak value is obtained.
- the first electrocardiogram peak and the first pulse wave peak are determined as the first electrocardiogram and pulse wave peak group.
- the second ECG peak obtains the second ECG peak, and then obtain the second pulse wave peak that appears after the second ECG peak in the infrared light PPG waveform data. Similarly, compare the second ECG peak with the second ECG peak. Each pulse wave peak is determined as the second ECG and pulse wave peak group, and the subsequent ECG and pulse wave peak groups are deduced in the same way, thereby obtaining multiple ECG and pulse wave peak groups. Afterwards, a specified time value in the infrared light PPG waveform data is selected between the time corresponding to the electrocardiogram peak in the electrocardiogram and pulse wave peak group and the time corresponding to the pulse wave peak.
- the specified time value is the time corresponding to the ECG peak value in the ECG and pulse wave peak group and the pulse wave peak value.
- the times corresponding to the maximum value, minimum value, first-order derivative, second-order derivative or cut-point value in the infrared light PPG waveform data are the times corresponding to the values.
- the first-order derivative is the maximum value of the difference between two adjacent data in the infrared PPG waveform data.
- the second-order derivative is the maximum value among the differences between two adjacent differences, that is, after calculating the first-order derivative, it is obtained by taking the difference between two adjacent differences among all the differences obtained.
- the maximum value is the second derivative.
- the blood pressure value corresponding to each of the ECG and pulse wave peak groups is obtained.
- the embodiment of the present disclosure may use any one of the following three formulas:
- PAT is the specified time value
- a is the first preset parameter
- b is the second preset parameter.
- the blood pressure value includes diastolic blood pressure and systolic blood pressure. Therefore, the corresponding first preset parameter and the second preset parameter are also set respectively for diastolic blood pressure and systolic blood pressure, that is, the first preset parameter includes the diastolic blood pressure.
- a preset parameter and a first preset parameter of systolic blood pressure the second preset parameter includes a second preset parameter of diastolic blood pressure and a second preset parameter of systolic blood pressure.
- the first-order derivative is optimally selected for the specified time value
- formula (3) is optimally selected for the formula for calculating the blood pressure value.
- the obtained ECG data, blood oxygen data and blood pressure values can also be transmitted to the communication terminal through the communication module, such as Bluetooth communication, and transmitted to the user's mobile phone in real time for display. .
- a first light hole 111 , a baffle 112 and a second light hole 113 are arranged side by side in the groove of the upper housing 11 directly below the hollow 143 .
- the first pass The light hole 111 is used to transmit the red light and infrared light emitted by the luminescent tube 41 to the blood oxygen collection device 13;
- the second light hole 113 is used to transmit the multiple optical signals.
- the baffle 112 is used to isolate the light emitted by the light emitting tube 41 from the multiple optical signals received by the receiving tube 42.
- the blood oxygen collection device 13 includes a luminous lens 131, a reflective lens 132 and a light-shielding pad 133.
- the light-shielding pad 133 is provided with a third light hole 61 and a fourth light hole 62.
- the third light hole 61 is disposed above the first light hole 111
- the fourth light hole 62 is disposed above the second light hole 113 .
- the luminescent lens 131 is disposed above the third light hole 61 for transmitting the luminous tube 41 to emit red light and infrared light, and filtering out other light except the red light and infrared light.
- the reflective lens 132 is disposed above the fourth light hole 62 for transmitting the multiple optical signals and filtering other optical signals except the multiple optical signals.
- the light-shielding pad 133 is used to block the influence of external light on the red light, infrared light and multi-channel optical signal transmission.
- the luminescent lens and the reflective lens are lenses with uniformly convex surfaces, thereby further increasing the amount of finger blood oxygen signal collection.
- the button 18 is used to start or stop acquiring the user's ECG data and blood oxygen data after being controlled by one press. Get it. That is to say, when the measuring device is in a closed state, pressing the button 18 turns on the measuring device; if the measuring device is in an on state, pressing the button 18 turns off the measuring device.
- the power supply device 16 includes a wireless charging receiving module 161 and a power supply module 162 .
- the wireless charging receiving module 161 is used to receive electric energy and charge the power module;
- the power module 162 is used to provide electric energy to the blood oxygen sensor, the display screen, and the data processing module.
- the battery in the power module can be a polymer lithium battery, which is small in size and has long power supply time.
- the charging interface corresponding to the wireless charging receiving module is an anti-reverse connection design interface.
- the switch circuit 174 in the circuit mainboard 17 controls the power module 162 to the desired state.
- the blood oxygen sensor 171, the display screen 172, and the data processing module 173 Electric energy is provided, so that the data processing module 173 receives the digital signals and ECG data collected by the blood oxygen sensor 171 and the ECG acquisition device 14, and converts the digital signals into blood oxygen data, and processes the infrared light PPG waveform.
- the data is combined with the ECG data to obtain the blood pressure value.
- the measuring device may further include a through hole (not shown in the figure), which is provided on any side of the measuring device for fastening the measuring device.
- a through hole (not shown in the figure), which is provided on any side of the measuring device for fastening the measuring device.
- it can be used to tie a key chain, which is easy to carry and measure at any time.
- the blood oxygen measurement device and the ECG measurement device are integrated together, and the blood oxygen data and the ECG data at the same time can be collected simultaneously through one measurement, so that the blood oxygen data and the ECG data can be collected simultaneously. Get the blood pressure value.
- FIG. 8 is a schematic flowchart of a measurement method according to the measurement equipment as described above provided by an embodiment of the present disclosure. As shown in Figure 8, the method includes the following steps:
- Step 801 obtain infrared light PPG waveform data, blood oxygen data and ECG data at the same time;
- Step 802 After the waveform of the ECG data is stabilized, each time an ECG peak value is obtained, the pulse wave peak value after the ECG peak value is obtained from the infrared light PPG waveform data, and the ECG peak value is compared with the ECG peak value.
- the pulse wave peak is determined as a group of ECG and pulse wave peaks;
- Step 803 Select a specified time value in the infrared PPG waveform data between the time corresponding to the ECG peak in the ECG and pulse wave peak group and the time corresponding to the pulse wave peak;
- Step 804 Obtain the blood pressure value corresponding to each of the ECG and pulse wave peak groups based on the first preset parameter, the second preset parameter and the specified time value.
- infrared light PPG waveform data, blood oxygen data, and ECG data can be acquired simultaneously.
- the specified time value is the maximum value in the infrared PPG waveform data between the time corresponding to the ECG peak value and the time corresponding to the pulse wave peak value in the ECG and pulse wave peak group. , the time corresponding to the minimum value, first derivative, second derivative or cut point value.
- the first-order derivative is the difference between two adjacent data in the infrared PPG waveform data. the maximum value.
- the second-order derivative is the maximum value among the differences between two adjacent differences, that is, after calculating the first-order derivative, it is obtained by taking the difference between two adjacent differences among all the differences obtained. The maximum value is the second derivative.
- PAT is the designated time value
- a is the first preset parameter
- b is the second preset parameter.
- the blood pressure value includes diastolic blood pressure and systolic blood pressure. Therefore, the corresponding first preset parameter and the second preset parameter are also set respectively for diastolic blood pressure and systolic blood pressure, that is, the first preset parameter includes the diastolic blood pressure.
- a preset parameter and a first preset parameter of systolic blood pressure the second preset parameter includes a second preset parameter of diastolic blood pressure and a second preset parameter of systolic blood pressure.
- the first-order derivative is optimally selected for the specified time value
- formula (3) is optimally selected for the formula for calculating the blood pressure value.
- the blood pressure value can be obtained after obtaining the ECG data and the infrared PPG waveform data.
- the embodiments of the present disclosure are more convenient, that is, the number of measuring devices is reduced. , and reduces the number of user measurements.
- the traditional blood pressure measurement method which can only obtain one set of blood pressure values (including diastolic blood pressure and systolic blood pressure)
- multiple sets of blood pressure values can be obtained. blood pressure value, and can realize uninterrupted blood pressure value monitoring.
- Another aspect of the embodiments of the present disclosure also provides a machine-readable storage medium.
- the machine-readable storage medium stores instructions. The instructions are used to cause the machine to perform the measurement method described in the above embodiments.
- embodiments of the present application may be provided as methods, systems, or computer program products. Accordingly, the present application may take the form of an entirely hardware embodiment, an entirely software embodiment, or an embodiment that combines software and hardware aspects. Furthermore, the present application may take the form of a computer program product embodied on one or more computer-usable storage media (including, but not limited to, disk storage, CD-ROM, optical storage, etc.) having computer-usable program code embodied therein.
- computer-usable storage media including, but not limited to, disk storage, CD-ROM, optical storage, etc.
- These computer program instructions may also be stored in a computer-readable memory that causes a computer or other programmable data processing apparatus to operate in a particular manner, such that the instructions stored in the computer-readable memory produce an article of manufacture including the instruction means, the instructions
- the device implements the functions specified in a process or processes of the flowchart and/or a block or blocks of the block diagram.
- These computer program instructions may also be loaded onto a computer or other programmable data processing device, causing a series of operating steps to be performed on the computer or other programmable device to produce computer-implemented processing, thereby executing on the computer or other programmable device.
- Instructions provide steps for implementing the functions specified in a process or processes of a flowchart diagram and/or a block or blocks of a block diagram.
- a computing device includes one or more processors (CPUs), input/output interfaces, network interfaces, and memory.
- processors CPUs
- input/output interfaces network interfaces
- memory volatile and non-volatile memory
- Memory may include non-volatile memory in computer-readable media, random access memory (RAM), and/or non-volatile memory in the form of read-only memory (ROM) or flash memory (flash RAM). Memory is an example of a computer-readable medium.
- RAM random access memory
- ROM read-only memory
- flash RAM flash memory
- Computer-readable media includes both persistent and non-volatile, removable and non-removable media that can be implemented by any method or technology for storage of information.
- Information may be computer-readable instructions, data structures, modules of programs, or other data.
- Examples of computer storage media include, but are not limited to, phase change memory (PRAM), static random access memory (SRAM), dynamic random access memory (DRAM), other types of random access memory (RAM), and read-only memory.
- PRAM phase change memory
- SRAM static random access memory
- DRAM dynamic random access memory
- RAM random access memory
- read-only memory read-only memory
- ROM read-only memory
- EEPROM electrically erasable programmable read-only memory
- flash memory or other memory technology
- compact disc read-only memory CD-ROM
- DVD digital versatile disc
- Magnetic tape cassettes tape magnetic disk storage or other magnetic storage devices or any other non-transmission medium can be used to store information that can be accessed by a computing device.
- computer-readable media does not include transitory media, such as modulated data signals and carrier waves.
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Abstract
Description
BP=a=ln(PAT)+b 公式(3)
Claims (21)
- 一种测量设备,包括上壳体、下壳体、嵌设于所述上壳体的凹槽中的血氧采集装置、心电采集装置、以及设置于所述上壳体与所述下壳体之间的电源装置与电路主板,其特征在于,其中,所述心电采集装置包括第一电极片与第二电极片,且两个电极片分别嵌设于所述上壳体两端的凹槽中;在任意一个电极片上设置有镂空处,将所述血氧采集装置设置于所述镂空处。
- 根据权利要求1所述的测量设备,其特征在于,在所述上壳体以及所述电路主板上均设置有通孔,所述第一电极片与所述第二电极片均设有引脚,两个引脚通过所述上壳体的通孔以及所述电路主板上的通孔将所述两个电极片与所述电路主板连接。
- 根据权利要求1所述的测量设备,其特征在于,所述电路主板包括血氧传感器、显示屏以及数据处理模块,其中,所述血氧传感器包括发光管和接收管,所述发光管,用于发出红光和红外光;所述接收管,用于接收所述红光和红外光经过人体组织反射或透射后的多路光信号,并将所述多路光信号转换成数字信号后发送给所述数据处理模块,所述数据信号包括红光光电容积脉搏波PPG波形数据和红外光PPG波形数据;所述数据处理模块,用于接收所述数字信号以及心电数据,并将所述数字信号转换为血氧数据,通过处理所述红外光PPG波形数据与所述心电数据得到血压值;所述显示屏,用于通过嵌设于所述上壳体的凹槽中的显示屏镜片显示所述血氧数据、所述心电数据以及所述血压值。
- 根据权利要求3所述的测量设备,其特征在于,在所述镂空处正下方的所述上壳体的凹槽中并排设置有第一通光孔、挡板以及第二通光孔,其中,所述第一通光孔,用于将所述发光管发出的所述红光和红外光 传输至所述血氧采集装置;所述第二通光孔,用于将所述多路光信号传输至所述接收管;所述挡板,用于隔离所述发光管发出的光与所述接收管接收的所述多路光信号。
- 根据权利要求4所述的测量设备,其特征在于,所述血氧采集装置包括发光镜片、反射镜片以及遮光垫,所述遮光垫上设置有第三通光孔与第四通光孔,所述第三通光孔设置于所述第一通光孔上方,所述第四通光孔设置于所述第二通光孔上方,其中,所述发光镜片设置于所述第三通光孔上方,用于透射所述发光管发出红光和红外光,并滤除所述红光和红外光之外的其他光;所述反射镜片设置于所述第四通光孔上方,用于透射所述多路光信号,并滤除所述多路光信号之外的其他光信号;所述遮光垫,用于阻挡外界光线对所述红光、红外光以及多路光信号传输的影响。
- 根据权利要求1所述的测量设备,其特征在于,所述两个电极片的材质为铜镀金或铜镀镍。
- 根据权利要求1所述的测量设备,其特征在于,所述上壳体与所述下壳体之间还设置有按键,所述按键,用于在受控于一次按压后启动对用户的心电数据与血氧数据进行获取或停止对用户的心电数据与血氧数据进行获取。
- 根据权利要求1所述的测量设备,其特征在于,所述测量设备还包括通孔,设置在所述测量设备的任意一个侧面,用于拴挂所述测量设备。
- 根据权利要求3所述的测量设备,其特征在于,所述电源装置包括无线充电接收模块和电源模块,其中,所述无线充电接收模块,用于接收电能,并给所述电源模块充电;所述电源模块,用于向所述血氧传感器、所述显示屏、所述数据处理模块提供电能。
- 根据权利要求3所述的测量设备,其特征在于,所述数据处理模块包括模拟前端AFE芯片、第一微处理器MCU、串行接口、第二MCU、数据存储模块、时钟模块以及通信模块,其中,所述AFE芯片,用于同时采集所述数字信号以及心电数据,并将所述数字信号转换为血氧数据;所述第一MCU,用于处理所述红外光PPG波形数据与所述心电数据得到血压值;所述串行接口,用于将所述血氧数据、所述心电数据以及所述血压值从所述第一MCU传递至所述第二MCU;所述第二MCU,用于接收所述血氧数据、所述心电数据以及所述血压值,并将所述血氧数据、所述心电数据以及所述血压值发送至所述数据存储模块、所述显示屏、所述通信模块;所述数据存储模块,用于存储所述血氧数据、所述心电数据以及所述血压值;所述通信模块,用于将所述血氧数据、所述心电数据以及所述血压值传输至通信终端;所述时钟模块,用于提供时间。
- 根据权利要求10所述的测量设备,其特征在于,所述处理所述红外光PPG波形数据与所述心电数据得到血压值包括:在所述心电数据的波形稳定后,每获取一个心电波峰值,在所述红外光PPG波形数据中获取所述心电波峰值之后的脉搏波峰值,并将所述心电波峰值与所述脉搏波峰值确定为心电与脉搏波峰组;在所述心电与脉搏波峰组中的所述心电波峰值对应的时间与所述脉搏波峰值对应的时间之间,选取所述红外光PPG波形数据中的指定时间值;根据第一预设参数、第二预设参数以及所述指定时间值,得到每个所述心电与脉搏波峰组对应的血压值。
- 根据权利要求11所述的测量设备,其特征在于,所述指定时间值为在所述心电与脉搏波峰组中的所述心电波峰值对应的时间与所述脉搏波 峰值对应的时间之间,所述红外光PPG波形数据中的最大值、最小值、一阶导数、二阶导数或切点值对应的时间。
- 根据权利要求12所述的测量设备,其特征在于,所述一阶导数是所述红外光PPG波形数据中相邻的两个数据之间的差值中的最大值,所述二阶导数是相邻两个所述差值之差中的最大值。
- 根据权利要求11所述的测量设备,其特征在于,所述根据第一预设参数、第二预设参数以及所述指定时间值,得到每个所述心电与脉搏波峰组对应的血压值包括:根据或或BP=a·ln(PAT)+b,得到所述血压值BP,其中,PAT为所述指定时间值,a为所述第一预设参数,b为所述第二预设参数。
- 根据权利要求14所述的测量设备,其特征在于,所述血压值包括舒张压和收缩压,所述第一预设参数包括舒张压第一预设参数和收缩压第一预设参数,所述第二预设参数包括舒张压第二预设参数和收缩压第二预设参数。
- 一种根据权利要求1-15中任一项所述的测量设备的测量方法,其特征在于,包括:同时获取红外光光电容积脉搏波PPG波形数据、血氧数据以及心电数据;在所述心电数据的波形稳定后,每获取一个心电波峰值,在所述红外光PPG波形数据中获取所述心电波峰值之后的脉搏波峰值,并将所述心电波峰值与所述脉搏波峰值确定为心电与脉搏波峰组;在所述心电与脉搏波峰组中的所述心电波峰值对应的时间与所述脉搏 波峰值对应的时间之间,选取所述红外光PPG波形数据中的指定时间值;根据第一预设参数、第二预设参数以及所述指定时间值,得到每个所述心电与脉搏波峰组对应的血压值。
- 根据权利要求16所述的测量方法,其特征在于,所述指定时间值为在所述心电与脉搏波峰组中的所述心电波峰值对应的时间与所述脉搏波峰值对应的时间之间,所述红外光PPG波形数据中的最大值、最小值、一阶导数、二阶导数或切点值对应的时间。
- 根据权利要求17所述的测量方法,其特征在于,所述一阶导数是所述红外光PPG波形数据中相邻的两个数据之间的差值中的最大值,所述二阶导数是相邻两个所述差值之差中的最大值。
- 根据权利要求16所述的测量方法,其特征在于,所述根据第一预设参数、第二预设参数以及所述指定时间值,得到每个所述心电与脉搏波峰组对应的血压值包括:根据或或BP=a·ln(PAT)十b,得到所述血压值BP,其中,PAT为所述指定时间值,a为所述第一预设参数,b为所述第二预设参数。
- 根据权利要求19所述的测量方法,其特征在于,所述血压值包括舒张压和收缩压,所述第一预设参数包括舒张压第一预设参数和收缩压第一预设参数,所述第二预设参数包括舒张压第二预设参数和收缩压第二预设参数。
- 一种机器可读存储介质,其特征在于,该机器可读存储介质上存储有指令,该指令用于使得机器执行权利要求16-20中任意一项所述的测量方法。
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| CN115211851A (zh) * | 2022-07-27 | 2022-10-21 | 北京超思电子技术有限责任公司 | 测量设备、方法及存储介质 |
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| WO2017024457A1 (zh) * | 2015-08-08 | 2017-02-16 | 深圳先进技术研究院 | 连续血压测量装置、测量模型建立方法和系统 |
| CN111528813A (zh) * | 2020-04-24 | 2020-08-14 | 中国人民解放军总医院第四医学中心 | 一种便携腕式多生理信息实时检测无线系统 |
| CN114305358B (zh) * | 2021-02-24 | 2023-04-14 | 心永(北京)科技有限公司 | 血压测量模型的标定方法、装置、计算机设备和存储介质 |
| CN218738950U (zh) * | 2022-07-27 | 2023-03-28 | 北京超思电子技术有限责任公司 | 测量设备 |
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| CN102293640A (zh) * | 2011-07-25 | 2011-12-28 | 秦皇岛市康泰医学系统有限公司 | 血氧、血压和心电测量一体机 |
| US20140031646A1 (en) * | 2012-03-29 | 2014-01-30 | Sergey Yakirevich | Blood pressure estimation using a hand-held device |
| CN107438402A (zh) * | 2015-04-17 | 2017-12-05 | 诺基亚技术有限公司 | 用于用户可穿戴装置的电极 |
| CN210383886U (zh) * | 2019-01-18 | 2020-04-24 | 深圳碳云智能数字生命健康管理有限公司 | 心电心率检测设备、装置及系统 |
| CN115211851A (zh) * | 2022-07-27 | 2022-10-21 | 北京超思电子技术有限责任公司 | 测量设备、方法及存储介质 |
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| EP4548845A4 (en) | 2025-07-30 |
| CN115211851A (zh) | 2022-10-21 |
| EP4548845A1 (en) | 2025-05-07 |
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