Crop storage monitoring method, device and storage medium

By detecting and adjusting the storage environment parameters of crops, the germination problem of multiple crops is solved when stored together, and the extension of storage time and convenience and accuracy of parameter adjustment are achieved.

CN116107248BActive Publication Date: 2025-08-19QINGDAO HAIER AIR CONDITIONER GENERAL CORP LTD
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Patent Information

Application Number
CN202310094439.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-02-01
Publication Date
2025-08-19
Estimated Expiration
2043-02-01

AI Technical Summary

Technical Problem

In a limited storage space, when multiple crops are stored together, environmental parameters cannot be easily and accurately adjusted to prevent crop germination.

Method used

By obtaining the types of N crops in the current environment and environmental parameters that inhibit germination of each crop, it is detected whether there are intersection parameters of the environmental parameters of M crops. If present, the current environmental parameters are adjusted to the intersection parameters range, and the above method is performed using a processor and a storage device.

Benefits of technology

Automatic control of environmental parameters such as temperature and humidity in the storage space of various crops is achieved, effectively extending storage time, and improving the convenience and accuracy of adjustment.

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Abstract

The present invention provides a crop storage monitoring method, device and storage medium, comprising obtaining the types of N crops in a current environment and environmental parameters for inhibiting the germination of each crop; an intersection environmental parameter detection step: sequentially selecting M crops, and detecting whether the environmental parameters of the M crops selected each time have intersection environmental parameters; if the environmental parameters of the M crops selected at that time have intersection environmental parameters, detecting whether the parameter value of the current environment is outside a first parameter range corresponding to the intersection environmental parameter at that time; if the parameter value of the current environment is outside the first parameter range corresponding to the intersection environmental parameter at that time, adjusting the current environment so that the parameter value of the current environment is within the first parameter range, thereby achieving rapid and accurate control of environmental parameters such as temperature and humidity in the storage space of multiple crops, inhibiting crop germination, and effectively delaying the storage time of multiple crops stored together.
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Description

Technical Field

[0001] The present invention relates to the technical field of crop storage, and specifically provides a crop storage monitoring method, equipment and storage medium. Background Art

[0002] In daily life, users often store suitable crops at home, such as peanuts, soybeans, sweet potatoes, taro, garlic, and ginger. These crops sometimes sprout before they can be eaten. Similarly, in market operations, vendors also store large quantities of grain and other crops. If these grains are not sold in time or are not stored properly, they will sprout and deteriorate.

[0003] Typically, people rely on experience to adjust environmental parameters such as temperature and humidity for each crop to prevent germination. However, due to limited storage space, people often store multiple crops together, making it difficult to quickly and accurately adjust the environmental parameters of the storage space to prevent most or even all crops from germinating. Summary of the Invention

[0004] In order to overcome the above-mentioned defects, the present invention is proposed to provide a crop storage monitoring method, equipment and storage medium that solves or at least partially solves the technical problem that it is impossible to conveniently and accurately adjust the environmental parameters of the storage space to prevent most or even all crops from not germinating.

[0005] In a first aspect, the present invention provides a method for monitoring crop storage, comprising:

[0006] Obtain the types of N crops in the current environment and the environmental parameters that inhibit the germination of each crop; N is greater than or equal to 2;

[0007] Intersection environmental parameter detection step: sequentially selecting M crops and detecting whether the environmental parameters of the M crops selected each time have an intersection; wherein M = N, N-1, N-2...2, and M is greater than or equal to 2; if the two selected combinations have the same number of crops, the types of crops in the two selected combinations must be at least one different crop;

[0008] If the environmental parameters of the M types of crops selected at the time have an intersection environmental parameter, detecting whether the parameter value of the current environment is outside the first parameter range corresponding to the intersection environmental parameter at the time;

[0009] If the parameter value of the current environment is outside the first parameter range corresponding to the intersection environment parameter of that time, the current environment is adjusted so that the parameter value of the current environment is within the first parameter range.

[0010] Furthermore, in the above-mentioned crop storage monitoring method, adjusting the current environment so that the parameter value of the current environment is within the first parameter range includes:

[0011] determining a central parameter value of the first parameter range;

[0012] The current environment is adjusted with the central parameter value as a target, so that the parameter value of the current environment is adjusted to the central parameter value.

[0013] Furthermore, in the above-mentioned crop storage monitoring method, determining the central parameter value of the first parameter range includes:

[0014] Obtain the weight of each crop and the proportion of the intersection environmental parameters of each crop in the M crops of the current time; wherein the proportion of the intersection environmental parameters of the crops is the ratio of the intersection environmental parameters of the crops to the exchange parameters of the crops;

[0015] The central parameter value is determined according to each weight and each intersection environment parameter ratio.

[0016] Furthermore, the above-mentioned crop storage monitoring method further includes:

[0017] If N is greater than 3 and M is not equal to N, after selecting the same number of crops multiple times to perform the intersection environmental parameter detection step, if at least two intersection environmental parameters are obtained, the priority of each intersection environmental parameter is determined based on the crop type corresponding to each intersection environmental parameter;

[0018] Select the intersection environment parameter with the highest priority as the target intersection environment parameter;

[0019] If the parameter value of the current environment is outside the second parameter range corresponding to the target intersection environment parameter, the parameter value of the current environment is adjusted to be within the second parameter range.

[0020] Furthermore, in the crop storage monitoring method described above, determining the priority of each intersection environmental parameter according to the crop type corresponding to each intersection environmental parameter includes:

[0021] According to the crop types corresponding to each intersection environmental parameter, determine the total purchase cost of the M crops selected each time;

[0022] Prioritize each intersection environmental parameter based on the total purchase cost of each.

[0023] Furthermore, the above-mentioned crop storage monitoring method further includes:

[0024] If the environmental parameters of the M types of crops selected this time have intersecting environmental parameters, and the parameter value of the current environment is within the first parameter range, the parameter value of the current environment is maintained.

[0025] Furthermore, the above-mentioned crop storage monitoring method further includes:

[0026] When M is not equal to N, the information of the unselected crops is output.

[0027] Furthermore, the above-mentioned crop storage monitoring method further includes:

[0028] When N is equal to 2 and M is equal to 2, if the environmental parameters of the M crops selected at this time do not have intersecting environmental parameters, a prompt message is output that the N crops should not be stored at the same time;

[0029] When N is greater than 2 and M is not equal to N, if the environmental parameters of the M crops selected this time do not have intersection environmental parameters, go to the intersection environmental parameter detection step until the detection results corresponding to all selected combinations are that there are no intersection environmental parameters, and output a prompt message that the N crops should not be stored at the same time.

[0030] In a second aspect, the present invention provides a crop storage monitoring device, which includes a processor and a storage device, wherein the storage device is suitable for storing multiple program codes, and the program codes are suitable for being loaded and run by the processor to execute any of the above-mentioned crop storage monitoring methods.

[0031] In a third aspect, a computer-readable storage medium is provided, wherein a plurality of program codes are stored in the computer-readable storage medium, wherein the program codes are suitable for being loaded and run by a processor to execute the crop storage monitoring method described in any one of the above technical solutions.

[0032] The above one or more technical solutions of the present invention have at least one or more of the following beneficial effects:

[0033] In implementing the technical solution of the present invention, the types of N crops in the current environment and the environmental parameters that inhibit germination of each crop are obtained, and then M crops are selected in sequence. It is then detected whether the environmental parameters of the M crops selected each time have intersecting environmental parameters. If the environmental parameters of the M crops selected that time do have intersecting environmental parameters, and the parameter value of the current environment is outside the first parameter range corresponding to the intersecting environmental parameters, the current environment is adjusted so that the parameter value of the current environment is within the first parameter range. This achieves automatic control of environmental parameters such as temperature and humidity in the storage space for multiple crops, inhibits crop germination, and effectively delays the storage time of multiple crops stored together. The technical solution of the present invention can improve the convenience and accuracy of adjusting the environmental parameters of the storage space. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] The disclosure of the present invention will be more easily understood with reference to the accompanying drawings. Those skilled in the art will readily appreciate that these drawings are for illustrative purposes only and are not intended to limit the scope of protection of the present invention. Furthermore, similar numbers in the drawings represent similar components, wherein:

[0035] Figure 1 This is a flow chart of the main steps of a method for monitoring crop storage according to one embodiment of the present invention;

[0036] Figure 2 FIG. 4 is a main structural block diagram of a crop storage monitoring device according to an embodiment of the present invention. DETAILED DESCRIPTION

[0037] Some embodiments of the present invention are described below with reference to the accompanying drawings. Those skilled in the art should understand that these embodiments are only used to explain the technical principles of the present invention and are not intended to limit the scope of protection of the present invention.

[0038] In the description of the present invention, "module" and "processor" may include hardware, software, or a combination of both. A module may include hardware circuitry, various suitable sensors, communication ports, and memory. It may also include software components, such as program code, or a combination of software and hardware. A processor may be a central processing unit, a microprocessor, an image processor, a digital signal processor, or any other suitable processor. A processor has data and / or signal processing capabilities. A processor may be implemented in software, hardware, or a combination of both. Non-transitory computer-readable storage media include any suitable medium capable of storing program code, such as magnetic disks, hard disks, optical disks, flash memory, read-only memory, random access memory, and the like. The term "A and / or B" refers to all possible combinations of A and B, such as only A, only B, or both A and B. The terms "at least one of A or B" or "at least one of A and B" have similar meanings to "A and / or B" and may include only A, only B, or both A and B. The singular forms "one" and "the" may also include the plural forms.

[0039] Typically, people rely on experience to adjust environmental parameters such as temperature and humidity for each crop to prevent germination. However, due to limited storage space, people often store multiple crops together, making it difficult to accurately adjust the environmental parameters of the storage space to prevent most or even all crops from germinating.

[0040] Therefore, in order to solve the above technical problems, the present invention provides the following technical solutions.

[0041] See attached Figure 1 , Figure 1 FIG. 1 is a flow chart showing the main steps of a method for monitoring crop storage according to an embodiment of the present invention. Figure 1 As shown, the crop storage monitoring method in the embodiment of the present invention mainly includes the following steps 101 to 104.

[0042] Step 101: Obtain the types of N crops in the current environment and the environmental parameters that inhibit the germination of each crop;

[0043] In a specific implementation, the types of crops in the current environment can be identified through image recognition or other methods to obtain N types of crops in the current environment, where N is greater than or equal to 2. The crops may include peanuts, soybeans, sweet potatoes, taro, garlic, ginger, grains, etc.

[0044] In a specific implementation process, a germination inhibition environment database can be established according to different types of crops, and environmental parameters for inhibiting germination of each crop can be selected from the germination inhibition environment database, wherein the environmental parameters may include temperature and humidity.

[0045] Step 102, intersection environmental parameter detection step: sequentially selecting M types of crops, and detecting whether the environmental parameters of the M types of crops selected each time have intersection environmental parameters;

[0046] In a specific implementation process, M kinds of crops may be selected in the order of N, N-1, N-2 . . . 2, and then it is detected whether the environmental parameters of the M kinds of crops selected each time have an intersection.

[0047] Specifically, when M=N, if the environmental parameters of the M crops selected at that time do not have intersecting environmental parameters, it means that there are no environmental parameters that can be shared by the N crops. In this case, the intersecting environmental parameters are empty. Then, one crop is removed from the N crops, and the environmental parameters of the N-1 crops are tested to see if there are intersecting environmental parameters. If the environmental parameters of any combination of the N-1 crops do not have intersecting environmental parameters, two crops are removed from the N crops, and the environmental parameters of the N-2 crops are tested to see if there are intersecting environmental parameters. And so on. Further explanation is omitted. If the two selected combinations have the same number of crops, there is at least one different type of crop in the two selected combinations. For example, there is a first crop A, a second crop B, and a third crop C. The first selected combination can be {first crop A, second crop B}, and the second selected combination can be {second crop B, third crop C} or {first crop A, third crop C}.

[0048] Step 103: If the environmental parameters of the M types of crops selected at this time have an intersection environmental parameter, detecting whether the parameter value of the current environment is outside the first parameter range corresponding to the intersection environmental parameter at this time;

[0049] If the environmental parameters of the M crops selected this time have intersection environmental parameters, the parameter value of the current environment can be obtained, and it can be detected whether the parameter value of the current environment is outside the first parameter range corresponding to the intersection environmental parameter.

[0050] It should be noted that if the environmental parameters of the M types of crops selected this time have intersection environmental parameters, the intersection environmental parameter detection step can be no longer executed. If there are other combinations, the intersection environmental parameter detection step can be continued until there are no other combinations, and the intersection environmental parameter detection step is stopped. This embodiment does not impose specific restrictions.

[0051] Step 104: If the parameter value of the current environment is outside the first parameter range corresponding to the current intersection environment parameter, adjust the current environment so that the parameter value of the current environment is within the first parameter range.

[0052] In a specific implementation, if the parameter value of the current environment is outside the first parameter range corresponding to the current intersection environmental parameter, it indicates that the parameter value of the current environment cannot simultaneously satisfy the environmental parameters for inhibiting germination for the M types of crops. In this case, the current environment can be adjusted to keep the parameter value within the first parameter range. For example, the temperature and humidity of the current environment can be adjusted using air conditioning to keep both temperature and humidity within the temperature and humidity ranges that inhibit germination for the M types of crops, thereby extending the storage time of the M crops.

[0053] In a specific implementation process, the current environment may be adjusted in the following manner so that the parameter value of the current environment is within the first parameter range:

[0054] (1) determining a central parameter value of the first parameter range;

[0055] In a specific implementation process, the parameter value corresponding to the exact center of the first parameter range can be used as the central parameter value of the first parameter range. However, when the ratio of the intersection environmental parameters of some crops to the original environmental parameters is small, and the ratio of the intersection environmental parameters of another part of the crops to the original environmental parameters is large, the parameter value corresponding to the exact center is actually at the edge of the environmental parameters of the crops with a small intersection environmental parameter ratio. Although it can also meet the environmental parameters required by the crops with a small intersection environmental parameter ratio, the environmental parameters are not ideal. Therefore, different weights can be set in advance based on the user's needs for each crop, so that the weight of each crop in the M crops at that time can be obtained. Then, according to each weight and the ratio of the intersection environmental parameters of each crop, the central parameter value is determined, so that the determined central parameter value can meet the environmental parameters required by the M crops as well as possible. Among them, the ratio of the intersection environmental parameters of the crops is the ratio of the intersection environmental parameters of the crops to the exchange parameters of the crops;

[0056] For example, for crop A, the proportion of its intersection environmental parameters is small, while for crop B, the proportion of its intersection environmental parameters is large. Directly selecting the parameter value corresponding to the center is far away from the original center value of crop A, but close to the original center value of crop B. It is more suitable for storage for crop B. For crop A, although it can also be stored for a longer time, the storage effect is poorer than using parameters close to the original center value of crop A. For the above-mentioned method of determining the center parameter value, if the weight of crop A is greater than the weight of crop B, the center parameter value of the first parameter range can be appropriately moved closer to the original center value of crop A, thereby appropriately extending the storage time of crop A. Although there is an impact on the storage of crops, it is relatively small.

[0057] (2) Taking the central parameter value as a target, the current environment is adjusted so that the parameter value of the current environment is adjusted to the central parameter value.

[0058] In a specific implementation process, the current environment can be adjusted by equipment such as air conditioning, so that the parameter value of the current environment is gradually adjusted to the central parameter value.

[0059] The crop storage monitoring method of this embodiment obtains the types of N crops in the current environment and the environmental parameters that inhibit the germination of each crop, then selects M crops in sequence and detects whether the environmental parameters of the M crops selected each time have intersecting environmental parameters. If the environmental parameters of the M crops selected that time do have intersecting environmental parameters, and the parameter value of the current environment is outside the first parameter range corresponding to the intersecting environmental parameters, the current environment is adjusted to bring the parameter value of the current environment within the first parameter range. This automatically controls the temperature and humidity and other environmental parameters of the storage space for multiple crops, inhibits crop germination, and effectively delays the storage time of multiple crops stored together. The technical solution of the present invention can improve the convenience and accuracy of adjusting the environmental parameters of the storage space.

[0060] In a specific implementation process, when N is greater than 3, when the selected M=N-1, N-2...2, multiple selection combinations may appear for each number, and at least two intersection environmental parameters may be obtained in all selection combinations. At this time, the priority of each intersection environmental parameter can be determined according to the crop type corresponding to each intersection environmental parameter; the intersection environmental parameter with the highest priority is selected as the target intersection environmental parameter; at this time, if the parameter value of the current environment is outside the second parameter range corresponding to the target intersection environmental parameter, the parameter value of the current environment is adjusted to within the second parameter range.

[0061] Specifically, taking M=2 as an example, when the selected combination is {first crop A, second crop B}, there is a first intersection environment parameter, and when the selected combination is {first crop A, second crop C}, there is a second intersection environment parameter. At this time, the first intersection environment parameter and the second intersection environment parameter can be prioritized. If the priority of the second intersection environment parameter is higher than the priority of the first intersection environment parameter, the second intersection environment parameter is used as the target intersection environment parameter, and when the parameter value of the current environment is outside the second parameter range corresponding to the target intersection environment parameter, the parameter value of the current environment is adjusted to within the second parameter range corresponding to the target intersection environment parameter.

[0062] In a specific implementation, the total purchase cost of each selected M crop can be determined based on the crop type corresponding to each intersection environmental parameter. Based on each total purchase cost, the priority of each intersection environmental parameter can be determined. For example, if the selected combination is {first crop A, second crop C}, the purchase cost is 20 yuan, and if the selected combination is {first crop A, second crop B}, the purchase cost is 15 yuan, then the priority of the second intersection environmental parameter can be determined to be higher than the priority of the first intersection environmental parameter.

[0063] In a specific implementation process, if the environmental parameters of the M types of crops selected this time have intersecting environmental parameters, and the parameter value of the current environment is within the first parameter range, the parameter value of the current environment can be maintained, or the central parameter value of the first parameter range can be determined; with the central parameter value as the target, the current environment is adjusted so that the parameter value of the current environment is adjusted to the central parameter value.

[0064] In a specific implementation process, when M is not equal to N, it means that there are unselected crops. At this time, information about the unselected crops can be output so that the user knows which crops need to be taken out and stored separately.

[0065] In a specific implementation, when N is equal to 2 and M is equal to 2, if the environmental parameters of the M crops selected do not intersect, a prompt message indicating that the N crops should not be stored simultaneously is output. In other words, if there are only two crops, and if the environmental parameters of the M crops selected do not intersect, indicating that the two crops cannot be stored simultaneously, a prompt message indicating that the N crops should not be stored simultaneously can be output.

[0066] In one specific implementation, when N is greater than 2 and M is not equal to N, if the environmental parameters of the M crops selected do not intersect, the process proceeds to the intersection environmental parameter detection step until all detection results corresponding to all selected combinations show no intersection environmental parameters, at which point a prompt message indicating that N crops should not be stored simultaneously is output. In other words, if there are three or more crops, and if no intersection environmental parameters exist after removing one or more crops, a prompt indicating that N crops should not be stored simultaneously is output.

[0067] It should be pointed out that although the various steps in the above embodiments are described in a specific order, those skilled in the art will understand that in order to achieve the effects of the present invention, different steps do not have to be performed in such an order. They can be performed simultaneously (in parallel) or in other orders. These changes are within the scope of protection of the present invention.

[0068] Those skilled in the art will appreciate that all or part of the processes in the method for implementing the above-mentioned embodiment of the present invention may also be accomplished by instructing the relevant hardware through a computer program. The computer program may be stored in a computer-readable storage medium. When the computer program is executed by a processor, it may implement the steps of each of the above-mentioned method embodiments. The computer program includes computer program code, which may be in source code form, object code form, executable file, or some intermediate form. The computer-readable storage medium may include: any entity or device, medium, USB flash drive, mobile hard disk, magnetic disk, optical disk, computer memory, read-only memory, random access memory, electric carrier signal, telecommunication signal, and software distribution medium capable of carrying the computer program code. It should be noted that the content contained in the computer-readable storage medium may be appropriately increased or decreased according to the requirements of legislation and patent practice in the jurisdiction. For example, in some jurisdictions, according to legislation and patent practice, computer-readable storage media do not include electric carrier signals and telecommunication signals.

[0069] Furthermore, the present invention also provides a crop storage monitoring device.

[0070] See attached Figure 2 , Figure 2 FIG. 1 is a main structural block diagram of a crop storage monitoring device according to an embodiment of the present invention. Figure 2 As shown, the crop storage monitoring device in the embodiment of the present invention may include a processor 21 and a storage device 22 .

[0071] Storage device 21 may be configured to store a program for executing the crop storage monitoring method of the aforementioned method embodiment, and processor 22 may be configured to execute the program in storage device 21, including but not limited to a program for executing the crop storage monitoring method of the aforementioned method embodiment. For ease of illustration, only portions relevant to the present embodiment are shown; for specific technical details not disclosed, please refer to the method section of the present embodiment. The crop storage monitoring device may be a control device comprising various electronic devices.

[0072] In a specific implementation, the number of storage devices 22 and processors 21 can be multiple. The program for executing the crop storage monitoring method of the above-mentioned method embodiment can be divided into multiple subroutines, each of which can be loaded and executed by the processor 21 to execute different steps of the crop storage monitoring method of the above-mentioned method embodiment. Specifically, each subroutine can be stored in a different storage device 22, and each processor 21 can be configured to execute the programs in one or more storage devices 22 to jointly implement the crop storage monitoring method of the above-mentioned method embodiment. That is, each processor 21 executes different steps of the crop storage monitoring method of the above-mentioned method embodiment to jointly implement the crop storage monitoring method of the above-mentioned method embodiment.

[0073] The multiple processors 21 may be processors deployed on the same device. For example, the device may be a high-performance device composed of multiple processors, and the multiple processors 21 may be processors configured on the high-performance device. Furthermore, the multiple processors 21 may be processors deployed on different devices. For example, the device may be a server cluster, and the multiple processors 21 may be processors on different servers in the server cluster.

[0074] Furthermore, the present invention provides a computer-readable storage medium. In one embodiment of the computer-readable storage medium according to the present invention, the computer-readable storage medium can be configured to store a program for executing the crop storage monitoring method of the aforementioned method embodiment. This program can be loaded and executed by a processor to implement the aforementioned crop storage monitoring method. For ease of illustration, only the portions relevant to the embodiments of the present invention are shown. For specific technical details not disclosed, please refer to the method section of the embodiments of the present invention. The computer-readable storage medium can be a storage device formed by various electronic devices. Optionally, in embodiments of the present invention, the computer-readable storage medium is non-transitory.

[0075] Furthermore, it should be understood that since the configuration of each module is merely for the purpose of illustrating the functional units of the apparatus of the present invention, the physical devices corresponding to these modules may be the processor itself, or a portion of the software in the processor, a portion of the hardware, or a combination of software and hardware. Therefore, the number of modules in the figure is merely illustrative.

[0076] Those skilled in the art will appreciate that the various modules in the device can be adaptively split or merged. Such splitting or merging of specific modules does not cause the technical solution to deviate from the principles of the present invention. Therefore, the technical solutions after splitting or merging will fall within the scope of protection of the present invention.

[0077] Thus far, the technical solutions of the present invention have been described in conjunction with the preferred embodiments shown in the accompanying drawings. However, it will be readily understood by those skilled in the art that the scope of protection of the present invention is obviously not limited to these specific embodiments. Without departing from the principles of the present invention, those skilled in the art may make equivalent changes or substitutions to the relevant technical features, and the technical solutions after such changes or substitutions will fall within the scope of protection of the present invention.

Claims

1. A method for monitoring crop storage, characterized in that: include: Obtain the types of N crops in the current environment and the environmental parameters that inhibit the germination of each crop; N is greater than or equal to 2; Intersection environmental parameter detection step: sequentially selecting M crops from the N crops, and detecting whether the environmental parameters of the M crops selected at that time have intersection environmental parameters, wherein M=N, N-1, N-2…2, and M is greater than or equal to 2; when N is greater than 2 and M is not equal to N, if the environmental parameters of the M crops selected at that time do not have intersection environmental parameters, then continue to reselect M crops from the N crops, and detect whether the environmental parameters of the reselected M crops have intersection environmental parameters, until all selection combinations of M crops from the N crops are traversed, and the detection results corresponding to all selection combinations are that there is no intersection environmental parameter, then stop reselecting M crops; if there are the same number of crops in the two selection combinations, there is at least one different type of crop in the two selection combinations; If the environmental parameters of the M types of crops selected at the time have an intersection environmental parameter, detecting whether the parameter value of the current environment is outside the first parameter range corresponding to the intersection environmental parameter at the time; If the parameter value of the current environment is outside the first parameter range corresponding to the intersection environment parameter of that time, the current environment is adjusted so that the parameter value of the current environment is within the first parameter range.

2. The crop storage monitoring method according to claim 1, characterized in that: Adjusting the current environment so that the parameter value of the current environment is within the first parameter range includes: determining a central parameter value of the first parameter range; The current environment is adjusted with the central parameter value as a target, so that the parameter value of the current environment is adjusted to the central parameter value.

3. The crop storage monitoring method according to claim 2, characterized in that: Determining a central parameter value of the first parameter range includes: Obtaining the weight of each crop and the proportion of the intersection environmental parameters of each crop in the M crops of the current time; wherein the proportion of the intersection environmental parameters of the crops is the ratio of the intersection environmental parameters of the crops to the environmental parameters of the crops; The central parameter value is determined according to each weight and each intersection environment parameter ratio.

4. The crop storage monitoring method according to claim 1, characterized in that: Also includes: If N is greater than 3 and M is not equal to N, after selecting the same number of crops multiple times to perform the intersection environmental parameter detection step, if at least two intersection environmental parameters are obtained, the priority of each intersection environmental parameter is determined based on the crop type corresponding to each intersection environmental parameter; Select the intersection environment parameter with the highest priority as the target intersection environment parameter; If the parameter value of the current environment is outside the second parameter range corresponding to the target intersection environment parameter, the parameter value of the current environment is adjusted to be within the second parameter range.

5. The crop storage monitoring method according to claim 1, characterized in that: Determine the priority of each intersection environmental parameter based on the crop type corresponding to each intersection environmental parameter, including: According to the crop types corresponding to each intersection environmental parameter, determine the total purchase cost of the M crops selected each time; Prioritize each intersection environmental parameter based on the total purchase cost of each.

6. The crop storage monitoring method according to claim 1, characterized in that: Also includes: If the environmental parameters of the M types of crops selected this time have intersecting environmental parameters, and the parameter value of the current environment is within the first parameter range, the parameter value of the current environment is maintained.

7. The crop storage monitoring method according to claim 1, characterized in that: Also includes: When M is not equal to N, the information of the unselected crops is output.

8. The crop storage monitoring method according to claim 1, characterized in that: Also includes: When N is equal to 2 and M is equal to 2, if the environmental parameters of the M crops selected at this time do not have intersecting environmental parameters, a prompt message is output that the N crops should not be stored at the same time; When N is greater than 2 and M is not equal to N, if all selection combinations of M crops are selected from the N crops, and the detection results corresponding to all selection combinations are that there is no intersection environmental parameter, after stopping reselecting M crops, a prompt message is output that the N crops should not be stored at the same time.

9. A crop storage monitoring device comprising a processor and a storage device, wherein the storage device is adapted to store a plurality of program codes, wherein: The program code is suitable for being loaded and executed by the processor to execute the crop storage monitoring method according to any one of claims 1 to 8.

10. A computer-readable storage medium storing a plurality of program codes, characterized in that: The program code is suitable for being loaded and run by a processor to execute the crop storage monitoring method according to any one of claims 1 to 8.

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