Airbag force control method and system and medium

By dynamically adjusting the airbag inflation parameters and real-time monitoring of the airbag status, the problem that the existing massage chair airbag pressure control cannot meet the needs of different users is solved, and precise massage rhythm control and better user experience is achieved.

CN119950250APending Publication Date: 2025-05-09松研科技(杭州)有限公司
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Patent Information

Application Number
CN202510180628.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-19
Publication Date
2025-05-09

AI Technical Summary

Technical Problem

The pressure control of existing massage chair airbags depends on the inflation time, and cannot accurately meet the massage comfort of different users, and the complex operation is easy to cause damage.

Method used

By setting massage parameter information, dynamically adjusting the airbag inflation parameters, obtaining the airbag status information in real time, comparing the status deviation rate, and generating correction information based on the deviation rate or forming a massage rhythm, so as to accurately control the massage movement rules of the airbag.

Benefits of technology

It realizes precise control of the user's massage rhythm, provides a better massage experience, simplifies the operation process, and reduces the risk of injury.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides an air bag force control method and system and a medium. The method comprises the steps that massage parameter information is set, and air bag inflation parameter information is set based on the massage parameter information; inflating the air bag based on the air bag inflation parameter information, and acquiring air bag state information in real time; comparing the airbag state information with set state information to obtain a state deviation rate; judging whether the state deviation rate is greater than or equal to a set deviation rate threshold value; if the deviation ratio is greater than or equal to the set deviation ratio threshold value, generating correction information, and dynamically adjusting an air bag inflation parameter based on the correction information; if yes, generating an air bag massage motion rule based on the massage parameter information, and forming a corresponding massage rhythm; the massage rhythm is formed according to the air bag massage movement rule, the user can accurately experience the accurate massage rhythm, the massage rhythm comprises the massage strength change and the strength change rule, and better massage experience is provided for the user.
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Description

Technical Field

[0001] The present application relates to the field of airbag control technology, and more specifically, to an airbag force control method, system and medium. Background Art

[0002] Massage chair airbags are generally composed of airbags, pipes, electric pumps, etc. Airbags are usually made of soft materials and can be divided into different shapes and sizes according to needs, such as thigh airbags, brain airbags, etc. Pipes are used to connect the airbags and electric pumps. The electric pump is the core component that controls the inflation and deflation of the airbags.

[0003] The air pressure of the massage chair airbag is controlled by an electric pump. When the massage chair needs to be inflated, the electric pump will open, suck air from the outside, and transport it to the inside of the airbag through the pipe to inflate the airbag. When the massage chair needs to be deflated, the electric pump will close, allowing the air inside the airbag to be discharged through the pipe, thereby deflating the airbag. The inflation and deflation cycle is carried out to achieve the effect of massage. By controlling the working time of the electric pump, the air pressure of the massage chair airbag can be controlled.

[0004] Airbag massage is to quickly inflate and deflate the airbag, so that the airbag expands and contracts, thereby generating a squeezing force on the body to achieve a massage effect. The pressure of the airbag is generally adjusted by the inflation time. For example: blowing for 1 second, the force is low. Blowing for 2 seconds, the force is medium. Blowing for three seconds, the force is the strongest. However, due to different body shapes of users, such as different leg thicknesses, the same blowing time may feel that the force is appropriate for some people, while others may feel that the force is too heavy or too light. Relying on the blowing time to control the airbag to squeeze the body, the squeezing force varies from person to person, and cannot meet the massage comfort of everyone. Users set the airbag blowing time through the control panel, but the operation is complicated. Setting it to a comfortable configuration requires tedious operations and experiments. Sometimes improper settings can easily cause injuries. Summary of the invention

[0005] The purpose of the embodiments of the present application is to provide an airbag force control method, system and medium, which form a massage rhythm through the airbag massage movement rules, so that users can accurately experience the accurate massage rhythm, which includes the change of massage intensity and the law of intensity change, giving users a better massage experience.

[0006] The embodiment of the present application also provides an airbag force control method, including:

[0007] Setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information;

[0008] Inflate the airbag based on the airbag inflation parameter information, obtain the airbag status information in real time, compare the airbag status information with the set status information, and obtain the status deviation rate;

[0009] Determining whether the state deviation rate is greater than or equal to a set deviation rate threshold;

[0010] If it is greater than or equal to the set deviation rate threshold, correction information is generated, and the airbag inflation parameters are dynamically adjusted based on the correction information;

[0011] If it is less than, the airbag massage movement rules are generated based on the massage parameter information and the corresponding massage rhythm is formed.

[0012] Optionally, in the airbag force control method described in the embodiment of the present application, setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information specifically includes:

[0013] Acquire the setting information of the user personnel, and generate massage demand information based on the setting information of the user personnel;

[0014] Setting matching massage parameter information based on massage demand information;

[0015] Acquire current massage parameter information, compare the current massage parameter information with matched massage parameter information, and obtain parameter difference information;

[0016] Dynamically adjust current massage parameter information based on parameter difference information to obtain target parameter information;

[0017] The airbag inflation parameter information is set based on the target parameter information, and the airbag inflation parameter information includes airbag inflation time, airbag inflation pressure and airbag inflation sequence.

[0018] Optionally, in the airbag force control method described in the embodiment of the present application, inflating the airbag based on the airbag inflation parameter information and acquiring the airbag state information in real time specifically includes:

[0019] Acquire airbag inflation parameter information, and inflate the airbag based on the airbag inflation parameter information;

[0020] Obtain airbag pressure information, volume information and inflated volume in real time, and generate airbag change information;

[0021] Analyze the airbag pressure change information, volume change information and inflation amount change information based on the airbag change information;

[0022] The airbag status information is generated based on the airbag pressure change information, volume change information and inflation amount change information.

[0023] Optionally, in the airbag force control method described in the embodiment of the present application, dynamically adjusting the airbag inflation parameters based on the correction information specifically includes:

[0024] Obtain airbag status information and analyze airbag status deviation rate;

[0025] Setting a deviation rate threshold, the deviation rate threshold comprising a first deviation rate threshold and a second deviation rate threshold, and the first deviation rate threshold is less than the second deviation rate threshold;

[0026] If the airbag state deviation rate is greater than a first deviation rate threshold and less than a second deviation rate threshold, first correction information is generated, and a first coefficient adjustment is performed on the airbag inflation parameter based on the first correction information;

[0027] If the airbag state deviation rate is greater than or equal to the second deviation rate threshold, second correction information is generated, and a second coefficient adjustment is performed on the airbag inflation parameter based on the second correction information.

[0028] Optionally, in the airbag force control method described in the embodiment of the present application, generating airbag massage movement rules based on massage parameter information and forming a corresponding massage rhythm specifically includes:

[0029] Acquire airbag pressure information at different time points based on massage parameter information;

[0030] Analyze the pressure change information and pressure change sequence of each airbag based on the time node;

[0031] Generate an airbag massage sequence based on the pressure change information and pressure change sequence of each airbag;

[0032] An airbag massage motion rule is generated based on the airbag massage sequence, and a corresponding massage rhythm is generated according to the airbag massage motion rule.

[0033] Optionally, in the airbag force control method described in the embodiment of the present application, generating airbag massage movement rules based on massage parameter information and forming a corresponding massage rhythm also includes:

[0034] Obtaining real-time pressure information of each airbag based on massage parameter information;

[0035] Compare the real-time pressure information with the upper pressure limit and the lower pressure limit;

[0036] If the real-time pressure information is greater than the lower pressure limit and less than the upper pressure limit, the airbag continues to be inflated;

[0037] If the real-time pressure information is equal to the upper pressure limit, the airbag stops inflating;

[0038] If the real-time pressure information is greater than the upper pressure limit, the airbag is deflated;

[0039] The airbag inflation volume is generated based on the real-time pressure information, the upper pressure limit and the lower pressure limit of the airbag, and the airbag massage movement rules are generated based on the airbag inflation volume to form a corresponding massage rhythm.

[0040] In a second aspect, an embodiment of the present application provides an airbag force control system, the system comprising: a memory and a processor, the memory comprising a program of an airbag force control method, and the program of the airbag force control method is executed by the processor to implement the following steps:

[0041] Setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information;

[0042] Inflate the airbag based on the airbag inflation parameter information and obtain the airbag status information in real time;

[0043] Compare the airbag state information with the set state information to obtain the state deviation rate;

[0044] Determining whether the state deviation rate is greater than or equal to a set deviation rate threshold;

[0045] If it is greater than or equal to the set deviation rate threshold, correction information is generated, and the airbag inflation parameters are dynamically adjusted based on the correction information;

[0046] If it is less than, the airbag massage movement rules are generated based on the massage parameter information and the corresponding massage rhythm is formed.

[0047] Optionally, in the airbag force control system described in the embodiment of the present application, setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information specifically includes:

[0048] Acquire the setting information of the user personnel, and generate massage demand information based on the setting information of the user personnel;

[0049] Setting matching massage parameter information based on massage demand information;

[0050] Acquire current massage parameter information, compare the current massage parameter information with matched massage parameter information, and obtain parameter difference information;

[0051] Dynamically adjust current massage parameter information based on parameter difference information to obtain target parameter information;

[0052] The airbag inflation parameter information is set based on the target parameter information, and the airbag inflation parameter information includes airbag inflation time, airbag inflation pressure and airbag inflation sequence.

[0053] Optionally, in the airbag force control system described in the embodiment of the present application, inflating the airbag based on the airbag inflation parameter information and acquiring the airbag state information in real time specifically includes:

[0054] Acquire airbag inflation parameter information, and inflate the airbag based on the airbag inflation parameter information;

[0055] Obtain airbag pressure information, volume information and inflated volume in real time, and generate airbag change information;

[0056] Analyze the airbag pressure change information, volume change information and inflation amount change information based on the airbag change information;

[0057] The airbag status information is generated based on the airbag pressure change information, volume change information and inflation amount change information.

[0058] In a third aspect, an embodiment of the present application further provides a computer-readable storage medium, wherein the computer-readable storage medium includes an airbag force control method program. When the airbag force control method program is executed by a processor, the steps of the airbag force control method as described in any one of the above items are implemented.

[0059] As can be seen from the above, an airbag force control method, system and medium provided in the embodiments of the present application set massage parameter information, and set airbag inflation parameter information based on the massage parameter information; inflate the airbag based on the airbag inflation parameter information, and obtain the airbag status information in real time; compare the airbag status information with the set status information to obtain the status deviation rate; determine whether the status deviation rate is greater than or equal to the set deviation rate threshold; if it is greater than or equal to the set deviation rate threshold, generate correction information, and dynamically adjust the airbag inflation parameters based on the correction information; if it is less than, generate airbag massage movement rules based on the massage parameter information, and form a corresponding massage rhythm; by forming a massage rhythm through the airbag massage movement rules, the user can accurately experience the accurate massage rhythm, and the massage rhythm includes the change of massage intensity and the law of intensity change, giving the user a better massage experience. BRIEF DESCRIPTION OF THE DRAWINGS

[0060] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the drawings required for use in the embodiments of the present application will be briefly introduced below. It should be understood that the following drawings only show certain embodiments of the present application and therefore should not be regarded as limiting the scope. For ordinary technicians in this field, other related drawings can be obtained based on these drawings without paying creative work.

[0061] Figure 1 A flow chart of the airbag force control method provided in an embodiment of the present application;

[0062] Figure 2 A flow chart of a method for obtaining airbag inflation parameters of an airbag force control method provided in an embodiment of the present application;

[0063] Figure 3 A flow chart of obtaining airbag status information of the airbag force control method provided in an embodiment of the present application. DETAILED DESCRIPTION

[0064] The technical solutions in the embodiments of the present application will be clearly and completely described below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all of the embodiments. The components of the embodiments of the present application described and shown in the drawings here can be arranged and designed in various different configurations. Therefore, the following detailed description of the embodiments of the present application provided in the drawings is not intended to limit the scope of the application claimed for protection, but merely represents the selected embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those skilled in the art without making creative work belong to the scope of protection of the present application.

[0065] It should be noted that similar reference numerals and letters represent similar items in the following drawings, so once an item is defined in one drawing, it does not need to be further defined and explained in subsequent drawings. At the same time, in the description of this application, the terms "first", "second", etc. are only used to distinguish the description and cannot be understood as indicating or implying relative importance.

[0066] Please refer to Figure 1 , Figure 1 1 is a flow chart of an airbag force control method in some embodiments of the present application. The airbag force control method is used in a terminal device, and the airbag force control method includes the following steps:

[0067] S101, setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information;

[0068] S102, inflating the airbag based on the airbag inflation parameter information, and acquiring the airbag state information in real time, comparing the airbag state information with the set state information, and obtaining the state deviation rate;

[0069] S103, determining whether the state deviation rate is greater than or equal to a set deviation rate threshold;

[0070] S104, if the deviation rate is greater than or equal to a set deviation rate threshold, generating correction information, and dynamically adjusting the airbag inflation parameters based on the correction information;

[0071] S105: If it is less than, generate airbag massage movement rules based on the massage parameter information and form a corresponding massage rhythm.

[0072] It should be noted that different massage parameters are set according to the needs of different users, and the airbag is controlled to inflate and deflate according to the set pressure according to the different massage parameters, so as to accurately control the massage movement rules of the airbag, ensure that the massage rhythm meets user needs, and improve user experience.

[0073] Please refer to Figure 2 , Figure 2 The present invention provides a method for obtaining airbag inflation parameters in an airbag force control method in some embodiments of the present invention. According to an embodiment of the present invention, setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information specifically includes:

[0074] S201, obtaining setting information of a user, and generating massage demand information based on the setting information of the user;

[0075] S202, setting matching massage parameter information based on the massage demand information;

[0076] S203, obtaining current massage parameter information, comparing the current massage parameter information with the matching massage parameter information, and obtaining parameter difference information;

[0077] S204, dynamically adjusting the current massage parameter information based on the parameter difference information to obtain target parameter information;

[0078] S205, setting airbag inflation parameter information based on the target parameter information, the airbag inflation parameter information including airbag inflation time, airbag inflation pressure and airbag inflation sequence.

[0079] It should be noted that by analyzing the user's setting information and matching different massage parameters, the airbag inflation time, airbag inflation pressure and airbag inflation sequence can be accurately adjusted to ensure that each airbag pressure meets the massage requirements.

[0080] Please refer to Figure 3 , Figure 3 This is a flow chart of obtaining airbag status information of an airbag force control method in some embodiments of the present application. According to an embodiment of the present invention, inflating the airbag based on the airbag inflation parameter information and obtaining the airbag status information in real time specifically includes:

[0081] S301, obtaining airbag inflation parameter information, and inflating the airbag based on the airbag inflation parameter information;

[0082] S302, obtaining airbag pressure information, volume information and inflation amount in real time, and generating airbag change information;

[0083] S303, analyzing the airbag pressure change information, volume change information, and inflation amount change information based on the airbag change information;

[0084] S304, generating airbag status information based on the airbag pressure change information, volume change information and inflation amount change information.

[0085] It should be noted that by acquiring the air pressure, volume and inflated amount of the airbag in real time and analyzing the airbag pressure change information, volume change information and inflation amount change information, the airbag status can be dynamically acquired to facilitate the control of the inflation amount of the airbag.

[0086] According to an embodiment of the present invention, dynamically adjusting the airbag inflation parameters based on the correction information specifically includes:

[0087] Obtain airbag status information and analyze airbag status deviation rate;

[0088] Setting a deviation rate threshold, the deviation rate threshold includes a first deviation rate threshold and a second deviation rate threshold, and the first deviation rate threshold is less than the second deviation rate threshold;

[0089] If the airbag state deviation rate is greater than a first deviation rate threshold and less than a second deviation rate threshold, first correction information is generated, and a first coefficient adjustment is performed on the airbag inflation parameter based on the first correction information;

[0090] If the airbag state deviation rate is greater than or equal to the second deviation rate threshold, second correction information is generated, and a second coefficient adjustment is performed on the airbag inflation parameter based on the second correction information.

[0091] It should be noted that by analyzing the airbag status information and determining the airbag status deviation rate, different airbag status deviation rates generate different correction coefficients, thereby accurately adjusting the airbag inflation parameters and improving the inflation accuracy of the airbag.

[0092] According to an embodiment of the present invention, an airbag massage motion rule is generated based on massage parameter information, and a corresponding massage rhythm is formed, specifically including:

[0093] Acquire airbag pressure information at different time points based on massage parameter information;

[0094] Analyze the pressure change information and pressure change sequence of each airbag based on the time node;

[0095] Generate an airbag massage sequence based on the pressure change information and pressure change sequence of each airbag;

[0096] An airbag massage motion rule is generated based on the airbag massage sequence, and a corresponding massage rhythm is generated according to the airbag massage motion rule.

[0097] It should be noted that by analyzing the airbag pressure change information and pressure change sequence at different time nodes, the movement sequence of the airbag is analyzed to form corresponding massage rules, and then the airbag inflation parameters are set according to the user's usage habits to improve the user experience.

[0098] According to an embodiment of the present invention, the airbag massage movement rules are generated based on the massage parameter information, and the corresponding massage rhythm is formed, which also includes:

[0099] Obtaining real-time pressure information of each airbag based on massage parameter information;

[0100] Compare the real-time pressure information with the upper pressure limit and the lower pressure limit;

[0101] If the real-time pressure information is greater than the lower pressure limit and less than the upper pressure limit, the airbag continues to be inflated;

[0102] If the real-time pressure information is equal to the upper pressure limit, the airbag stops inflating;

[0103] If the real-time pressure information is greater than the upper pressure limit, the airbag is deflated;

[0104] The airbag inflation volume is generated based on the real-time pressure information, the upper pressure limit and the lower pressure limit of the airbag, and the airbag massage movement rules are generated based on the airbag inflation volume to form a corresponding massage rhythm.

[0105] It should be noted that a pressure sensor is placed in the airbag. When the airbag is inflated, the pressure data of the pressure sensor is read. When the airbag inflation volume is not enough to exert pressure on the human body, the pressure data is related to the inflated volume and the volume of the airbag. When the inflated volume is sufficient to exert pressure on the human body, inflation continues at this time. The inflation volume can be controlled by the air pressure value. When the maximum air pressure (upper limit of air pressure) is reached, inflation is stopped and then deflated. When the air pressure reaches a lower level (lower limit of air pressure), inflation is carried out. The maximum air pressure that can be reached during inflation and the minimum air pressure reached during deflation can be set. Due to individual differences, the amount of inflation required to reach a certain air pressure when the airbag is inflated is different. The user's squeezing force is obtained through analysis of the air pressure sensor data, and the inflation time is controlled to obtain the appropriate pressure.

[0106] In a second aspect, an embodiment of the present application provides an airbag force control system, the system comprising: a memory and a processor, the memory comprising a program of an airbag force control method, and when the program of the airbag force control method is executed by the processor, the following steps are implemented:

[0107] Setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information;

[0108] Inflate the airbag based on the airbag inflation parameter information and obtain the airbag status information in real time;

[0109] Compare the airbag state information with the set state information to obtain the state deviation rate;

[0110] Determine whether the state deviation rate is greater than or equal to the set deviation rate threshold;

[0111] If it is greater than or equal to the set deviation rate threshold, correction information is generated, and the airbag inflation parameters are dynamically adjusted based on the correction information;

[0112] If it is less than, the airbag massage movement rules are generated based on the massage parameter information and the corresponding massage rhythm is formed.

[0113] It should be noted that different massage parameters are set according to the needs of different users, and the airbag is controlled to inflate and deflate according to the set pressure according to the different massage parameters, so as to accurately control the massage movement rules of the airbag, ensure that the massage rhythm meets user needs, and improve user experience.

[0114] According to an embodiment of the present invention, setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information specifically includes:

[0115] Acquire the setting information of the user personnel, and generate massage demand information based on the setting information of the user personnel;

[0116] Setting matching massage parameter information based on massage demand information;

[0117] Acquire current massage parameter information, compare the current massage parameter information with matched massage parameter information, and obtain parameter difference information;

[0118] Dynamically adjust current massage parameter information based on parameter difference information to obtain target parameter information;

[0119] The airbag inflation parameter information is set based on the target parameter information, and the airbag inflation parameter information includes airbag inflation time, airbag inflation pressure and airbag inflation sequence.

[0120] It should be noted that by analyzing the user's setting information and matching different massage parameters, the airbag inflation time, airbag inflation pressure and airbag inflation sequence can be accurately adjusted to ensure that each airbag pressure meets the massage requirements.

[0121] According to an embodiment of the present invention, inflating an airbag based on airbag inflation parameter information and acquiring airbag status information in real time specifically includes:

[0122] Acquire airbag inflation parameter information, and inflate the airbag based on the airbag inflation parameter information;

[0123] Obtain airbag pressure information, volume information and inflated volume in real time, and generate airbag change information;

[0124] Analyze the airbag pressure change information, volume change information and inflation amount change information based on the airbag change information;

[0125] The airbag status information is generated based on the airbag pressure change information, volume change information and inflation amount change information.

[0126] It should be noted that by acquiring the air pressure, volume and inflated amount of the airbag in real time and analyzing the airbag pressure change information, volume change information and inflation amount change information, the airbag status can be dynamically acquired to facilitate the control of the inflation amount of the airbag.

[0127] According to an embodiment of the present invention, dynamically adjusting the airbag inflation parameters based on the correction information specifically includes:

[0128] Obtain airbag status information and analyze airbag status deviation rate;

[0129] Setting a deviation rate threshold, the deviation rate threshold includes a first deviation rate threshold and a second deviation rate threshold, and the first deviation rate threshold is less than the second deviation rate threshold;

[0130] If the airbag state deviation rate is greater than a first deviation rate threshold and less than a second deviation rate threshold, first correction information is generated, and a first coefficient adjustment is performed on the airbag inflation parameter based on the first correction information;

[0131] If the airbag state deviation rate is greater than or equal to the second deviation rate threshold, second correction information is generated, and a second coefficient adjustment is performed on the airbag inflation parameter based on the second correction information.

[0132] It should be noted that by analyzing the airbag status information and determining the airbag status deviation rate, different airbag status deviation rates generate different correction coefficients, thereby accurately adjusting the airbag inflation parameters and improving the inflation accuracy of the airbag.

[0133] According to an embodiment of the present invention, an airbag massage motion rule is generated based on massage parameter information, and a corresponding massage rhythm is formed, specifically including:

[0134] Acquire airbag pressure information at different time points based on massage parameter information;

[0135] Analyze the pressure change information and pressure change sequence of each airbag based on the time node;

[0136] Generate an airbag massage sequence based on the pressure change information and pressure change sequence of each airbag;

[0137] An airbag massage motion rule is generated based on the airbag massage sequence, and a corresponding massage rhythm is generated according to the airbag massage motion rule.

[0138] It should be noted that by analyzing the airbag pressure change information and pressure change sequence at different time nodes, the movement sequence of the airbag is analyzed to form corresponding massage rules, and then the airbag inflation parameters are set according to the user's usage habits to improve the user experience.

[0139] According to an embodiment of the present invention, the airbag massage movement rules are generated based on the massage parameter information, and the corresponding massage rhythm is formed, which also includes:

[0140] Obtaining real-time pressure information of each airbag based on massage parameter information;

[0141] Compare the real-time pressure information with the upper pressure limit and the lower pressure limit;

[0142] If the real-time pressure information is greater than the lower pressure limit and less than the upper pressure limit, the airbag continues to be inflated;

[0143] If the real-time pressure information is equal to the upper pressure limit, the airbag stops inflating;

[0144] If the real-time pressure information is greater than the upper pressure limit, the airbag is deflated;

[0145] The airbag inflation volume is generated based on the real-time pressure information, the upper pressure limit and the lower pressure limit of the airbag, and the airbag massage movement rules are generated based on the airbag inflation volume to form a corresponding massage rhythm.

[0146] It should be noted that a pressure sensor is placed in the airbag. When the airbag is inflated, the pressure data of the pressure sensor is read. When the airbag inflation volume is not enough to exert pressure on the human body, the pressure data is related to the inflated volume and the volume of the airbag. When the inflated volume is sufficient to exert pressure on the human body, inflation continues at this time. The inflation volume can be controlled by the air pressure value. When the maximum air pressure (upper limit of air pressure) is reached, inflation is stopped and then deflated. When the air pressure reaches a lower level (lower limit of air pressure), inflation is carried out. The maximum air pressure that can be reached during inflation and the minimum air pressure reached during deflation can be set. Due to individual differences, the amount of inflation required to reach a certain air pressure when the airbag is inflated is different. The user's squeezing force is obtained through analysis of the air pressure sensor data, and the inflation time is controlled to obtain the appropriate pressure.

[0147] A third aspect of the present invention provides a computer-readable storage medium, which includes an airbag force control method program. When the airbag force control method program is executed by a processor, the steps of any of the above-mentioned airbag force control methods are implemented.

[0148] The present invention discloses an airbag force control method, system and medium, which set massage parameter information, and then set airbag inflation parameter information based on the massage parameter information; inflate the airbag based on the airbag inflation parameter information, and obtain airbag status information in real time; compare the airbag status information with the set status information to obtain the status deviation rate; determine whether the status deviation rate is greater than or equal to the set deviation rate threshold; if greater than or equal to the set deviation rate threshold, generate correction information, and dynamically adjust the airbag inflation parameter based on the correction information; if less than, generate airbag massage movement rules based on the massage parameter information, and form a corresponding massage rhythm; forming a massage rhythm through the airbag massage movement rules can accurately allow users to experience an accurate massage rhythm, and the massage rhythm includes changes in massage intensity and the law of intensity changes, giving users a better massage experience.

[0149] In the several embodiments provided in the present application, it should be understood that the disclosed devices and methods can be implemented in other ways. The device embodiments described above are only schematic. For example, the division of units is only a logical function division. There may be other division methods in actual implementation, such as: multiple units or components can be combined, or can be integrated into another system, or some features can be ignored or not executed. In addition, the coupling, direct coupling, or communication connection between the components shown or discussed can be through some interfaces, and the indirect coupling or communication connection of devices or units can be electrical, mechanical or other forms.

[0150] The units described above as separate components may or may not be physically separated, and the components displayed as units may or may not be physical units; they may be located in one place or distributed on multiple network units; some or all of the units may be selected according to actual needs to achieve the purpose of the present embodiment.

[0151] In addition, all functional units in the embodiments of the present invention may be integrated into one processing unit, or each unit may be separately used as a unit, or two or more units may be integrated into one unit; the above-mentioned integrated units may be implemented in the form of hardware or in the form of hardware plus software functional units.

[0152] Those skilled in the art can understand that: all or part of the steps of implementing the above method embodiments can be completed by hardware related to program instructions, the aforementioned program can be stored in a readable storage medium, and when the program is executed, it executes the steps of the above method embodiments; and the aforementioned storage medium includes: mobile storage devices, read-only memories (ROM, Read-Only Memory), random access memories (RAM, Random Access Memory), disks or optical disks, and other media that can store program codes.

[0153] Or, if the above-mentioned integrated unit of the present invention is implemented in the form of a software function module and sold or used as an independent product, it can also be stored in a readable storage medium. Based on this understanding, the technical solution of the embodiment of the present invention can be essentially or partly reflected in the form of a software product that contributes to the prior art. The software product is stored in a storage medium and includes several instructions for a computer device (which can be a personal computer, server, or network device, etc.) to execute all or part of the methods described in each embodiment of the present invention. The aforementioned storage medium includes: various media that can store program codes, such as mobile storage devices, ROM, RAM, magnetic disks or optical disks.

Claims

1. A method for controlling airbag force, characterized in that: include: Setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information; Inflate the airbag based on the airbag inflation parameter information, obtain the airbag status information in real time, compare the airbag status information with the set status information, and obtain the status deviation rate; Determining whether the state deviation rate is greater than or equal to a set deviation rate threshold; If it is greater than or equal to the set deviation rate threshold, correction information is generated, and the airbag inflation parameters are dynamically adjusted based on the correction information; If it is less than, the airbag massage movement rules are generated based on the massage parameter information and the corresponding massage rhythm is formed.

2. The airbag force control method according to claim 1, characterized in that: Setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information, specifically including: Acquire the setting information of the user personnel, and generate massage demand information based on the setting information of the user personnel; Setting matching massage parameter information based on massage demand information; Acquire current massage parameter information, compare the current massage parameter information with matched massage parameter information, and obtain parameter difference information; Dynamically adjust current massage parameter information based on parameter difference information to obtain target parameter information; The airbag inflation parameter information is set based on the target parameter information, and the airbag inflation parameter information includes airbag inflation time, airbag inflation pressure and airbag inflation sequence.

3. The airbag force control method according to claim 2, characterized in that: Inflate the airbag based on the airbag inflation parameter information and obtain the airbag status information in real time, including: Acquire airbag inflation parameter information, and inflate the airbag based on the airbag inflation parameter information; Obtain airbag pressure information, volume information and inflated volume in real time, and generate airbag change information; Analyze the airbag pressure change information, volume change information and inflation amount change information based on the airbag change information; The airbag status information is generated based on the airbag pressure change information, volume change information and inflation amount change information.

4. The airbag force control method according to claim 3, characterized in that: Dynamically adjust airbag inflation parameters based on the correction information, including: Obtain airbag status information and analyze airbag status deviation rate; Setting a deviation rate threshold, the deviation rate threshold comprising a first deviation rate threshold and a second deviation rate threshold, and the first deviation rate threshold is less than the second deviation rate threshold; If the airbag state deviation rate is greater than a first deviation rate threshold and less than a second deviation rate threshold, first correction information is generated, and a first coefficient adjustment is performed on the airbag inflation parameter based on the first correction information; If the airbag state deviation rate is greater than or equal to the second deviation rate threshold, second correction information is generated, and a second coefficient adjustment is performed on the airbag inflation parameter based on the second correction information.

5. The airbag force control method according to claim 4, characterized in that: Generate airbag massage motion rules based on massage parameter information and form corresponding massage rhythm, specifically including: Acquire airbag pressure information at different time points based on massage parameter information; Analyze the pressure change information and pressure change sequence of each airbag based on the time node; Generate an airbag massage sequence based on the pressure change information and pressure change sequence of each airbag; An airbag massage motion rule is generated based on the airbag massage sequence, and a corresponding massage rhythm is generated according to the airbag massage motion rule.

6. The airbag force control method according to claim 5, characterized in that: Generate airbag massage movement rules based on massage parameter information and form corresponding massage rhythm, and also include: Obtaining real-time pressure information of each airbag based on massage parameter information; Compare the real-time pressure information with the upper pressure limit and the lower pressure limit; If the real-time pressure information is greater than the lower pressure limit and less than the upper pressure limit, the airbag continues to be inflated; If the real-time pressure information is equal to the upper pressure limit, the airbag stops inflating; If the real-time pressure information is greater than the upper pressure limit, the airbag is deflated; The airbag inflation volume is generated based on the real-time pressure information, the upper pressure limit and the lower pressure limit of the airbag, and the airbag massage movement rules are generated based on the airbag inflation volume to form a corresponding massage rhythm.

7. An airbag force control system, characterized in that: The system includes: a memory and a processor, wherein the memory includes a program of an airbag force control method, and when the program of the airbag force control method is executed by the processor, the following steps are implemented: Setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information; Inflate the airbag based on the airbag inflation parameter information and obtain the airbag status information in real time; Compare the airbag state information with the set state information to obtain the state deviation rate; Determining whether the state deviation rate is greater than or equal to a set deviation rate threshold; If it is greater than or equal to the set deviation rate threshold, correction information is generated, and the airbag inflation parameters are dynamically adjusted based on the correction information; If it is less than, the airbag massage movement rules are generated based on the massage parameter information and the corresponding massage rhythm is formed.

8. The airbag force control system according to claim 7, characterized in that: Setting massage parameter information, and setting airbag inflation parameter information based on the massage parameter information, specifically including: Acquire the setting information of the user personnel, and generate massage demand information based on the setting information of the user personnel; Setting matching massage parameter information based on massage demand information; Acquire current massage parameter information, compare the current massage parameter information with matched massage parameter information, and obtain parameter difference information; Dynamically adjust current massage parameter information based on parameter difference information to obtain target parameter information; The airbag inflation parameter information is set based on the target parameter information, and the airbag inflation parameter information includes airbag inflation time, airbag inflation pressure and airbag inflation sequence.

9. The airbag force control system according to claim 8, characterized in that: Inflate the airbag based on the airbag inflation parameter information and obtain the airbag status information in real time, including: Acquire airbag inflation parameter information, and inflate the airbag based on the airbag inflation parameter information; Obtain airbag pressure information, volume information and inflated volume in real time, and generate airbag change information; Analyze the airbag pressure change information, volume change information and inflation amount change information based on the airbag change information; The airbag status information is generated based on the airbag pressure change information, volume change information and inflation amount change information.

10. A computer-readable storage medium, characterized in that: The computer-readable storage medium includes an airbag force control method program, and when the airbag force control method program is executed by a processor, the steps of the airbag force control method according to any one of claims 1 to 6 are implemented.

Citation Information

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