A method, device, storage medium and electronic device for monitoring the pressure of a burn glove

By analyzing the actual movement posture and pressure distribution of burn hands, adjusting the pressure distribution of burn gloves, the problem of uneven pressure is solved and the effect of scar inhibition and rehabilitation training is improved.

CN119903273BActive Publication Date: 2025-07-25AFFILIATED HOSPITAL OF JIANGNAN UNIV
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Patent Information

Application Number
CN202510394231.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-31
Publication Date
2025-07-25
Estimated Expiration
2045-03-31

AI Technical Summary

Technical Problem

Existing burn gloves can easily lead to uneven pressure distribution when applying pressure, affecting the inhibitory effect of scar hyperplasia.

Method used

By obtaining the actual movement posture of the burned hand and the actual pressure of the wound area, analyzing the target area and pressure range, determining whether it is necessary to adjust the pressure of the optimized wound area, and adjust the pressure of the area to be optimized and the abnormal area to the appropriate pressure according to the weight and frequency data.

Benefits of technology

Improve the effect of burn gloves in inhibiting scar hyperplasia, ensure even pressure distribution, and promote the effect of hand rehabilitation training.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present application relates to a method, device, storage medium and electronic device for burn glove pressure monitoring, and relates to the technical field of pressure monitoring. The method includes: when all actual pressures are normal, based on the target area in the burned hand and the corresponding at least one target pressure range when the actual movement posture appears, determining whether to adjust and optimize the actual pressure of the wound area; if so, determining the area to be optimized that needs to be pressure-adjusted and optimized from each wound area; determining the first appropriate pressure of the area to be optimized, and adjusting the actual pressure of the area to be optimized to the first appropriate pressure; when there is an abnormal pressure among all actual pressures, determining the wound area corresponding to the abnormal pressure as the abnormal area, determining the second appropriate pressure of the abnormal area, and adjusting the actual pressure of the abnormal area to the second appropriate pressure. The present application can improve the effect of burn gloves on inhibiting scar hyperplasia.
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Description

Technical Field

[0001] The present application relates to the technical field of pressure monitoring, and particularly relates to a method, a device, a storage medium and an electronic device for monitoring the pressure of a burn glove. Background Art

[0002] A burn glove is a medical rehabilitation device specifically designed for burn patients, mainly used in the treatment and rehabilitation stages after hand burns. By uniformly applying appropriate pressure to the burn area through the burn glove, it helps to reduce the blood supply to the scar tissue, inhibit scar hyperplasia, make the scar tissue smoother and softer, reduce the degree of scar contracture, prevent deformities caused by scar contracture in the hand, and maintain the normal shape and function of the hand as much as possible. In addition, by providing a certain pressure effect on the burned hand through the burn glove, it better assists the burn patient in hand burn rehabilitation training and promotes the recovery of hand function. It can be seen that the pressure exerted by the burn glove on the burned hand is crucial for the recovery effect of hand burns.

[0003] Currently, the common method of applying pressure to the burned hand through a burn glove is as follows: Select an elastic glove as the burn glove, which is mainly made of elastic fabric. By virtue of the elastic characteristics of the elastic glove, the burn patient can apply pressure to the whole hand by wearing the elastic glove to inhibit scar hyperplasia in the burned hand. Once the burn patient wears the elastic glove and makes various movements, it will affect the pressure distribution in each area of the burned hand, and it is easy to have the problem of uneven pressure distribution, resulting in a poor effect of the burn glove in inhibiting scar hyperplasia. Summary of the Invention

[0004] In order to improve the effect of the burn glove in inhibiting scar hyperplasia, the present application provides a method, a device, a storage medium and an electronic device for monitoring the pressure of a burn glove.

[0005] In the first aspect of the present application, a method for monitoring the pressure of a burn glove is provided, which specifically includes:

[0006] Obtain the actual motion posture of the burned hand of the target patient and the actual pressure of each wound area in the hand burn wound surface, where the target patient is a hand burn patient wearing a burn glove, and the actual pressure is the pressure exerted by the burn glove on the wound area;

[0007] When each of the actual pressures is normal, based on the target area in the burned hand and the corresponding at least one target pressure range when the actual motion posture appears, determine whether to adjust and optimize the actual pressure on the wound area. The target area is the wound area in the burned hand of the target patient that is prone to uneven pressure distribution in the burned hand when the actual motion posture appears. The target pressure range is the applied pressure that is prone to prevent scar hyperplasia when the target area causes uneven pressure distribution in the burned hand.

[0008] When it is determined to adjust and optimize the actual pressure on the wound area, determine the area to be optimized that needs to have its pressure adjusted and optimized from each of the wound areas.

[0009] Determine the first appropriate pressure for the area to be optimized, and adjust the actual pressure of the area to be optimized to the first appropriate pressure.

[0010] When there is an abnormal pressure among the actual pressures, determine the wound area corresponding to the abnormal pressure as the abnormal area, determine the second appropriate pressure for the abnormal area, and adjust the actual pressure of the abnormal area to the second appropriate pressure.

[0011] By adopting the above technical solution, after obtaining the actual motion posture and actual pressure, when each actual pressure is normal, based on the target area and the corresponding target pressure range, analyze and determine the scar hyperplasia inhibition effect of the current burn glove on the burned hand, and then accurately determine whether to adjust and optimize the actual pressure on the wound area, so as to improve the scar inhibition effect of the burn glove on the burned hand. Further, if it is determined to adjust and optimize the actual pressure, then reasonably determine the area to be optimized from each wound area, and adjust the actual pressure of the area to be optimized to the first appropriate pressure. When there is an abnormal pressure, it means that the pressure applied to the abnormal area is too small, which is likely to cause uneven pressure distribution of the burn glove on the entire burned hand, thus affecting the scar hyperplasia inhibition effect. Then adjust the actual pressure of the abnormal area to the second appropriate pressure. Thus, the effect of the burn glove in inhibiting scar hyperplasia is better improved.

[0012] Optionally, the determining whether to adjust and optimize the actual pressure on the wound area based on the target area in the burned hand and the corresponding at least one target pressure range when the actual motion posture appears specifically includes:

[0013] Obtain the historical wound areas that caused uneven pressure distribution on the burned hand when the first historical burn patient presented the actual movement posture, count the occurrence times of each of the historical wound areas, and select the first number of historical wound areas from each of the historical wound areas in descending order of the occurrence times to determine the target areas; the first historical burn patient is a patient with the same hand burn type and patient portrait as the target patient;

[0014] Count the number of first historical burn patients who developed scar hyperplasia when the historical pressure reapplied caused uneven pressure distribution on the burned hand in a single target area and was within a single pressure range;

[0015] Select the second number of pressure ranges from each of the pressure ranges in descending order of the number of people to determine the target pressure range corresponding to a single target area;

[0016] Determine the first weight for each target area and the second weight for the target pressure range corresponding to each target area. The first weight is the ratio of the occurrence times of each target area to the sum of the occurrence times of all target areas, and the second weight is the ratio of the number of people in the single target pressure range corresponding to the target area to the total number of people in all corresponding target pressure ranges;

[0017] Based on the first weight and the corresponding second weight, determine whether to adjust and optimize the actual pressure on the wound area.

[0018] By adopting the above technical solution, the larger the occurrence times, the easier the pressure applied to the corresponding historical wound area under the actual movement posture is to cause uneven pressure distribution on the entire burned hand, thereby inducing scar hyperplasia on the hand burn wound, and then determining the target area; the larger the number of people, the worse the effect of inhibiting scar hyperplasia when the pressure applied to the target area is within the corresponding pressure range, and then determining the target pressure range. Finally, combining the first weight and the corresponding second weight, analyze and determine the scar inhibition effect of the actual pressure applied to each current wound area, so as to accurately determine whether to adjust and optimize the actual pressure on the wound area.

[0019] Optionally, the determining whether to adjust and optimize the actual pressure on the wound area based on the first weight and the corresponding second weight specifically includes:

[0020] If the wound area is a target area, then determine the corresponding wound area as a reference area, and when the actual pressure in the reference area is within the corresponding target pressure range, determine the corresponding target pressure range as the reference pressure range;

[0021] Calculate the first product of the first weight of each of the reference regions and the second weight of the corresponding reference pressure range, and sum up the first products to obtain the sum of the first products;

[0022] Compare the sum of the first products with a preset first threshold. If the sum of the first products exceeds the first threshold, it is determined that the actual pressure on the wound area needs to be adjusted and optimized;

[0023] Determining the area to be optimized that needs pressure adjustment and optimization from each of the wound areas specifically includes:

[0024] If the first product exceeds a preset second threshold, the corresponding reference region is determined as the area to be optimized that needs pressure adjustment and optimization.

[0025] By adopting the above technical solution, the larger the sum of the first products, the worse the overall effect of the burn glove in suppressing scar hyperplasia on the target patient at present. If the sum of the first products exceeds the preset first threshold, it indicates that although there is no actual pressure being too small at present, the overall effect of the burn glove in suppressing scar hyperplasia on the target patient is poor, and it is determined that the actual pressure on the wound area needs to be adjusted and optimized. If the first product exceeds the second threshold, when the pressure applied at the reference region is within the corresponding reference pressure range, it is more likely to cause problems such as uneven pressure distribution and poor pressurization effect, which is not conducive to the recovery of the reference region. Then, the corresponding reference region is determined as the area to be optimized that needs pressure adjustment and optimization, so as to more accurately determine the area to be optimized.

[0026] Optionally, determining the first appropriate pressure of the area to be optimized specifically includes:

[0027] When the actual action posture is a rehabilitation training action, obtain the pressurized wound areas that generate rehabilitation effects during rehabilitation training of the second historical burn patient in the actual action posture, and count the first occurrence frequency of each of the pressurized wound areas; the second historical burn patient is a patient with the same hand burn type and patient portrait as the target patient;

[0028] Select the third number of pressurized wound areas from each of the pressurized wound areas in descending order of the first occurrence frequency and determine them as key wound areas;

[0029] When there is an effect during rehabilitation training in the actual action posture, obtain the training pressure range where the training pressure applied to a single key wound area is located, and count the second occurrence frequency of each of the training pressure ranges;

[0030] Select the fourth number of training pressure intervals from each of the training pressure intervals in descending order of the second occurrence frequency, and determine them as the key pressure intervals corresponding to a single key wound area;

[0031] Determine the third weight of each key wound area and the fourth weight of the key pressure interval corresponding to each key wound area. The third weight is the ratio of the first occurrence frequency of each key wound area to the sum of the first occurrence frequencies of all key wound areas, and the fourth weight is the ratio of the second occurrence frequency of a single key pressure interval corresponding to a key wound area to the sum of the second occurrence frequencies of the corresponding key pressure intervals;

[0032] Based on the third weight and the corresponding fourth weight, determine the first suitable pressure for the area to be optimized.

[0033] By adopting the above technical solution, the greater the first occurrence frequency, the more easily the rehabilitation training takes effect by increasing the pressure on the corresponding pressure-applied wound area, and then the key wound area is determined; the greater the second occurrence frequency, the more easily the rehabilitation training produces effects when the training pressure applied by the burn glove is within the corresponding training pressure interval, and then the key pressure interval is determined. Finally, by combining the analysis of the third weight and the corresponding fourth weight, the pressure suitable for being applied to the area to be optimized is determined more accurately.

[0034] Optionally, the determining the first suitable pressure for the area to be optimized based on the third weight and the corresponding fourth weight specifically includes:

[0035] When the area to be optimized is the target area, calculate the second product of the first weight of the area to be optimized and the second weights of the corresponding target pressure intervals;

[0036] Select the smallest second product from each of the second products, and determine the target pressure interval corresponding to the smallest second product as the first candidate interval;

[0037] When the area to be optimized is the key wound area, calculate the third product of the third weight of the area to be optimized and the fourth weights of the corresponding key pressure intervals;

[0038] Select the largest third product from each of the third products, and determine the key pressure interval corresponding to the largest third product as the second candidate interval;

[0039] Perform an intersection operation on the first candidate interval and the second candidate interval to obtain the first suitable pressure for the area to be optimized.

[0040] By adopting the above technical solution, the larger the second product is, when the pressure applied to the area to be optimized is within the corresponding target pressure range, the worse the effect of inhibiting scar hyperplasia is. Thus, the first candidate range is determined, that is, the pressure range with the optimal effect of inhibiting scar hyperplasia. The larger the third product is, when the pressure applied to the area to be optimized is within the corresponding key pressure range, it is easier to achieve the effect of rehabilitation training with this actual movement posture. Thus, the second candidate range is determined, that is, the pressure range in which the rehabilitation training effect is most easily achieved. Finally, the intersection operation is performed on the first candidate range and the second candidate range to obtain the first suitable pressure. The actual pressure on the area to be optimized is adjusted to this first suitable pressure in real time. Under this first suitable pressure, not only can the scar hyperplasia of the corresponding wound area of the target patient be better inhibited, but also the effect of rehabilitation training can be achieved.

[0041] Optionally, the method further includes:

[0042] When the abnormal area is the target area, if the abnormal pressure is included in the target pressure range corresponding to the abnormal area, the corresponding target pressure range is determined as the abnormal pressure range, and the actual pressure of the abnormal area is less than the corresponding pressure threshold;

[0043] Calculate the fourth product of the first weight of the abnormal area and the second weight of the corresponding abnormal pressure range. If the fourth product does not exceed the preset second threshold, adjust the pressure threshold corresponding to the abnormal area.

[0044] By adopting the above technical solution, the smaller the fourth product is, when the pressure applied to the abnormal area is within the corresponding abnormal pressure range, the better the effect of inhibiting scar hyperplasia is. If the fourth product does not exceed the preset second threshold, it indicates that applying abnormal pressure to this abnormal area has a good effect on inhibiting scar hyperplasia, proving that the actual pressure of this abnormal area is not abnormal, indicating that the pressure threshold corresponding to this abnormal area is incorrect and needs to be adjusted.

[0045] Optionally, the adjustment of the pressure threshold corresponding to the abnormal area specifically includes:

[0046] Obtain the initial pressure threshold sent by the terminal, and based on the initial pressure threshold, divide each target pressure range corresponding to the abnormal area into a first pressure range and a second pressure range. The pressure values in the first pressure range are not less than the initial pressure threshold, and the pressure values in the second pressure range are less than the initial pressure threshold;

[0047] Calculate the sum of the fifth products of the first weight of the abnormal area and the second weights of the corresponding first pressure ranges to obtain the sum of the second products;

[0048] Calculate the sixth product of the first weight of the abnormal area and the second weights of the corresponding second pressure intervals and sum them to obtain the sum of the third products;

[0049] If the sum of the second products is not greater than the sum of the third products, adjust the pressure threshold corresponding to the abnormal area to the initial pressure threshold.

[0050] By adopting the above technical solution, if the sum of the second products is not greater than the sum of the third products, and further verify that this initial pressure threshold is relatively reasonable, then adjust the pressure threshold corresponding to the abnormal area to the initial pressure threshold. Thus, an accurate judgment can be achieved on whether the pressure in the abnormal area is abnormal in the subsequent process.

[0051] In the second aspect of the present application, a pressure monitoring device for a burn glove is provided, which specifically includes:

[0052] An information acquisition module, configured to acquire the actual motion posture of the burned hand of the target patient and the actual pressure of each wound area in the hand burn wound surface. The target patient is a hand burn patient wearing a burn glove, and the actual pressure is the pressure exerted by the burn glove on the wound area;

[0053] An adjustment judgment module, configured to determine whether to adjust and optimize the actual pressure of the wound area based on the target area and the corresponding at least one target pressure interval in the burned hand when the actual motion posture appears when each actual pressure is normal. The target area is the wound area in the hand burn wound surface of the target patient that is prone to cause uneven pressure distribution in the burned hand when the actual motion posture appears, and the target pressure interval is the applied pressure that is prone to prevent scar hyperplasia when the target area causes uneven pressure distribution in the burned hand;

[0054] A region determination module, configured to determine the area to be optimized that needs to be pressure-adjusted and optimized from each wound area when it is determined to adjust and optimize the actual pressure of the wound area;

[0055] A first pressure adjustment module, configured to determine the first appropriate pressure of the area to be optimized and adjust the actual pressure of the area to be optimized to the first appropriate pressure;

[0056] A second pressure adjustment module, configured to determine the abnormal area as the abnormal area when there is an abnormal pressure among each actual pressure, determine the second appropriate pressure of the abnormal area, and adjust the actual pressure of the abnormal area to the second appropriate pressure.

[0057] By adopting the above technical solutions, the information acquisition module acquires the actual movement posture and the actual pressure of each wound area. Then, the adjustment judgment module determines whether to adjust and optimize the actual pressure of the wound area. The area determination module determines the area to be optimized from each wound area. The first pressure regulation module determines the first appropriate pressure of the area to be optimized and adjusts the actual pressure of the area to be optimized to the first appropriate pressure. Finally, the second pressure regulation module determines the second appropriate pressure of the abnormal area and adjusts the actual pressure of the abnormal area to the second appropriate pressure.

[0058] In the third aspect of the present application, a computer-readable storage medium is provided. A computer program is stored in the computer-readable storage medium. When the computer program is loaded and executed by a processor, the method steps described in any one of the first aspects are executed.

[0059] In the fourth aspect of the present application, an electronic device is provided, specifically including:

[0060] A processor, a memory, and a computer program stored in the memory and capable of running on the processor. The processor is used to load and execute the computer program stored in the memory so that the electronic device executes the method described in any one of the first aspects.

[0061] In summary, the present application includes at least one of the following beneficial technical effects: After acquiring the actual movement posture and actual pressure, when all the actual pressures are normal, based on the target area and the corresponding target pressure range, the scar hyperplasia inhibition effect of the current burn glove on the burned hand is analyzed and determined, and then it is accurately determined whether to adjust and optimize the actual pressure of the wound area, so as to improve the scar inhibition effect of the burn glove on the burned hand. Further, if it is determined to adjust and optimize the actual pressure, then the area to be optimized is reasonably determined from each wound area, and the actual pressure of the area to be optimized is adjusted to the first appropriate pressure. When there is abnormal pressure, it means that the pressure applied to the abnormal area is too small, which is likely to cause uneven pressure distribution of the burn glove on the entire burned hand, thus affecting the scar hyperplasia inhibition effect. Then, the actual pressure of the abnormal area is adjusted to the second appropriate pressure. Thus, the effect of the burn glove on inhibiting scar hyperplasia is better improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0062] Figure 1 is a schematic flowchart of a burn glove pressure monitoring method provided by an embodiment of the present application;

[0063] Figure 2 is a schematic structural diagram of a burn glove pressure monitoring device provided by an embodiment of the present application;

[0064] Figure 3It is a schematic structural diagram of another burn glove pressure monitoring device provided by an embodiment of the present application.

[0065] Explanation of reference numerals: 11, information acquisition module; 12, adjustment and judgment module; 13, area determination module; 14, first pressure regulation module; 15, second pressure regulation module; 16, threshold adjustment module. Detailed implementation manners

[0066] In order to enable those skilled in the art to better understand the technical solutions in this specification, the following will clearly and completely describe the technical solutions in the embodiments of this specification with reference to the accompanying drawings in the embodiments of this specification. Obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments.

[0067] In the description of the embodiments of the present application, words such as "exemplarily", "for example" or "for instance" are used to indicate examples, illustrations or explanations. Any embodiment or design solution described as "exemplarily", "for example" or "for instance" in the embodiments of the present application should not be construed as being more preferred or having more advantages than other embodiments or design solutions. Exactly speaking, using words such as "exemplarily", "for example" or "for instance" aims to present relevant concepts in a specific manner.

[0068] In the description of the embodiments of the present application, the term "and / or" only describes the association relationship of associated objects, indicating that there can be three relationships. For example, A and / or B can represent: A exists alone, B exists alone, and both A and B exist at the same time. In addition, unless otherwise specified, the meaning of the term "plurality" refers to two or more. For example, a plurality of systems refers to two or more systems, and a plurality of screen terminals refers to two or more screen terminals. In addition, the terms "first" and "second" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the technical features indicated. Thus, the features defined with "first" and "second" may explicitly or implicitly include one or more of such features. The terms "include", "comprise", "have" and their variants all mean "including but not limited to", unless otherwise specifically emphasized in other ways.

[0069] See Figure 1 , the embodiments of the present application disclose a flow schematic diagram of a burn glove pressure monitoring method, which can be implemented depending on a computer program or run on a burn glove pressure monitoring device based on the von Neumann architecture. This computer program can be integrated in an application or run as an independent tool-like application, and specifically includes:

[0070] S101: Obtain the actual motion posture of the burned hand of the target patient and the actual pressures of each wound area in the hand burn wound.

[0071] Specifically, the target patient is a hand burn patient wearing a burn glove, and the actual pressure is the pressure exerted by the burn glove on the wound area. The hand burn wound is the skin area of the target patient's hand with burns that requires pressure application for auxiliary recovery. The hand burn wound includes, but is not limited to, wound areas such as the back of the hand, the palm, and each finger. The actual movement posture is the hand movement currently made by the burned hand of the target patient. Exemplarily, the actual movement posture can be movement postures such as grasping, stretching, and pinching. Among them, the burn glove can be a rehabilitation glove that supports adjusting the pressure applied to each area of the hand. In other embodiments, the burn glove can also be an elastic glove.

[0072] Furthermore, the execution subject of a burn glove pressure monitoring method disclosed in an embodiment of the present application is a server. The server is wirelessly connected to the burn glove. The server is an independent physical server or can also be a server cluster composed of multiple physical servers. In other embodiments, the execution subject can also be the burn glove itself. Additionally, a feasible way to obtain the actual movement posture is: obtaining the actual movement posture currently made by the burned hand of the target user through a preset infrared sensor. Further, a feasible way to obtain the actual pressure of each wound area is: the pressure sensor built in the burn glove can be used to obtain the pressure exerted by the burn glove on each wound area, that is, the actual pressure. Among them, the pressure sensor can be a thin-film pressure sensor or a micro-capacitive pressure sensor.

[0073] S102: When each actual pressure is normal, based on the target area and the corresponding at least one target pressure interval in the burned hand when the actual movement posture appears, determine whether to adjust and optimize the actual pressure of the wound area.

[0074] S103: When it is determined to adjust and optimize the actual pressure of the wound area, determine the area to be optimized that needs to have its pressure adjusted and optimized from each wound area.

[0075] Specifically, the target area is the wound area in the hand burn wound of the target patient that is prone to uneven pressure distribution in the burned hand when the actual action posture appears. The target pressure range is the pressure applied that is prone to preventing scar hyperplasia when the target area causes uneven pressure distribution in the burned hand. After obtaining the actual pressure, compare each actual pressure with the pressure threshold of the corresponding wound area. If the actual pressure is less than the pressure threshold, it means that the pressure applied to this wound area is too small to effectively exert the pressurizing effect, resulting in uneven pressure distribution in the hand and unable to effectively inhibit scar hyperplasia. Then, determine that the actual pressure is abnormal; otherwise, determine that the actual pressure is normal. When all actual pressures are normal, based on the hospital's records of scar appearance in historical patients with hand burns, which include but are not limited to the burned areas where historical patients with hand burns have uneven pressure distribution under different hand movements and the corresponding set pressures, etc., obtain the historical wound area in the burned hand that causes uneven pressure distribution when the first historical burn patient appears in the actual action posture. Among them, the first historical burn patient is a patient with the same hand burn type and patient portrait as the target patient. The hand burn type reflects the distribution of the burn wound on the patient's hand and the burn grade, etc. The patient portrait is a representative user model abstracted based on basic information, basic diseases, and past medical history, etc. The basic information includes but is not limited to information such as gender and age.

[0076] Further, count the number of occurrences of each historical wound area. The larger the number of occurrences, the more likely the pressure applied to the corresponding historical wound area will change under the actual action posture, causing uneven pressure distribution in the entire burned hand, thereby inducing scar hyperplasia in the hand burn wound. Select the first number of historical wound areas from each historical wound area in descending order of the number of occurrences and determine them as the target areas. Then, count the number of the first historical burn patients who finally develop scar hyperplasia when the historical pressure reapplied causes uneven pressure distribution in a single target area and is within a single pressure range. The larger the number, the worse the effect of inhibiting scar hyperplasia when the pressure applied to the target area is within the corresponding pressure range. Select the second number of pressure ranges from each pressure range in descending order of the number of people and determine them as the target pressure ranges corresponding to the target area.

[0077] Further, determine the first weight of each target area. The first weight is the ratio of the number of occurrences of each target area to the sum of the number of occurrences of all target areas. Then, determine the second weight of the target pressure range corresponding to each target area. The second weight is the ratio of the number of people in the single target pressure range corresponding to the target area to the total number of people in all the target pressure ranges corresponding to it.

[0078] Finally, based on the first weight and the corresponding second weight, it is determined whether it is necessary to adjust and optimize the actual pressure of the wound area, so as to better inhibit scar hyperplasia. A feasible implementation method is as follows: If the wound area is the target area, then the wound area is determined as the reference area, and when the actual pressure of the reference area is within the corresponding target pressure range, the corresponding target pressure range is determined as the reference pressure range. Then calculate the first product of the first weight of each reference area and the second weight of the corresponding reference pressure range. The larger the first product, the worse the effect of inhibiting scar hyperplasia when the pressure applied to the reference area is within the corresponding reference pressure range. Then, sum up the first products corresponding to each reference area to obtain the sum of the first products. The larger the sum of the first products, the worse the overall effect of the burn gloves on suppressing scar hyperplasia for the target patient currently.

[0079] Furthermore, if the sum of the first products exceeds a preset first threshold, it indicates that although there is no situation where the actual pressure is too small currently, the overall effect of the burn gloves on suppressing scar hyperplasia for the target patient is poor, and it is determined that it is necessary to adjust and optimize the actual pressure of the wound area; otherwise, it is determined that no adjustment and optimization are required. When it is determined to adjust and optimize the actual pressure of the wound area, compare each first product with a preset second threshold. If the first product exceeds the second threshold, when the pressure applied at the reference area is within the corresponding reference pressure range, it is likely to cause problems such as uneven pressure distribution and poor pressurization effect, which is not conducive to the recovery of the reference area. Then, determine the corresponding reference area as the area to be optimized that needs to be pressure-adjusted and optimized.

[0080] S104: Determine the first appropriate pressure of the area to be optimized, and adjust the actual pressure of the area to be optimized to the first appropriate pressure.

[0081] Specifically, after determining the area to be optimized, it is necessary to determine the first appropriate pressure for the area to be optimized. A feasible determination method is as follows: Compare this actual movement posture with each rehabilitation training movement in the preset rehabilitation training movement library. When it is determined that the actual movement posture is a rehabilitation training movement, based on the rehabilitation training records of historical hand burn patients in the hospital, obtain the pressurized wound area where the second historical burn patient had a rehabilitation effect during rehabilitation training with the actual movement posture, and count the first occurrence frequency of each pressurized wound area. The greater the first occurrence frequency, the easier it is for the rehabilitation training to take effect when pressurizing the corresponding pressurized wound area. It should be noted that when performing rehabilitation training, the wound is pressurized through a burn glove, which can simulate the pressure and load that the hand bears during normal use, promote the remodeling and adaptation of muscles, bones, and joints, and result in a better hand function recovery effect. Among them, the second historical burn patient is a patient with the same hand burn type, patient profile, and target patient. In addition, the rehabilitation training records include, but are not limited to, information such as different rehabilitation training movements that historical hand burn patients have reported as effective and the pressure application conditions of the hand burn areas. Among them, the first occurrence frequency is the frequency of the same pressurized wound area appearing among all pressurized wound areas.

[0082] Further, select the third number of pressurized wound areas from each pressurized wound area in descending order of the first occurrence frequency and determine them as key wound areas, that is, the pressurized wound areas where it is easy to produce a good rehabilitation training effect during pressurization. Then, when there is an effect in the rehabilitation training with the actual movement posture, obtain the training pressure range to which the training pressure applied to a single key wound area belongs, and count the second occurrence frequency of each training pressure range. The greater the second occurrence frequency, the easier it is for the rehabilitation training to produce an effect when the training pressure applied through the burn glove is within the corresponding training pressure range. Further, select the fourth number of training pressure ranges from each training pressure range in descending order of the second occurrence frequency and determine them as the key pressure ranges corresponding to the key wound area, that is, the training pressure ranges where it is easy to produce a rehabilitation effect.

[0083] Determine the third weight of each key wound area. The third weight is the ratio of the first occurrence frequency of each key wound area to the sum of the first occurrence frequencies of all key wound areas. Then determine the fourth weight of the key pressure range corresponding to each key wound area. The fourth weight is the ratio of the second occurrence frequency of a single key pressure range corresponding to the key wound area to the sum of the second occurrence frequencies of all corresponding key pressure ranges. Further, determine the first appropriate pressure for the area to be optimized according to the third weight and the corresponding fourth weight. In an implementable implementation manner in this embodiment of the present application:

[0084] If the area to be optimized is the target area, calculate the second product of the first weight of the area to be optimized and the second weights of the corresponding target pressure intervals. The larger the second product, the worse the effect of inhibiting scar hyperplasia when the pressure applied to the area to be optimized is within the corresponding target pressure interval. Then, select the smallest second product from each of the second products, and determine the target pressure interval corresponding to this smallest second product as the first candidate interval, that is, the pressure interval with the best effect of inhibiting scar hyperplasia. At the same time, determine whether the area to be optimized is a key wound area. If it is a key wound area, then calculate the third product of the third weight of the area to be optimized and the fourth weights of the corresponding key pressure intervals. The larger the third product, the easier it is to produce an effect when the pressure applied to the area to be optimized is within the corresponding key pressure interval for rehabilitation training with this actual movement posture. Then, select the largest third product from each of the third products, and determine the key pressure interval corresponding to this largest third product as the second candidate interval, that is, the pressure interval that is most likely to produce the effect of rehabilitation training. Then, perform an intersection operation on the first candidate interval and the second candidate interval, and determine the pressure value within the intersection interval as the first appropriate pressure.

[0085] Finally, through the burn glove, the actual pressure on the area to be optimized is adjusted in real time to this first appropriate pressure. Under this first appropriate pressure, not only can the scar hyperplasia of the corresponding wound area of the target patient be better inhibited, but also the effect of rehabilitation training can be achieved. Exemplarily, the burn glove is an intelligent pneumatic rehabilitation glove, and specifically adjusts the inflation or deflation amount of the air pump to achieve the adjustment of the pressure of the glove on the hand. This is the prior art and will not be elaborated here. In other embodiments, this first appropriate pressure can also be sent to the terminal of the target patient to remind the target patient to manually adjust the pressure applied by the burn glove to the area to be optimized. The terminal can be a personal computer or a smart phone.

[0086] In other embodiments, after the actual movement posture is completed, obtain the real-time pressure values of each wound area of the burned hand of the target patient. If the real-time pressure value is within the key pressure interval, then determine the corresponding key pressure interval as the important pressure interval, and determine the corresponding real-time pressure value as the important pressure value. If there is an important pressure interval among the key pressure intervals corresponding to the key wound area, then determine the key wound area as the important wound area. When this important wound area is the wound area corresponding to the important pressure value, calculate the product of the third weight of a single important wound area and the fourth weight of the corresponding important pressure interval, and sum up each product to obtain the sum of products. If the sum of products exceeds the preset sum-of-products threshold, and the better the effect of rehabilitation training with the actual movement posture under the current pressure of the burn glove on the burned hand, then send a rehabilitation training reminder for the actual movement posture to the terminal of the target patient.

[0087] S105: When there is an abnormal pressure among the actual pressures, determine the wound area corresponding to the abnormal pressure as the abnormal area, determine the second appropriate pressure for the abnormal area, and adjust the actual pressure of the abnormal area to the second appropriate pressure.

[0088] Specifically, if there is an abnormal pressure among the actual pressures, then determine the wound area corresponding to the abnormal pressure as the abnormal area. At the same time, when the abnormal area is the target area, select the target pressure range with the second smallest weight from the target pressure ranges corresponding to the abnormal area, and determine the maximum value in this target pressure range as the second appropriate pressure, and adjust the actual pressure of the abnormal area to the second appropriate pressure. In other embodiments, when the abnormal area is the target area, if the target pressure range corresponding to the abnormal area contains the abnormal pressure, then determine the corresponding target pressure range as the abnormal pressure range, where the actual pressure of the abnormal area is less than the corresponding pressure threshold.

[0089] Further, calculate the fourth product of the first weight of the abnormal area and the second weight of the corresponding abnormal pressure range. The smaller the fourth product, the better the effect of inhibiting scar hyperplasia when the pressure applied to the abnormal area is within the corresponding abnormal pressure range. If the fourth product does not exceed the preset second threshold, it indicates that applying the abnormal pressure to this abnormal area has a better effect of inhibiting scar hyperplasia, proving that the actual pressure of this abnormal area is not abnormal, indicating that the corresponding pressure threshold of this abnormal area is incorrect and needs to be adjusted. A feasible way to adjust the pressure threshold corresponding to the abnormal area is as follows:

[0090] Obtain the initial pressure threshold sent by the terminal. Specifically, the initial pressure threshold sent by the doctor's personal computer or smartphone can be obtained. Then, based on this initial pressure threshold, divide the target pressure ranges corresponding to the abnormal area into a first pressure range and a second pressure range. The pressure values in the first pressure range are not less than the initial pressure threshold, and the pressure values in the second pressure range are less than the initial pressure threshold. Then, calculate the sum of the fifth products of the first weight of the abnormal area and the second weights of the corresponding first pressure ranges to obtain the sum of the second products. Calculate the sum of the sixth products of the first weight of the abnormal area and the second weights of the corresponding second pressure ranges to obtain the sum of the third products. If the sum of the second products is not greater than the sum of the third products, it indicates that the effect of scar inhibition on the abnormal area under the first premise is better than that under the second premise, and further verifies that this initial pressure threshold is relatively reasonable. Then, adjust the pressure threshold corresponding to the abnormal area to the initial pressure threshold. Wherein, the first premise is that the applied pressure is not less than this initial pressure threshold, and the second premise is that the applied pressure is less than this initial pressure threshold.

[0091] The implementation principle of the burn glove pressure monitoring method in the embodiments of this application is as follows: After obtaining the actual motion posture and actual pressure, when all the actual pressures are normal, based on the target area and the corresponding target pressure range, analyze and determine the scar hyperplasia inhibition effect of the current burn glove on the burned hand, and then accurately determine whether to adjust and optimize the actual pressure on the wound area, so as to improve the scar inhibition effect of the burn glove on the burned hand. Further, if it is determined to adjust and optimize the actual pressure, then reasonably determine the area to be optimized from each wound area, and adjust the actual pressure of the area to be optimized to the first appropriate pressure. When there is abnormal pressure, it means that the pressure applied to the abnormal area is too small, which is likely to cause uneven pressure distribution of the burn glove on the entire burned hand, thus affecting the scar hyperplasia inhibition effect. Then, adjust the actual pressure of the abnormal area to the second appropriate pressure. Thus, it can better improve the effect of the burn glove in inhibiting scar hyperplasia.

[0092] The following is an embodiment of the device of this application, which can be used to execute the method embodiment of this application. For details not disclosed in the device embodiment of this application, please refer to the method embodiment of this application.

[0093] Please refer to Figure 2 , which is a schematic structural diagram of the burn glove pressure monitoring device provided by the embodiment of this application. The device applied to the burn glove pressure monitoring can be implemented as all or part of the device through software, hardware, or a combination of both. The device includes an information acquisition module 11, an adjustment judgment module 12, a region determination module 13, a first pressure adjustment module 14, and a second pressure adjustment module 15.

[0094] The information acquisition module 11 is used to acquire the actual motion posture of the burned hand of the target patient and the actual pressure of each wound area in the hand burn wound. The target patient is a hand burn patient wearing a burn glove, and the actual pressure is the pressure applied by the burn glove to the wound area;

[0095] The adjustment judgment module 12 is used to determine whether to adjust and optimize the actual pressure of the wound area based on the target area in the burned hand and the corresponding at least one target pressure range when the actual motion posture appears when all the actual pressures are normal. The target area is the wound area in the hand burn wound of the target patient that is prone to causing uneven pressure distribution of the burned hand when the actual motion posture appears. The target pressure range is the applied pressure that is prone to preventing scar hyperplasia when the target area causes uneven pressure distribution of the burned hand;

[0096] The region determination module 13 is used to determine the area to be optimized that needs to be pressure-adjusted and optimized from each wound area when it is determined to adjust and optimize the actual pressure of the wound area;

[0097] The first pressure regulating module 14 is used to determine the first appropriate pressure of the area to be optimized and adjust the actual pressure of the area to be optimized to the first appropriate pressure;

[0098] The second pressure regulating module 15 is used to, when there is an abnormal pressure among the actual pressures, determine the wound area corresponding to the abnormal pressure as the abnormal area, determine the second appropriate pressure of the abnormal area, and adjust the actual pressure of the abnormal area to the second appropriate pressure.

[0099] Optionally, the adjustment judgment module 12 is specifically used for:

[0100] Obtain the historical wound area where the pressure distribution of the burned hand is uneven when the first historical burned patient shows an actual action posture, count the occurrence times of each historical wound area, and select the first number of historical wound areas from the historical wound areas in descending order of the occurrence times to be determined as the target areas; the first historical burned patient is a patient with the same hand burn type and patient portrait as the target patient;

[0101] Count the number of first historical burned patients with scar hyperplasia when the historical pressure reapplied when the pressure distribution of the burned hand is uneven in a single target area is within a single pressure range;

[0102] Select the second number of pressure ranges from each pressure range in descending order of the number of people to be determined as the target pressure range corresponding to the single target area;

[0103] Determine the first weight of each target area and the second weight of the target pressure range corresponding to each target area. The first weight is the ratio of the occurrence times of each target area to the sum of the occurrence times of all target areas, and the second weight is the ratio of the number of people in the single target pressure range corresponding to the target area to the total number of people in all corresponding target pressure ranges;

[0104] Based on the first weight and the corresponding second weight, determine whether to adjust and optimize the actual pressure of the wound area.

[0105] Optionally, the adjustment judgment module 12 is specifically used for:

[0106] If the wound area is a target area, determine the corresponding wound area as the reference area, and when the actual pressure of the reference area is within the corresponding target pressure range, determine the corresponding target pressure range as the reference pressure range;

[0107] Calculate the first product of the first weight of each reference area and the second weight of the corresponding reference pressure range, and sum up the first products to obtain the sum of the first products;

[0108] Compare the sum of the first products with a preset first threshold. If the sum of the first products exceeds the first threshold, it is determined that the actual pressure on the wound area needs to be adjusted and optimized.

[0109] Optionally, the area determination module 13 is specifically configured to:

[0110] If the first product exceeds a preset second threshold, the corresponding reference area is determined as the area to be optimized that needs to be pressure-adjusted and optimized.

[0111] Optionally, the first pressure regulation module 14 is specifically configured to:

[0112] When the actual action posture is a rehabilitation training action, obtain the pressure-applied wound areas where pressure boosting generates rehabilitation effects when the second historical burn patient performs rehabilitation training in the actual action posture, and count the first occurrence frequency of each pressure-applied wound area; the second historical burn patient is a patient with a hand burn type, and the patient portrait is the same as that of the target patient;

[0113] Select the third number of pressure-applied wound areas from each pressure-applied wound area in descending order of the first occurrence frequency and determine them as key wound areas;

[0114] When there is an effect in the rehabilitation training in the actual action posture, obtain the training pressure interval where the training pressure applied to a single key wound area is located, and count the second occurrence frequency of each training pressure interval;

[0115] Select the fourth number of training pressure intervals from each training pressure interval in descending order of the second occurrence frequency and determine them as the key pressure intervals corresponding to a single key wound area;

[0116] Determine the third weight of each key wound area and the fourth weight of the key pressure interval corresponding to each key wound area. The third weight is the ratio of the first occurrence frequency of each key wound area to the sum of the first occurrence frequencies of all key wound areas, and the fourth weight is the ratio of the second occurrence frequency of the single key pressure interval corresponding to the key wound area to the sum of the second occurrence frequencies of all corresponding key pressure intervals;

[0117] Based on the third weight and the corresponding fourth weight, determine the first appropriate pressure for the area to be optimized.

[0118] Optionally, the first pressure regulation module 14 is specifically configured to:

[0119] When the area to be optimized is the target area, calculate the second product of the first weight of the area to be optimized and the second weights of the corresponding target pressure intervals;

[0120] Select the minimum second product from each of the second products, and determine the target pressure range corresponding to the minimum second product as the first candidate range;

[0121] When the area to be optimized is the key wound area, calculate the third product of the third weight of the area to be optimized and the fourth weights of the corresponding key pressure ranges;

[0122] Select the maximum third product from each of the third products, and determine the key pressure range corresponding to the maximum third product as the second candidate range;

[0123] Perform an intersection operation on the first candidate range and the second candidate range to obtain the first suitable pressure for the area to be optimized.

[0124] Optionally, as Figure 3 shown, the device further includes a threshold adjustment module 16, specifically for:

[0125] When the abnormal area is the target area, if the abnormal pressure is included in the target pressure range corresponding to the abnormal area, determine the corresponding target pressure range as the abnormal pressure range, and the actual pressure of the abnormal area is less than the corresponding pressure threshold;

[0126] Calculate the fourth product of the first weight of the abnormal area and the second weight of the corresponding abnormal pressure range. If the fourth product does not exceed the preset second threshold, adjust the pressure threshold corresponding to the abnormal area.

[0127] Optionally, the threshold adjustment module 16 is specifically for:

[0128] Obtain the initial pressure threshold sent by the terminal, and based on the initial pressure threshold, divide the target pressure ranges corresponding to the abnormal area into a first pressure range and a second pressure range. The pressure values in the first pressure range are not less than the initial pressure threshold, and the pressure values in the second pressure range are less than the initial pressure threshold;

[0129] Calculate the sum of the fifth products of the first weight of the abnormal area and the second weights of the corresponding first pressure ranges to obtain the sum of the second products;

[0130] Calculate the sum of the sixth products of the first weight of the abnormal area and the second weights of the corresponding second pressure ranges to obtain the sum of the third products;

[0131] If the sum of the second products is not greater than the sum of the third products, adjust the pressure threshold corresponding to the abnormal area to the initial pressure threshold.

[0132] It should be noted that when the burn glove pressure monitoring device provided in the above embodiment executes the burn glove pressure monitoring method, only the division of the above functional modules is used for illustration. In actual applications, the above functions can be allocated to different functional modules according to needs, that is, the internal structure of the device is divided into different functional modules to complete all or part of the functions described above. In addition, the burn glove pressure monitoring device provided in the above embodiment and the embodiment of the burn glove pressure monitoring method belong to the same concept. For the implementation process, please refer to the method embodiment and will not be elaborated here.

[0133] An embodiment of the present application also discloses a computer-readable storage medium. The computer-readable storage medium stores a computer program. When the computer program is executed by a processor, a burn glove pressure monitoring method of the above embodiment is adopted.

[0134] Among them, the computer program can be stored in a computer-readable medium. The computer program includes computer program code, and the computer program code can be in the form of source code, object code, executable file or some middleware form, etc. The computer-readable medium includes any entity or device that can carry the computer program code, recording medium, USB flash drive, mobile hard disk, magnetic disk, optical disk, computer memory, read-only memory (ROM), random access memory (RAM), electrical carrier signal, telecommunication signal, and software distribution medium, etc. It should be noted that the computer-readable medium includes, but is not limited to, the above components.

[0135] Among them, through this computer-readable storage medium, a burn glove pressure monitoring method of the above embodiment is stored in the computer-readable storage medium, and is loaded and executed on the processor to facilitate the storage and application of the above method.

[0136] An embodiment of the present application also discloses an electronic device. A computer program is stored in the computer-readable storage medium. When the computer program is loaded and executed by the processor, a burn glove pressure monitoring method of the above is adopted.

[0137] Among them, the electronic device can be a desktop computer, a laptop computer or a cloud server and other electronic devices. And the electronic device includes, but is not limited to, a processor and a memory. For example, the electronic device can also include input and output devices, network access devices, and a bus, etc.

[0138] Among them, the processor may adopt a central processing unit (CPU). Of course, according to the actual usage, other general-purpose processors, digital signal processors (DSPs), application-specific integrated circuits (ASICs), off-the-shelf programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. may also be adopted. The general-purpose processor may adopt a microprocessor or any conventional processor, etc. This application does not make any restrictions in this regard.

[0139] Among them, the memory may be an internal storage unit of the electronic device. For example, the hard disk or memory of the electronic device, or it may also be an external storage device of the electronic device. For example, the plug-in hard disk, smart media card (SMC), secure digital card (SD), or flash memory card (FC) equipped on the electronic device, etc. And the memory may also be a combination of the internal storage unit and the external storage device of the electronic device. The memory is used to store computer programs and other programs and data required by the electronic device. The memory may also be used to temporarily store the data that has been output or will be output. This application does not make any restrictions in this regard.

[0140] Among them, through this electronic device, a method for monitoring the pressure of a burn glove in the above embodiment is stored in the memory of the electronic device, and is loaded and executed on the processor of the electronic device for convenient use.

[0141] The above are only exemplary embodiments of the present disclosure, and the scope of the present disclosure cannot be limited thereby. That is, any equivalent changes and modifications made according to the teachings of the present disclosure still fall within the scope covered by the present disclosure. This application aims to cover any variations, uses, or adaptive changes of the present disclosure, which follow the general principles of the present disclosure and include the common general knowledge or conventional technical means in the technical field not recorded in the present disclosure. The description and embodiments are only regarded as exemplary, and the scope and spirit of the present disclosure are defined by the claims.

Claims

1. A method for monitoring the pressure of a burn glove, characterized in that, The method includes: Obtaining the actual motion posture of the burned hand of the target patient and the actual pressure of each wound area in the hand burn wound surface. The target patient is a hand burn patient wearing a burn glove, and the actual pressure is the pressure exerted by the burn glove on the wound area; When each of the actual pressures is normal, based on the target area in the burned hand and the corresponding at least one target pressure range when the actual motion posture appears, determining whether to adjust and optimize the actual pressure of the wound area, including: obtaining the historical wound area that caused uneven pressure distribution in the burned hand when the first historical burn patient had the actual motion posture, counting the occurrence times of each historical wound area, and selecting the first number of historical wound areas from each of the historical wound areas in descending order of the occurrence times to be determined as the target area; the first historical burn patient is a patient with the same hand burn type and patient portrait as the target patient; Counting the number of first historical burn patients with scar hyperplasia when the re-applied historical pressure is within a single pressure range that causes uneven pressure distribution in the burned hand in a single target area; Selecting the second number of pressure ranges from each of the pressure ranges in descending order of the number of people to be determined as the target pressure range corresponding to a single target area; Determining the first weight of each target area and the second weight of the target pressure range corresponding to each target area. The first weight is the ratio of the occurrence times of each target area to the sum of the occurrence times of all target areas, and the second weight is the ratio of the number of people in the single target pressure range corresponding to the target area to the total number of people in all the corresponding target pressure ranges; Based on the first weight and the corresponding second weight, determining whether to adjust and optimize the actual pressure of the wound area. The target area is the wound area in the hand burn wound surface of the target patient that is prone to cause uneven pressure distribution in the burned hand when the actual motion posture appears, and the target pressure range is the applied pressure that is prone to prevent scar hyperplasia when the target area causes uneven pressure distribution in the burned hand; When it is determined to adjust and optimize the actual pressure of the wound area, determining the area to be optimized that needs to have its pressure adjusted and optimized from each of the wound areas; Determining the first appropriate pressure of the area to be optimized and adjusting the actual pressure of the area to be optimized to the first appropriate pressure; specifically, determining the first appropriate pressure of the area to be optimized includes: When the actual motion posture is a rehabilitation training motion, obtaining the pressurized wound area that produces a rehabilitation effect during rehabilitation training by the second historical burn patient with the actual motion posture, and counting the first occurrence frequency of each pressurized wound area; the second historical burn patient is a patient with the same hand burn type and patient portrait as the target patient; Selecting the third number of pressurized wound areas from each of the pressurized wound areas in descending order of the first occurrence frequency to be determined as the key wound areas; When there is an effect in the rehabilitation training with the actual action posture, obtain the training pressure range to which the training pressure applied to a single key wound area belongs, and count the second occurrence frequency of each training pressure range; Select the fourth number of training pressure ranges from each of the training pressure ranges in descending order of the second occurrence frequency, and determine them as the key pressure ranges corresponding to a single key wound area; Determine the third weight of each key wound area and the fourth weight of the key pressure range corresponding to each key wound area. The third weight is the ratio of the first occurrence frequency of each key wound area to the sum of the first occurrence frequencies of all key wound areas, and the fourth weight is the ratio of the second occurrence frequency of a single key pressure range corresponding to the key wound area to the sum of the second occurrence frequencies of all corresponding key pressure ranges; Based on the third weight and the corresponding fourth weight, determine the first appropriate pressure of the area to be optimized; among them, after the actual action posture ends, obtain the real-time pressure values of each wound area of the burned hand of the target patient. If the real-time pressure value is within the key pressure range, then determine the corresponding key pressure range as the important pressure range and the corresponding real-time pressure value as the important pressure value. If there is an important pressure range among the key pressure ranges corresponding to the key wound area, then determine this key wound area as the important wound area. When this important wound area is the wound area corresponding to the important pressure value, calculate the product of the third weight of a single important wound area and the fourth weight of the corresponding important pressure range, sum up each product to obtain the sum of products. If the sum of products exceeds the preset sum-of-products threshold, then send a rehabilitation training reminder for the actual action posture to the terminal of the target patient; When there is an abnormal pressure among the actual pressures, determine the wound area corresponding to the abnormal pressure as the abnormal area, determine the second appropriate pressure of the abnormal area, and adjust the actual pressure of the abnormal area to the second appropriate pressure.

2. The burn glove pressure monitoring method according to claim 1, characterized in that, Determining whether to adjust and optimize the actual pressure of the wound area based on the first weight and the corresponding second weight specifically includes: If the wound area is the target area, then determine the corresponding wound area as the reference area, and when the actual pressure of the reference area is within the corresponding target pressure range, determine the corresponding target pressure range as the reference pressure range; Calculate the first product of the first weight of each reference area and the second weight of the corresponding reference pressure range, and sum up each first product to obtain the sum of the first products; Compare the sum of the first products with a preset first threshold. If the sum of the first products exceeds the first threshold, then determine to adjust and optimize the actual pressure of the wound area; Determining the area to be optimized that needs to have its pressure adjusted and optimized from each of the wound areas specifically includes: If the first product exceeds a preset second threshold, then determine the corresponding reference area as the area to be optimized that needs to have its pressure adjusted and optimized.

3. The burn glove pressure monitoring method according to claim 1, characterized in that Determining the first appropriate pressure of the area to be optimized based on the third weight and the corresponding fourth weight specifically includes: When the area to be optimized is the target area, calculating the second product of the first weight of the area to be optimized and the second weights of the corresponding target pressure intervals; Selecting the minimum second product from each of the second products, and determining the target pressure interval corresponding to the minimum second product as the first candidate interval; When the area to be optimized is the key wound area, calculating the third product of the third weight of the area to be optimized and the fourth weights of the corresponding key pressure intervals; Selecting the maximum third product from each of the third products, and determining the key pressure interval corresponding to the maximum third product as the second candidate interval; Performing an intersection operation on the first candidate interval and the second candidate interval to obtain the first appropriate pressure of the area to be optimized.

4. The burn glove pressure monitoring method according to claim 1, wherein The method further includes: When the abnormal area is the target area, if the abnormal pressure is included in the target pressure interval corresponding to the abnormal area, determining the corresponding target pressure interval as the abnormal pressure interval, and the actual pressure of the abnormal area is less than the corresponding pressure threshold; Calculating the fourth product of the first weight of the abnormal area and the second weight of the corresponding abnormal pressure interval, and if the fourth product does not exceed a preset second threshold, adjusting the pressure threshold corresponding to the abnormal area.

5. The burn glove pressure monitoring method according to claim 4, wherein The adjusting the pressure threshold corresponding to the abnormal area specifically includes: Obtaining the initial pressure threshold sent by the terminal, and based on the initial pressure threshold, dividing each target pressure interval corresponding to the abnormal area into a first pressure interval and a second pressure interval, where the pressure values in the first pressure interval are not less than the initial pressure threshold, and the pressure values in the second pressure interval are less than the initial pressure threshold; Calculating the sum of the fifth products of the first weight of the abnormal area and the second weights of the corresponding first pressure intervals to obtain the sum of the second products; Calculating the sum of the sixth products of the first weight of the abnormal area and the second weights of the corresponding second pressure intervals to obtain the sum of the third products; If the sum of the second products is not greater than the sum of the third products, adjusting the pressure threshold corresponding to the abnormal area to the initial pressure threshold.

6. A burn glove pressure monitoring device for implementing the burn glove pressure monitoring method described in any one of claims 1 to 5, characterized in that, Including: An information acquisition module (11) for acquiring the actual motion posture of the burned hand of the target patient and the actual pressures of the respective wound areas in the hand burn wound, where the target patient is a hand burn patient wearing a burn glove, and the actual pressure is the pressure exerted by the burn glove on the wound area; An adjustment judgment module (12) is configured to, when each of the actual pressures is normal, determine whether to adjust and optimize the actual pressure on the wound surface area based on the target area in the burned hand and the corresponding at least one target pressure range when the actual action posture appears. The target area is the wound surface area in the hand burn wound of the target patient that is prone to causing uneven pressure distribution in the burned hand when the actual action posture appears. The target pressure range is the applied pressure that is prone to preventing scar hyperplasia when the target area causes uneven pressure distribution in the burned hand; An area determination module (13) is configured to determine an area to be optimized that needs to be pressure-adjusted and optimized from each of the wound surface areas when it is determined to adjust and optimize the actual pressure on the wound surface area; A first pressure regulation module (14) is configured to determine a first appropriate pressure for the area to be optimized and adjust the actual pressure of the area to be optimized to the first appropriate pressure; A second pressure regulation module (15) is configured to, when there is an abnormal pressure among the actual pressures, determine the wound surface area corresponding to the abnormal pressure as an abnormal area, determine a second appropriate pressure for the abnormal area, and adjust the actual pressure of the abnormal area to the second appropriate pressure.

7. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is loaded and executed by a processor, the method described in any one of claims 1-5 is adopted.

8. An electronic device, comprising a memory, a processor, and a computer program stored in the memory and capable of running on the processor, characterized in that, When the processor loads and executes the computer program, the method described in any one of claims 1-5 is adopted.

Citation Information

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