A multi-mode high-low oxygen training method and device, electronic equipment and medium

By employing a multi-mode hyper-hypoxia training method that automatically adjusts training parameters, the system solves the problems of single-mode and complex operation of existing equipment, enabling personalized and efficient hyper-hypoxia training and improving user experience and safety.

CN118526772BActive Publication Date: 2026-07-31ANYANG XIANGYU MEDICAL EQUIP
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
ANYANG XIANGYU MEDICAL EQUIP
Filing Date
2024-05-16
Publication Date
2026-07-31

AI Technical Summary

Technical Problem

Existing high and low oxygen training equipment can only perform training at a single oxygen concentration. The training parameters need to be set manually, which is complicated and not professional enough, and cannot meet the personalized needs of different users.

Method used

This invention provides a multi-mode hyperoxygenation and hypoxia training method. By acquiring the user-selected training mode and physiological parameters, it automatically adjusts the training parameters and controls the operation of the hyperoxygenation and hypoxia training equipment. It supports hypoxia mode, normal mode, hyperoxygen mode, and hyperoxygenation and hypoxia mode, and realizes automatic adjustment of oxygen concentration and time.

Benefits of technology

It expands the application scenarios of high and low oxygen training equipment, simplifies the operation process, ensures personalized adaptation of training parameters, avoids user setting errors, and improves training effectiveness and safety.

✦ Generated by Eureka AI based on patent content.

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Abstract

This application provides a multi-mode hyperoxia training method, apparatus, electronic device, and medium. The hyperoxia training method, applied to a hyperoxia training device, includes: acquiring a target user's selection instruction for multiple preset training modes of the hyperoxia training device, and determining a target training mode; acquiring the target physiological parameters of the target user for the target training mode, and adjusting the training parameters corresponding to the target user in the target training mode based on the target physiological parameters, to obtain the target training parameters of the target user in the target training mode; and controlling the hyperoxia training device to operate according to the target training parameters, so that the target user can train in a matching target training mode. The method allows for more preset training modes and convenient setting of the training parameters corresponding to the target user in the target training mode.
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Description

Technical Field

[0001] This application relates to the technical field of breathing training, and more specifically, to a multi-modal hyper-hypoxia training method, device, electronic device, and medium. Background Technology

[0002] Hypoxic training can improve athletic performance and work capacity, and aid in weight loss for certain professionals (such as athletes, pilots, astronauts, divers, high-altitude workers, and fitness enthusiasts). It can also help ordinary people adapt to high-altitude environments. Conversely, a hyperoxic environment can alleviate post-exercise symptoms and altitude sickness. Therefore, hyperoxic / hypoxic training equipment is needed to train individuals to achieve their training goals or alleviate symptoms. However, current hyperoxic / hypoxic training equipment can only perform either hyperoxic or hypoxic training, and its training parameters require manual setting, making operation cumbersome and lacking in professionalism. Summary of the Invention

[0003] In view of this, the purpose of this application is to provide a multi-mode hyper-hypoxia training method, device, electronic device and medium, which has multiple training modes and can conveniently set the training parameters corresponding to the target user in the target training mode.

[0004] This application provides a multi-mode hyperoxia training method, applied to a hyperoxia training device, wherein the hyperoxia training method includes:

[0005] The system obtains the target user's selection instructions for various preset training modes of the high and low oxygen training equipment and determines the target training mode; wherein, the training parameters corresponding to different training modes include at least one oxygen concentration and the output duration corresponding to that oxygen concentration;

[0006] Obtain the target physiological parameters of the target user for the target training mode, and adjust the training parameters of the target user in the target training mode based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode;

[0007] Based on the target training parameters, the high and low oxygen training equipment is controlled to operate according to the target training parameters so that the target user can train in a matching target training mode.

[0008] In some embodiments, the multi-mode hyperoxia training method includes the following training modes: hypoxia mode, normal mode, hyperoxia mode, and hyper-hypoxia mode; the hypoxia mode, normal mode, and hyperoxia mode correspond to different oxygen concentration ranges.

[0009] In some embodiments, the multi-mode hyperoxia training method, obtaining the target physiological parameters of the target user for the target training mode includes:

[0010] The response determines the target training mode and the test training parameters in the normal mode; wherein, the test training parameters include multiple test oxygen concentrations determined according to the target training mode;

[0011] The high and low oxygen training equipment is controlled to enter normal mode before entering the target training mode, and runs for a preset preparation time according to the test training parameters;

[0012] Physiological parameters of the target user under various test oxygen concentrations in the normal mode are collected to serve as target physiological parameters for the target user in the target training mode.

[0013] In some embodiments, the multi-mode hyperoxia training method involves adjusting the training parameters of the target user in the target training mode based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode; including:

[0014] Based on the target physiological parameters and pre-configured training constraints, the training parameters corresponding to the target training mode are obtained, and the target training parameters of the target user in the target training mode are obtained.

[0015] The constraints are determined based on at least one of the following: the target user's training objectives, the target user's historical training data, or the target user's training prescription.

[0016] In some embodiments, the multi-mode hyperoxia training method, the oxygen concentration among the target training parameters of the hypoxia mode, hyperoxia mode, and normal mode includes at least one target oxygen concentration within the target oxygen concentration range corresponding to the training mode and the ambient oxygen concentration; the target training parameters of the hyperoxia mode include at least one set of high and low oxygen concentrations, the set of high and low oxygen concentrations including: a high oxygen concentration within the oxygen concentration range corresponding to the hyperoxia mode and a low oxygen concentration within the oxygen concentration range corresponding to the hypooxia mode;

[0017] Based on the target training parameters, the method further includes controlling the hyperoxia training equipment to operate according to the target training parameters, and the method also includes:

[0018] For the hypoxia mode, hyperxia mode, and normal mode, the hyperxia training equipment is controlled to operate intermittently according to the target oxygen concentration and ambient oxygen concentration of the target training parameters;

[0019] For the high and low oxygen mode, the high and low oxygen training equipment is controlled to operate intermittently according to the high oxygen concentration and low oxygen concentration in the target training parameters.

[0020] In some embodiments, the multi-mode hyperoxia training method, after controlling the hyperoxia training device to operate according to the target training parameters so that the target user trains in a matching target training mode, the method further includes:

[0021] When the preset training stop condition is met, the high and low oxygen training equipment is controlled to switch from the target training mode to the normal mode, and the transition training parameters corresponding to the target training mode in the normal mode are determined.

[0022] The hyperoxia training equipment is controlled to operate in normal mode according to transitional training parameters;

[0023] The preset training stop conditions include: receiving a stop training instruction, receiving a mode switching instruction, reaching a preset training duration, and detecting that the target user's physiological parameters meet the preset stop conditions.

[0024] In some embodiments, in the multi-mode hyperoxia training method, obtaining the target user's selection instructions for multiple preset training modes of the hyperoxia training device and determining the target training mode includes:

[0025] In response to the target user's selection of various preset training modes displayed on the graphical user interface of the hyper-hypoxic training equipment, generate a selection command for the training mode.

[0026] Based on the selection instructions for the training mode, the target training mode is determined.

[0027] In some embodiments, a multi-mode hyperoxia training device is also provided, applied to a hyperoxia training equipment, the hyperoxia training device comprising:

[0028] The determination module is used to obtain the selection instructions of the target user for multiple preset training modes of the high and low oxygen training equipment, and determine the target training mode; wherein, the training parameters corresponding to different training modes include at least one oxygen concentration and the output duration corresponding to that oxygen concentration;

[0029] The adjustment module is used to obtain the target physiological parameters of the target user for the target training mode, and adjust the training parameters of the target user in the target training mode based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode.

[0030] The control module is used to control the hyperoxia training equipment to operate according to the target training parameters, so that the target user can train in a matching target training mode.

[0031] In some embodiments, an electronic device is also provided, including: a processor, a memory, and a bus, wherein the memory stores machine-readable instructions executable by the processor, and when the electronic device is running, the processor communicates with the memory via the bus, and when the machine-readable instructions are executed by the processor, the steps of the multi-mode hyper-hypoxia training method are performed.

[0032] In some embodiments, a computer-readable storage medium is also provided, on which a computer program is stored, which, when executed by a processor, performs the steps of the multi-mode hyper-hypoxia training method.

[0033] This application provides a method, apparatus, electronic device, and medium for multi-mode hyperoxia training. The multi-mode hyperoxia training method is applied to a hyperoxia training device. First, it obtains the target user's selection instructions for multiple preset training modes on the hyperoxia training device, determining the target training mode. Different training modes correspond to different training parameters, including at least one oxygen concentration and the output duration corresponding to that oxygen concentration. Then, it obtains the target user's target physiological parameters for the target training mode and adjusts the training parameters corresponding to the target training mode based on these parameters to obtain the target user's target training parameters for that mode. Finally, based on the... The target training parameters control the hyperoxia training equipment to operate according to the target training parameters, so that the target user can train in a matching target training mode. In this way, firstly, users can choose the target training mode they need from multiple training modes, rather than just hyperoxia training, which expands the application scenarios of hyperoxia training equipment and facilitates user operation. Secondly, it can automatically set the training parameters corresponding to the target user in the target training mode, without the need for manual setting by the user. This further simplifies user operation. Moreover, the set training parameters are more targeted, more suitable for the user, and more reasonable, preventing user errors or setting unsuitable training parameters that could cause physical damage. Attached Figure Description

[0034] To more clearly illustrate the technical solutions of the embodiments of this application, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of this application and should not be regarded as a limitation of the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0035] Figure 1 A flowchart of the multi-mode hyper-hypoxia training method described in an embodiment of this application is shown;

[0036] Figure 2A schematic diagram of the graphical user interface of the display screen of the hyper-hypoxia training device is shown;

[0037] Figure 3 A flowchart illustrating the method for obtaining target physiological parameters of a target user for a target training mode, as described in an embodiment of this application, is shown.

[0038] Figure 4 A flowchart of another multimodal hyperoxia training method according to an embodiment of this application is shown;

[0039] Figure 5 A schematic diagram of the structure of the multi-mode hyper-hypoxia training device described in an embodiment of this application is shown;

[0040] Figure 6 A schematic diagram of the structure of the electronic device described in an embodiment of this application is shown. Detailed Implementation

[0041] To make the objectives, technical solutions, and advantages of the embodiments of this application clearer, the technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. It should be understood that the accompanying drawings in this application are for illustrative and descriptive purposes only and are not intended to limit the scope of protection of this application. Furthermore, it should be understood that the schematic drawings are not drawn to scale. The flowcharts used in this application illustrate operations implemented according to some embodiments of this application. It should be understood that the operations in the flowcharts may not be implemented in sequence, and steps without logical contextual relationships may be reversed or implemented simultaneously. In addition, those skilled in the art, guided by the content of this application, may add one or more other operations to the flowcharts, or remove one or more operations from the flowcharts.

[0042] Furthermore, the described embodiments are merely some, not all, of the embodiments of this application. The components of the embodiments of this application described and illustrated herein can typically be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of this application provided in the accompanying drawings is not intended to limit the scope of the claimed application, but merely to illustrate selected embodiments of the application. All other embodiments obtained by those skilled in the art based on the embodiments of this application without inventive effort are within the scope of protection of this application.

[0043] It should be noted that the term "comprising" will be used in the embodiments of this application to indicate the presence of the features declared thereafter, but does not exclude the addition of other features.

[0044] Hypoxic training can improve athletic performance and work capacity, and aid in weight loss for certain professionals (such as athletes, pilots, astronauts, divers, high-altitude workers, and fitness enthusiasts). It can also help ordinary people adapt to high-altitude environments. Conversely, a hyperoxic environment can alleviate post-exercise symptoms and altitude sickness. Therefore, hyperoxic / hypoxic training equipment is needed to train individuals to achieve their training goals or alleviate symptoms. However, current hyperoxic / hypoxic training equipment can only perform either hyperoxic or hypoxic training, and its training parameters require manual setting, making operation cumbersome and lacking in professionalism.

[0045] Based on this, this application provides a method, device, electronic device, and medium for multi-mode hyperoxia training. The multi-mode hyperoxia training method is applied to a hyperoxia training device. First, it obtains the target user's selection instructions for multiple preset training modes of the hyperoxia training device to determine the target training mode. Different training modes correspond to different training parameters. These training parameters include at least one oxygen concentration and the output duration corresponding to that oxygen concentration. Then, it obtains the target physiological parameters of the target user for the target training mode and adjusts the training parameters corresponding to the target training mode based on these target physiological parameters to obtain the target training parameters of the target user in the target training mode. Finally, it... Based on the target training parameters, the hyperoxia training device is controlled to operate according to the target training parameters, so that the target user can train in a matching target training mode. In this way, firstly, the user can choose the target training mode they need from multiple training modes, rather than just hyperoxia training, which expands the application scenarios of the hyperoxia training device and facilitates user operation. Secondly, it can automatically set the training parameters corresponding to the target user in the target training mode without the need for manual setting by the user. This further simplifies user operation, and the set training parameters are more targeted, more suitable for the user, and more reasonable, preventing user errors or setting unsuitable training parameters that could cause physical damage.

[0046] Please refer to Figure 1 , Figure 1 A flowchart of the multi-mode hyperoxia training method according to an embodiment of this application is shown. This multi-mode hyperoxia training method is applied to hyperoxia training equipment, such as… Figure 1 As shown, the hyperoxia training method includes the following steps S101-S103:

[0047] S101. Obtain the target user's selection instructions for multiple preset training modes of the high and low oxygen training equipment, and determine the target training mode; wherein, the training parameters corresponding to different training modes; the training parameters include at least one oxygen concentration and the output duration corresponding to that oxygen concentration;

[0048] S102. Obtain the target physiological parameters of the target user for the target training mode, and adjust the training parameters of the target user in the target training mode based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode.

[0049] S103. Based on the target training parameters, control the high and low oxygen training equipment to operate according to the target training parameters so that the target user can train in a matching target training mode.

[0050] In step S101, the target user's selection instruction for multiple preset training modes of the high and low oxygen training device is obtained, and the target training mode is determined; wherein, the training parameters corresponding to different training modes include at least one oxygen concentration and the output duration corresponding to that oxygen concentration.

[0051] The target users are those who need to undergo high and low oxygen training. These users often have different training goals. For example, specialized professionals need a low-oxygen environment to improve their physical fitness; people preparing to go to high-altitude areas need a low-oxygen environment that matches the high-altitude areas for environmental adaptation training; and people in high-altitude areas who experience altitude sickness need a high-oxygen environment to alleviate altitude sickness symptoms.

[0052] Therefore, target users need to choose a training mode that suits their training objectives.

[0053] Specifically, the training modes include: hypoxia mode, normal mode, hyperxia mode, and hyper-hypoxia mode; hypoxia mode, normal mode, and hyperxia mode correspond to different oxygen concentration ranges.

[0054] Specifically, the oxygen concentration range of the low-oxygen mode is 9%-16%, used to simulate the different oxygen concentrations at different altitudes in high-altitude areas (as shown in the figure below); the oxygen concentration range of the normal mode is 17%-24%, used to simulate the oxygen concentration in plains areas under normal conditions. It should be noted that the oxygen concentration in cities is generally 19.5%-21%; the oxygen concentration range of the high-oxygen mode is 25%-36%, used to create an oxygen-rich environment with the oxygen concentration of normal environments. The high-oxygen mode can effectively alleviate altitude sickness symptoms.

[0055] The high and low oxygen training device includes a display screen, on which a graphical user interface is displayed, and the graphical user interface displays a variety of preset training modes.

[0056] For example, the display screen may be a touch screen.

[0057] Based on this, the step of obtaining the target user's selection instructions for multiple preset training modes of the hyperoxia training equipment and determining the target training mode includes:

[0058] In response to the target user's selection of various preset training modes displayed on the graphical user interface of the hyper-hypoxic training equipment, generate a selection command for the training mode.

[0059] Based on the selection instructions for the training mode, the target training mode is determined.

[0060] For details, please refer to Figure 2 , Figure 2 A graphical user interface diagram of the display screen of the hyperoxic / hypoxic training device is shown. The graphical user interface includes a mode selection control, which can be one or more. For example, the mode selection control displays option buttons for four training modes: hypoxia mode, normal mode, hyperoxic mode, and hyperoxic / hypoxic mode. Alternatively, each of the four training modes corresponds to a mode selection control.

[0061] In other words, in this embodiment of the application, in response to the target user's selection of multiple preset training modes displayed in the graphical user interface of the display screen of the high and low oxygen training device, the target training mode is determined. The preset training modes are formulated based on scientific research and the needs of different scenarios, which can ensure the scientific nature and effectiveness of the training. Users can directly select these modes for training without setting training parameters themselves, which can greatly simplify the operation process, achieve their training goals more efficiently, and improve the training effect.

[0062] Different training modes correspond to different training parameters, which are used to control the operation of the hyperoxia training equipment.

[0063] The training parameters include at least one oxygen concentration and the corresponding output duration for that oxygen concentration. In other words, the training parameters are used to control the high and low oxygen training device to output oxygen of the corresponding oxygen concentration within the output duration.

[0064] The training parameters include at least one oxygen concentration, and usually multiple concentrations, because a training mode often requires transition training and interval training.

[0065] While the preset training modes offer convenience, users can still fine-tune them according to their training goals, training stage, and physical condition. For example, they can increase or decrease training time, adjust training intensity, etc., thereby adjusting the training content according to their own actual situation and progress, and better adapting to their needs.

[0066] Based on this, in this embodiment of the application, after determining the user's target training mode, in step S102, the target physiological parameters of the target user for the target training mode are first obtained, and the training parameters corresponding to the target training mode are adjusted based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode.

[0067] Please refer to Figure 3 , Figure 3 This document illustrates a flowchart of a method for obtaining target physiological parameters of a target user for a target training mode, as described in an embodiment of this application. Specifically, obtaining the target physiological parameters of a target user for a target training mode includes the following steps S301-S303:

[0068] S301. Response determines the target training mode and determines the test training parameters in the normal mode; wherein, the test training parameters include multiple test oxygen concentrations determined according to the target training mode;

[0069] S302. Control the high and low oxygen training equipment to enter normal mode before entering the target training mode, and run the preset preparation time according to the test training parameters;

[0070] S303. Collect physiological parameters of the target user under various test oxygen concentrations in the normal mode, so as to serve as the target physiological parameters of the target user for the target training mode.

[0071] In other words, when a target user decides to train in the target training mode, they should first enter the normal mode and train for a period of time in the normal mode according to the test training parameters. The oxygen concentration range in the normal mode is 17%-24%, which can simulate the oxygen concentration in a typical plain environment. Training in the normal mode first serves a transitional purpose. When users go directly from a normal environment to a high- or low-oxygen environment, their bodies need to adapt quickly, which may lead to an increased heart rate and deeper, faster breathing. Furthermore, for some weight loss or mountain climbing training, users also need to exercise in high- or low-oxygen environments, leading to an increased heart rate and deeper, faster breathing. The combination of these two factors makes dizziness and other discomforts more likely. Training in the normal mode first allows the body to be in a higher metabolic level and a better state of adaptation before entering low- or high-oxygen environments. Firstly, the body can adapt to unconventional environments more quickly, reducing discomfort and making training safer. Secondly, by measuring the target user's physiological parameters under normal conditions, the user's real-time physical fitness can be determined. As users train, their physical fitness improves, and sometimes they may engage in other activities that reduce the level of training their bodies can withstand, or they may experience physical discomfort that worsens their physical fitness. Thus, by acquiring the target user's target physiological parameters for the target training mode in normal mode, the training parameters corresponding to the adjusted target training mode can be obtained based on these target physiological parameters, making the target training parameters more targeted.

[0072] The test training parameters include multiple test oxygen concentrations determined according to the target training mode. Specifically, the multiple test oxygen concentrations are matched with the target training mode. For example, the multiple test oxygen concentrations corresponding to the low oxygen mode are a set of test oxygen concentrations from high to low; the multiple test oxygen concentrations corresponding to the high oxygen mode are a set of test oxygen concentrations from low to high; and the multiple test oxygen concentrations corresponding to the high-low oxygen mode are two test oxygen concentrations, one high and one low, within the range of 17%-24%.

[0073] In other words, when the high-low oxygen training device enters a normal mode before entering the target training mode, the normal mode simulates the target training mode within the corresponding range of conventional oxygen concentration. This achieves a smooth transition on the one hand, and makes the collected target physiological parameters of the target user more accurately reflect the user's tolerance to the target training mode on the other hand, while also ensuring user safety.

[0074] Based on this, the high and low oxygen training equipment enters normal mode and, during the preset preparation time according to the test training parameters, sequentially outputs oxygen of various test oxygen concentrations in a preset order.

[0075] It should be noted that the preset preparation time is the pre-set time for the target user to perform pre-training in normal mode before entering the target training mode.

[0076] The training parameters of the target user in the target training mode are adjusted based on the target physiological parameters. The training parameters of the target user in the target training mode can be the training parameters of the target user in the previous training process, or the training parameters formulated by professionals (such as doctors or coaches) for the target user, or general training parameters. The training parameters of different target users in the same training mode can be the same or different.

[0077] Specifically, the target physiological parameters include: blood oxygen saturation, pulse rate, etc.

[0078] In this embodiment of the application, the training parameters corresponding to the target user in the target training mode are adjusted based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode; including:

[0079] Based on the target physiological parameters and pre-configured training constraints, the training parameters corresponding to the target training mode are obtained, and the target training parameters of the target user in the target training mode are obtained.

[0080] The constraints are determined based on at least one of the following: the target user's training objectives, the target user's historical training data, or the target user's training prescription.

[0081] The target user's training goals include, for example, setting a training goal of 30 minutes, or setting a requirement to train for 10 minutes in a low-oxygen environment with an oxygen concentration of 9%; the target user's training prescription, i.e., the training prescription given to the target user by professionals, which restricts the user's minimum oxygen concentration, maximum training time, maximum training time at a certain oxygen concentration, etc.; and the target user's historical training data, such as the last training time, the oxygen concentration at the time of training, etc.

[0082] Based on the target physiological parameters and pre-configured training constraints, the target training parameters corresponding to the target training mode are obtained to obtain the target training parameters for the target user in the target training mode. Specifically, the training parameters corresponding to the target user in the target training mode are first obtained, and then the training parameters corresponding to the target user in the target training mode are adjusted according to the target physiological parameters to obtain the adjusted training parameters. Then, it is determined whether the adjusted training parameters meet the constraints. If not, the adjusted training parameters are adjusted a second time based on the constraints to obtain the target training parameters. If they meet the constraints, the adjusted training parameters are used as the target training parameters.

[0083] The training parameters for the target user in the target training mode are adjusted based on the target physiological parameters. For example, regarding blood oxygen saturation and pulse rate, blood oxygen saturation is an important indicator reflecting the oxygen content in the blood, and its safe range is usually not lower than 90%. Pulse rate reflects the heart rate and the body's metabolic level. If blood oxygen saturation drops too quickly or falls below the safe range, it indicates that the user has a poor tolerance for low oxygen levels. The oxygen concentration in the target training mode should be appropriately increased or the training time shortened to reduce the burden on the body. If the pulse rate is too high, it indicates that the body's metabolic level is too high, which may lead to excessive fatigue or injury. In this case, the training time should be appropriately shortened.

[0084] As an example only, the target physiological parameters of the target user are compared with the standard physiological parameters. Based on the comparison results and the correlation between the comparison results and the oxygen concentration adjustment and training duration adjustment, the oxygen concentration adjustment and training duration adjustment of the target user in the target training mode are determined. The training parameters of the target user in the target training mode are adjusted based on the oxygen concentration adjustment and training duration adjustment.

[0085] For example, the constraints are: the training duration is 25 minutes longer than the target user's last training duration and less than 30 minutes longer than the maximum training duration given in the target user's training prescription; the target user's training goal is to train for 10 minutes at an oxygen concentration of 9%.

[0086] The target user's training parameters in hypoxia mode were 9 minutes at 9% oxygen concentration, 10 minutes at 13% oxygen concentration, and 13 minutes at 16% oxygen concentration. Based on the target physiological parameters, these were adjusted to 8 minutes at 9% oxygen concentration, 10 minutes at 13% oxygen concentration, and 14 minutes at 16% oxygen concentration. The total training time was 32 minutes, which satisfies the constraint of being longer than the target user's previous training time by 25 minutes, but does not satisfy the constraint of being shorter than the maximum training time of 30 minutes given in the target user's training prescription, nor does it satisfy the constraint that the target user's training goal is to train for 10 minutes at 9% oxygen concentration. Based on these constraints, the training parameters were adjusted a second time to 10 minutes at 9% oxygen concentration, 9 minutes at 13% oxygen concentration, and 11 minutes at 16% oxygen concentration.

[0087] In step S103, based on the target training parameters, the hyperoxia training device is controlled to operate according to the target training parameters so that the target user can train in a matching target training mode.

[0088] Specifically, at least one oxygen concentration in the target training parameters of the hypoxia mode, hyperxia mode, and normal mode includes: at least one target oxygen concentration within the target oxygen concentration range corresponding to the training mode and the ambient oxygen concentration; the target training parameters of the hyperxia mode include at least one set of high and low oxygen concentrations, and the set of high and low oxygen concentrations includes: a high oxygen concentration within the oxygen concentration range corresponding to the hyperxia mode and a low oxygen concentration within the oxygen concentration range corresponding to the hypoxia mode.

[0089] Based on the target training parameters, the method further includes controlling the hyperoxia training equipment to operate according to the target training parameters, and the method also includes:

[0090] For the hypoxia mode, hyperxia mode, and normal mode, the hyperxia training equipment is controlled to operate intermittently according to the target oxygen concentration and ambient oxygen concentration of the target training parameters;

[0091] For the high and low oxygen mode, the high and low oxygen training equipment is controlled to operate intermittently according to the high oxygen concentration and low oxygen concentration in the target training parameters.

[0092] In other words, in this embodiment of the application, the specific training process of the hypoxia mode is intermittent hypoxia. Since long-term inhalation of hypoxia will cause insufficient oxygen supply to the human body, it will lead to hypoxia in the body organs, causing diseases and health problems. Therefore, it is set to intermittent hypoxia. When hypoxia training begins, the output of low oxygen concentration will continue for a certain period of time, and then it will automatically switch to ambient oxygen to compensate for the discomfort of the body, and then output a set of training values. The training method can be multiple sets of training, and the oxygen concentration during multiple sets of training can be different.

[0093] The normal mode can also be considered as intermittent routine ambient oxygen, that is, the target oxygen concentration and the ambient oxygen concentration operate intermittently, and the target oxygen concentration is determined according to the oxygen concentration of the environment. When the current ambient oxygen concentration is low, the high-low oxygen training equipment is used to increase the body's oxygen concentration to alleviate discomfort, and the target oxygen concentration is high. Conversely, when the current ambient oxygen concentration is high, the high-low oxygen training equipment is used to reduce the body's oxygen concentration.

[0094] The training process of the hyperoxia mode is intermittent hyperoxia, that is, after a period of hyperoxia output, a period of environmental oxygen training is carried out. This prevents the body from being damaged by long-term oxygen-rich environment and also helps to alleviate hypoxia training.

[0095] Please refer to Figure 4 , Figure 4 A flowchart of another multimodal hyperoxia training method described in an embodiment of this application is shown; as follows: Figure 4As shown, after controlling the hyperoxia training device to operate according to the target training parameters so that the target user can train in a matching target training mode, the method further includes the following steps S401-S402:

[0096] S401. When the preset training stop condition is met, control the high and low oxygen training equipment to switch from the target training mode to the normal mode, and determine the transition training parameters corresponding to the target training mode in the normal mode.

[0097] S402. Control the hyperoxia training equipment to operate in normal mode according to the transition training parameters;

[0098] The preset training stop conditions include: receiving a stop training instruction, receiving a mode switching instruction, reaching a preset training duration, and detecting that the target user's physiological parameters meet the preset stop conditions.

[0099] The preset training stop condition is used to stop the operation of the hyperoxia training equipment, thereby stopping the user's training.

[0100] The transition training parameters refer to the parameters of ambient oxygen concentration used by the target user to gradually transition from the target training mode to the normal mode. Specifically, for the hypoxic mode, the transition training parameters include a set of oxygen concentrations from low to high and their corresponding training durations, so that the user's body can gradually recover and adapt from the hypoxic environment. For the hyperxic mode, the transition training parameters include a set of oxygen concentrations from high to low and their corresponding training durations, so that the user's body can gradually recover and adapt from the hyperxic environment. If the user was already in the normal mode, the transition training parameters include a set of oxygen concentrations transitioning from the oxygen-rich or hypoxic state of the normal mode to the ambient oxygen state. If the user was already in a hyper-hypoxic mode, the transition training parameters include multiple sets of oxygen-rich and hypoxic concentrations within the range of oxygen concentrations in the normal mode, until the user transitions to the ambient oxygen state.

[0101] In this embodiment, when the high and low oxygen training equipment stops training, it does not stop directly, but first switches to normal mode for transitional training. This helps the user gradually adjust their respiratory and circulatory systems and reduce discomfort that may be caused by rapid changes.

[0102] The stop training command can be triggered by the user operating the hyperoxia training device to stop training, for example, by triggering the stop training command through the stop control of the graphical user interface of the hyperoxia training device.

[0103] The mode switching command can be used by the user to switch the training mode of the hyperoxia training device.

[0104] Reaching the preset training time signifies the completion of the training session. The sum of the output durations in the target training parameters is 30 minutes. When the target user's training time in the target training mode reaches 30 minutes, the high and low oxygen training device is triggered to stop training.

[0105] The system detects that the target user's physiological parameters meet the preset stopping conditions, that is, it detects that the user's physical condition is abnormal, such as blood oxygen concentration being lower than the preset blood oxygen threshold (the preset blood oxygen threshold is 95%), or pulse rate being higher than the preset pulse rate threshold (the preset pulse rate threshold is 200).

[0106] In other words, if a user is deemed to be unwell based on physiological parameters observed during training, training will be stopped to prevent damage to the user's body during the training process.

[0107] In some embodiments, once training is complete, a training report is generated based on the target user's physiological parameters in normal mode before entering the target training mode, the physiological parameters during the current and historical training processes, and the training parameters during the current and historical training processes, to demonstrate the target user's training status.

[0108] Specifically, the training report includes a comparison of physiological parameters and training parameters between the current and historical training processes.

[0109] Based on the same inventive concept, this application also provides a multi-mode hyper-hypoxia training device corresponding to the multi-mode hyper-hypoxia training method. Since the principle of the device in this application is similar to the multi-mode hyper-hypoxia training method described above, the implementation of the device can refer to the implementation of the method, and the repeated parts will not be described again.

[0110] Please refer to Figure 5 , Figure 5 This illustration shows a schematic diagram of the structure of the multi-mode hyperoxia training device according to an embodiment of this application; the multi-mode hyperoxia training device is applied to hyperoxia training equipment, and the hyperoxia training device includes:

[0111] The determination module 501 is used to obtain the selection instructions of the target user for multiple preset training modes of the high and low oxygen training equipment, and determine the target training mode; wherein, the training parameters corresponding to different training modes include at least one oxygen concentration and the output duration corresponding to that oxygen concentration;

[0112] The adjustment module 502 is used to obtain the target physiological parameters of the target user for the target training mode, and adjust the training parameters of the target user in the target training mode based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode.

[0113] The control module 503 is used to control the hyperoxia training device to operate according to the target training parameters, so that the target user can train in a matching target training mode.

[0114] In some embodiments, the training modes in the multi-mode hyperoxia training device include: hypoxia mode, normal mode, hyperoxia mode, and hyper-hypoxia mode; hypoxia mode, normal mode, and hyperoxia mode correspond to different oxygen concentration ranges.

[0115] In some embodiments, in the multi-mode hyperoxia training device, the adjustment module, when acquiring the target physiological parameters of the target user for the target training mode, is specifically used for:

[0116] The response determines the target training mode and the test training parameters in the normal mode; wherein, the test training parameters include multiple test oxygen concentrations determined according to the target training mode;

[0117] The high and low oxygen training equipment is controlled to enter normal mode before entering the target training mode, and runs for a preset preparation time according to the test training parameters;

[0118] Physiological parameters of the target user under various test oxygen concentrations in the normal mode are collected to serve as target physiological parameters for the target user in the target training mode.

[0119] In some embodiments, in the multi-mode hyperoxia training device, the adjustment module, when adjusting the training parameters corresponding to the target user in the target training mode based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode, is specifically used for:

[0120] Based on the target physiological parameters and pre-configured training constraints, the training parameters corresponding to the target training mode are obtained, and the target training parameters of the target user in the target training mode are obtained.

[0121] The constraints are determined based on at least one of the following: the target user's training objectives, the target user's historical training data, or the target user's training prescription.

[0122] In some embodiments, in the multi-mode hyperoxia training device, at least one oxygen concentration in the target training parameters of the hypoxia mode, hyperoxia mode, and normal mode includes: at least one target oxygen concentration within the target oxygen concentration range corresponding to the training mode and the ambient oxygen concentration; the target training parameters of the hyperoxia mode include at least one set of high and low oxygen concentrations, and the set of high and low oxygen concentrations includes: a high oxygen concentration within the oxygen concentration range corresponding to the hyperoxia mode and a low oxygen concentration within the oxygen concentration range corresponding to the hypooxia mode.

[0123] The control module, based on the target training parameters, controls the hyperoxia training equipment to operate according to the target training parameters, specifically for:

[0124] For the hypoxia mode, hyperxia mode, and normal mode, the hyperxia training equipment is controlled to operate intermittently according to the target oxygen concentration and ambient oxygen concentration of the target training parameters;

[0125] For the high and low oxygen mode, the high and low oxygen training equipment is controlled to operate intermittently according to the high oxygen concentration and low oxygen concentration in the target training parameters.

[0126] In some embodiments, in the multi-mode hyperoxia training device, after the control module controls the hyperoxia training device to operate according to the target training parameters so that the target user can train in a matching target training mode, it is further configured to:

[0127] When the preset training stop condition is met, the high and low oxygen training equipment is controlled to switch from the target training mode to the normal mode, and the transition training parameters corresponding to the target training mode in the normal mode are determined.

[0128] The hyperoxia training equipment is controlled to operate in normal mode according to transitional training parameters;

[0129] The preset training stop conditions include: receiving a stop training instruction, receiving a mode switching instruction, reaching a preset training duration, and detecting that the target user's physiological parameters meet the preset stop conditions.

[0130] In some embodiments, in the multi-mode hyperoxia training device, the determining module, when obtaining the target user's selection instruction for multiple preset training modes of the hyperoxia training device and determining the target training mode, is specifically used for:

[0131] In response to the target user's selection of various preset training modes displayed on the graphical user interface of the hyper-hypoxic training equipment, generate a selection command for the training mode.

[0132] Based on the selection instructions for the training mode, the target training mode is determined.

[0133] Based on the same inventive concept, this application also provides an electronic device corresponding to the multi-mode hyper-hypoxia training method. Since the principle of the electronic device in this application is similar to the above-mentioned multi-mode hyper-hypoxia training method in this application, the implementation of the electronic device can refer to the implementation of the method, and the repeated parts will not be described again.

[0134] Please refer to Figure 6 , Figure 6 A schematic diagram of the structure of the electronic device according to an embodiment of this application is shown. The electronic device 600 includes a processor 602, a memory 601, and a bus. The memory 601 stores machine-readable instructions executable by the processor 602. When the electronic device 600 is running, the processor 602 communicates with the memory 601 through the bus. When the machine-readable instructions are executed by the processor 602, the steps of the multi-mode hyper-hypoxia training method are performed.

[0135] Based on the same inventive concept, this application also provides a computer-readable storage medium corresponding to the multi-mode hyper-hypoxia training method. Since the principle of the computer-readable storage medium in this application is similar to the multi-mode hyper-hypoxia training method described above in this application, the implementation of the computer-readable storage medium can refer to the implementation of the method, and the repeated parts will not be described again.

[0136] A computer-readable storage medium storing a computer program that, when executed by a processor, performs the steps of the multi-mode hyper-hypoxia training method.

[0137] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the specific working processes of the systems and devices described above can be referred to the corresponding processes in the method embodiments, and will not be repeated here. In the several embodiments provided in this application, it should be understood that the disclosed systems, devices, and methods can be implemented in other ways. The device embodiments described above are merely illustrative. For example, the division of modules is only a logical functional division, and in actual implementation, there may be other division methods. Furthermore, multiple modules or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed mutual coupling or direct coupling or communication connection can be through some communication interfaces; the indirect coupling or communication connection of devices or modules can be electrical, mechanical, or other forms.

[0138] The modules described as separate components may or may not be physically separate. The components shown as modules may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0139] In addition, the functional units in the various embodiments of this application can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit.

[0140] If the aforementioned functions are implemented as software functional units and sold or used as independent products, they can be stored in a processor-executable, non-volatile, computer-readable storage medium. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or a portion of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, a platform server, or a network device, etc.) to execute all or part of the steps of the methods described in the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, ROM, RAM, magnetic disks, or optical disks.

[0141] The above are merely specific embodiments of this application, but the scope of protection of this application is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the scope of the technology disclosed in this application should be included within the scope of protection of this application. Therefore, the scope of protection of this application should be determined by the scope of the claims.

Claims

1. A multi-modal hyperbaric training method, characterized in that, Applied to hyperoxia training equipment, the hyperoxia training method includes: The system obtains the target user's selection instructions for various preset training modes of the high and low oxygen training equipment and determines the target training mode; wherein, the training parameters corresponding to different training modes include at least one oxygen concentration and the output duration corresponding to that oxygen concentration; Obtain the target physiological parameters of the target user for the target training mode, and adjust the training parameters of the target user in the target training mode based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode; Based on the target training parameters, the high and low oxygen training equipment is controlled to operate according to the target training parameters so that the target user can train in a matching target training mode.

2. The multi-modal hyperbaric training method of claim 1, wherein, The training modes include: hypoxia mode, normal mode, hyperxia mode, and hyper-hypoxia mode; hypoxia mode, normal mode, and hyperxia mode correspond to different oxygen concentration ranges.

3. The multi-modal hyperbaric training method of claim 2, wherein, Obtain the target physiological parameters of the target user for the target training mode, including: The response determines the target training mode and the test training parameters in the normal mode; wherein, the test training parameters include multiple test oxygen concentrations determined according to the target training mode; The high and low oxygen training equipment is controlled to enter normal mode before entering the target training mode, and runs for a preset preparation time according to the test training parameters; Physiological parameters of the target user under various test oxygen concentrations in the normal mode are collected to serve as target physiological parameters for the target user in the target training mode.

4. The multi-modal hyperbaric training method of claim 3, wherein, Based on the target physiological parameters, the training parameters of the target user in the target training mode are adjusted to obtain the target training parameters of the target user in the target training mode; including: Based on the target physiological parameters and pre-configured training constraints, the training parameters corresponding to the target training mode are obtained, and the target training parameters of the target user in the target training mode are obtained. The constraints are determined based on at least one of the following: the target user's training objectives, the target user's historical training data, or the target user's training prescription.

5. The multi-mode hyperoxia training method according to claim 2, characterized in that, At least one oxygen concentration in the target training parameters of the hypoxia mode, hyperxia mode and normal mode includes: at least one target oxygen concentration and ambient oxygen concentration within the target oxygen concentration range corresponding to the training mode; the target training parameters of the hyper-hypoxia mode include at least one set of high and low oxygen concentrations, and the set of high and low oxygen concentrations includes: a high oxygen concentration within the oxygen concentration range corresponding to the hyperxia mode and a low oxygen concentration within the oxygen concentration range corresponding to the hypoxia mode. Based on the target training parameters, the method further includes controlling the hyperoxia training equipment to operate according to the target training parameters, and the method also includes: For the hypoxia mode, hyperxia mode, and normal mode, the hyperxia training equipment is controlled to operate intermittently according to the target oxygen concentration and ambient oxygen concentration of the target training parameters; For the high and low oxygen mode, the high and low oxygen training equipment is controlled to operate intermittently according to the high oxygen concentration and low oxygen concentration in the target training parameters.

6. The multi-mode hyperoxia training method according to claim 2, characterized in that, After controlling the hyperoxia training device to operate according to the target training parameters so that the target user trains in a matching target training mode, the method further includes: When the preset training stop condition is met, the high and low oxygen training equipment is controlled to switch from the target training mode to the normal mode, and the transition training parameters corresponding to the target training mode in the normal mode are determined. The hyperoxia training equipment is controlled to operate in normal mode according to transitional training parameters; The preset training stop conditions include: receiving a stop training instruction, receiving a mode switching instruction, reaching a preset training duration, and detecting that the target user's physiological parameters meet the preset stop conditions.

7. The multi-mode hyperoxia training method according to claim 1, characterized in that, The step of obtaining the target user's selection instructions for multiple preset training modes of the high and low oxygen training equipment and determining the target training mode includes: In response to the target user's selection of various preset training modes displayed on the graphical user interface of the hyper-hypoxic training equipment, generate a selection command for the training mode. Based on the selection instructions for the training mode, the target training mode is determined.

8. A multi-mode hyperoxia training device, characterized in that, Applied to hyperoxia training equipment, the hyperoxia training device includes: The determination module is used to obtain the selection instructions of the target user for multiple preset training modes of the high and low oxygen training equipment, and determine the target training mode; wherein, the training parameters corresponding to different training modes include at least one oxygen concentration and the output duration corresponding to that oxygen concentration; The adjustment module is used to obtain the target physiological parameters of the target user for the target training mode, and adjust the training parameters of the target user in the target training mode based on the target physiological parameters to obtain the target training parameters of the target user in the target training mode. The control module is used to control the hyperoxia training equipment to operate according to the target training parameters, so that the target user can train in a matching target training mode.

9. An electronic device, characterized in that, include: The device includes a processor, a memory, and a bus. The memory stores machine-readable instructions executable by the processor. When the electronic device is in operation, the processor communicates with the memory via the bus. When the machine-readable instructions are executed by the processor, they perform the steps of the multi-mode hyper-hypoxia training method as described in any one of claims 1 to 7.

10. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a computer program that, when executed by a processor, performs the steps of the multi-mode hyper-hypoxia training method as described in any one of claims 1 to 7.