A safety detection method and system for eye drops

By adjusting multiple environmental factors to conduct multi-index testing of eye wash and comprehensively analyzing safety index, the problem that the existing technology cannot comprehensively evaluate the safety of eye wash and achieve safety assessment of eye wash in multiple environments.

CN119985868BActive Publication Date: 2025-06-27CHANGSHA PROVEN BIOTECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510466723.9
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-04-15
Publication Date
2025-06-27
Estimated Expiration
2045-04-15

AI Technical Summary

Technical Problem

The existing detection methods cannot comprehensively evaluate the safety of eye washing liquid under various environmental conditions, and cannot effectively evaluate its physical and chemical properties, microbial stability and effectiveness in actual use.

Method used

By setting up the set of environmental factors, adjusting environmental factors in turn, conducting multiple indicators for eye washing liquid, obtaining the set of detection indicators, and after traversing all environmental factors, comprehensive analysis determines the safety index of eye washing liquid.

Benefits of technology

A comprehensive safety assessment of eye washing liquid under a variety of environmental conditions is achieved, ensuring the safety of use in various environments.

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Abstract

A safety detection method and system for an eye wash solution, which successively adjusts environmental factors, tests multiple indicators to obtain a set of detection indicators, and comprehensively analyzes to determine the safety of the eye wash solution after traversing all environmental factors. The present invention can comprehensively evaluate the safety of the eye wash solution in actual use, has high practicability, and ensures the use safety of users in various environments.
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Description

Technical Field

[0001] The present invention relates to the technical field of safety detection of eye wash solutions, and more specifically, to a safety detection method and system for eye wash solutions. Background Art

[0002] During the use of eye wash solutions, they may be exposed to various environmental conditions, such as temperature changes, light intensity, humidity, etc. These factors may affect their physical and chemical properties, microbial stability, and effectiveness. Existing detection methods usually only test for a single environmental condition and cannot comprehensively evaluate the safety of eye wash solutions in actual use. Summary of the Invention

[0003] In view of the above problems, the present invention provides a safety detection method and system for eye wash solutions. By sequentially adjusting environmental factors and testing multiple indicators, a set of detection indicators is obtained. After traversing all environmental factors, the safety of the eye wash solution is determined through comprehensive analysis.

[0004] The first aspect of the present invention provides a safety detection method for eye wash solutions, including:

[0005] Setting a set of environmental factors , where represents the nth environmental factor;

[0006] Sequentially adjusting environmental factors , and performing multi-index detection on the eye wash solution to obtain a set of detection indicators , where the environmental factor ;

[0007] Traversing all environmental factors to obtain multiple sets of detection indicators ;

[0008] Performing comprehensive analysis on the set of detection indicators to obtain the safety index of the corresponding eye wash solution;

[0009] If the safety index of the eye wash solution is greater than or equal to a preset safety index threshold, the safety of the corresponding eye wash solution is set as qualified.

[0010] In this solution, the step of performing comprehensive analysis on the set of detection indicators to obtain the safety index of the corresponding eye wash solution specifically includes:

[0011] Setting the safety index of the eye wash solution as Q, and its formula is: , where represents the comprehensive scoring standard value of the ith environmental factor;

[0012] Setting the comprehensive score under the environmental factor as , when the detection index is directly proportional to the safety index of the eye wash solution, its formula is: ;

[0013] When the detection index is inversely proportional to the safety index of the eye wash, the formula is: ; where represents the standard value of the j-th detection index, represents the measured value of the j-th detection index under the i-th environmental factor, represents the dynamic weight of the j-th detection index.

[0014] This solution also includes:

[0015] Obtain the maximum and minimum values of the environmental factors ;

[0016] Subtract the minimum value from the maximum value of the environmental factor to obtain the change range of the corresponding environmental factor ;

[0017] According to the change range of the environmental factor and the initial weight of the corresponding detection index, obtain the revised value of the initial weight, and its formula is: where represents the initial weight of the detection index j, represents the sensitivity of the j-th detection index to the environmental factor ; represents the change range of the environmental factor ;

[0018] Traverse all environmental factors to obtain a set of revised values of the initial weights of different detection indexes;

[0019] Normalize the values in the set of revised values of the initial weights of different detection indexes to obtain the dynamic weights of the detection indexes.

[0020] This solution also includes:

[0021] Based on the same detection index, obtain the maximum and minimum values, and subtract the minimum value from the maximum value to obtain the change range of the corresponding detection index;

[0022] Set the change range of the j-th detection index under the environmental factor to , and set the sensitivity of the j-th detection index to the environmental factor to , and its formula is: .

[0023] In this solution, after obtaining the detection index set , it also includes:

[0024] When the detection index is directly proportional to the safety index of the eye wash, the measured value of the j-th detection index under the i-th environmental factor is subtracted from the standard value of the j-th detection index to obtain a difference, and the first detection difference of the j-th detection index is obtained;

[0025] If the first detection difference of the j-th detection index is less than the preset first detection difference threshold, the corresponding detection index is marked to obtain the marked detection index;

[0026] When the detection index is inversely proportional to the safety index of the eye wash, the measured value of the j-th detection index under the i-th environmental factor is subtracted from the standard value of the j-th detection index to obtain a difference, and the second detection difference of the j-th detection index is obtained;

[0027] If the second detection difference of the j-th detection index is greater than the preset second detection difference threshold, the corresponding detection index is marked to obtain the marked detection index;

[0028] Extract the number value of the marked detection index in the detection index set under the i-th environmental factor and set it as the first quantity value;

[0029] If the first quantity value is greater than or equal to the preset first quantity threshold, the safety of the current eye wash is set to unqualified.

[0030] In this solution, it also includes:

[0031] If the first detection difference of the j-th detection index is less than the preset third detection difference threshold, the measured value of the j-th detection index is deleted, and the j-th detection index is re-detected based on the current environmental factor, and the re-detection methods are not less than two to obtain multiple re-detection measured values of the j-th detection index. The difference is obtained by subtracting the standard value of the j-th detection index from the re-detection measured value of the j-th detection index in turn to obtain the first re-detection difference set of the j-th detection index;

[0032] If all the first re-detection differences in the first re-detection difference set of the j-th detection index are greater than or equal to the preset third detection difference threshold, the average value of the multiple re-detection measured values of the j-th detection index is used to replace the deleted measured value;

[0033] If there is a first re-detection difference in the first re-detection difference set of the j-th detection index that is less than the preset third detection difference threshold, the unqualified information corresponding to the j-th detection index is triggered;

[0034] If the second detection difference of the j-th detection index is greater than the preset fourth detection difference threshold, delete the measured value of the j-th detection index, re-detect the j-th detection index based on the current environmental factors, and the number of re-detection methods is not less than two, obtain multiple re-detection measured values of the j-th detection index, and extract the difference between the re-detection measured value of the j-th detection index minus the standard value of the j-th detection index in turn to obtain the second re-detection difference set of the j-th detection index;

[0035] If the second re-detection differences in the second re-detection difference set of the j-th detection index are all less than the preset fourth detection difference threshold, replace the deleted measured value with the average value of the multiple re-detection measured values of the j-th detection index;

[0036] If there is a second re-detection difference greater than or equal to the preset fourth detection difference threshold in the second re-detection difference set of the j-th detection index, trigger the unqualified information corresponding to the j-th detection index.

[0037] In this solution, it also includes:

[0038] Obtain the number of times the same detection index is marked under different environmental factors, which is set as the second number value;

[0039] If there is a second number value greater than or equal to the preset second number threshold, set the safety of the current eye wash to be unqualified.

[0040] The second aspect of the present invention provides a safety detection system for eye wash, including a memory and a processor. A safety detection method program for eye wash is stored in the memory. When the safety detection method program for eye wash is executed by the processor, the following steps are implemented:

[0041] Set the environmental factor set , where represents the n-th environmental factor;

[0042] Adjust the environmental factors in turn , perform multi-index detection on the eye wash, and obtain the detection index set , where the environmental factor ;

[0043] Traverse all environmental factors to obtain multiple detection index sets ;

[0044] Comprehensively analyze the detection index set to obtain the safety index corresponding to the eye wash;

[0045] If the safety index of the eye wash is greater than or equal to the preset safety index threshold, set the safety of the corresponding eye wash to be qualified.

[0046] In this solution, the step of comprehensively analyzing the set of detection indicators to obtain the safety index of the corresponding eyewash specifically includes:

[0047] Set the safety index of the eyewash as Q, and its formula is: , where represents the comprehensive scoring standard value of the i-th environmental factor;

[0048] Set the comprehensive score under the environmental factor as . When the detection indicator is directly proportional to the safety index of the eyewash, its formula is: ;

[0049] When the detection indicator is inversely proportional to the safety index of the eyewash, its formula is: ; where represents the standard value of the j-th detection indicator, represents the measured value of the j-th detection indicator under the i-th environmental factor, represents the dynamic weight of the j-th detection indicator.

[0050] In this solution, it also includes:

[0051] Obtain the maximum and minimum values of the environmental factor ;

[0052] Subtract the minimum value from the maximum value of the environmental factor to obtain the change range of the corresponding environmental factor ;

[0053] According to the change range of the environmental factor and the initial weight of the corresponding detection indicator, obtain the revised value of the initial weight, and its formula is: , where represents the initial weight of the detection indicator j, represents the sensitivity of the j-th detection indicator to the environmental factor , represents the environmental factor ;

[0054] Traverse all environmental factors to obtain the set of revised values of the initial weights of different detection indicators;

[0055] Normalize the values in the set of revised values of the initial weights of different detection indicators to obtain the dynamic weights of the detection indicators.

[0056] A safety detection method and system for eye wash solution disclosed by the present invention adjusts environmental factors in sequence, tests multiple indicators to obtain a set of detection indicators, and comprehensively analyzes to determine the safety of the eye wash solution after traversing all environmental factors. The present invention can comprehensively evaluate the safety of the eye wash solution in actual use, has high practicability, and ensures the use safety of users in various environments. BRIEF DESCRIPTION OF THE DRAWINGS

[0057] Figure 1 The flowchart of a safety detection method for an eye wash solution according to the present invention is shown;

[0058] Figure 2 The block diagram of a safety detection system for an eye wash solution according to the present invention is shown. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0059] In order to more clearly understand the above objects, features and advantages of the present invention, the present invention will be further described in detail below with reference to the drawings and specific embodiments. It should be noted that, without conflict, the embodiments of the present application and the features in the embodiments can be combined with each other.

[0060] In the following description, many specific details are set forth in order to fully understand the present invention. However, the present invention can also be implemented in other ways different from those described herein. Therefore, the protection scope of the present invention is not limited by the specific embodiments disclosed below.

[0061] Figure 1 The flowchart of a safety detection method for an eye wash solution according to the present invention is shown.

[0062] As Figure 1 shown, the present invention discloses a safety detection method for an eye wash solution, including:

[0063] S101, set a set of environmental factors , where represents the nth environmental factor;

[0064] S102, adjust the environmental factors in sequence , perform multi-index detection on the eye wash solution to obtain a set of detection indicators , where the environmental factor ;

[0065] S103, traverse all environmental factors to obtain multiple sets of detection indicators ;

[0066] S104, comprehensively analyze the set of detection indicators to obtain the safety index corresponding to the eye wash solution;

[0067] S105, if the safety index of the eye wash is greater than or equal to the preset safety index threshold, set the safety of the corresponding eye wash as qualified.

[0068] According to an embodiment of the present invention, the environmental factors include temperature, humidity, light intensity, air pressure, etc., and the detection indexes include pH value, microbial content, osmotic pressure, etc. For example, the adjustment range of temperature is 4 to 40 degrees Celsius, and the environmental changes can be accurately controlled through a preset environmental simulation box. The detection indexes are automatically detected by an automated detection device, and the automated detection device is connected to the blockchain to ensure that the measured values of the detection indexes cannot be tampered with. For example, if the preset safety index threshold is 0.9, then when the safety index of the eye wash is greater than or equal to 0.9, the detection of the corresponding eye wash is qualified.

[0069] According to an embodiment of the present invention, the step of comprehensively analyzing the detection index set to obtain the safety index of the corresponding eye wash specifically includes:

[0070] Set the safety index of the eye wash as Q, and its formula is: , where represents the comprehensive scoring standard value of the i-th environmental factor;

[0071] Set the comprehensive score under the environmental factor as . When the detection index is directly proportional to the safety index of the eye wash, its formula is: ;

[0072] When the detection index is inversely proportional to the safety index of the eye wash, its formula is: ; where represents the standard value of the j-th detection index, represents the measured value of the j-th detection index under the i-th environmental factor, represents the dynamic weight of the j-th detection index.

[0073] According to an embodiment of the present invention, it further includes:

[0074] Obtain the maximum value and minimum value of the environmental factor ;

[0075] Subtract the minimum value from the maximum value of the environmental factor to obtain the change range of the corresponding environmental factor ;

[0076] According to the change range of the environmental factor and the initial weight of the corresponding detection index, obtain the revised value of the initial weight, and its formula is: , where represents the initial weight of the detection index j, Indicates the sensitivity of the j-th detection index to environmental factors ; Indicates the change range of environmental factors ;

[0077] Traverse all environmental factors to obtain a set of revised values of the initial weights of different detection indexes;

[0078] Normalize the values in the set of revised values of the initial weights of different detection indexes to obtain the dynamic weights of the detection indexes.

[0079] It should be noted that the dynamic weights are used for the detection indexes, and the safety ratio of the detection indexes in the eye wash is continuously optimized, so as to improve the accurate determination of the eye wash. The formula for normalization is , where .

[0080] According to the embodiment of the present invention, it further includes:

[0081] Based on the same detection index, obtain the maximum value and the minimum value, and subtract the minimum value from the maximum value to obtain the change range of the corresponding detection index;

[0082] Set the change range of the j-th detection index under the environmental factor as , and set the sensitivity of the j-th detection index to the environmental factor as , and its formula is: .

[0083] According to the embodiment of the present invention, after obtaining the set of detection indexes , it further includes:

[0084] When the detection index is directly proportional to the safety index of the eye wash, subtract the standard value of the j-th detection index from the measured value of the j-th detection index under the i-th environmental factor to obtain the first detection difference of the j-th detection index;

[0085] If the first detection difference of the j-th detection index is less than the preset first detection difference threshold, then mark the corresponding detection index to obtain the marked detection index;

[0086] When the detection index is inversely proportional to the safety index of the eye wash, subtract the standard value of the j-th detection index from the measured value of the j-th detection index under the i-th environmental factor to obtain the second detection difference of the j-th detection index;

[0087] If the second detection difference of the j-th detection index is greater than the preset second detection difference threshold, then mark the corresponding detection index to obtain the marked detection index;

[0088] Extract the set of detection indicators under the i-th environmental factor The numerical value of the number of detection indicators identified in it, which is set as the first numerical value;

[0089] If the first numerical value is greater than or equal to the preset first numerical threshold, the safety of the current eye wash is set as unqualified.

[0090] It should be noted that after obtaining the set of detection indicators After that, the measured values of each detection indicator in the set of detection indicators are preferentially compared and analyzed with the standard values of the corresponding detection indicators, so as to improve the efficiency of safety detection.

[0091] According to the embodiments of the present invention, it further includes:

[0092] If the first detection difference of the j-th detection indicator is less than the preset third detection difference threshold, the measured value of the j-th detection indicator is deleted, and the j-th detection indicator is re-detected based on the current environmental factor, and the number of re-detection methods is not less than two, obtaining multiple re-detection measured values of the j-th detection indicator, and successively extracting the difference between the re-detection measured value of the j-th detection indicator minus the standard value of the j-th detection indicator to obtain the first re-detection difference set of the j-th detection indicator;

[0093] If all the first re-detection differences in the first re-detection difference set of the j-th detection indicator are greater than or equal to the preset third detection difference threshold, the average value of the multiple re-detection measured values of the j-th detection indicator is used to replace the deleted measured value;

[0094] If there is a first re-detection difference in the first re-detection difference set of the j-th detection indicator that is less than the preset third detection difference threshold, the unqualified information corresponding to the j-th detection indicator is triggered;

[0095] If the second detection difference of the j-th detection indicator is greater than the preset fourth detection difference threshold, the measured value of the j-th detection indicator is deleted, and the j-th detection indicator is re-detected based on the current environmental factor, and the number of re-detection methods is not less than two, obtaining multiple re-detection measured values of the j-th detection indicator, and successively extracting the difference between the re-detection measured value of the j-th detection indicator minus the standard value of the j-th detection indicator to obtain the second re-detection difference set of the j-th detection indicator;

[0096] If all the second re-detection differences in the second re-detection difference set of the j-th detection indicator are less than the preset fourth detection difference threshold, the average value of the multiple re-detection measured values of the j-th detection indicator is used to replace the deleted measured value;

[0097] If there is a second re - detection difference in the second re - detection difference set of the j - th detection index that is greater than or equal to the preset fourth detection difference threshold, the unqualified information corresponding to the j - th detection index is triggered.

[0098] It should be noted that the preset third detection difference threshold is less than the preset first detection difference threshold, and the preset fourth detection difference threshold is greater than the preset second detection difference threshold. To prevent detection errors that may occur in the process of a single detection method, at least two different detection methods are used in the re - detection process.

[0099] According to an embodiment of the present invention, it further includes:

[0100] Obtain the number of times the same detection index is marked under different environmental factors, and set it as the second number of times;

[0101] If there is a second number of times greater than or equal to the preset second number threshold, the safety of the current eyewash is set as unqualified.

[0102] It should be noted that, for example, the preset second number threshold is 3. By adjusting environmental factors, if the same detection index is marked 3 times or more, the safety detection of the corresponding eyewash is set as unqualified.

[0103] According to an embodiment of the present invention, it further includes:

[0104] Divide the safety detection of the eyewash according to the detection time to construct the detection order of different time periods;

[0105] Among them, in the detection order of the first time period, the detection is carried out in descending order of the dynamic weight of the detection index;

[0106] Obtain the historical detection data information of the eyewash within the first time period;

[0107] Based on the historical detection data information of the eyewash within the first time period, obtain the historical unqualified detection data of the eyewash;

[0108] Extract the detected index marked in the historical unqualified detection data and the number of times the corresponding detected index is marked, and set it as the historical marked number of times;

[0109] Arrange the detected indexes in descending order of the historical marked number of times to obtain the marked detection order of the detected indexes;

[0110] Randomly extract the serial number value of a detected index j in the marked detection order, and then multiply the corresponding detection serial number value by the corresponding weight coefficient to obtain the first sorting index value of the detected index j;

[0111] Extract the detection serial number value of the detection index j in the first time period, and then multiply the corresponding serial number value by the corresponding weight coefficient to obtain the second sorting index value of the detection index j;

[0112] Accumulate the first sorting index value and the second sorting index value of the detection index j to obtain the total sorting index value of the corresponding detection index j;

[0113] After traversing all detection indexes, obtain the set of total sorting index values of all detection indexes;

[0114] Arrange the total sorting index values in the set of total sorting index values of all detection indexes in descending order to obtain the detection order of the detection indexes in the second time period, and so on, to obtain the detection order of the detection indexes in each subsequent time period.

[0115] It should be noted that the detection order of the detection indexes in the first time period is arranged according to the weight coefficients of the corresponding detection indexes. From the second time period and later, it is adjusted according to the detection serial number value of the corresponding detection index in the previous time period and the serial number value in the identification detection order of the corresponding detection index in the previous time period. For example, the sorting of the detection indexes in the third time period is adjusted according to the detection serial number value in the second time period and the serial number value in the identification detection serial number of the corresponding detection index in the second time period. The weight coefficients corresponding to the detection serial number value of the detection index and the serial number value in the identification detection order of the corresponding detection index are each 0.5.

[0116] Figure 2 The block diagram of a safety detection system for an eye wash of the present invention is shown.

[0117] As Figure 2 shown, the second aspect of the present invention provides a safety detection system 2 for an eye wash, including a memory 21 and a processor 22. A safety detection method program for an eye wash is stored in the memory. When the safety detection method program for an eye wash is executed by the processor, the following steps are implemented:

[0118] Set the set of environmental factors , where represents the nth environmental factor;

[0119] Adjust the environmental factors in turn, perform multi-index detection on the eye wash, and obtain the set of detection indexes , where the environmental factor ;

[0120] Traverse all environmental factors to obtain multiple sets of detection indexes ;

[0121] Conduct a comprehensive analysis of the set of detection indicators to obtain the safety index of the corresponding eye wash;

[0122] If the safety index of the eye wash is greater than or equal to the preset safety index threshold, set the safety of the corresponding eye wash as qualified.

[0123] In this solution, the step of conducting a comprehensive analysis of the set of detection indicators to obtain the safety index of the corresponding eye wash specifically includes:

[0124] Set the safety index of the eye wash as Q, and its formula is: , where represents the comprehensive scoring standard value of the i-th environmental factor;

[0125] Set the comprehensive score under the environmental factor as . When the detection indicator is directly proportional to the safety index of the eye wash, its formula is: ;

[0126] When the detection indicator is inversely proportional to the safety index of the eye wash, its formula is: ; where represents the standard value of the j-th detection indicator, represents the measured value of the j-th detection indicator under the i-th environmental factor, represents the dynamic weight of the j-th detection indicator.

[0127] In this solution, it also includes:

[0128] Obtain the maximum and minimum values of the environmental factor ;

[0129] Subtract the minimum value from the maximum value of the environmental factor to obtain the change range of the corresponding environmental factor ;

[0130] According to the change range of the environmental factor and the initial weight of the corresponding detection indicator, obtain the revised value of the initial weight, and its formula is: , where represents the initial weight of the detection indicator j, represents the sensitivity of the j-th detection indicator to the environmental factor , represents the change range of the environmental factor ;

[0131] Traverse all environmental factors to obtain the set of revised values of the initial weights of different detection indicators;

[0132] Normalize the values in the set of revised values of the initial weights for different detection indicators to obtain the dynamic weights of the detection indicators.

[0133] A safety detection method and system for eye wash disclosed by the present invention tests multiple indicators by sequentially adjusting environmental factors to obtain a set of detection indicators. After traversing all environmental factors, the safety of the eye wash is comprehensively analyzed and determined. The present invention can comprehensively evaluate the safety of the eye wash in actual use, has high practicability, and ensures the use safety of users in various environments.

[0134] In 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 illustrative. For example, the division of the units is only a logical function division. In actual implementation, there may be other division methods. For example, 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 various components shown or discussed can be through some interfaces. The indirect coupling or communication connection of devices or units can be electrical, mechanical, or other forms.

[0135] The units described above as separate components may or may not be physically separated. The components shown as units may or may not be physical units. They can be located in one place or distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.

[0136] In addition, in each embodiment of the present invention, the functional units can all be integrated in a processing unit, or each unit can be separately used as a unit, or two or more units can be integrated in a unit. The above integrated units can be implemented in the form of hardware or in the form of a combination of hardware and software functional units.

[0137] Those of ordinary skill 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 foregoing program can be stored in a computer-readable storage medium. When the program is executed, it executes the steps including the above method embodiments. The foregoing storage medium includes various media that can store program codes, such as mobile storage devices, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical discs.

[0138] Alternatively, if the above integrated units of the present invention are implemented in the form of software functional modules and sold or used as independent products, they can also be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the embodiments of the present invention, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. The computer software product is stored in a storage medium and includes several instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute all or part of the methods described in the various embodiments of the present invention. The aforementioned storage medium includes: various media that can store program codes, such as removable storage devices, ROM, RAM, magnetic disks, or optical discs.

Claims

1. A safety detection method for eyewash solution, characterized in that: include: Set the environmental factors set ,in represents the nth environmental factor; Adjust environmental factors one by one , perform multi-index detection on the eyewash solution and obtain the detection index set , among which environmental factors ; Traverse all environmental factors and obtain multiple detection indicator sets ; Comprehensively analyze the detection index set to obtain the safety index of the corresponding eyewash solution; If the safety index of the eyewash solution is greater than or equal to the preset safety index threshold, the safety of the corresponding eyewash solution is set as qualified; The step of comprehensively analyzing the detection index set to obtain the safety index of the corresponding eyewash solution specifically includes: The safety index of eyewash solution is set to Q, and the formula is: ,in represents the comprehensive scoring standard value of the i-th environmental factor; Environmental factors The overall score is set to , when the test index is proportional to the safety index of the eyewash solution, the formula is: ; When the test index is inversely proportional to the safety index of the eyewash solution, the formula is: ;in represents the standard value of the jth detection index, represents the measured value of the jth detection index under the i-th environmental factor, Represents the dynamic weight of the jth detection indicator; Also includes: Get environmental factors The maximum and minimum values ​​of ; Environmental factors The maximum value minus the minimum value gives the corresponding environmental factor The magnitude of change; According to environmental factors The change range and the initial weight of the corresponding detection index are used to obtain the revised value of the initial weight , the formula is: ,in represents the initial weight of the detection index j, Indicates the jth detection index for environmental factors sensitivity, Indicates environmental factors The magnitude of change; Traverse all environmental factors to obtain a set of revised values ​​of initial weights of different detection indicators; The values ​​in the revised value set of the initial weights of different detection indicators are normalized to obtain the dynamic weights of the detection indicators.

2. The safety detection method for eyewash solution according to claim 1, characterized in that: Also includes: Based on the same detection index, the maximum value and the minimum value are obtained, and the maximum value is subtracted from the minimum value to obtain the change range of the corresponding detection index; Environmental factors The change range of the next j-th detection index is set to , the jth detection index is used for environmental factors The sensitivity is set to , the formula is: .

3. The safety detection method for eyewash solution according to claim 1, characterized in that: The obtained detection index set After that, it also includes: When the detection index is proportional to the safety index of the eyewash solution, the measured value of the jth detection index under the ith environmental factor is subtracted from the standard value of the jth detection index to obtain the first detection difference of the jth detection index; If the first detection difference value of the j-th detection indicator is less than the preset first detection difference threshold, the corresponding detection indicator is marked to obtain the marked detection indicator; When the detection index is inversely proportional to the safety index of the eyewash solution, the measured value of the jth detection index under the ith environmental factor is subtracted from the standard value of the jth detection index to obtain the second detection difference of the jth detection index; If the second detection difference value of the j-th detection indicator is greater than the preset second detection difference threshold, the corresponding detection indicator is marked to obtain the marked detection indicator; Extract the detection index set under the i-th environmental factor The quantity value of the detection indicator identified in is set to the first quantity value; If the first quantity value is greater than or equal to a preset first quantity threshold, the safety of the current eyewash solution is set to be unqualified.

4. The safety detection method for eyewash liquid according to claim 3, characterized in that: Also includes: If the first detection difference value of the jth detection indicator is less than the preset third detection difference threshold value, the measured value of the jth detection indicator is deleted, and the jth detection indicator is re-detected based on the current environmental factors, and the re-detection method is not less than two, and multiple re-detected measured values ​​of the jth detection indicator are obtained, and the re-detected measured value of the jth detection indicator is subtracted from the standard value of the jth detection indicator in turn to obtain the first re-detection difference value set of the jth detection indicator; If all first re-detection difference values ​​in the first re-detection difference value set of the j-th detection indicator are greater than or equal to the preset third detection difference threshold, the deleted measured value is replaced with the average value of multiple re-detection measured values ​​of the j-th detection indicator; If there is a first re-detection difference value in the first re-detection difference value set of the j-th detection indicator that is less than the preset third detection difference threshold, then the corresponding j-th detection indicator unqualified information is triggered; If the second detection difference value of the j-th detection indicator is greater than the preset fourth detection difference threshold value, the measured value of the j-th detection indicator is deleted, and the j-th detection indicator is re-detected based on the current environmental factors, and the re-detection method is not less than two, and multiple re-detected measured values ​​of the j-th detection indicator are obtained, and the re-detected measured value of the j-th detection indicator is subtracted from the standard value of the j-th detection indicator in turn to obtain the second re-detection difference value set of the j-th detection indicator; If the second re-detection difference values ​​in the second re-detection difference value set of the j-th detection indicator are all smaller than the preset fourth detection difference threshold, the deleted measured value is replaced with the average value of multiple re-detection measured values ​​of the j-th detection indicator; If there is a second re-detection difference value in the second re-detection difference value set of the j-th detection indicator that is greater than or equal to the preset fourth detection difference threshold, then the corresponding j-th detection indicator failure information is triggered.

5. The safety detection method for eyewash solution according to claim 3, characterized in that: Also includes: Get the number of times the same detection indicator is marked under different environmental factors, and set it as the second value; If there is a second value greater than or equal to the preset second number threshold, the safety of the current eyewash solution is set to be unqualified.

6. A safety detection system for eyewash solution, characterized in that: The invention comprises a memory and a processor, wherein the memory stores a safety detection method program of an eyewash solution, and when the safety detection method program of the eyewash solution is executed by the processor, the following steps are implemented: Set the environmental factors set ,in represents the nth environmental factor; Adjust environmental factors one by one , perform multi-index detection on the eyewash solution and obtain the detection index set , among which environmental factors ; Traverse all environmental factors and obtain multiple detection indicator sets ; Comprehensively analyze the detection index set to obtain the safety index of the corresponding eyewash solution; If the safety index of the eyewash solution is greater than or equal to the preset safety index threshold, the safety of the corresponding eyewash solution is set as qualified; The step of comprehensively analyzing the detection index set to obtain the safety index of the corresponding eyewash solution specifically includes: The safety index of eyewash solution is set to Q, and the formula is: ,in represents the comprehensive scoring standard value of the i-th environmental factor; Environmental factors The overall score is set to , when the test index is proportional to the safety index of the eyewash solution, the formula is: ; When the test index is inversely proportional to the safety index of the eyewash solution, the formula is: ;in represents the standard value of the jth detection index, represents the measured value of the jth detection index under the i-th environmental factor, Represents the dynamic weight of the jth detection indicator; Also includes: Get environmental factors The maximum and minimum values ​​of ; Environmental factors The maximum value minus the minimum value gives the corresponding environmental factor The magnitude of change; According to environmental factors The change range and the initial weight of the corresponding detection index are used to obtain the revised value of the initial weight , the formula is: ,in represents the initial weight of the detection index j, Indicates the jth detection index for environmental factors sensitivity, Indicates environmental factors The magnitude of change; Traverse all environmental factors to obtain a set of revised values ​​of initial weights of different detection indicators; The values ​​in the revised value set of the initial weights of different detection indicators are normalized to obtain the dynamic weights of the detection indicators.

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