Rehabilitation management method for chronic obstructive pulmonary disease patient

By monitoring and analyzing blood oxygen saturation, heart rate and exercise data of COPD patients, dividing the exercise phase and adjusting the critical threshold, the problem of misjudgment of blood oxygen monitoring in the existing technology is solved, and more accurate monitoring and effective rehabilitation management are achieved.

CN119993465AActive Publication Date: 2025-05-13自贡市第一人民医院
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Patent Information

Application Number
CN202510452662.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-11
Publication Date
2025-05-13
Estimated Expiration
2045-04-11

AI Technical Summary

Technical Problem

In the prior art, when monitoring the blood oxygen saturation of patients with chronic obstructive pulmonary disease (COPD), it is difficult to accurately distinguish temporary blood oxygen decline caused by exercise from worsening of the disease, resulting in misjudgment.

Method used

By continuously monitoring the patient's blood oxygen saturation, heart rate and exercise data, divide the exercise phases, analyze the oxygen drop characterization parameters of each exercise phase, and adjust the critical threshold of blood oxygen saturation based on these parameters to achieve more accurate monitoring.

Benefits of technology

It improves the accuracy and reliability of blood oxygen saturation monitoring, reduces the possibility of misjudgment of the disease, and provides more effective rehabilitation management support.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of medical data processing, and provides a rehabilitation management method for a patient with chronic obstructive pulmonary disease, which comprises the following steps: continuously monitoring and acquiring blood oxygen saturation and heart rate data of the patient within one day, and recording motion data of the patient; dividing to obtain a plurality of motion stages of the patient; analyzing the data fluctuation condition of the blood oxygen saturation in two adjacent motion stages of the patient, and determining the oxygen drop characterization parameter of each motion stage of the patient by combining the data of the blood oxygen saturation in the motion stages of the patient and the change trend of the data; obtaining the contrast uniformity of the patient in each motion stage; adjusting to obtain a critical threshold value of the oxyhemoglobin saturation of the patient in each movement stage; and performing real-time monitoring on the oxyhemoglobin saturation based on the critical threshold value of each movement stage of the patient, and assisting the management of the rehabilitation process of the patient. The invention aims to solve the problem of misjudgment caused by blood oxygen change in a motion state in a blood oxygen monitoring process of a patient.
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Description

Technical Field

[0001] The present invention relates to the technical field of medical data processing, and in particular to a rehabilitation management method for patients with chronic obstructive pulmonary disease. Background Art

[0002] Chronic obstructive pulmonary disease (COPD) is a chronic respiratory disease characterized by persistent airflow limitation. Its main symptoms include dyspnea, cough, sputum production, and decreased activity tolerance. The blood oxygen saturation (SpO2) of COPD patients is one of the important indicators reflecting the severity of the disease and the recovery status. SpO2 monitoring can directly assess the oxygenation status of patients. Hypoxemia (SpO2 < 90%) is an important predictor of acute exacerbation and poor prognosis in COPD patients. In recent years, with the development of wearable devices and intelligent algorithms, SpO2 monitoring technology has been significantly improved. Devices such as smart bracelets and smart watches can monitor SpO2 in real time and continuously, and combine heart rate, exercise data and environmental information to correct interference features through machine learning algorithms to improve monitoring accuracy.

[0003] In the existing technology, the traditional SpO2 monitoring method mainly relies on pulse oximeters. The equipment is usually only used under static conditions and lacks the ability to correct interference factors. For COPD patients, SpO2 fluctuations in daily activities (such as temporary decreases in blood oxygen caused by exercise) may be misjudged as worsening of the disease. The existing method of judging the patient's blood oxygen saturation usually measures abnormal conditions based on thresholds, which makes it difficult to correct the impact of exercise on the patient's SpO2, is prone to misjudgment, and cannot accurately reflect the patient's true blood oxygen status; therefore, by analyzing the changing trend of the patient's SpO2 data at different stages of exercise, and measuring its convergence and divergence, the critical threshold is dynamically and accurately determined, thereby improving the accuracy and reliability of monitoring and providing strong support for the patient's rehabilitation management. Summary of the invention

[0004] The present invention provides a rehabilitation management method for patients with chronic obstructive pulmonary disease to solve the problem of misjudgment caused by changes in blood oxygen in the patient's exercise state during the existing blood oxygen monitoring process. The technical solution adopted is as follows: The present invention proposes a rehabilitation management method for patients with chronic obstructive pulmonary disease, which comprises the following steps: Continuously monitor and obtain the patient's blood oxygen saturation and heart rate data throughout the day, and record the patient's exercise data, which includes the patient's exercise type and exercise speed; According to the patient's exercise data, combined with the time changes of the patient's heart rate data, the patient's exercise stages are divided; the data fluctuations of the patient's blood oxygen saturation in two adjacent exercise stages are analyzed, and the oxygen drop characterization parameters of the patient in each exercise stage are determined by combining the blood oxygen saturation data and its change trend in the patient's exercise stage; Analyze the differences in oxygen drop characterization parameters between exercise stages of patients with similar exercise intensity, and combine the time distribution of the exercise stages to obtain the control uniformity of each exercise stage of the patient; combine the change trend of oxygen drop characterization parameters of the patient's exercise stages at the same exercise intensity and the blood oxygen saturation in each exercise stage to adjust the critical threshold of the patient's blood oxygen saturation in each exercise stage; Real-time monitoring of blood oxygen saturation is performed based on the critical thresholds at each stage of patient movement to assist in the management of the patient's rehabilitation process.

[0005] Optionally, the method of dividing the patient's exercise stages based on the patient's exercise data and combining the time change of the patient's heart rate data includes the following specific methods: According to the patient's exercise type and speed, as well as the patient's heart rate data differences, the patient's exercise intensity at each moment is obtained; The patient's exercise intensity at each moment is sorted in chronological order to obtain the patient's exercise intensity sequence, and the mutation point in the patient's exercise intensity sequence is obtained; The patient's exercise intensity sequence is divided into several segments through mutation points, and each segment serves as a movement stage of the patient.

[0006] Optionally, the patient's exercise intensity at each moment is obtained by: Collect the patient's heart rate data for all types of exercise at rest and in awake state, and calculate the average value as the patient's resting heart rate; obtain the patient's maximum heart rate data that can be achieved at the corresponding age and body condition; Based on the difference between the patient's heart rate data at any time and the resting heart rate, the proportion of the difference between the maximum heart rate data and the resting heart rate, combined with the product of the patient's exercise type and exercise speed at that moment, the patient's exercise intensity at that moment is obtained.

[0007] Optionally, the oxygen drop characterization parameter of the patient at each exercise stage is specifically obtained by: Obtain the blood oxygen saturation at each moment in the corresponding time period of any exercise stage and calculate the standard deviation as the blood oxygen saturation standard deviation of the exercise stage; For any two adjacent exercise stages, if the standard deviation of the blood oxygen saturation in the previous exercise stage is greater than the standard deviation of the blood oxygen saturation in the next exercise stage, the previous exercise stage has a baseline effect on the change of blood oxygen saturation in the next exercise stage; Obtain the blood oxygen saturation at each moment in the corresponding time period of any exercise stage, and arrange them in time sequence to obtain a blood oxygen saturation sequence of the exercise stage; obtain extreme value points of the blood oxygen saturation sequence, and obtain a number of descending segments between the maximum value points and the minimum value points as a number of blood oxygen descending segments of the exercise stage; Based on the standard deviation of blood oxygen saturation during exercise, the blood oxygen saturation sequence and the blood oxygen drop segment therein, as well as the adjacent previous exercise stage and the baseline influence, the oxygen drop characterization parameters of the patient in each exercise stage are obtained.

[0008] Optionally, the method of obtaining the oxygen drop characterization parameters of the patient at each exercise stage includes: in, Indicates that the patient The oxygen drop characterization parameters for each exercise stage, Indicates The first blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, Indicates The mean value of all blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, Indicates Standard deviation of blood oxygen saturation during each exercise phase; Indicates The extreme difference of all blood oxygen saturation in the blood oxygen saturation sequence of the previous exercise stage in the exercise stage; Indicates The number of blood oxygen drop segments in each exercise stage, Indicates In the first stage of movement The extreme difference of blood oxygen saturation in the blood oxygen drop segment, Indicates In the first stage of movement The length of time that blood oxygen decreases.

[0009] Optionally, the analysis of the differences in oxygen drop characterization parameters between exercise stages of patients with similar exercise intensities, combined with the time distribution of the exercise stages, to obtain the control uniformity of each exercise stage of the patient includes the following specific methods: Determine the difference between the exercise intensity of the patient in each exercise stage, obtain a number of similar exercise stages in each exercise stage, and obtain the time interval between any exercise stage and any similar exercise stage; According to the absolute value of the difference between the oxygen reduction characterization parameters of any movement stage of the patient and their similar movement stages, and using the inverse proportional value of the time interval between the movement stage and the corresponding similar movement stage as a weight, the control uniformity of the movement stage is weighted to obtain the control uniformity, and the control uniformity is negatively correlated with the absolute value of the difference between the oxygen reduction characterization parameters.

[0010] Optionally, the method of determining the difference between the exercise intensity of the patient in each exercise stage to obtain a number of similar exercise stages in each exercise stage includes the following specific methods: For any exercise stage, the average of all exercise intensities in the exercise stage is obtained as the exercise intensity of the exercise stage; Several motion stages whose absolute value of the difference between the motion intensity and the motion intensity of the motion stage is less than or equal to the motion similarity threshold are regarded as similar motion stages of the motion stage.

[0011] Optionally, the adjustment obtains the critical threshold of the patient's blood oxygen saturation at each exercise stage, including the specific method of: For the oxygen drop characterization parameters of any exercise stage and all similar exercise stages, a straight line fitting is performed according to the time series relationship, and the slope of the fitting line is obtained as the degree of change of the oxygen drop characterization parameters of similar exercise stages of the exercise stage; No. Discreteness of blood oxygen saturation data in each exercise stage The calculation method is: in, Indicates The control uniformity of the movement phase, Indicates The oxygen drop characterization parameters for each exercise stage, Indicates The average of the absolute values ​​of the differences between the oxygen drop characterization parameters of a sports stage and its similar sports stages, Indicates The degree of change of oxygen drop characterization parameters in similar exercise stages of each exercise stage; According to the discreteness of the blood oxygen saturation data and its blood oxygen saturation sequence during the exercise stage, the lower limit of the normal range of blood oxygen saturation is adjusted to obtain the critical threshold of the blood oxygen saturation in the corresponding exercise stage.

[0012] Optionally, the adjusting the lower limit of the normal range of blood oxygen saturation to obtain a critical threshold of blood oxygen saturation corresponding to the exercise stage includes the following specific methods: in, Indicates the lower limit of the normal range of blood oxygen saturation. Indicates The mean value of all blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, Indicates The discreteness of blood oxygen saturation data in each exercise stage, represents the absolute value function.

[0013] Optionally, the real-time monitoring of blood oxygen saturation based on the critical threshold value at each movement stage of the patient includes the following specific methods: For the current exercise stage, if the patient's blood oxygen saturation is higher than or equal to the critical threshold, and the oxygen drop characterization parameter of the current exercise stage is less than or equal to the average of the oxygen drop characterization parameters of all previous exercise stages, the patient's blood oxygen saturation is normal; If the patient's blood oxygen saturation is higher than the critical threshold but lower than the critical threshold, or the oxygen drop characterization parameter of this exercise stage is greater than the average of the oxygen drop characterization parameters of all previous exercise stages, the patient's blood oxygen saturation is abnormal.

[0014] The beneficial effects of the present invention are as follows: based on the patient's exercise data and the heart rate data at the corresponding moment, the present invention determines the patient's exercise intensity at each moment and divides the exercise stage accordingly, providing a basis for subsequently dynamically obtaining the critical threshold of blood oxygen saturation based on the exercise stage; at the same time, the influence of the decrease and recovery of blood oxygen saturation under different exercise states on the adjacent exercise stage is considered, so as to correct the analysis process of the downward trend of blood oxygen saturation in the exercise stage, and obtain oxygen drop characterization parameters that more intuitively reflect the data fluctuation and downward trend of blood oxygen saturation in a movement stage; on the basis of the oxygen drop characterization parameters of the exercise stage, by analyzing the oxygen drop characterization parameters of the current exercise stage with the oxygen drop characterization parameters of other exercise stages under similar exercise intensity, the control uniformity is obtained to reflect the patient's current physical rehabilitation state, and the patient's body adaptability to different exercise stages and the dynamic compensation of lung function are quantified in real time, and the critical threshold of each exercise stage is adjusted accordingly, so as to ensure that the critical threshold of different exercise stages can comprehensively consider the patient's rehabilitation status and physical state, and reduce the possibility of misjudgment of abnormal blood oxygen saturation of the patient. BRIEF DESCRIPTION OF THE DRAWINGS

[0015] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the drawings required for use in the embodiments or the description of the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying creative labor.

[0016] Figure 1 A schematic flow chart of a rehabilitation management method for patients with chronic obstructive pulmonary disease provided by one embodiment of the present invention; Figure 2 This is an example diagram of changes in blood oxygen saturation under different exercise conditions during the day; Figure 3 This is an example of blood oxygen saturation fluctuations during exercise stages. DETAILED DESCRIPTION

[0017] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.

[0018] See also Figure 1 , which shows a flow chart of a rehabilitation management method for patients with chronic obstructive pulmonary disease provided by an embodiment of the present invention, the method comprising the following steps: Step S001, continuously monitor and obtain the patient's blood oxygen saturation and heart rate data for one day, and record the patient's exercise data.

[0019] The purpose of this embodiment is to evaluate the oxygenation status of patients with chronic obstructive pulmonary disease according to their blood oxygen saturation SpO2 during the rehabilitation stage, so as to reflect the patient's condition and rehabilitation to a certain extent; the fluctuation of blood oxygen saturation SpO2 during daily exercise may lead to misdiagnosis of the condition, so it is necessary to adjust the dynamic threshold value for judgment by analyzing the change trend of blood oxygen saturation SpO2 during daily exercise, so it is necessary to obtain the patient's blood oxygen saturation SpO2 data first; the patient wears a smart bracelet to monitor the data of daily activities in real time, and through intelligent data analysis and feedback mechanism, long-term and dynamic monitoring data support is achieved for the precise management and rehabilitation of COPD patients.

[0020] Specifically, the smart bracelet worn by the patient integrates multiple sensors, including optical sensors (red light and infrared light), heart rate sensors, accelerometers and gyroscopes. Photoplethysmography (PPG technology) emits light of a specific wavelength (usually green light) through an optical sensor, detects changes in the intensity of reflected light after the light passes through the skin and tissue, and thus calculates the patient's blood oxygen saturation SpO2 data; an accelerometer and a gyroscope are used to record the patient's daily activity motion data, including exercise type and exercise speed (resting, walking, running and other exercise types), and a heart rate sensor is used to monitor heart rate data; the acquisition frequency in this embodiment is set to be collected once every 1 minute, and a schematic diagram of the changes in blood oxygen saturation and exercise type within a day is shown in the figure. Figure 2As shown, the smart bracelet automatically divides the exercise types into 4 types and marks them, including rest marked as 0, light exercise marked as 1, moderate exercise marked as 2, and intense exercise marked as 3; the patient's blood oxygen saturation, heart rate data and exercise data at several times a day are obtained.

[0021] It should be noted that in order to ensure that the collected data accurately and completely covers the patient's real-time condition, the collected data needs to be preprocessed, including data cleaning to remove abnormally large or abnormally small data caused by sensor failure or signal interference; for missing data, linear interpolation or spline interpolation and other methods are used to supplement it to ensure the continuity of the data; the preprocessing method and process are well-known technologies and will not be repeated in this embodiment.

[0022] Step S002: according to the patient's exercise data and combined with the time changes of the patient's heart rate data, the patient is divided into several exercise stages; the data fluctuation of the patient's blood oxygen saturation in two adjacent exercise stages is analyzed, and the oxygen drop characterization parameters of each exercise stage of the patient are determined by combining the blood oxygen saturation data and its change trend in the patient's exercise stage.

[0023] Preferably, in one embodiment of the present invention, the patient's exercise stages are divided according to the patient's exercise data and combined with the time change of the patient's heart rate data, and the specific method includes: It should be noted that the patient's body will have different movement states in daily life. Daily activities may cause the patient's SpO2 fluctuations (temporary decrease in blood oxygen caused by exercise), which may be misdiagnosed as worsening of the disease. Therefore, it is necessary to quantify the patient's exercise intensity in daily activities. The blood oxygen saturation data of the patient at different exercise intensities has different standards for reflecting the patient's oxygenation status. This can correct the impact of exercise on blood oxygen saturation and restore the patient's true oxygenation level at rest. This correction can not only avoid misdiagnosis of the disease, but also provide a scientific basis for the formulation of personalized rehabilitation plans, thereby more accurately reflecting the patient's condition and rehabilitation effect.

[0024] It should be further explained that when evaluating the patient's exercise intensity, different exercise types will have different basic intensities. The speed of exercise also directly affects the intensity of exercise, and heart rate is a key indicator that reflects the body's stress level during exercise. It is necessary to consider the changes in the patient's exercise speed at each moment and the changes in heart rate under different exercise states on the basis of the exercise type, comprehensively quantify the patient's exercise intensity at each moment, and use this to divide the exercise interpretation.

[0025] Specifically, the patient's exercise data at each moment is monitored by a smart bracelet, including the type of exercise and exercise speed at each moment, and the patient's heart rate data at each moment is obtained; the patient's heart rate data for all exercise types in a resting and awake state is counted, and the average value is calculated as the patient's resting heart rate; the patient's maximum heart rate data that can be achieved at the corresponding age and body state is obtained through a smart watch (the patient is still in a normal state and has not fallen ill. The maximum heart rate data); then the patient's The intensity of exercise at that moment The calculation method is: in, Indicates that the patient The type of movement at that moment, Indicates that the patient The speed of movement at a moment, Indicates that the patient Heart rate data at each moment, represents the patient's resting heart rate, Indicates the patient's maximum heart rate data.

[0026] It should be noted that the exercise type and exercise speed are used to reflect the exercise state at the corresponding moment. Different exercise types have different basic intensities. Combined with the exercise speed, the basic intensity based on the exercise type is further amplified or reduced, so that the calculation result can more accurately reflect the change of actual exercise intensity with speed. The exercise type in the resting state is marked as 0, and the corresponding final exercise intensity is also 0; and by quantifying the ratio of the current heart rate to the resting heart rate and the maximum heart rate, it reflects the degree of utilization of the patient's current heart rate compared to the maximum heart rate in the normal state of the body. The closer it is to the maximum heart rate, the higher the exercise intensity.

[0027] Furthermore, the patient's exercise intensity at each moment is sorted in chronological order to obtain the patient's exercise intensity sequence. The mutation point in the patient's exercise intensity sequence is obtained through the Bayesian change point detection algorithm. The patient's exercise intensity sequence is divided into several segments through the mutation point. Each segment serves as a movement stage of the patient. Each movement stage contains a section of exercise intensity sorted by the patient in chronological order, wherein the mutation point serves as the first exercise intensity in each movement stage. The Bayesian change point detection algorithm is a well-known technology and will not be described in detail in this embodiment.

[0028] Preferably, in one embodiment of the present invention, the data fluctuation of the blood oxygen saturation in two adjacent exercise stages of the patient is analyzed, and the oxygen drop characterization parameter of each exercise stage of the patient is determined by combining the data of the blood oxygen saturation in the exercise stage of the patient and its change trend, including the specific method of: It should be noted that due to the characteristics of COPD patients' body function recovery and adaptation, and the fact that exercise stages do not exist in isolation, the previous exercise stage will inevitably have a baseline impact on the current exercise stage; patients' fatigue recovery and oxygenation status adjustment after exercise all require time, so before entering a new exercise stage, it is necessary to analyze the data fluctuations of the blood oxygen saturation in the previous exercise stage, so as to intuitively understand the patient's body's response to the previous exercise, and then reasonably adjust the current exercise intensity and rest time to ensure the patient's exercise safety and rehabilitation effect. For example, if the SpO2 drops significantly after the previous stage of exercise and the recovery is poor, it will cause errors in the SpO2 in the next exercise stage.

[0029] It is further necessary to explain that if Figure 3 As shown, exercise stage 2 should be an exercise stage with relatively low exercise intensity, and under the influence of exercise stage 1, the early stage of exercise stage 2 includes the SpO2 recovery part of the previous exercise stage. When this situation exists, when performing characteristic analysis of reduced blood oxygen saturation based on all data of exercise stage 2, there will be a certain deviation, that is, before the patient enters a certain exercise stage, the fluctuation of the SpO2 data of the previous exercise stage adjacent to it will have a baseline impact on the current exercise stage.

[0030] Specifically, for any exercise stage, the blood oxygen saturation at each moment in the corresponding time period of the exercise stage is obtained and the standard deviation is calculated as the standard deviation of the blood oxygen saturation of the exercise stage; for any two adjacent exercise stages, if the standard deviation of the blood oxygen saturation of the previous exercise stage is greater than the standard deviation of the blood oxygen saturation of the next exercise stage, then the previous exercise stage has a baseline impact on the change of blood oxygen saturation in the next exercise stage.

[0031] Further, the Take the movement stage as an example, and obtain the The blood oxygen saturation at each moment in the corresponding time period of each exercise stage is arranged in chronological order to obtain the first The blood oxygen saturation sequence of the exercise stage; the extreme point of the blood oxygen saturation sequence is obtained, and the descending segment between the maximum point and the minimum point is obtained, that is, a sequence of the blood oxygen saturation decreasing over time, which is recorded as the first In the exercise stage, there are several blood oxygen drop segments, then Oxygen drop characterization parameters for each exercise phase The calculation method is: in, Indicates The first blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, Indicates The mean value of all blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, Indicates Standard deviation of blood oxygen saturation during each exercise phase; Indicates The range of all blood oxygen saturation in the blood oxygen saturation sequence of the previous exercise stage in the adjacent exercise stage, that is, the range of change of blood oxygen saturation in the previous exercise stage is reflected by the range; Indicates The number of blood oxygen drop segments in each exercise stage, Indicates In the first stage of movement The extreme difference of blood oxygen saturation in the blood oxygen drop segment, Indicates In the first stage of movement The length of time for the blood oxygen decline segment; in particular, when the previous exercise stage of any exercise stage does not affect the change of its blood oxygen saturation, or it is the first exercise stage (that is, there is no other exercise stage before), it is directly The results are used as the oxygen drop characterization parameters for the corresponding exercise stage.

[0032] It should be noted that first, it is necessary to judge whether there is an influence based on the standard deviation of blood oxygen saturation in two adjacent exercise stages, that is, to avoid misjudging the baseline influence brought by the previous stage when the previous exercise stage is stable and the next exercise stage decreases; the larger the standard deviation of blood oxygen saturation in the next exercise stage, and the larger the amplitude of change of blood oxygen saturation in the blood oxygen decrease segment (the larger the range) and the shorter the time length, the more obvious the blood oxygen fluctuation in the next exercise stage and the more rapid downward trend there is, and the larger the oxygen drop characterization parameter; when the previous exercise stage affects the next exercise stage, the next exercise stage is usually in the recovery process of the previous exercise stage. The difference between the first blood oxygen saturation of the next exercise stage and the mean blood oxygen saturation of the next exercise stage is measured, and its proportion in the change amplitude of the previous exercise stage is quantified, so as to reflect the effect of the recovery process of the previous exercise stage on the lowering of the blood oxygen saturation in the next exercise stage, thereby removing the baseline influence.

[0033] At this point, based on the patient's exercise data and heart rate data at the corresponding moment, the patient's exercise intensity at each moment is determined and divided into exercise stages, providing a basis for the subsequent dynamic acquisition of the critical threshold of blood oxygen saturation based on the exercise stage; at the same time, the impact of the decrease and recovery of blood oxygen saturation under different exercise states on adjacent exercise stages is considered to correct the analysis process of the downward trend of blood oxygen saturation in the exercise stage, and obtain oxygen drop characterization parameters that more intuitively reflect the data fluctuations and downward trends of blood oxygen saturation within an exercise stage.

[0034] Step S003, analyzing the differences in oxygen drop characterization parameters between exercise stages at similar exercise intensities of the patient, and combining the time distribution of the exercise stages to obtain the control uniformity of each exercise stage of the patient; combining the change trend of the oxygen drop characterization parameters of the patient's exercise stages at the same exercise intensity, and the blood oxygen saturation in each exercise stage, to adjust the critical threshold of the patient's blood oxygen saturation in each exercise stage.

[0035] It should be noted that, under normal circumstances, within a reasonable range of exercise intensity, the human respiratory and circulatory systems can maintain blood oxygen supply by increasing respiratory rate, blood output, etc. Under normal conditions, SpO2 data during exercise will usually remain within the normal range (95%-100%), without significant decrease or frequent fluctuations; different exercise intensities will have different effects on the cardiopulmonary function of COPD patients, which will lead to fluctuations in SpO2, and the degree of this fluctuation (i.e., data discreteness) can reflect the patient's body's adaptation to different exercise intensities and the compensatory capacity of lung function, and then dynamically adjust the critical thresholds of different exercise stages based on data discreteness; and data discreteness can be reflected by the similarity of SpO2 data within the exercise stages of the same exercise intensity; thereby dynamically adjusting the critical thresholds for different exercise stages to reflect the patient's true blood oxygenation status, and to a certain extent, explain the progression of chronic obstructive pulmonary disease and the rehabilitation effect.

[0036] It should be further explained that the oxygen drop characterization parameters of the patient at a certain exercise stage can reflect the patient's adaptation and compensatory capacity of lung function at the current exercise stage; however, setting a critical threshold for a certain exercise stage needs to be combined with the patient's basic condition. Therefore, for the current patient, the blood oxygen saturation sequences of all exercise stages with the same exercise intensity in the historical data are selected, and the similarity of the change trends between the sequences is analyzed to measure the discreteness of the patient's blood oxygen saturation at this exercise stage compared with other exercise stages with the same exercise intensity.

[0037] It should be further explained that when the exercise intensity is similar in different exercise stages, the patient's physical reaction is similar; by comparing the fluctuation trend and amplitude of the SpO2 data in the exercise stages under similar exercise intensity, it is helpful to summarize the approximate feedback of the patient's body under the same exercise intensity, and provide a more accurate basis for the subsequent formulation of rehabilitation strategies; for example, during low-intensity exercise, if the current exercise stage of low-intensity exercise in historical data shows a similar SpO2 data change trend, with a slow decline and small fluctuations, then the smaller the discreteness of the current exercise stage, the more stable the body state; conversely, if the SpO2 data change trend in the current exercise stage is relatively different from the other change trends, the higher the discreteness, that is, the greater the impact on the critical threshold; if the discreteness is small, the critical threshold can be relatively loose; if the discreteness is large, a more stringent critical threshold needs to be set to ensure that patients can undergo rehabilitation training under the premise of safety.

[0038] Preferably, in one embodiment of the present invention, the difference in oxygen drop characterization parameters between exercise stages of patients with similar exercise intensity is analyzed, and the time distribution of the exercise stages is combined to obtain the control uniformity of each exercise stage of the patient, including the specific method of: For any movement stage, the mean of all movement intensities in the movement stage is obtained as the movement intensity of the movement stage; a movement similarity threshold is preset, and the movement similarity threshold in this embodiment is described as 1, and several movement stages whose absolute value of the difference between the movement intensity and the movement intensity of the movement stage is less than or equal to the movement similarity threshold are taken as similar movement stages of the movement stage; based on the last moment of the time period corresponding to the similar movement stage and the first moment of the time period corresponding to the movement stage, the time interval between the similar movement stage and the movement stage is obtained; it should be noted that the critical threshold acquisition process of the movement stage is all real-time acquisition, so the similar movement stages are all movement stages before the movement stage.

[0039] Further, Control uniformity of each movement phase The calculation method is: in, Indicates The number of similar motion phases of a motion phase, Indicates The movement phase and its The absolute value of the difference between the oxygen drop characterization parameters of similar exercise stages, Indicates The movement phase and its The time interval between similar motion phases, Indicates the total duration of the patient's recovery phase (the estimated duration of the patient's recovery process, which can be directly obtained).

[0040] It should be noted that, in similar exercise stages, the smaller the difference between the oxygen drop characterization parameters, the smaller the discreteness of the blood oxygen saturation change trend in this exercise stage compared with the historical exercise stages of similar exercise intensity, the higher the reference of the historical exercise stage, the more stable the body state, the higher the control uniformity, and the blood oxygen saturation in this exercise stage can better reflect the patient's true blood oxygen state; at the same time, the weights of similar exercise stages are constructed according to the time interval. The smaller the time interval, the more effective the comparison of oxygen drop characterization parameters in similar exercise stages; conversely, the smaller the control uniformity, the greater the discreteness, the more unstable the body state, and further quantification of the discreteness of SpO2 data is required to set the critical threshold.

[0041] It should be further explained that when the control uniformity is low, it indicates that the SpO2 data of the current exercise stage has a significantly larger fluctuation compared with similar exercise stages in the historical data. It is usually necessary to narrow the critical threshold range of the SpO2 data, that is, set it more strictly; for example, if it is found that the SpO2 data fluctuation of the current exercise stage is significantly greater than that of similar exercise stages in the historical data, then the critical threshold may need to be set to a value closer to the lower limit of the normal range than before, so as to promptly detect and deal with possible physical discomfort or abnormal conditions. And as the recovery time goes on, at the same exercise intensity, different exercise stages show obvious regularities. The later the exercise stage, that is, the longer the recovery time, the more stable the SpO2 data is, and the smaller the decline is. Therefore, for the first exercise stage, if the oxygen drop characterization parameter of all similar exercise stages in the historical data If the changing trend is gradually increasing, it reflects that the patient's current recovery state is good, the physical function is gradually improving, and the critical threshold range can be appropriately increased.

[0042] Preferably, in one embodiment of the present invention, the critical threshold of the patient's blood oxygen saturation at each exercise stage is adjusted based on the change trend of the oxygen drop characterization parameter at the exercise stage of the patient at the same exercise intensity and the blood oxygen saturation data at each exercise stage, and the specific method includes: It should be noted that for patients with chronic obstructive pulmonary disease, their lung function is impaired, and the changes in SpO2 during exercise are relatively more significant; when the intensity of exercise increases, their SpO2 may decrease more easily, and their tolerance to hypoxia may be worse. Even a relatively small increase in exercise intensity may cause a significant decrease in SpO2. It is necessary to determine different critical thresholds to measure the patient's status at a specific exercise stage in the rehabilitation process.

[0043] Specifically, a coordinate system is constructed with the horizontal axis as time and the vertical axis as oxygen drop characterization parameters. The oxygen drop characterization parameters of the movement stage and all the oxygen drop characterization parameters of similar movement stages are mapped to the coordinate system to obtain several data points, among which the first moment of the corresponding time period of each movement stage is used for mapping, and all data points are fitted by the least squares method, and the slope of the fitted line is obtained as the first The degree of change of oxygen drop characterization parameters in similar exercise stages of each exercise stage.

[0044] Further, the lower limit of the normal range of blood oxygen saturation is obtained, which is set to 95% in this embodiment. Critical thresholds of blood oxygen saturation during exercise The calculation method is: in, Indicates The discreteness of blood oxygen saturation data in each exercise stage, Indicates The control uniformity of the movement phase, Indicates The oxygen drop characterization parameters for each exercise stage, Indicates The average of the absolute values ​​of the differences between the oxygen drop characterization parameters of a sports stage and its similar sports stages, Indicates The degree of change of oxygen drop characterization parameters in similar exercise stages of each exercise stage; Indicates the lower limit of the normal range of blood oxygen saturation. Indicates The mean value of all blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, represents the absolute value function; Represents a linear normalization function, and the normalized object is the Movement phase and its previous movement phase .

[0045] It should be noted that when The larger the oxygen drop characterization parameter of a movement stage, and the greater the difference with the oxygen drop characterization parameter of all similar movement stages in the historical data, the greater the degree of abnormality in the movement stage, the more unstable the physical state is, the greater the data discreteness is, and it is necessary to appropriately expand the critical threshold range to avoid misjudgment caused by excessive data fluctuations; and when the oxygen drop characterization parameter changes more greatly, the patient's recovery is better at this time, and vice versa, the data discreteness is reduced, and the critical threshold is closer to the lower limit of the normal range, that is, the larger the critical threshold is.

[0046] It should be noted that in order to ensure patient safety, the critical threshold must not be lower than 90% based on the lower limit of human blood oxygen saturation. That is, if the critical threshold obtained in any stage of exercise is less than 90%, the critical threshold is set to 90%.

[0047] At this point, on the basis of the oxygen drop characterization parameters of the exercise stage, by analyzing the oxygen drop characterization parameters of the current exercise stage with the oxygen drop characterization parameters of other exercise stages under similar exercise intensity, the control uniformity is obtained to reflect the patient's current physical recovery status, and the patient's body's adaptability to different exercise stages and the dynamic compensation of lung function are quantified in real time. The critical thresholds of each exercise stage are adjusted accordingly to ensure that the critical thresholds of different exercise stages can comprehensively consider the patient's recovery status and physical condition, and reduce the possibility of misjudgment of abnormal blood oxygen saturation in the patient.

[0048] Step S004: Real-time monitoring of blood oxygen saturation is performed based on the critical thresholds of each movement stage of the patient to assist in the management of the patient's rehabilitation process.

[0049] For the current exercise stage, the critical threshold of the blood oxygen saturation of the exercise stage has been obtained in the above process. If the patient's blood oxygen saturation is higher than or equal to the critical threshold, and the oxygen drop characterization parameter of the exercise stage is less than or equal to the average of the oxygen drop characterization parameters of all previous exercise stages (the fluctuation of blood oxygen saturation is within a reasonable range), the patient's blood oxygen saturation is normal, indicating that the patient is in good physical condition in the current exercise stage, the exercise intensity and rehabilitation plan are relatively appropriate, and the rehabilitation training continues according to the established plan; if the patient's blood oxygen saturation is higher than the critical threshold but lower than the critical threshold, or the oxygen drop characterization parameter of the exercise stage is greater than the average of the oxygen drop characterization parameters of all previous exercise stages, the patient's blood oxygen saturation is abnormal, and the patient may not tolerate the current exercise intensity well, which exceeds the patient's current physical tolerance. At this time, the bracelet prompts the patient to appropriately reduce the exercise intensity and take a short rest to relieve physical stress, thereby realizing intelligent management of the rehabilitation process of patients with chronic obstructive pulmonary disease.

[0050] It should be noted that blood oxygen saturation has certain limitations. It can only reflect the oxygen content in the blood, and cannot fully reflect other aspects of lung function, such as ventilation function, airway resistance, etc.; therefore, when evaluating the recovery progress of COPD patients, it is also necessary to combine the patient's symptoms (such as cough, sputum, degree of dyspnea, etc.), lung function test results (such as FEV1, FEV1 / FVC, etc.), activity endurance and other relevant examination indicators for comprehensive judgment, so as to provide doctors with more accurate diagnostic basis.

[0051] At this point, this embodiment is completed.

[0052] The above description is only a preferred embodiment of the present invention and is not intended to limit the present invention. Any modifications, equivalent substitutions, improvements, etc. made within the principles of the present invention should be included in the protection scope of the present invention.

Claims

1. A rehabilitation management method for patients with chronic obstructive pulmonary disease, characterized in that: The method comprises the following steps: Continuously monitor and obtain the patient's blood oxygen saturation and heart rate data throughout the day, and record the patient's exercise data, which includes the patient's exercise type and exercise speed; According to the patient's exercise data, combined with the time changes of the patient's heart rate data, the patient's exercise stages are divided; the data fluctuations of the patient's blood oxygen saturation in two adjacent exercise stages are analyzed, and the oxygen drop characterization parameters of the patient in each exercise stage are determined by combining the blood oxygen saturation data and its change trend in the patient's exercise stage; Analyze the differences in oxygen drop characterization parameters between exercise stages of patients with similar exercise intensity, and combine the time distribution of the exercise stages to obtain the control uniformity of each exercise stage of the patient; combine the change trend of oxygen drop characterization parameters of the patient's exercise stages at the same exercise intensity and the blood oxygen saturation in each exercise stage to adjust the critical threshold of the patient's blood oxygen saturation in each exercise stage; Real-time monitoring of blood oxygen saturation is performed based on the critical thresholds at each stage of patient movement to assist in the management of the patient's rehabilitation process.

2. The rehabilitation management method for patients with chronic obstructive pulmonary disease according to claim 1, characterized in that: The method of dividing the patient's exercise stages according to the patient's exercise data and combining the time change of the patient's heart rate data includes: According to the patient's exercise type and speed, as well as the patient's heart rate data differences, the patient's exercise intensity at each moment is obtained; The patient's exercise intensity at each moment is sorted in chronological order to obtain the patient's exercise intensity sequence, and the mutation point in the patient's exercise intensity sequence is obtained; The patient's exercise intensity sequence is divided into several segments through mutation points, and each segment serves as a movement stage of the patient.

3. The rehabilitation management method for patients with chronic obstructive pulmonary disease according to claim 2, characterized in that: The specific method for obtaining the patient's exercise intensity at each moment is as follows: Collect the patient's heart rate data for all types of exercise at rest and in awake state, and calculate the average value as the patient's resting heart rate; obtain the patient's maximum heart rate data that can be achieved at the corresponding age and body condition; Based on the difference between the patient's heart rate data at any time and the resting heart rate, the proportion of the difference between the maximum heart rate data and the resting heart rate, combined with the product of the patient's exercise type and exercise speed at that moment, the patient's exercise intensity at that moment is obtained.

4. The rehabilitation management method for patients with chronic obstructive pulmonary disease according to claim 1, characterized in that: The oxygen drop characterization parameters of the patient at each exercise stage are specifically obtained by: Obtain the blood oxygen saturation at each moment in the corresponding time period of any exercise stage and calculate the standard deviation as the blood oxygen saturation standard deviation of the exercise stage; For any two adjacent exercise stages, if the standard deviation of the blood oxygen saturation in the previous exercise stage is greater than the standard deviation of the blood oxygen saturation in the next exercise stage, the previous exercise stage has a baseline effect on the change of blood oxygen saturation in the next exercise stage; Obtain the blood oxygen saturation at each moment in the corresponding time period of any exercise stage, and arrange them in time sequence to obtain a blood oxygen saturation sequence of the exercise stage; obtain extreme value points of the blood oxygen saturation sequence, and obtain a number of descending segments between the maximum value points and the minimum value points as a number of blood oxygen descending segments of the exercise stage; Based on the standard deviation of blood oxygen saturation during exercise, the blood oxygen saturation sequence and the blood oxygen drop segment therein, as well as the adjacent previous exercise stage and the baseline influence, the oxygen drop characterization parameters of the patient in each exercise stage are obtained.

5. The method for rehabilitation management of patients with chronic obstructive pulmonary disease according to claim 4, characterized in that: The specific method of obtaining the oxygen drop characterization parameters of the patient at each exercise stage includes: in, Indicates that the patient The oxygen drop characterization parameters of each exercise stage, Indicates The first blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, Indicates The mean value of all blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, Indicates Standard deviation of blood oxygen saturation during each exercise phase; Indicates The extreme difference of all blood oxygen saturation in the blood oxygen saturation sequence of the previous exercise stage in the exercise stage; Indicates The number of blood oxygen drop segments in each exercise stage, Indicates In the first stage of movement The extreme difference of blood oxygen saturation in the blood oxygen drop segment, Indicates In the first stage of movement The length of time that blood oxygen decreases.

6. The rehabilitation management method for patients with chronic obstructive pulmonary disease according to claim 1, characterized in that: The analysis of the differences in oxygen drop characterization parameters between exercise stages of patients with similar exercise intensity, combined with the time distribution of the exercise stages, to obtain the control uniformity of each exercise stage of the patient, includes the following specific methods: Determine the difference between the exercise intensity of the patient in each exercise stage, obtain a number of similar exercise stages in each exercise stage, and obtain the time interval between any exercise stage and any similar exercise stage; According to the absolute value of the difference between the oxygen reduction characterization parameters of any movement stage of the patient and their similar movement stages, and using the inverse proportional value of the time interval between the movement stage and the corresponding similar movement stage as a weight, the control uniformity of the movement stage is weighted to obtain the control uniformity, and the control uniformity is negatively correlated with the absolute value of the difference between the oxygen reduction characterization parameters.

7. A rehabilitation management method for patients with chronic obstructive pulmonary disease according to claim 6, characterized in that: The method of determining the difference between the exercise intensity of the patient in each exercise stage and obtaining a number of similar exercise stages in each exercise stage includes the following specific methods: For any exercise stage, the average of all exercise intensities in the exercise stage is obtained as the exercise intensity of the exercise stage; Several motion stages whose absolute value of the difference between the motion intensity and the motion intensity of the motion stage is less than or equal to the motion similarity threshold are regarded as similar motion stages of the motion stage.

8. The rehabilitation management method for patients with chronic obstructive pulmonary disease according to claim 4, characterized in that: The adjustment obtains the critical threshold of the patient's blood oxygen saturation at each exercise stage, including the specific method of: For the oxygen drop characterization parameters of any exercise stage and all similar exercise stages, a straight line fitting is performed according to the time series relationship, and the slope of the fitting line is obtained as the degree of change of the oxygen drop characterization parameters of similar exercise stages of the exercise stage; No. Discreteness of blood oxygen saturation data in each exercise stage The calculation method is: in, Indicates The control uniformity of the movement phase, Indicates The oxygen drop characterization parameters of each exercise stage, Indicates The average of the absolute values ​​of the differences between the oxygen drop characterization parameters of a sports stage and its similar sports stages, Indicates The degree of change of oxygen drop characterization parameters in similar exercise stages of each exercise stage; According to the discreteness of the blood oxygen saturation data and its blood oxygen saturation sequence during the exercise stage, the lower limit of the normal range of blood oxygen saturation is adjusted to obtain the critical threshold of blood oxygen saturation in the corresponding exercise stage.

9. The rehabilitation management method for patients with chronic obstructive pulmonary disease according to claim 8, characterized in that: The method of adjusting the lower limit of the normal range of blood oxygen saturation to obtain the critical threshold of blood oxygen saturation corresponding to the exercise stage includes: in, Indicates the lower limit of the normal range of blood oxygen saturation. Indicates The mean value of all blood oxygen saturation in the blood oxygen saturation sequence of the exercise stage, Indicates The discreteness of blood oxygen saturation data in each exercise stage, represents the absolute value function.

10. The rehabilitation management method for patients with chronic obstructive pulmonary disease according to claim 1, characterized in that: The real-time monitoring of blood oxygen saturation based on the critical thresholds of each movement stage of the patient includes the following specific methods: For the current exercise stage, if the patient's blood oxygen saturation is higher than or equal to the critical threshold, and the oxygen drop characterization parameter of the current exercise stage is less than or equal to the average of the oxygen drop characterization parameters of all previous exercise stages, the patient's blood oxygen saturation is normal; If the patient's blood oxygen saturation is higher than the critical threshold but lower than the critical threshold, or the oxygen drop characterization parameter of this exercise stage is greater than the average of the oxygen drop characterization parameters of all previous exercise stages, the patient's blood oxygen saturation is abnormal.

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