Method, device, computer device, and storage medium for analyzing high-frequency QRS waveform data
By analyzing high-frequency QRS waveform data from exercise electrocardiograms, the method addresses the invasiveness-accuracy trade-off in coronary vascular reactivity assessment, enabling precise non-invasive evaluation of vascular response.
Patent Information
- Application Number
- JP2024575264
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2022-06-21
- Filing Date
- 2023-05-11
- Publication Date
- 2025-09-30
- Estimated Expiration
- 2043-05-11
AI Technical Summary
Existing methods for evaluating coronary vascular reactivity face a trade-off between invasiveness and accuracy, with invasive methods causing physical harm and non-invasive methods being less accurate.
Analyze high-frequency QRS waveform data from exercise electrocardiograms to determine vascular response capability by identifying specific reference points and calculating amplitude reduction and voltage differences, using threshold values to screen data and determine vascular reactivity.
Accurately assess coronary vasoreactivity non-invasively with high precision, providing a reliable indicator for cardiac health assessment.
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Abstract
Description
[Technical Field]
[0001] "CROSS-REFERENCE TO RELATED APPLICATIONS" This application claims priority to a Chinese patent application bearing application number 2022107056854 and entitled "METHOD, APPARATUS, COMPUTER DEVICE AND STORAGE MEDIUM FOR ANALYZING HIGH-FREQUENCY QRS WAVEFORM DATA" filed with the China Patent Office on June 21, 2022, the entire contents of which are incorporated herein by reference.
[0002] This application relates to the field of medical device technology, and in particular to a method, apparatus, computer device and storage medium for analyzing high frequency QRS waveform data. [Background technology]
[0003] Coronary artery vasoreactivity, also called vasoreactivity, can be used to characterize the immediate response ability of blood vessels to rapid expansion by blood supply, and can be provided for physicians' reference as one of the indicators for evaluating the vitality state of myocardial cells, so that physicians can accurately identify the cardiac health state of subjects in conjunction with clinical symptoms, etc. Therefore, how to accurately evaluate vasoreactivity is a problem worth paying attention to.
[0004] Currently, it is common to evaluate coronary vascular reactivity using invasive methods such as coronary angiography, but the inventors recognize that such invasive methods have a greater or lesser impact on the physical health of the subject. There is also a method of evaluating coronary vascular reactivity by analyzing changes in the ST-T interval in an electrocardiogram (ECG). However, while such non-invasive methods do not have a negative impact on the physical health of the subject, they have a low accuracy of evaluation, which makes it difficult to achieve both non-invasiveness and non-damage and accuracy. Summary of the Invention [Problem to be solved by the invention]
[0005] Various embodiments disclosed herein provide methods, apparatus, computer devices, and storage media for analyzing high frequency QRS waveform data. [Means for solving the problem]
[0006] 1. A method for analyzing high frequency QRS waveform data, the method comprising: acquiring high frequency QRS waveform data corresponding to the exercise electrocardiogram data; selecting high frequency QRS waveform data within a first time period as first reference waveform data; determining a first reference point based on a point in the first reference waveform data where the root mean square voltage is smallest, and determining a second reference point based on a point that is earlier in time than the first reference point and where the root mean square voltage is largest; determining a first amplitude reduction relative value based on the root mean square voltages of the first and second reference points; determining a maximum voltage based on the high frequency QRS waveform data; selecting a point within the second time period from the high frequency QRS waveform data where the root mean square voltage is the largest, as a third reference point, and selecting a point later in time than the third reference point where the root mean square voltage is the smallest, as a fourth reference point; determining a voltage difference based on the root mean square voltages of the third and fourth reference points; screening high frequency QRS waveform data for which a first amplitude decrease relative value is equal to or greater than a first predetermined threshold; and determining vascular response capability based on the ratio of the voltage difference and the maximum voltage corresponding to the screened high frequency QRS waveform data.
[0007] In one embodiment, the step of screening high frequency QRS waveform data having a first amplitude decrease relative value equal to or greater than a first predetermined threshold includes: screening high frequency QRS waveform data whose corresponding waveform types are a first type, a second type, and a third type; the first type of waveform characteristic includes a first amplitude decrease relative value being equal to or greater than a first predetermined threshold and a first amplitude increase relative value being equal to or greater than a second predetermined threshold; the second type of waveform characteristic includes a first amplitude decrease relative value being equal to or greater than the first predetermined threshold, a second amplitude increase relative value being less than a third predetermined threshold, and a duration of the second reference waveform data being equal to or greater than a predetermined time threshold; the third type of waveform feature includes a first amplitude decrease relative value being equal to or greater than the first predetermined threshold, a second amplitude increase relative value being equal to or greater than the third predetermined threshold, and a duration of the second reference waveform data being equal to or greater than the predetermined time threshold; The step of determining the first amplitude increase relative value includes: selecting a fifth reference point from the first reference waveform data that satisfies a screening condition and is later in time than the first reference point; determining a first amplitude rise relative value based on the root mean square voltages of the first and fifth reference points, The step of determining the second amplitude increase relative value includes: selecting second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range from high frequency QRS waveform data within the second time period; selecting a point having the largest root mean square voltage from the high frequency QRS waveform data within the third time period as a sixth reference point; and determining a second amplitude increase relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point.
[0008] In one embodiment, the step of screening high frequency QRS waveform data having a first amplitude decrease relative value equal to or greater than a first predetermined threshold includes: screening high frequency QRS waveform data whose corresponding waveform type is a first type, or screening high frequency QRS waveform data whose corresponding waveform type is a second type, or screening high frequency QRS waveform data whose corresponding waveform type is a third type; the first type of waveform characteristic includes a first amplitude decrease relative value being equal to or greater than a first predetermined threshold and a first amplitude increase relative value being equal to or greater than a second predetermined threshold; the second type of waveform characteristic includes a first amplitude decrease relative value being equal to or greater than the first predetermined threshold, a second amplitude increase relative value being less than a third predetermined threshold, and a duration of the second reference waveform data being equal to or greater than a predetermined time threshold; the third type of waveform feature includes a first amplitude decrease relative value being equal to or greater than the first predetermined threshold, a second amplitude increase relative value being equal to or greater than the third predetermined threshold, and a duration of the second reference waveform data being equal to or greater than the predetermined time threshold; The step of determining the first amplitude increase relative value includes: selecting a fifth reference point from the first reference waveform data that satisfies a screening condition and is later in time than the first reference point; determining a first amplitude rise relative value based on the root mean square voltages of the first and fifth reference points, The step of determining the second amplitude increase relative value includes: selecting second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range from high frequency QRS waveform data within the second time period; selecting a point having the largest root mean square voltage from the high frequency QRS waveform data within the third time period as a sixth reference point; and determining a second amplitude increase relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point.
[0009] In one embodiment thereof, the step of determining vascular response capability based on a ratio of a voltage difference corresponding to the screened high frequency QRS waveform data to a maximum voltage comprises: determining a reference index based on the screened high-frequency QRS waveform data, the reference index including a ratio between a voltage difference and a maximum voltage, and further including at least one of a target amplitude drop relative value and an area of a target waveform drop region; and determining vascular reactivity capacity based on said reference index.
[0010] In one embodiment thereof, the method further comprises: determining a positive number based on high frequency QRS waveform data corresponding to the exercise electrocardiogram data; The step of determining vascular response capability based on a ratio between a voltage difference corresponding to the screened high frequency QRS waveform data and a maximum voltage includes: determining vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the screened high frequency QRS waveform data and the number of positives; or The method includes a step of determining a reference index based on the screened high-frequency QRS waveform data, and determining vascular response ability based on the reference index, which includes the ratio of voltage difference to maximum voltage and further includes at least one of a target amplitude decrease relative value and an area of a target waveform decrease region, and the number of positives.
[0011] 1. An apparatus for analyzing high frequency QRS waveform data, the apparatus comprising: an acquisition module for acquiring high frequency QRS waveform data corresponding to the exercise electrocardiogram data; a selection module for selecting high frequency QRS waveform data within a first time period as first reference waveform data; The selection module is further configured to determine a first reference point based on a point in the first reference waveform data where the root mean square voltage is smallest, and to determine a second reference point based on a point that is earlier in time than the first reference point and where the root mean square voltage is largest; an index determination module for determining a first amplitude reduction relative value based on the root mean square voltages of the first reference point and the second reference point; the index determination module is further adapted to determine a maximum voltage based on the high frequency QRS waveform data; the selection module is used to select a point having the largest root mean square voltage from the high frequency QRS waveform data within the second time period as a third reference point, and a point having the smallest root mean square voltage that is later in time than the third reference point as a fourth reference point; the index determination module is further adapted to determine a voltage difference based on the root mean square voltages of the third reference point and the fourth reference point, respectively; a screening module for screening high frequency QRS waveform data for which a first amplitude decrease relative value is equal to or greater than a first predetermined threshold; and an index determination module for determining vascular response capability based on the ratio of the voltage difference and the maximum voltage corresponding to the screened high frequency QRS waveform data.
[0012] In one embodiment, the screening module is further used to screen high-frequency QRS waveform data whose corresponding waveform types are first, second, and third types, wherein the waveform characteristics of the first type include a first amplitude drop relative value equal to or greater than a first predetermined threshold and a first amplitude rise relative value equal to or greater than a second predetermined threshold; the waveform characteristics of the second type include a first amplitude drop relative value equal to or greater than the first predetermined threshold, a second amplitude rise relative value less than a third predetermined threshold, and a duration of second reference waveform data equal to or greater than a predetermined time threshold; and the waveform characteristics of the third type include a first amplitude drop relative value equal to or greater than the first predetermined threshold, a second amplitude rise relative value equal to or greater than the third predetermined threshold, and a duration of second reference waveform data equal to or greater than the predetermined time threshold; the selection module is further used to select a fifth reference point from the first reference waveform data that satisfies a screening condition and is later in time than the first reference point; The index determination module is further configured to determine a first amplitude rise relative value based on the root mean square voltages of the first reference point and the fifth reference point, respectively; The selection module is further used to select second reference waveform data from the high frequency QRS waveform data within the second time period, the second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range, and to select a point from the high frequency QRS waveform data within a third time period, the point having the largest root mean square voltage, as a sixth reference point; The index determining module is further used to determine a second amplitude rise relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point, respectively.
[0013] In one embodiment, the screening module is further used to screen high-frequency QRS waveform data corresponding to a first waveform type, or to screen high-frequency QRS waveform data corresponding to a second waveform type, or to screen high-frequency QRS waveform data corresponding to a third waveform type, wherein the waveform characteristics of the first type include a first amplitude decrease relative value equal to or greater than a first predetermined threshold and a first amplitude increase relative value equal to or greater than a second predetermined threshold; the waveform characteristics of the second type include a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value less than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold; and the waveform characteristics of the third type include a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value equal to or greater than the third predetermined threshold, and a duration of the second reference waveform data equal to or greater than the predetermined time threshold. the selection module is further used to select a fifth reference point from the first reference waveform data that satisfies a screening condition and is later in time than the first reference point; The index determination module is further configured to determine a first amplitude rise relative value based on the root mean square voltages of the first reference point and the fifth reference point, respectively; The selection module is further used to select second reference waveform data from the high frequency QRS waveform data within the second time period, the second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range, and to select a point from the high frequency QRS waveform data within a third time period, the point having the largest root mean square voltage, as a sixth reference point; The index determining module is further used to determine a second amplitude rise relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point, respectively.
[0014] In one embodiment, the index determination module further determines a reference index based on the screened high-frequency QRS waveform data, the reference index including the ratio of the voltage difference to the maximum voltage, and further including at least one of the target amplitude reduction relative value and the area of the target waveform reduction region, and is used to determine vascular response ability based on the reference index.
[0015] In one embodiment, the index determination module further determines the number of positives based on the high-frequency QRS waveform data corresponding to the exercise electrocardiogram data, or determines the vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the screened high-frequency QRS waveform data and the number of positives, or determines a reference index based on the screened high-frequency QRS waveform data, and is used to determine the vascular response ability based on the reference index, which includes the ratio of the voltage difference to the maximum voltage and further includes at least one of the target amplitude reduction relative value and the area of the target waveform reduction region, and the number of positives.
[0016] A computing device includes a memory having computer-readable instructions stored thereon, and a processor, the computer-readable instructions being executed by the processor to perform the steps of each method embodiment.
[0017] A computer-readable storage medium having computer-readable instructions stored thereon that, when executed by a processor, perform the steps in each method embodiment.
[0018] The details of one or more embodiments of the application are set forth in the drawings and description below. Other features and advantages of the application will be apparent from the description, drawings, and claims. [Brief explanation of the drawings]
[0019] In order to more clearly describe the technical solutions of the embodiments of the present application, the following will briefly describe the drawings that need to be used in the embodiments. Obviously, the drawings in the following description are only some embodiments of the present application, and those skilled in the art can obtain other drawings based on these drawings without any creative efforts. [Figure 1] 1 is a schematic flow chart of a method for analyzing high frequency QRS waveform data in accordance with one or more embodiments. [Figure 2] FIG. 10 is a schematic diagram illustrating the selection of reference points based on high frequency QRS waveform data in accordance with one or more embodiments. [Figure 3] FIG. 10 is a schematic diagram illustrating the selection of reference points and reference waveform data based on high frequency QRS waveform data in accordance with one or more embodiments. [Figure 4] FIG. 10 is a schematic diagram illustrating selection of reference points and reference waveform data based on high-frequency QRS waveform data in another embodiment. [Figure 5] 10 is a schematic flow chart of a method for analyzing high frequency QRS waveform data in another embodiment. [Figure 6] 1 is a block diagram of the architecture of a high frequency QRS waveform data analysis device in accordance with one or more embodiments. [Figure 7] FIG. 1 is a diagram illustrating the internal structure of a computing device according to one or more embodiments. DETAILED DESCRIPTION OF THE INVENTION
[0020] In order to make the technical solutions and advantages of the present application clearer, the present application will be described in more detail below with reference to the drawings and examples. It should be understood that the specific examples described herein are only for the purpose of interpreting the present application, and are not intended to limit the present application.
[0021] The high-frequency QRS waveform data analysis method provided herein may be applied to a terminal or a server, or may be applied to an interaction system including a terminal and a server and implemented by the interaction between the terminal and the server, but is not limited thereto. The terminal may be, but is not limited to, various personal computers, laptops, smartphones, tablets, electrocardiogram monitoring devices, and portable wearable devices, and the server may be implemented as a standalone server or a server cluster consisting of multiple servers.
[0022] In some embodiments, a method for analyzing high frequency QRS waveform data is provided, as shown in FIG. 1, and the method is applied to a server as an example, and specifically includes steps S102 to S118.
[0023] In S102, high frequency QRS waveform data corresponding to the exercise electrocardiogram data is acquired.
[0024] Exercise ECG data refers to ECG data collected during exercise ECG detection. Exercise ECG detection is an ECG detection method that involves increasing the cardiac load at a certain exercise volume to collect ECG data from a subject and analyzing the collected ECG data to analyze the subject's cardiac health. This method is widely used in the detection of cardiac and cardiovascular diseases. Exercise ECG data includes multiple QRS complexes, each of which is a collection of Q waves, R waves, and S waves in an ECG, reflecting changes in left and right depolarization potential and time. Corresponding high-frequency QRS waveform data can be obtained by analyzing the QRS complexes in the exercise ECG data. The high-frequency QRS waveform data corresponds to a high-frequency QRS waveform curve, and the high-frequency QRS waveform data includes data for each point on the high-frequency QRS waveform curve (e.g., time and root-mean-square voltage). Based on the high-frequency QRS waveform data, the corresponding high-frequency QRS waveform curve can be determined. The high-frequency QRS waveform data / high-frequency QRS waveform curve is used to characterize the time-dependent change in the root mean square voltage of the high-frequency component of the QRS complex of a subject during the entire load exercise ECG detection process, i.e., to embody the energy change trend during the entire load exercise ECG detection process. The high-frequency QRS waveform data is shown as a high-frequency QRS waveform diagram, where the abscissa is time, corresponding to the detection time during the load exercise ECG detection process, and the unit is min (minutes), and the ordinate is root mean square voltage (RMS voltage), which can also be understood as intensity or amplitude, and the unit is uV (microvolts).
[0025] Specifically, the exercise ECG data corresponding to the subject's entire load-exercise ECG detection process is acquired, and the high-frequency components of the QRS complexes in the exercise ECG data are analyzed to obtain corresponding high-frequency QRS waveform data. The exercise ECG data includes an ECG (electrocardiogram) corresponding to each heartbeat during the entire load-exercise ECG detection process, and the ECG includes QRS complexes. A window function is used to divide the exercise ECG data into multiple ECG data subsets according to the time series and a predetermined stride length, and each ECG data subset includes ECGs corresponding to multiple heartbeats. The ECGs or QRS complexes corresponding to the multiple heartbeats included in each ECG data subset are sequentially aligned, averaged, and bandpass filtered to obtain corresponding high-frequency QRS complexes (high-frequency bands of the QRS complexes). The root mean square of the high-frequency QRS complex is calculated to obtain the corresponding root mean square voltage, which is then used as the root mean square voltage / intensity / amplitude corresponding to the ECG data subset. Corresponding high-frequency QRS waveform data is obtained based on the root-mean-square voltage corresponding to each electrocardiogram data subset and the corresponding time, and curve smoothing is performed on each root-mean-square voltage in the high-frequency QRS waveform data in chronological order to obtain a corresponding high-frequency QRS waveform curve. Alternatively, curve smoothing is performed on the root-mean-square voltage corresponding to each electrocardiogram data subset in chronological order to obtain a corresponding high-frequency QRS waveform curve, and corresponding high-frequency QRS waveform data is obtained based on the time and root-mean-square voltage of each point on the high-frequency QRS waveform curve.
[0026] The window length of the window function and the predetermined movement stride can be customized according to actual needs, for example, the window length is set to 10 seconds, and the predetermined movement stride is set to 10 seconds or one cardiac cycle, where one cardiac cycle refers to the time interval between two adjacent cardiac cycles, and it is understood that there is no specific limitation here. "Chronological order" refers to the order according to the signal collection time / detection time during which the detection process of the exercise electrocardiogram progresses.
[0027] In some embodiments, the process of detecting a stress exercise electrocardiogram includes multiple stages, specifically, three stages such as a rest stage, an exercise stage, and a recovery stage, and the exercise electrocardiogram data includes electrocardiogram data for each stage. It is understood that the division of stages is not limited thereto and can be specifically divided according to actual circumstances.
[0028] In some embodiments, during the process of detecting a stress exercise electrocardiogram, ten electrode sheets are placed on a person's chest and limbs to form twelve electrocardiogram leads (e.g., V1, V2, V3, V4, V5, V6, I, II, III, aVL, aVF, and aVR), and twelve sets of electrocardiogram data are output to obtain exercise electrocardiogram data corresponding to the entire stress exercise electrocardiogram detection process. The ten electrode sheets are merely exemplary and do not specifically limit the number of electrode sheets. Specifically, the number of electrode sheets can be dynamically determined according to actual needs, and it is understood that more or fewer electrode sheets may be used. Thus, the exercise electrocardiogram data includes electrocardiogram data corresponding to at least one electrocardiogram lead, and high-frequency QRS complex data corresponding to each electrocardiogram lead is obtained by analyzing the high-frequency components of the QRS complex in the electrocardiogram data corresponding to each electrocardiogram lead.
[0029] In S104, high frequency QRS waveform data within the first time period is selected as first reference waveform data.
[0030] The first time period may be a time interval determined by a predetermined start and end time, or a time interval determined by a predetermined start and end time. Specifically, the first time period may include a certain period before exercise and a certain period during exercise, or may include a certain period during exercise, where the certain period before exercise is a resting phase and the certain period during exercise is an exercise phase, e.g., a certain period after exercise begins. For example, if the time range corresponding to the exercise phase in a high-frequency QRS waveform curve is 3 to 9 minutes, the first time period may be a time interval characterized by [1 minute 20 seconds, 6 minutes], including 100 seconds before exercise and the first 3 minutes during exercise, or a time interval characterized by [3 minutes, 6 minutes], including the first 3 minutes during exercise. It should be understood that the above examples are merely illustrative and not limiting. The first reference waveform data is the high-frequency QRS waveform data within a first time period, and the times of each point in the first reference waveform data are all within the first time period, with the start and end points of the first reference waveform data corresponding to the start and end of the first time period, respectively. The start point of the first reference waveform data refers to the earliest point in the first reference waveform data, i.e., the first point in the first reference waveform data when sorted in chronological order. The definition of the end point is similar, and a detailed description thereof will be omitted here.
[0031] In S106, a first reference point is determined based on the point in the first reference waveform data where the root mean square voltage is smallest, and a second reference point is determined based on the point earlier in time than the first reference point where the root mean square voltage is largest.
[0032] Specifically, the position of each point in the first reference waveform data is determined by the time and root-mean-square voltage of that point; the root-mean-square voltage of each point in the first reference waveform data is traversed in chronological order; the point with the smallest root-mean-square voltage is screened from the first reference waveform data based on the traversed root-mean-square voltage; the first reference point is determined based on the point with the smallest root-mean-square voltage; the first reference waveform data is screened for a point whose time is earlier / smaller than the time of the first reference point and whose root-mean-square voltage is largest; and the second reference point is determined based on the point with the largest root-mean-square voltage.
[0033] In some embodiments, the point where the root mean square voltage of the screened signal is the smallest is determined as the first reference point, or the point where the root mean square voltage of the screened signal is corrected based on a first preset correction coefficient, and the point obtained by the correction is determined as the first reference point. The point where the root mean square voltage of the screened signal is the largest and is earlier than the first reference point is determined as the second reference point, or the point where the root mean square voltage of the screened signal is corrected based on a second preset correction coefficient, and the corrected point is determined as the second reference point.
[0034] Specifically, the root-mean-square voltage corresponding to the point where the root-mean-square voltage is smallest is corrected by a preset first correction coefficient to obtain a corrected root-mean-square voltage. A point in the first reference waveform data where the root-mean-square voltage matches the corrected root-mean-square voltage is selected as the first reference point. Similarly, a second reference point is determined based on the second correction coefficient and the point where the screened root-mean-square voltage is largest, and a detailed description thereof is omitted here. If the first reference waveform data contains multiple points where the root-mean-square voltage matches the corrected root-mean-square voltage, any one of the points can be selected as the corresponding reference point. However, it should be understood that the second reference point must be earlier in time than the first reference point. The first and second correction coefficients may be customized or dynamically determined based on a user image of the subject. Specifically, they may be functions determined based on the user image, where the first correction coefficient is greater than 1 and the second correction coefficient is less than 1. The user image includes at least one of the subject's age, sex, weight, clinical symptoms, lifestyle habits, and the like.
[0035] In S108, a first amplitude reduction relative value is determined based on the root mean square voltages of the first and second reference points.
[0036] Specifically, based on the first reference waveform data, the root mean square voltages of the first and second reference points are obtained, the difference between the root mean square voltage of the second reference point and the root mean square voltage of the first reference point is calculated to obtain a first amplitude reduction absolute value, and the ratio of the first amplitude reduction absolute value to the root mean square voltage of the second reference point is determined as the first amplitude reduction relative value.
[0037] In S110, a maximum voltage is determined based on the high frequency QRS waveform data.
[0038] The maximum voltage can be understood as maximum power and can be used to reflect the subject's maximum cardiac pumping function. Specifically, the maximum root-mean-square voltage is obtained from the high-frequency QRS waveform data as the target voltage, and the corresponding maximum voltage is determined based on the target voltage. The target voltage may be determined as the maximum voltage, or the target voltage may be corrected using a preset third correction factor to obtain the maximum voltage. The third correction factor can be customized according to the actual situation. For example, if the sum of the third correction factor and the target voltage is the maximum voltage, the third correction factor can be set to 1 uV (microvolt). If the product of the third correction factor and the target voltage is the maximum voltage, the third correction factor can be set to 1.2. It can be understood that the maximum voltage can be obtained by rounding up the target voltage or the target voltage corrected by the third correction factor. For example, if the target voltage or the target voltage corrected by the third correction factor is 9.6 uV, the maximum voltage can be determined to be 10 uV by rounding up. The third correction factor and the method for correcting the target voltage are not specifically limited herein.
[0039] In some embodiments, when a subject has one electrocardiogram lead, the maximum value of the root mean square voltage is obtained from the high-frequency QRS waveform data corresponding to this electrocardiogram lead and set as the target voltage. When there is more than one electrocardiogram lead (multiple leads), the maximum value of the root mean square voltage is obtained from the high-frequency QRS waveform data corresponding to each electrocardiogram lead, and the maximum values of the root mean square voltages are compared. Based on the comparison, the maximum root mean square voltage is screened and set as the target voltage. In this way, the maximum voltage is determined based on the target voltage.
[0040] In some embodiments, the high frequency QRS waveform data corresponding to each electrocardiogram lead includes not only data for each point on the corresponding high frequency QRS waveform curve, but also includes a maximum voltage determined in accordance with one or more embodiments of the present application.
[0041] In S112, the point with the largest root mean square voltage is selected from the high frequency QRS waveform data within the second time period and set as the third reference point, and the point with the smallest root mean square voltage that is later in time than the third reference point is set as the fourth reference point.
[0042] Specifically, the second time period includes a certain period before exercise, a certain period during exercise, and a certain period after exercise. The certain period before exercise is a resting phase, the period during exercise includes the entire exercise phase, and the certain period after exercise is a recovery phase. The certain period before exercise, the certain period during exercise, and the certain period after exercise are consecutive time periods. For example, if the time range corresponding to the exercise phase in the high-frequency QRS waveform data is 3 to 9 minutes, the second time period is a time section characterized by [1 minute 20 seconds, 9 minutes 20 seconds], with the start time at 1 minute 20 seconds and the end time at 9 minutes 20 seconds. The second time period includes 100 seconds before exercise, 6 minutes during exercise, and 20 seconds after exercise. The second time period may include the first time period, and the start time of the second time period may be the same as the start time of the first time period.
[0043] Specifically, the root mean square voltage of each point within the second time period in the high frequency QRS waveform data is traversed, and based on the traversed root mean square voltage, the point within the second time period with the largest root mean square voltage is screened from the high frequency QRS waveform data and set as the third reference point, and the point whose time is slower / larger than the time of the third reference point and has the smallest root mean square voltage is set as the fourth reference point.
[0044] In some embodiments, the third reference point may be the same as the second reference point, and is determined by the corresponding high-frequency QRS waveform data. If there are multiple points with the largest root-mean-square voltage in the high-frequency QRS waveform data within the second time period, the earliest point in time is selected from the multiple points with the largest root-mean-square voltage to be the third reference point.
[0045] In S114, a voltage difference is determined based on the root mean square voltages of the third and fourth reference points, respectively.
[0046] Specifically, the root mean square voltage of the third reference point is subtracted from the root mean square voltage of the corresponding fourth reference point to obtain a voltage difference corresponding to the corresponding high frequency QRS waveform data. The voltage difference may be understood as an amplitude drop absolute value, and specifically may be the second amplitude drop absolute value in one or more embodiments of the present application.
[0047] In some embodiments, Figure 2 provides a schematic diagram of selecting each reference point based on high frequency QRS waveform data. As shown in Figure 2, the high frequency QRS waveform diagram shows a high frequency QRS waveform curve determined based on high frequency QRS waveform data corresponding to electrocardiogram lead II, where the abscissa is time in minutes and the ordinate is root mean square voltage / amplitude in microvolts. The time range corresponding to the exercise phase in the high frequency QRS waveform data is 0 to 6 minutes, the first time period is a time interval corresponding to [100 seconds before 0, 3 minutes], and the second time period is a time interval corresponding to [100 seconds before 0, 6 minutes 20 seconds]. The first reference waveform data includes data of the high frequency QRS waveform data within a first time period, the first reference point being a point in the first reference waveform data where the root mean square voltage is smallest, the second reference point being a point in the first reference waveform data that is earlier in time than the first reference point and has the largest root mean square voltage, the third reference point being a point in the second time period where the root mean square voltage is largest, and the fourth reference point being a point in the second time period that is later in time than the third reference point and has the smallest root mean square voltage. In this embodiment, the third reference point and the second reference point may be the same point, or the fourth reference point and the first reference point may be the same point, the maximum voltage is 12 uV (the maximum value of the ordinate shown / displayed on the high frequency QRS waveform diagram), the voltage difference determined based on the third and fourth reference points (the second amplitude drop absolute value) is 4.8 uV, and the second amplitude drop relative value is 53%. It will be appreciated that the high frequency QRS waveform data and the corresponding selected reference points, as well as the selection of the first and second reference points, shown in FIG. 2 are merely examples and are not intended to be limiting.
[0048] In S116, high frequency QRS waveform data having a first amplitude decrease relative value equal to or greater than a first predetermined threshold is screened.
[0049] The first predetermined threshold may be customized based on experience, may be customized to 40%, or may be dynamically determined based on a user profile of the subject, where the user profile includes at least one of parameters such as age, weight, gender, and load level, which are not specifically limited herein.
[0050] Specifically, for one subject, high-frequency QRS waveform data corresponding to the exercise electrocardiogram data are screened for those whose corresponding first amplitude reduction relative value is equal to or greater than a first predetermined threshold, thereby making it easy to determine the vascular response ability based on the screened high-frequency QRS waveform data.
[0051] In some embodiments, when the first time period includes a certain period before exercise and a certain period during exercise, high-frequency QRS waveform data in which the first amplitude decrease relative value is equal to or greater than a first predetermined threshold and the time interval between the first reference point and the second reference point is equal to or less than a predetermined time interval is screened, thereby facilitating determining a reference index including a ratio of voltage difference to maximum voltage or a ratio of voltage difference to maximum voltage based on the screened high-frequency QRS waveform data for further determination of vascular response ability. The predetermined time interval can be customized according to actual circumstances, for example, 3 minutes.
[0052] In some embodiments, if the first amplitude decrease relative values corresponding to the respective high frequency QRS waveform data corresponding to the exercise electrocardiogram data are all less than the first predetermined threshold, there is no need to further determine the corresponding vascular response capabilities, and the respective high frequency QRS waveform data are output for physician reference. It can be understood that when the vascular response capabilities are determined and output, the respective high frequency QRS waveform data can be output synchronously for physician reference.
[0053] In S118, the vascular response capacity is determined based on the ratio of the voltage difference corresponding to the screened high frequency QRS waveform data to the maximum voltage.
[0054] The vasoreactivity is used to characterize the difference in coronary vasoreactivity and provide a reference for doctors, so that doctors can accurately recognize the health status of the heart based on the vasoreactivity and clinical symptoms, and further provide a reference opinion for further diagnosis, treatment or detection.
[0055] Specifically, for each of the screened high-frequency QRS waveform data, the ratio of the voltage difference to the maximum voltage can be determined based on the corresponding voltage difference and maximum voltage, and the vascular response ability can be determined based on the ratio of the voltage difference to the maximum voltage corresponding to each of the screened high-frequency QRS waveform data.
[0056] In some embodiments, the maximum value of the ratio of the voltage difference to the maximum voltage is screened from the ratios of the voltage difference to the maximum voltage corresponding to each of the screened high-frequency QRS waveform data, and the vascular response ability is determined based on the screened ratio of the voltage difference to the maximum voltage. For example, if the ratios of the voltage difference to the maximum voltage corresponding to three screened high-frequency QRS waveform data are 16%, 40%, and 52%, respectively, the vascular response ability is determined based on 52% (the maximum value of the ratio of the voltage difference to the maximum voltage). It can be understood that the maximum value of the screened ratio of the voltage difference to the maximum voltage can be set as the target ratio of the voltage difference to the maximum voltage.
[0057] In some embodiments, before screening high frequency QRS waveform data for which the first amplitude drop relative value is equal to or greater than the first predetermined threshold, a corresponding voltage difference and a corresponding maximum voltage may be determined for each high frequency QRS waveform data corresponding to the exercise electrocardiogram data. After screening high frequency QRS waveform data for which the first amplitude drop relative value is equal to or greater than the first predetermined threshold, a corresponding voltage difference and a corresponding maximum voltage may be determined for each of the screened high frequency QRS waveform data. It can be understood that for a single high frequency QRS waveform data, specifically with reference to the method provided in one or more embodiments of the present application, it is easy to determine the voltage difference and the maximum voltage, thereby determining the ratio of the voltage difference to the maximum voltage corresponding to the high frequency QRS waveform data based on the voltage difference and the maximum voltage.
[0058] In some embodiments, the ratio of the voltage difference to the maximum voltage can reflect the coronary vasoreactivity potential, and the two are negatively correlated. Thus, the corresponding vasoreactivity potential can be determined based on the ratio of the voltage difference to the maximum voltage. For example, the larger the ratio of the voltage difference to the maximum voltage, the lower or smaller the corresponding vasoreactivity potential (higher priority of attention) is, and the weaker the coronary vasoreactivity potential is characterized. Specifically, the corresponding vasoreactivity potential is determined based on a ratio threshold interval between the voltage difference and the maximum voltage. As can be seen from the method for determining the ratio of the voltage difference to the maximum voltage provided in one or more embodiments of the present application, the ratio of the voltage difference to the maximum voltage correlates with individual differences among subjects, and therefore, the vasoreactivity potential of a subject can be accurately evaluated based on this ratio.
[0059] For example, four ratio threshold intervals, from the first ratio threshold interval to the fourth ratio threshold interval, are preset, with reference priority decreasing, e.g., 46% or more, 40% or more but less than 46%, 30% or more but less than 40%, and 16% or more but less than 30%, respectively. If the ratio of the voltage difference to the maximum voltage is within the first ratio threshold interval, the vasoreactivity performance is annotated as having the first level of attention, which is the highest priority. If the ratio of the voltage difference to the maximum voltage is within the second ratio threshold interval, the vasoreactivity performance is annotated as having the second level of attention, which is the next highest priority, and so on, and so forth, without being recited here. If the ratio of the voltage difference to the maximum voltage is not within any ratio threshold interval (e.g., less than 16%), the vasoreactivity performance may be annotated as having the lowest level of attention. It is understood that operations related to further determining the vasoreactivity performance based on the ratio of the voltage difference to the maximum voltage may not be performed, and the vasoreactivity performance may also be determined based on other reference indicators provided herein.
[0060] In some embodiments, after screening high-frequency QRS waveform data whose first amplitude drop relative value is equal to or greater than a first predetermined threshold, a reference index is determined based on each screened high-frequency QRS waveform data, and vascular response ability is determined based on the reference index. The reference index includes a ratio between a voltage difference and a maximum voltage, and further includes at least one of a target amplitude drop relative value and an area of a target waveform drop region. It can be understood that the number of positives can also be determined based on each high-frequency QRS waveform data corresponding to the exercise electrocardiogram data, and vascular response ability can be determined based on the number of positives and the reference index (the ratio between a voltage difference and a maximum voltage).
[0061] Based on one or more embodiments of the present application, it can be understood that, when the waveform type corresponding to high frequency QRS waveform data is not taken into consideration, the ratio of the voltage difference to the maximum voltage at the reference index refers to the maximum value in the ratio of the voltage difference to the maximum voltage corresponding to each high frequency QRS waveform data whose corresponding first amplitude drop relative value is equal to or greater than a first predetermined threshold, the target amplitude drop relative value refers to the maximum value in the second amplitude drop relative value corresponding to each high frequency QRS waveform data whose corresponding first amplitude drop relative value is equal to or greater than the first predetermined threshold, and the area of the target waveform drop region refers to the sum, average, or maximum value of the area of the waveform drop region corresponding to each high frequency QRS waveform data whose corresponding first amplitude drop relative value is equal to or greater than the first predetermined threshold.
[0062] In the above-mentioned high frequency QRS waveform data analysis method, by analyzing the high frequency QRS waveform data corresponding to the exercise electrocardiogram data, two characteristic points within a first time period are selected as the first and second reference points, and two characteristic points within a second time period are selected as the third and fourth reference points, respectively, and a corresponding maximum voltage is determined. The waveform change situation of the high frequency QRS waveform data within the first time period is quantified based on the first and second reference points to obtain a first amplitude drop relative value. The waveform change situation is quantified based on the third and fourth reference points to obtain a voltage difference characterizing the degree of amplitude drop. If the first amplitude drop relative value is equal to or greater than a first predetermined threshold and the waveform change situation characterizing the high frequency QRS waveform data meets the requirements, an evaluation is performed based on the ratio of the voltage difference to the maximum voltage to obtain a highly accurate vasoreactivity ability. This allows a subject's coronary artery vasoreactivity ability to be accurately evaluated non-invasively, and further provides the highly accurate vasoreactivity ability for reference by a physician, allowing the physician to accurately recognize the subject's cardiac health status in conjunction with clinical symptoms.
[0063] In some embodiments, S116 includes screening high-frequency QRS waveform data whose corresponding waveform types are a first type, a second type, and a third type, wherein the waveform characteristics of the first type include a first amplitude drop relative value equal to or greater than a first predetermined threshold and a first amplitude rise relative value equal to or greater than a second predetermined threshold; the waveform characteristics of the second type include a first amplitude drop relative value equal to or greater than the first predetermined threshold, a second amplitude rise relative value less than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold; and the waveform characteristics of the third type include a first amplitude drop relative value equal to or greater than the first predetermined threshold, a second amplitude rise relative value equal to or greater than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold. the determining step of the first amplitude rise relative value includes the steps of selecting from the first reference waveform data a fifth reference point that satisfies a screening condition and is later in time than the first reference point, and determining the first amplitude rise relative value based on the root mean square voltages of the first and fifth reference points; and the determining step of the second amplitude rise relative value includes the steps of selecting from high frequency QRS waveform data within a second time period second reference waveform data whose amplitude fluctuation range is equal to or less than a predetermined fluctuation range, and selecting from high frequency QRS waveform data within a third time period a point with the largest root mean square voltage as a sixth reference point, and determining the second amplitude rise relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point.
[0064] The first type includes a V-shape, the second type includes an L-shape, and the third type includes a U-shape. The screening condition is a limiting condition for screening the fifth reference point from the first reference waveform data. Specifically, it may be the end point of the first reference waveform data or the first inflection point in the first reference waveform data that is later or greater in time than the first reference point. An inflection point, also known as an inflection point, refers to a point where the direction of a curve changes upward or downward, i.e., the boundary between a concave arc and a convex arc on the curve corresponding to the first reference waveform data. If the first reference waveform data contains multiple inflection points that are later in time than the first reference point, the earliest inflection point among the multiple inflection points is determined as the first inflection point. If the first reference waveform data does not contain any inflection points that are later in time than the first reference point, the end point of the first reference waveform data is determined as the fifth reference point. Specifically, the third time period may include a certain period after exercise during the recovery phase. The third time period may be adjacent to the second time period, and the end of the second time period is the start of the third time period. For example, if the time range corresponding to the recovery phase in the high-frequency QRS waveform is 9 to 12 minutes, the third time period is a time interval characterized by [9 minutes 20 seconds, 12 minutes].
[0065] The amplitude fluctuation range is used to characterize the degree of amplitude fluctuation or change, and specifically, can be used to characterize the degree of fluctuation between the amplitudes (i.e., root-mean-square voltages) of each point of the second reference waveform data. Specifically, the amplitude fluctuation range of the second reference waveform data can be determined based on the maximum and minimum values of the root-mean-square voltages in the second reference waveform data. For example, the difference between the maximum and minimum values of the root-mean-square voltages is calculated to obtain the corresponding amplitude fluctuation range. The predetermined fluctuation range can be customized according to needs, for example, 1uV (microvolt). The predetermined fluctuation range can also be dynamically determined based on the root mean square voltage of the second reference point or the third reference point, and the predetermined fluctuation range is positively correlated with the root mean square voltage of the second reference point (or the third reference point). Specifically, the predetermined fluctuation range can be dynamically set based on the root mean square voltage of the second reference point (or the third reference point) and a predetermined ratio value. For example, determining 10% of the root mean square voltage of the second reference point or the third reference point and setting the predetermined ratio value to 10% is merely an example and is not intended to be limiting.
[0066] The duration of the second reference waveform data refers to the time difference between the end point and the start point of the second reference waveform data. Similarly, the second predetermined threshold, the third predetermined threshold, and the predetermined time threshold can be customized based on experience. For example, the second predetermined threshold can be set to 30%, the third predetermined threshold can be set to 56%, and the predetermined time threshold can be set to 3 minutes. They can also be dynamically determined based on the user's image of the subject. This is not a specific limitation.
[0067] Specifically, the waveform type of each high frequency QRS waveform data corresponding to the analyzed exercise electrocardiogram data is analyzed to determine whether it is type 1, type 2, or type 3. Then, the high frequency QRS waveform data corresponding to the exercise electrocardiogram data are screened for type 1, type 2, and type 3 high frequency QRS waveform data, respectively. From each high frequency QRS waveform data corresponding to the exercise electrocardiogram data, high frequency QRS waveform data of type 1, type 2, and type 3 high frequency QRS waveform data are screened. In this way, the screened high frequency QRS waveform data includes type 1 high frequency QRS waveform data, type 2 high frequency QRS waveform data, and type 3 high frequency QRS waveform data. This facilitates determining the vascular response ability based on the ratio between the voltage difference and the maximum voltage corresponding to the screened high frequency QRS waveform data.
[0068] The step of analyzing whether the waveform type of the high frequency QRS waveform data is the first type includes the steps of selecting an end point of the first reference waveform data as the fifth reference point, or selecting the first inflection point after the first reference point from the first reference waveform data as the fifth reference point; calculating a difference between the root mean square voltage of the fifth reference point and the root mean square voltage of the first reference point to obtain a first amplitude rise absolute value; and determining the ratio of the first amplitude rise absolute value to the root mean square voltage of the first reference point as a first amplitude rise relative value; and determining that the waveform type of the corresponding high frequency QRS waveform data is the first type if the first amplitude fall relative value is equal to or greater than a first predetermined threshold and the first amplitude rise relative value is equal to or greater than a second predetermined threshold.
[0069] The step of analyzing whether the waveform type of the high frequency QRS waveform data is the second type includes the steps of: traversing the root mean square voltage of each point within a second time period in the high frequency QRS waveform data; selecting data from the high frequency QRS waveform data within the second time period whose amplitude fluctuation range is equal to or less than a predetermined fluctuation range based on the traversed root mean square voltage; and selecting data from the high frequency QRS waveform data within a third time period; traversing the root mean square voltage of each point in the selected data; and determining the root mean square voltage of the selected data based on the traversed root mean square voltage. The method includes the steps of selecting a point with the largest root-mean-square voltage as a sixth reference point, calculating the difference between the root-mean-square voltage of the sixth reference point and the root-mean-square voltage of the end point of the second reference waveform data to obtain a second amplitude rise absolute value, and determining the ratio of the second amplitude rise absolute value to the root-mean-square voltage of the end point of the second reference waveform data as a second amplitude rise relative value, and determining that the waveform type of the corresponding high-frequency QRS waveform data is the second type if the first amplitude fall relative value is equal to or greater than a first predetermined threshold, the second amplitude rise relative value is less than a third predetermined threshold, and the duration of the second reference waveform data is equal to or greater than a predetermined time threshold. The duration of the second reference waveform data is determined based on the times of the start and end points of the second reference waveform data.
[0070] The step of analyzing whether the waveform type of the high frequency QRS waveform data is the third type includes the steps of: traversing the root mean square voltage of each point within a second time period in the high frequency QRS waveform data; selecting data from the high frequency QRS waveform data within the second time period whose amplitude fluctuation range is equal to or less than a predetermined fluctuation range based on the traversed root mean square voltage; and selecting data from the high frequency QRS waveform data within a third time period; traversing the root mean square voltage of each point in the selected data; and selecting root mean square voltage from the selected data based on the traversed root mean square voltage. The method includes the steps of selecting a point with the largest root voltage as a sixth reference point, calculating the difference between the root mean square voltage of the sixth reference point and the root mean square voltage of the end point of the second reference waveform data to obtain a second amplitude rise absolute value, and determining the ratio of the second amplitude rise absolute value to the root mean square voltage of the end point of the second reference waveform data as a second amplitude rise relative value, and determining that the waveform type of the corresponding high-frequency QRS waveform data is the third type if the first amplitude fall relative value is equal to or greater than a first predetermined threshold, the second amplitude rise relative value is equal to or greater than a third predetermined threshold, and the duration of the second reference waveform data is equal to or greater than a predetermined time threshold.
[0071] To explain this using an example, suppose there are 12 electrocardiogram leads, and of the high-frequency QRS waveform data corresponding to each of the 12 electrocardiogram leads, there are two high-frequency QRS waveform data with a waveform type of type 1, one high-frequency QRS waveform data with a waveform type of type 2, and one high-frequency QRS waveform data with a waveform type of type 3. From the 12 high-frequency QRS waveform data, high-frequency QRS waveform data with corresponding waveform types of type 1, type 2, and type 3 are screened, and vascular response ability is determined based on the four high-frequency QRS waveform data screened.
[0072] In some embodiments, high-frequency QRS waveform data within the second time period is selected as target waveform data. Specifically, referring to existing technology, second reference waveform data whose amplitude fluctuation range is equal to or less than a predetermined fluctuation range can be selected from the target waveform data; detailed description thereof is omitted here. For example, first, data whose corresponding amplitude fluctuation range meets a requirement (i.e., the amplitude fluctuation range is equal to or less than a predetermined fluctuation range) and whose duration is short (e.g., 1 minute or 30 seconds) is selected from the target waveform data as candidate data. Then, using the selected candidate data as a reference, adjacent points before and / or after the selected candidate data are selected in the target waveform data to expand the range of the selected candidate data. If the amplitude fluctuation range corresponding to the expanded candidate data still does not meet the requirement, the candidate data is further expanded according to the above method. If the amplitude fluctuation range corresponding to the expanded candidate data still does not meet the requirement, the expansion of the candidate data range is stopped, and the candidate data obtained by the previous expansion is determined as the second reference waveform data. The curve determined based on the second reference waveform data is a continuous subsection of the corresponding high-frequency QRS waveform curve.
[0073] In some embodiments, the waveform type of each high-frequency QRS waveform data is analyzed in a parallel or serial manner to determine whether it is a first, second, or third type. In the serial analysis method, analysis is performed sequentially based on waveform analysis functions corresponding to each predetermined type in a predetermined order. If it is determined based on the current waveform analysis function that the waveform type of the high-frequency QRS waveform data is not a corresponding predetermined type, analysis is continued based on the waveform analysis function corresponding to the next predetermined type in the predetermined order. When a stopping condition is met, the current analysis flow is stopped. The stopping condition may include completing traversal of all predetermined types in the predetermined order or determining based on the current waveform analysis function that the waveform type of the high-frequency QRS waveform data is a corresponding predetermined type. The predetermined order is not specifically limited herein. In this embodiment, the predetermined types include a first, second, and third types. If more or fewer types are included in the predetermined types, similar logic may be used for processing. If the waveform type of the high-frequency QRS waveform data is one of the predetermined types (i.e., the waveform type of the high-frequency QRS waveform data is one of the first, second, and third types), it is determined that the waveform type of the high-frequency QRS waveform data is a predetermined type. The waveform analysis function corresponding to the predetermined type may include steps related to whether the analyzed high-frequency QRS waveform data provided in one or more embodiments of the present application is of the corresponding predetermined type, and detailed description thereof will be omitted here.
[0074] In the above embodiment, high-frequency QRS waveform data whose waveform type is type 1, type 2 or type 3 can better reflect coronary artery vascular response ability, so high-frequency QRS waveform data whose corresponding waveform types are type 1, type 2 and type 3 are screened, thereby making it easier to obtain more accurate vascular response ability based on the screened high-frequency QRS waveform data.
[0075] In some embodiments, high frequency QRS waveform data having a first waveform type and a second waveform type are screened, or high frequency QRS waveform data having a first waveform type and a third waveform type are screened, or high frequency QRS waveform data having a second waveform type and a third waveform type are screened, and vascular reactivity ability is determined based on the screened high frequency QRS waveform data. In this embodiment, the predetermined types include the first and second types, or the first and third types, or the second and third types, thereby facilitating the determination of vascular reactivity ability based on high frequency QRS waveform data having a predetermined waveform type.
[0076] In some embodiments, S116 includes screening high frequency QRS waveform data corresponding to a first waveform type, or screening high frequency QRS waveform data corresponding to a second waveform type, or screening high frequency QRS waveform data corresponding to a third waveform type, wherein the first type of waveform characteristics include a first amplitude drop relative value equal to or greater than a first predetermined threshold and a first amplitude rise relative value equal to or greater than a second predetermined threshold, the second type of waveform characteristics include a first amplitude drop relative value equal to or greater than the first predetermined threshold, a second amplitude rise relative value less than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold, and the third type of waveform characteristics include a first amplitude drop relative value equal to or greater than the first predetermined threshold and a second amplitude rise relative value less than a third predetermined threshold. the second amplitude rise relative value is determined based on the root mean square voltages of the end point of the second reference waveform data and the root mean square voltages of the sixth reference point, the sixth reference point being selected from the high frequency QRS waveform data within the second time period.
[0077] Specifically, the waveform of each high-frequency QRS waveform data corresponding to the exercise electrocardiogram data is analyzed to determine whether it is a first type, and then the corresponding high-frequency QRS waveform data of the first type are screened, thereby facilitating the determination of vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the high-frequency QRS waveform data of the first type. Alternatively, the waveform type of each high-frequency QRS waveform data corresponding to the exercise electrocardiogram data is analyzed to determine whether it is a second type, and then the corresponding high-frequency QRS waveform data of the second type are screened, thereby facilitating the determination of vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the high-frequency QRS waveform data of the second type. Alternatively, the waveform type of each high-frequency QRS waveform data corresponding to the exercise electrocardiogram data is analyzed to determine whether it is a third type, and then the corresponding high-frequency QRS waveform data of the third type are screened, thereby facilitating the determination of vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the high-frequency QRS waveform data of the third type.
[0078] In some embodiments, if the first amplitude decrease relative value is equal to or greater than a first predetermined threshold, the first amplitude increase relative value is equal to or greater than a second predetermined threshold, and the corresponding high frequency QRS waveform data is characterized as including a V-shaped band, the waveform type corresponding to the corresponding high frequency QRS waveform data is determined to be V-shaped (first type), and vascular response ability is further determined based on each of the corresponding high frequency QRS waveform data whose waveform type is V-shaped according to the method provided in one or more embodiments of the present application. It can be seen that the waveform type of the high frequency QRS waveform data shown in Figure 2 is V-shaped. In this way, the waveform change situation of the high frequency QRS waveform data is quantified using a waveform analysis function corresponding to a V-shape to analyze whether the waveform type of the high frequency QRS waveform data is V-shaped, which facilitates accurate determination of vascular response ability based on each of the high frequency QRS waveform curves whose waveform type is V-shaped.
[0079] In some embodiments, when the first amplitude decrease relative value is equal to or greater than a first predetermined threshold, the second amplitude increase relative value is less than a third predetermined threshold, the duration of the second reference waveform data is equal to or greater than a predetermined time threshold, and the corresponding high frequency QRS waveform data is characterized as including an L-shaped band, the waveform type of the corresponding high frequency QRS waveform data is determined to be L-shaped, and vascular response ability can be further determined based on each high frequency QRS waveform data whose waveform type is L-shaped. In this way, the waveform change situation of the high frequency QRS waveform data is quantified using a waveform analysis function corresponding to L-shape to analyze whether the waveform type of the high frequency QRS waveform data is L-shaped, which can then be used to accurately determine vascular response ability based on each high frequency QRS waveform data whose waveform type is L-shaped.
[0080] In some embodiments, Figure 3 provides a schematic diagram of selecting reference points and reference waveform data based on high frequency QRS waveform data. As shown in Figure 3, the high frequency QRS waveform diagram displays high frequency QRS waveform data corresponding to electrocardiogram lead aVL. The time range corresponding to the exercise phase in the high frequency QRS waveform data is 0 to 9 minutes, the first time period includes the first 3 minutes during exercise (exercise phase), the high frequency QRS waveform data within the first time period is the first reference waveform data, the point in the first reference waveform data where the root mean square voltage is smallest is the first reference point, the point in the first reference waveform data that is earlier in time than the first reference point and where the root mean square voltage is largest is the second reference point, the second time period includes 100 seconds before exercise (resting phase), 9 minutes during the exercise phase, and 20 seconds after exercise (recovery phase), and the data within the second time period where the amplitude waveform width is less than a predetermined fluctuation width (e.g., 0.5uV) is the second reference waveform data. The point within the second time period where the rms voltage is greatest is the third reference point, and the point later in time than the third reference point where the rms voltage is lowest is the fourth reference point. The third time period includes the time period from 20 seconds after the end of exercise to the end of the exercise load detection process, specifically, a time period characterized by, for example, [9 minutes 20 seconds, 12 minutes]. The sixth reference point is the point within the third time period where the rms voltage is greatest in the high-frequency QRS waveform data. The second amplitude drop absolute value and second amplitude drop relative value determined based on the rms voltages of the third and fourth reference points are 3.3 uV and 56%, respectively. The maximum voltage and voltage difference corresponding to the high-frequency QRS waveform data shown in Figure 3 are 10 uV and 3.3 uV, respectively, and the waveform type is L-shaped. It can be seen that the first and fourth reference points are the same point in the illustrated high-frequency QRS waveform curve. The high frequency QRS waveform data and the correspondingly selected reference points and reference waveform data, as well as the selection of the first and second reference points shown in FIG. 3, are merely examples and are not intended to be limiting.
[0081] In some embodiments, if the first amplitude decrease relative value is equal to or greater than a first predetermined threshold, the second amplitude increase relative value is equal to or greater than a third predetermined threshold, the duration of the second reference waveform data is equal to or greater than a predetermined time threshold, and the corresponding high frequency QRS waveform data is characterized as including a U-shaped band, the waveform type of the corresponding high frequency QRS waveform data is determined to be U-shaped, and vascular response ability is further determined based on each high frequency QRS waveform curve with a U-shaped waveform type. In this way, the waveform change situation of the high frequency QRS waveform data is quantified using a waveform analysis function corresponding to a U-shape to analyze whether the waveform type of the high frequency QRS waveform data is U-shaped, which facilitates determining vascular response ability based on each high frequency QRS waveform data with a U-shaped waveform type.
[0082] 4 is a schematic diagram illustrating the selection of reference points and reference waveform data based on high frequency QRS waveform data. As shown in FIG. 4, the high frequency QRS waveform diagram displays high frequency QRS waveform data corresponding to electrocardiogram lead V5. The exercise phase is represented by a time range of 0 to 9 minutes in the high frequency QRS waveform data. The first time period includes 100 seconds before exercise (resting phase) and the first 3 minutes during exercise (exercise phase). The high frequency QRS waveform data within the first time period is the first reference waveform data. The first reference point is the point in the first reference waveform data where the root mean square voltage is smallest. The second reference point is the point in the first reference waveform data where the root mean square voltage is largest. The second time period includes 100 seconds before exercise (resting phase), 9 minutes during exercise, and 20 seconds after exercise (recovery phase). The second time period includes 100 seconds before exercise (resting phase), 9 minutes during exercise, and 20 seconds after exercise (recovery phase). The second time period includes data where the amplitude waveform width is within a predetermined fluctuation range (e.g., 0.5 uV). The second reference waveform data includes the third reference point, the point within the second time period where the root mean square voltage is greatest, and the fourth reference point, the point later in time than the third reference point and where the root mean square voltage is smallest. The third time period includes the time period from 20 seconds after the end of exercise to the end of the exercise load detection process, specifically, a time period characterized by, for example, [9 minutes 20 seconds, 12 minutes]. The sixth reference point is the point within the third time period where the root mean square voltage is greatest in the high-frequency QRS waveform data. The second absolute amplitude drop value and the second relative amplitude drop value determined based on the root mean square voltages of the third and fourth reference points are 3.2 uV and 63%, respectively. The maximum voltage and voltage difference corresponding to the high-frequency QRS waveform data shown in Figure 4 are 10 uV and 3.2 uV, respectively, and the waveform type is U-shaped. In this embodiment, the second and third reference points are the same point. The high frequency QRS waveform data and the correspondingly selected reference points and reference waveform data, as well as the selection of the first and second reference points shown in FIG. 4, are merely examples and are not intended to be limiting.
[0083] According to one or more embodiments of the present application, when the first time period includes a certain period before exercise and a certain period during exercise, the waveform characteristics of the first, second, and third types each further include that the time interval between the first reference point and the second reference point is equal to or less than a predetermined time interval. Taking the first type as an example, the waveform characteristics of the first type include that the first amplitude decrease relative value is equal to or greater than a first predetermined threshold, the first amplitude increase relative value is equal to or greater than a second predetermined threshold, and the time interval between the first reference point and the second reference point is equal to or less than a predetermined time interval, and these are not listed here one by one.
[0084] In some embodiments, S118 includes determining a reference index based on the screened high-frequency QRS waveform data, the reference index including a ratio between a voltage difference and a maximum voltage, and further including at least one of a target amplitude reduction relative value and an area of a target waveform reduction region; and determining vascular response capability based on the reference index.
[0085] The ratio of the voltage difference to the maximum voltage at the reference index refers to the maximum value among the ratios of the voltage difference to the maximum voltage corresponding to each of the screened high-frequency QRS waveform data, and can be understood as the target ratio of the voltage difference to the maximum voltage. The target amplitude reduction relative value refers to the maximum value among the second amplitude reduction relative values corresponding to each of the screened high-frequency QRS waveform data. The area of the target waveform reduction region refers to the sum, average value, or maximum value of the area of the waveform reduction region corresponding to each of the screened high-frequency QRS waveform data.
[0086] Specifically, the ratio of the voltage difference to the maximum voltage is determined based on each screened high-frequency QRS waveform data, and at least one term in the reference index such as the target amplitude reduction relative value, the area of the target waveform reduction region, etc. is further determined, and the vascular response ability is determined based on the ratio of the voltage difference to the maximum voltage in combination with at least one term of the target amplitude reduction relative value, the area of the target waveform reduction region, etc.
[0087] According to one or more embodiments of the present application, when a reference index is determined by screening high-frequency QRS waveform data whose waveform type is a predetermined type, taking into consideration the waveform type corresponding to the high-frequency QRS waveform data, the ratio of the voltage difference to the maximum voltage at the reference index refers to the maximum value among the ratios of the voltage difference to the maximum voltage corresponding to each high-frequency QRS waveform data whose corresponding waveform type is the predetermined type, the target amplitude decrease relative value refers to the maximum value among the second amplitude decrease relative values corresponding to each high-frequency QRS waveform data whose corresponding waveform type is the predetermined type, and the area of the target waveform decrease region refers to the sum, average, or maximum value of the area of the waveform decrease region corresponding to each high-frequency QRS waveform data whose corresponding waveform type is the predetermined type. The predetermined type includes at least one of a first type (e.g., V-shaped), a second type (e.g., L-shaped), and a third type (e.g., U-shaped).
[0088] For example, if the predetermined types include an L-shaped waveform, the ratio of the voltage difference to the maximum voltage at the reference index refers to the maximum ratio of the voltage difference to the maximum voltage corresponding to each high-frequency QRS waveform data whose corresponding waveform type is an L-shaped waveform. For example, if the predetermined types include a V-shaped, a U-shaped, and an L-shaped waveform, the waveform type of each high-frequency QRS waveform data is analyzed to determine whether it is a V-shaped, a U-shaped, or an L-shaped waveform, and the high-frequency QRS waveform data whose waveform type is a V-shaped, a U-shaped, and an L-shaped waveform are screened. If there are two high-frequency QRS waveform data whose waveform type is a V-shaped, one high-frequency QRS waveform data whose waveform type is an L-shaped, and one high-frequency QRS waveform data whose waveform type is a U-shaped, the reference index is determined based on the four high-frequency QRS waveform data screened. Specifically, each reference index can be determined based on the four high-frequency QRS waveform data screened by referring to the methods provided in one or more embodiments of the present application, and detailed description thereof will be omitted herein.
[0089] In some embodiments, determining a target amplitude reduction relative value based on the screened high-frequency QRS waveform data includes determining a second amplitude reduction relative value for each of the screened high-frequency QRS waveform data based on the root-mean-square voltages of the corresponding third and fourth reference points, and determining the maximum of the second amplitude reduction relative values corresponding to each of the screened high-frequency QRS waveform data as the target amplitude reduction relative value. Specifically, the second amplitude reduction relative value is obtained by calculating the difference between the root-mean-square voltage of the third reference point and the root-mean-square voltage of the corresponding fourth reference point, and the ratio of the second amplitude reduction relative value to the root-mean-square voltage of the third reference point is determined as the second amplitude reduction relative value. It can be understood that when the waveform type of the high-frequency QRS waveform data is V-shaped, the first reference point is selected as the fourth reference point, and the corresponding first amplitude reduction relative value is determined as the second amplitude reduction relative value. When the waveform type of the high-frequency QRS waveform data is U-shaped or L-shaped, the point with the smallest root-mean-square voltage is selected from the second reference waveform data and used as the fourth reference point.
[0090] In some embodiments, the target amplitude reduction relative value can reflect the coronary vasoreactivity potential, and the two are negatively correlated. The vasoreactivity potential can be determined based on the target amplitude reduction relative value. For example, the larger the target amplitude reduction relative value, the smaller or lower the corresponding vasoreactivity potential is annotated, characterizing the weaker coronary vasoreactivity potential. This allows for a more accurate vasoreactivity potential to be obtained based on the ratio of the voltage difference to the maximum voltage and the target amplitude reduction relative value. Specifically, the vasoreactivity potential can be determined based on the threshold interval in which each of them is located. Specifically, the ratio of the voltage difference to the maximum voltage and the target amplitude reduction relative value are compared with the respective threshold intervals, and the reference priority of the threshold interval in which they are located is determined as the reference priority of the corresponding reference index, and a reference index or dimension with a high reference priority is screened and used to determine the vasoreactivity potential. Alternatively, the vasoreactivity potential can be determined based on the threshold interval in which the ratio of the voltage difference to the maximum voltage and the target amplitude reduction relative value are located, and then the vasoreactivity potential with the highest priority of interest is screened and determined as the final vasoreactivity potential. It can be understood that when the reference priorities corresponding to the ratio of voltage difference to maximum voltage and the target amplitude reduction relative value are the same, one of them can be selected and used to determine the vascular response capacity.
[0091] To explain this using an example, for the target amplitude reduction relative value, a total of four width threshold ranges, from the first width threshold range to the fourth width threshold range, in which the reference priority decreases sequentially, are set in advance, for example, 66% or more, 60% or more but less than 66%, 50% or more but less than 60%, and 40% or more but less than 50%, and the reference priority corresponding to each range will be referred to as the first level to the fourth level, respectively. For example, when the target amplitude reduction relative value is in the first width threshold interval, the reference priority of the target amplitude reduction relative value is determined to be the first level with the highest reference priority; similarly, when the ratio of the voltage difference to the maximum voltage is in the second ratio threshold interval, the reference priority of the ratio of the voltage difference to the maximum voltage is determined to be the second level with the next highest reference priority; when the reference priority (first level) of the target amplitude reduction relative value is higher than the reference priority (second level) of the ratio of the voltage difference to the maximum voltage, the vascular response ability is determined based on the width threshold interval in which the target amplitude reduction relative value is located; and when the target amplitude reduction relative value is located in the first width threshold interval, the vascular response ability is determined to be the first level with the highest attention priority.
[0092] For example, if the target amplitude reduction relative value is in the first width threshold section, the vascular response ability is determined as the first level with the highest priority of attention, and if the ratio of the voltage difference to the maximum voltage is in the second ratio threshold section, the vascular response ability is determined as the second level with the next highest priority of attention, and the second level with the highest priority of attention is screened by comparison to determine the final vascular response ability.As can be seen by referring to the correspondence between the ratio of the voltage difference to the maximum voltage and the vascular response ability, if the target amplitude reduction relative value is in the second width threshold section, the vascular response ability is determined as the second level with the next highest priority of attention, and so on, and so forth, and will not be listed here one by one.
[0093] In some embodiments, the step of determining the area of the target waveform depression region based on the screened high-frequency QRS waveform data includes the steps of selecting a seventh reference point and an eighth reference point from the screened high-frequency QRS waveform data, determining the area of the waveform depression region based on the seventh reference point, the eighth reference point and the high-frequency QRS waveform data, and determining the sum, average or maximum value of the areas of the waveform depression regions corresponding to each of the screened high-frequency QRS waveform data as the area of the target waveform depression region.
[0094] Specifically, for each screened high-frequency QRS waveform data, a point corresponding to the start of a movement phase in the high-frequency QRS waveform data is set as the seventh reference point, or the second reference point (or the third reference point) is set as the seventh reference point, and a point corresponding to the end of a movement phase in the high-frequency QRS waveform data is set as the eighth reference point. The root-mean-square voltage of the seventh reference point is determined as the reference amplitude, and a closed region determined by the reference amplitude, the eighth reference point, and the high-frequency QRS waveform data and located below the reference amplitude is determined as a waveform depression region. The area of the closed region is calculated using a first function to obtain an absolute depression area, and the absolute depression area is set as the area of the waveform depression region of the corresponding high-frequency QRS waveform data. Alternatively, a closed region determined by the seventh reference point, the eighth reference point, the high-frequency QRS waveform data, and the root-mean-square voltage, for example, is used as the reference axis (the horizontal axis of the high-frequency QRS waveform diagram), the area of the reference region is calculated using a second function to obtain the reference area, the ratio of the absolute drop area to the reference area is determined as the relative drop area, and the relative drop area is used as the area of the waveform drop area of the corresponding high-frequency QRS waveform data. Alternatively, the absolute drop area and relative drop area calculated by the above method are used as the area of the waveform drop area of the corresponding high-frequency QRS waveform data. The time of the seventh reference point is earlier than the time of the eighth reference point.
[0095] In some embodiments, the area of the target waveform depression region can be used to reflect coronary vasoreactivity, and the two are negatively correlated. Based on the area of the target waveform depression region, the corresponding vasoreactivity can be determined. For example, the larger the area of the target waveform depression region, the lower the corresponding vasoreactivity or the smaller (higher the priority of attention) the annotated vasoreactivity can be, characterizing the weaker coronary vasoreactivity. This allows for more accurate vasoreactivity to be obtained based on the ratio of the voltage difference to the maximum voltage and the area of the target waveform depression region. Specifically, the vasoreactivity can be determined based on the threshold intervals in which the two are located.
[0096] For example, consider a case where vascular response ability is determined by combining the area of the target waveform decline region and the ratio of the voltage difference to the maximum voltage. Three area threshold intervals, from the first area threshold interval to the third area threshold interval, are predefined, with decreasing reference priority. If the ratio of the voltage difference to the maximum voltage is within the first ratio threshold interval and the area of the target waveform decline region is within the first area threshold interval, the vascular response ability is annotated as being at a first level. If the ratio of the voltage difference to the maximum voltage is within the second ratio threshold interval and the area of the target waveform decline region is within the first area threshold interval, the vascular response ability is annotated as being at a second level. The above examples are not listed here. It can be understood that the higher the reference priority of an area threshold interval, the larger the numerical value within that area threshold interval. If the area of the waveform decline region includes an absolute decline area and / or a relative decline area, the predefined area threshold interval for the area of the waveform decline region includes an absolute area threshold interval for the absolute decline area and / or a relative area threshold interval for the relative decline area. As a result, when the area of the target waveform decline region is within the first area threshold interval, the included target absolute decline area and / or target relative decline area are each located in the corresponding area threshold interval within the first area threshold interval, and detailed explanations are omitted here.
[0097] In some embodiments, a more accurate vasoreactivity capability can be obtained based on the ratio of the voltage difference to the maximum voltage, the area of the target waveform drop region, and the target amplitude drop relative value. Specifically, multiple corresponding combination methods can be obtained based on the threshold intervals in which each reference index is located. The corresponding vasoreactivity capability can be obtained based on various combination methods of each reference index, with reference to the vasoreactivity capability determination method provided in one or more embodiments of the present application. Detailed descriptions are omitted here. For example, if the area of the target waveform drop region is within a first area threshold interval, and the target amplitude drop relative value is within a first width threshold interval, and / or the ratio of the voltage difference to the maximum voltage is within a first ratio threshold interval, the vasoreactivity capability is annotated as the first level of attention, which is the highest priority level.
[0098] In the above embodiment, based on the ratio of the voltage difference to the maximum voltage, and further in combination with at least one of the target amplitude reduction relative value and the area of the target waveform reduction region, a more accurate vascular response ability can be obtained and provided for physician reference.
[0099] In some embodiments, the above-mentioned high frequency QRS waveform data analysis method further includes a step of determining the number of positives based on the high frequency QRS waveform data corresponding to the exercise electrocardiogram data, and S118 includes a step of determining vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the screened high frequency QRS waveform data and the number of positives, or a step of determining a reference index based on the screened high frequency QRS waveform data, the reference index including the ratio of the voltage difference to the maximum voltage and further including at least one of the target amplitude decrease relative value and the area of the target waveform decrease region, and determining vascular response ability based on the number of positives.
[0100] Specifically, a corresponding lead positive index is determined based on each high-frequency QRS waveform data corresponding to the exercise electrocardiogram data, high-frequency QRS waveform data corresponding to the exercise electrocardiogram data that show a positive lead positive index are screened and statistically analyzed to obtain the number of positives corresponding to the exercise electrocardiogram data, a ratio between the voltage difference and the maximum voltage is determined based on the screened high-frequency QRS waveform data, and the vascular response ability is determined based on the determined ratio between the voltage difference and the maximum voltage and the number of positives. Alternatively, according to the method provided in one or more embodiments of the present application, a reference index is determined based on the screened high-frequency QRS waveform data, and the vascular response ability is determined based on the reference index and the number of positives.
[0101] In some embodiments, for each high-frequency QRS waveform data corresponding to the exercise electrocardiogram data, a second amplitude drop absolute value and a second amplitude drop relative value are determined based on the root mean square voltages of the third and fourth reference points, respectively, and a lead positivity index for the corresponding high-frequency QRS waveform data is determined based on the second amplitude drop relative value and the second amplitude drop relative value. If the second amplitude drop absolute value and the second amplitude drop relative value of the high-frequency QRS waveform data both meet a predetermined lead positivity condition, the lead positivity index indicates that the corresponding electrocardiogram lead is positive. The predetermined lead positivity condition can be customized according to the actual detection situation and adaptively adjusted based on factors such as the subject's age, sex, height, and weight. For example, the second amplitude drop absolute value is greater than 1 uV and the second amplitude drop relative value is greater than 50%, but is not specifically limited herein.
[0102] In some embodiments, the positive number can be used to reflect coronary vasoreactivity, and the relationship between the two is a negative correlation. The corresponding vasoreactivity can be determined based on the positive number, and for example, the larger the positive number, the lower or smaller the corresponding vasoreactivity (higher priority of attention) is annotated to characterize the weaker coronary vasoreactivity. This allows for a more accurate vasoreactivity to be obtained based on the ratio of the voltage difference to the maximum voltage and the positive number. Specifically, the vasoreactivity can be determined based on the threshold interval in which each of the voltage difference and the maximum voltage is located.
[0103] For example, consider a case where vascular response ability is determined by combining the number of positives and the ratio of voltage difference to maximum voltage. Four number threshold intervals, from the first to the fourth, are predefined for the number of positives, with reference priority decreasing accordingly. For example, the first to fourth number threshold intervals are 7 or greater, 5 or greater but less than 7, 3 or greater but less than 5, and 1 or greater but less than 3, respectively. If the ratio of voltage difference to maximum voltage is within the first ratio threshold interval and the number of positives is within the first number threshold interval, the vascular response ability is annotated as being at the first level. If the ratio of voltage difference to maximum voltage is within the second ratio threshold interval and the number of positives is within the first number threshold interval, the vascular response ability is annotated as being at the second level. This is not a complete list. It can be seen that if the ratio of voltage difference to maximum voltage has a high reference priority in a certain ratio threshold interval, but the number of positives has a low reference priority in a certain number threshold interval, the attention priority of the vascular response ability can be appropriately lowered.
[0104] In some embodiments, as can be seen from the method of determining vasoreactivity based on the reference indexes provided in one or more embodiments of the present application, a more accurate vasoreactivity can be obtained by combining the ratio of voltage difference to maximum voltage and the number of positives with at least one of the target amplitude decrease relative value and the target area of the waveform decrease region. For specific combination methods and corresponding methods of determining vasoreactivity, please refer to the descriptions in the corresponding embodiments, and detailed descriptions will be omitted here. For example, if the number of positives is within a first number threshold interval, the area of the target waveform decrease region is within a first area threshold interval, and the target amplitude decrease relative value is within a first width threshold interval and / or the ratio of voltage difference to maximum voltage is within a first ratio threshold interval, the vasoreactivity is annotated as a first level having the highest attention priority.
[0105] As shown in FIG. 5 , in some embodiments, a high frequency QRS waveform data analysis method is provided, which specifically includes: Step S502 of acquiring high frequency QRS waveform data corresponding to the exercise electrocardiogram data; Step S504: selecting high frequency QRS waveform data within the first time period as first reference waveform data; Step S506: determining a first reference point based on a point in the first reference waveform data where the root mean square voltage is smallest, and determining a second reference point based on a point earlier in time than the first reference point where the root mean square voltage is largest; a step S508 of determining a first amplitude reduction relative value based on the root mean square voltages of the first and second reference points; a step S510 of determining a maximum voltage based on the high frequency QRS waveform data; Step S512: selecting a point having the largest root mean square voltage from the high frequency QRS waveform data within the second time period as a third reference point, and selecting a point having the smallest root mean square voltage that is later in time than the third reference point as a fourth reference point; a step S514 of determining a voltage difference based on the root mean square voltages of the third and fourth reference points, respectively; Step S516 of selecting a fifth reference point that satisfies the screening condition and is later in time than the first reference point from the first reference waveform data; a step S518 of determining a first amplitude increase relative value based on the root mean square voltages of the first and fifth reference points; a step S520 of screening high-frequency QRS waveform data in which the first amplitude decrease relative value is equal to or greater than a first predetermined threshold and the first amplitude increase relative value is equal to or greater than a second predetermined threshold; a step S522 of selecting second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range from high frequency QRS waveform data within a second time period; Step S524: selecting a point with the largest root mean square voltage from the high frequency QRS waveform data within the third time period as a sixth reference point; a step S526 of determining a second amplitude increase relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point; a step S528 of screening high-frequency QRS waveform data in which the first amplitude decrease relative value is equal to or greater than a first predetermined threshold, the second amplitude increase relative value is less than a third predetermined threshold, and the duration of the second reference waveform data is equal to or greater than a predetermined time threshold; a step S530 of screening high-frequency QRS waveform data in which a first amplitude decrease relative value is equal to or greater than a first predetermined threshold, a second amplitude increase relative value is equal to or greater than a third predetermined threshold, and the duration of the second reference waveform data is equal to or greater than a predetermined time threshold; Step S532: determining a reference index based on the screened high-frequency QRS waveform data, the reference index including a ratio between a voltage difference and a maximum voltage, and further including at least one of a target amplitude decrease relative value and a target waveform decrease region area, and determining vascular response ability based on the reference index; a step S534 of determining a positive number based on high frequency QRS waveform data corresponding to the exercise electrocardiogram data; Step S536 of determining vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the screened high frequency QRS waveform data and the number of positives; The method includes a step S538 of determining a reference index based on the screened high-frequency QRS waveform data, the reference index including the ratio of the voltage difference to the maximum voltage and further including at least one of the target amplitude decrease relative value and the area of the target waveform decrease region, and determining vascular response ability based on the number of positives.
[0106] In the above embodiments, the waveform type of each high frequency QRS waveform data is analyzed to determine whether it is a predetermined type (e.g., type 1, type 2, or type 3), and the high frequency QRS waveform data whose waveform types are type 1, type 2, and type 3 are screened to determine a reference index including at least one of the ratio of voltage difference to maximum voltage, the target amplitude reduction relative value, and the area of the target waveform reduction region, which is used to determine vascular response ability based on the reference index, or the number of positives is determined based on the high frequency QRS waveform data corresponding to the exercise electrocardiogram data, and vascular response ability is determined based on the number of positives and the ratio of voltage difference to maximum voltage (or the reference index), and the vascular response ability is obtained by accurately evaluating it using a non-invasive method and provided for physician reference, thereby making it easier for physicians to accurately recognize the subject's cardiac health status in conjunction with clinical symptoms, etc.
[0107] 1 and 5 are sequentially displayed as indicated by the arrows, it should be understood that these steps do not necessarily have to be performed in the order indicated by the arrows. Unless the execution of these steps is explicitly described herein, there are no strict order restrictions, and these steps may be performed in other orders. Furthermore, at least some of the steps in FIGS. 1 and 5 may include multiple steps or multiple stages, and these steps or stages do not necessarily have to be performed simultaneously but may be performed at different times. The order in which these steps or stages are performed does not necessarily have to be sequential, and they may be rotated or alternated with other steps or at least some of the steps or stages within other steps.
[0108] In some embodiments, as shown in FIG. 6, a high frequency QRS waveform data analysis device 600 is provided, which includes an acquisition module 601, a selection module 602, an index determination module 603, and a screening module 604, wherein: The acquisition module 601 is used to acquire high frequency QRS waveform data corresponding to the exercise electrocardiogram data; The selection module 602 is used to select high-frequency QRS waveform data within a first time period as first reference waveform data; The selection module 602 is further used to determine a first reference point based on a point selected from the first reference waveform data where the root-mean-square voltage is smallest, and to determine a second reference point based on a point earlier in time than the first reference point where the root-mean-square voltage is largest; The index determination module 603 is used to determine a first amplitude reduction relative value based on the root mean square voltages of the first reference point and the second reference point, respectively; The index determination module 603 is further used to determine a maximum voltage based on the high frequency QRS waveform data; the selection module 602 is used to select a point in the high frequency QRS waveform data within the second time period that has the largest root mean square voltage as a third reference point, and a point that is later in time than the third reference point and has the smallest root mean square voltage as a fourth reference point; The index determination module 603 is further used to determine a voltage difference based on the root mean square voltages of the third and fourth reference points, respectively; The screening module 604 is used to screen for high frequency QRS waveform data having a first amplitude drop relative value equal to or greater than a first predetermined threshold; The index determination module 603 is used to determine the vascular response potential based on the ratio of the voltage difference and the maximum voltage corresponding to the screened high frequency QRS waveform data.
[0109] In some embodiments, the screening module 604 is further used to screen high-frequency QRS waveform data whose corresponding waveform types are a first type, a second type, and a third type, wherein the waveform characteristics of the first type include a first amplitude drop relative value equal to or greater than a first predetermined threshold and a first amplitude rise relative value equal to or greater than a second predetermined threshold, the waveform characteristics of the second type include a first amplitude drop relative value equal to or greater than the first predetermined threshold, a second amplitude rise relative value less than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold, and the waveform characteristics of the third type include a first amplitude drop relative value equal to or greater than the first predetermined threshold, a second amplitude rise relative value equal to or greater than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold, and the selection module The selection module 602 is further used to select a fifth reference point from the first reference waveform data that satisfies the screening condition and is later in time than the first reference point. The index determination module 603 is further used to determine a first amplitude rise relative value based on the root mean square voltages of the first and fifth reference points. The selection module 602 is further used to select second reference waveform data from high frequency QRS waveform data within a second time period, the second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range, and to select a point from high frequency QRS waveform data within a third time period that has the largest root mean square voltage as the sixth reference point. The index determination module 603 is further used to determine a second amplitude rise relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point.
[0110] In some embodiments, the screening module 604 is further used to screen high frequency QRS waveform data whose corresponding waveform type is a first type, or to screen high frequency QRS waveform data whose corresponding waveform type is a second type, or to screen high frequency QRS waveform data whose corresponding waveform type is a third type, wherein the waveform characteristics of the first type include a first amplitude drop relative value equal to or greater than a first predetermined threshold and a first amplitude rise relative value equal to or greater than a second predetermined threshold; the waveform characteristics of the second type include a first amplitude drop relative value equal to or greater than the first predetermined threshold, a second amplitude rise relative value less than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold; the waveform characteristics of the third type include a first amplitude drop relative value equal to or greater than the first predetermined threshold and a second amplitude rise relative value equal to or greater than a third predetermined threshold; , the duration of the second reference waveform data is equal to or greater than a predetermined time threshold; the selection module 602 is further used to select a fifth reference point from the first reference waveform data that satisfies the screening condition and is later in time than the first reference point; the index determination module 603 is further used to determine a first amplitude rise relative value based on the root mean square voltages of the first and fifth reference points; the selection module 602 is further used to select second reference waveform data from high frequency QRS waveform data within a second time period whose amplitude fluctuation range is equal to or less than a predetermined fluctuation range, and to select a point from high frequency QRS waveform data within a third time period whose root mean square voltage is the largest as the sixth reference point; and the index determination module 603 is further used to determine a second amplitude rise relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point.
[0111] In some embodiments, the index determination module 603 further determines a reference index based on the screened high-frequency QRS waveform data, the reference index including a ratio between a voltage difference and a maximum voltage, and further including at least one of a target amplitude reduction relative value and an area of a target waveform reduction region, and is used to determine vascular response ability based on the reference index.
[0112] In some embodiments, the index determination module 603 further determines the number of positives based on high-frequency QRS waveform data corresponding to the exercise electrocardiogram data, or determines the vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the screened high-frequency QRS waveform data and the number of positives, or determines a reference index based on the screened high-frequency QRS waveform data, and is used to determine the vascular response ability based on the reference index, which includes the ratio of the voltage difference to the maximum voltage and further includes at least one of the target amplitude decrease relative value and the area of the target waveform decrease region, and the number of positives.
[0113] Regarding limitations on the high-frequency QRS waveform data analysis device, please refer to the limitations on the high-frequency QRS waveform data analysis method described above, and detailed description thereof will be omitted here. Each module in the high-frequency QRS waveform data analysis device described above may be implemented in whole or in part by software, hardware, or a combination thereof. Each module described above may be embedded in the processor of a computer device in the form of hardware, may be independent, or may be stored in the memory of a computer device in the form of software, thereby making it easy for the processor to call up and perform the operations corresponding to each module described above.
[0114] In some embodiments, a computer device is provided, which may be a server, and its internal structure is shown in FIG. 7. The computer device includes a processor, a memory, and a network interface connected via a system bus. The processor of the computer device is used to provide computing and control capabilities. The memory of the computer device includes a non-volatile storage medium and an internal memory. The non-volatile storage medium stores an operating system, computer-readable instructions, and a database. The internal memory provides an environment for the operating system and the computer-readable instructions in the non-volatile storage medium to execute. The database of the computer device is used to store high-frequency QRS waveform data corresponding to exercise electrocardiogram data. The network interface of the computer device is used to connect and communicate with an external terminal via a network. The computer-readable instructions are executed by the processor to implement the high-frequency QRS waveform data analysis method.
[0115] Those skilled in the art will understand that the structure shown in FIG. 7 is merely a block diagram of some structures related to the solution of the present application, and does not limit the computer device to which the solution of the present application is applied; a specific computer device may include more or fewer components than those shown, or may combine some components, or may have a different arrangement of components.
[0116] In some embodiments, a computing device is further provided that includes a memory having computer-readable instructions stored thereon and a processor, the computer-readable instructions, when executed by the processor, causing the steps of each method embodiment to be performed.
[0117] In some embodiments, a computer-readable storage medium is provided having computer-readable instructions stored thereon that, when executed by a processor, perform the steps of each method embodiment.
[0118] Those skilled in the art will understand that implementing all or part of the method steps of the above embodiments can be achieved by instructing associated hardware with computer-readable instructions, which may be stored in a non-volatile computer-readable storage medium, and that the execution of the computer-readable instructions may comprise the steps of each of the above method embodiments. Any references to memory, storage devices, databases, or other media used in the embodiments provided herein may include at least one of non-volatile and volatile memory. Non-volatile memory may include read-only memory (ROM), magnetic tape, floppy disks, flash memory, optical memory, etc. Volatile memory may include random access memory (RAM) or external cache memory. By way of example and not limitation, RAM may be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM).
[0119] The technical features of the above embodiments can be combined in any combination. For the sake of brevity, not all possible combinations of the technical features in the above embodiments are described. However, as long as there is no contradiction in the combination of these technical features, they should be considered within the scope described in this specification.
[0120] The above examples merely illustrate some embodiments of the present application and are described in more detail, but they should not be understood as limiting the scope of the claims. Those skilled in the art will understand that some modifications and improvements can be made without departing from the concept of the present application, and all of them fall within the scope of protection of the present application. Therefore, the scope of protection of the present invention should be governed by the scope of the accompanying claims.
Claims
1. An operating method of a high frequency QRS waveform data analysis device, the high frequency QRS waveform data analysis device including an acquisition module, a selection module, an index determination module and a screening module, the operating method of the high frequency QRS waveform data analysis device comprising: The acquisition module acquires high-frequency QRS waveform data corresponding to the exercise electrocardiogram data, including the time and root-mean-square voltage of each point on the high-frequency QRS waveform curve, and the high-frequency QRS waveform data represents the time-varying trend of the root-mean-square voltage of the high-frequency component of the QRS complex of the subject during the entire detection process of the exercise electrocardiogram. Using a window function, the exercise electrocardiogram data is divided into multiple electrocardiogram data subsets according to the time series and a predetermined stride length, and corresponding high-frequency QRS waveform data is acquired based on the root-mean-square voltage and the time corresponding to each electrocardiogram data subset. The selection module selects high frequency QRS waveform data within a first time period, which is composed of a certain period before exercise and a certain period during exercise, or a certain period during exercise, as first reference waveform data; determines a first reference point based on a point in the first reference waveform data where the root mean square voltage is smallest; determines a second reference point based on a point earlier in time than the first reference point and where the root mean square voltage is largest; selects a point from the high frequency QRS waveform data within a second time period where the root mean square voltage is largest, as a third reference point; and determines a point later in time than the third reference point and where the root mean square voltage is smallest, as a fourth reference point; determining a first amplitude reduction relative value based on the root mean square voltages of the first and second reference points by the index determination module, determining a maximum voltage based on the high frequency QRS waveform data, determining a voltage difference based on the root mean square voltages of the third and fourth reference points, and determining a reference index based on the screened high frequency QRS waveform data, wherein the reference index is for reflecting vascular response ability and includes a ratio of the voltage difference to the maximum voltage corresponding to the screened high frequency QRS waveform data; screening, by the screening module, high-frequency QRS waveform data whose first amplitude decrease relative value is equal to or greater than a first predetermined threshold; Including, the step of determining a maximum voltage based on the high frequency QRS waveform data includes a step of obtaining a maximum value of a root mean square voltage from the high frequency QRS waveform data as a target voltage, and determining a maximum voltage based on the target voltage. A method of operation of a high frequency QRS waveform data analyzer.
2. The step of screening high frequency QRS waveform data having a first amplitude decrease relative value equal to or greater than a first predetermined threshold includes: screening high frequency QRS waveform data having corresponding waveform types of a first type, a second type, and a third type; the first type of waveform characteristic includes a first amplitude decrease relative value equal to or greater than a first predetermined threshold and a first amplitude increase relative value equal to or greater than a second predetermined threshold; the second type of waveform feature includes a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value less than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold; the third type of waveform feature includes a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value equal to or greater than the third predetermined threshold, and a duration of the second reference waveform data equal to or greater than the predetermined time threshold; The step of determining the first amplitude increase relative value includes: selecting a fifth reference point from the first reference waveform data that satisfies a screening condition and is later in time than the first reference point; determining a first amplitude rise relative value based on the root mean square voltages of the first and fifth reference points, The step of determining the second amplitude increase relative value includes: selecting second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range from high frequency QRS waveform data within the second time period; selecting a point having the largest root mean square voltage from the high frequency QRS waveform data within the third time period as a sixth reference point; determining a second amplitude increase relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point, 2. A method for operating a high frequency QRS waveform data analysis device according to claim 1.
3. The step of screening high frequency QRS waveform data having a first amplitude decrease relative value equal to or greater than a first predetermined threshold includes: screening high frequency QRS waveform data whose corresponding waveform type is a first type, or screening high frequency QRS waveform data whose corresponding waveform type is a second type, or screening high frequency QRS waveform data whose corresponding waveform type is a third type; the first type of waveform characteristic includes a first amplitude decrease relative value equal to or greater than a first predetermined threshold and a first amplitude increase relative value equal to or greater than a second predetermined threshold; the second type of waveform feature includes a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value less than a third predetermined threshold, and a duration of the second reference waveform data equal to or greater than a predetermined time threshold; the third type of waveform feature includes a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value equal to or greater than the third predetermined threshold, and a duration of the second reference waveform data equal to or greater than the predetermined time threshold; The step of determining the first amplitude increase relative value includes: selecting a fifth reference point from the first reference waveform data that satisfies a screening condition and is later in time than the first reference point; determining a first amplitude rise relative value based on the root mean square voltages of the first and fifth reference points, The step of determining the second amplitude increase relative value includes: selecting second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range from high frequency QRS waveform data within the second time period; selecting a point having the largest root mean square voltage from the high frequency QRS waveform data within the third time period as a sixth reference point; determining a second amplitude increase relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point, 2. A method for operating a high frequency QRS waveform data analysis device according to claim 1.
4. The reference index further includes at least one of a target amplitude reduction relative value and a target waveform reduction area.
2. A method for operating a high frequency QRS waveform data analysis device according to claim 1.
5. determining a positive number based on high frequency QRS waveform data corresponding to the exercise electrocardiogram data; The reference index and the positive number are used in combination to reflect vascular response ability; The reference index includes a ratio between the voltage difference and the maximum voltage, or the reference index includes a ratio between the voltage difference and the maximum voltage and further includes at least one of a target amplitude reduction relative value and a target area of a waveform reduction region.
2. A method for operating a high frequency QRS waveform data analysis device according to claim 1.
6. an acquisition module for acquiring high frequency QRS waveform data corresponding to the exercise electrocardiogram data, the high frequency QRS waveform data including the time and root mean square voltage of each point in the high frequency QRS waveform curve; a selection module for selecting high frequency QRS waveform data within a first time period consisting of a certain period before exercise and a certain period during exercise, or consisting of a certain period during exercise, as first reference waveform data; The selection module is further configured to determine a first reference point based on a point in the first reference waveform data where the root mean square voltage is smallest, and to determine a second reference point based on a point that is earlier in time than the first reference point and where the root mean square voltage is largest; an index determination module for determining a first amplitude reduction relative value based on the root mean square voltages of the first and second reference points; the index determination module is further adapted to determine a maximum voltage based on the high frequency QRS waveform data; the selection module is used to select a point having the largest root mean square voltage from the high frequency QRS waveform data within the second time period as a third reference point, and a point having the smallest root mean square voltage that is later in time than the third reference point as a fourth reference point; the index determination module is further adapted to determine a voltage difference based on the root mean square voltages of the third and fourth reference points, respectively; a screening module for screening high frequency QRS waveform data having a first amplitude decrease relative value equal to or greater than a first predetermined threshold; an index determination module for determining vascular response capability based on a ratio of a voltage difference corresponding to the screened high frequency QRS waveform data to a maximum voltage; The high-frequency QRS waveform data represents a time-varying trend of the root mean square voltage of the high-frequency component of the QRS complex of the subject during the entire detection process of the exercise electrocardiogram, and is obtained by dividing the exercise electrocardiogram data into a plurality of electrocardiogram data subsets according to a time series and a predetermined stride length using a window function, and based on the root mean square voltage and the corresponding time corresponding to each electrocardiogram data subset; The index determination module is further configured to obtain a maximum value of root mean square voltage from the high frequency QRS waveform data as a target voltage, and determine a maximum voltage based on the target voltage. High frequency QRS waveform data analysis device.
7. The screening module is further used to screen high-frequency QRS waveform data whose corresponding waveform types are first, second, and third types, wherein the waveform characteristics of the first type include a first amplitude decrease relative value equal to or greater than a first predetermined threshold and a first amplitude increase relative value equal to or greater than a second predetermined threshold; the waveform characteristics of the second type include a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value less than a third predetermined threshold, and a duration of second reference waveform data equal to or greater than a predetermined time threshold; and the waveform characteristics of the third type include a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value equal to or greater than the third predetermined threshold, and a duration of second reference waveform data equal to or greater than the predetermined time threshold. the selection module is further adapted to select a fifth reference point from the first reference waveform data that satisfies a screening condition and is later in time than the first reference point; The index determination module is further adapted to determine a first amplitude rise relative value based on the root mean square voltages of the first reference point and the fifth reference point, respectively; The selection module is further used to select second reference waveform data from the high frequency QRS waveform data within the second time period, the second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range, and to select a point from the high frequency QRS waveform data within a third time period having the largest root mean square voltage, as a sixth reference point; The index determination module is further configured to determine a second amplitude rise relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point.
7. The high frequency QRS waveform data analysis device according to claim 6.
8. The screening module is further used to screen high frequency QRS waveform data whose corresponding waveform type is a first type, or to screen high frequency QRS waveform data whose corresponding waveform type is a second type, or to screen high frequency QRS waveform data whose corresponding waveform type is a third type, wherein the waveform characteristics of the first type include a first amplitude decrease relative value equal to or greater than a first predetermined threshold and a first amplitude increase relative value equal to or greater than a second predetermined threshold, the waveform characteristics of the second type include a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value less than a third predetermined threshold, and a duration of second reference waveform data equal to or greater than a predetermined time threshold, and the waveform characteristics of the third type include a first amplitude decrease relative value equal to or greater than the first predetermined threshold, a second amplitude increase relative value equal to or greater than the third predetermined threshold, and a duration of second reference waveform data equal to or greater than the predetermined time threshold. the selection module is further adapted to select a fifth reference point from the first reference waveform data that satisfies a screening condition and is later in time than the first reference point; The index determination module is further adapted to determine a first amplitude rise relative value based on the root mean square voltages of the first reference point and the fifth reference point, respectively; The selection module is further used to select second reference waveform data from the high frequency QRS waveform data within the second time period, the second reference waveform data having an amplitude fluctuation range equal to or less than a predetermined fluctuation range, and to select a point from the high frequency QRS waveform data within a third time period having the largest root mean square voltage, as a sixth reference point; The index determination module is further configured to determine a second amplitude rise relative value based on the root mean square voltages of the end point of the second reference waveform data and the sixth reference point.
7. The high frequency QRS waveform data analysis device according to claim 6.
9. The index determination module further determines a reference index including a ratio between a voltage difference and a maximum voltage based on the screened high-frequency QRS waveform data, and further including at least one of a target amplitude decrease relative value and a target waveform decrease region area, and is used to determine vascular response ability based on the reference index.
9. The high frequency QRS waveform data analysis device according to claim 6.
10. The index determination module further determines the number of positives based on high frequency QRS waveform data corresponding to the exercise electrocardiogram data, or determines vascular response ability based on the ratio of the voltage difference to the maximum voltage corresponding to the screened high frequency QRS waveform data and the number of positives, or determines a reference index based on the screened high frequency QRS waveform data, and the reference index includes the ratio of the voltage difference to the maximum voltage and further includes at least one of a target amplitude decrease relative value and a target area of a waveform decrease region, and is used to determine vascular response ability based on the number of positives.
9. The high frequency QRS waveform data analysis device according to claim 6.
11. A computing device including a memory having computer readable instructions stored thereon, and a processor, the computer readable instructions, when executed by the processor, performing the steps of the method for analyzing high frequency QRS waveform data according to any one of claims 1 to 5.
1. A computer device characterized by:
12. A computer readable storage medium having stored thereon computer readable instructions which, when executed by a processor, perform the steps of the method for analyzing high frequency QRS waveform data according to any one of claims 1 to 5. A computer-readable storage medium comprising:
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