Seed separation method and system for corn variety identification test

By obtaining and processing the variety information of corn seeds, generating labels, packing and packing, and combining electronic verification and association modules, the problem of inefficient corn seed classification is solved, and a more efficient and accurate classification process is achieved.

CN120180178APending Publication Date: 2025-06-20BEIJING ACADEMY OF AGRICULTURE & FORESTRY SCIENCES
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Patent Information

Application Number
CN202510159341.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-02-13
Publication Date
2025-06-20

AI Technical Summary

Technical Problem

In the prior art, corn seeds are inefficient in separating, which can easily lead to manual fatigue and operational errors, affecting the accuracy and reliability of test results.

Method used

By obtaining the variety information of corn seeds to be identified, the variety information of corn seeds to be identified under each test group based on the variety information and preset packaging rules, the classification information of corn seeds to be identified is determined, and the labels containing variety information, classification information and test group are generated, and packaged and packed according to the label. At the same time, electronic verification and association modules are adopted to ensure the accuracy of assembly and transportation.

Benefits of technology

It improves the efficiency and accuracy of corn seed classification, reduces manual errors, and ensures the reliability and standardization of the test results.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a seed separation method and system for a corn variety identification test, and belongs to the technical field of agricultural information management, and the method comprises the following steps: obtaining variety information of to-be-identified corn seeds; determining seed separation information of the to-be-identified corn seeds in each test group according to the variety information and a preset sub-packaging rule; labels containing variety information, seed separation information and test groups are generated, and the to-be-identified corn seeds are subpackaged according to the labels; after sub-packaging is completed, according to the test group corresponding to each sub-packaged to-be-identified corn seed, the sub-packaged to-be-identified corn seed is put into a transport box in a preset storage area matched with the test group, and at least one transport box is arranged in each preset storage area. According to the method, the precision, standardization and whole-process traceable management of seed separation in a corn variety identification test are realized, so that the efficiency and accuracy of corn seed separation are effectively improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of agricultural information management, and particularly to a seed sorting method and system for maize variety identification tests. Background Art

[0002] Maize is the largest crop in China. Maize variety identification tests are an important part of the research and promotion of new maize varieties, involving multiple test groups and various seed sorting requirements, including regional tests, production tests, disease resistance identification, transgenic detection, etc. Each test group has strict requirements for the quantity and specifications of seed sorting. However, the number of varieties under test is large and the test sites are widely distributed, making the seed sorting work a key link in test management.

[0003] In the prior art, to meet the seed sorting requirements, most methods complete the packaging and verification of seeds by increasing the manpower. However, this method is not only inefficient, but also prone to manual fatigue and operation errors in the face of complex test groups and diverse seed sorting requirements, further affecting the accuracy and reliability of test results.

[0004] Therefore, how to improve the efficiency and accuracy of maize seed sorting has become a technical problem to be solved urgently. Summary of the Invention

[0005] The present invention provides a seed sorting method, system, electronic device and storage medium for maize variety identification tests to solve the defects in the prior art and effectively improve the efficiency and accuracy of maize seed sorting.

[0006] The present invention provides a seed sorting method for maize variety identification tests, including the following steps: Obtain the variety information of the maize seeds to be identified; Determine the seed sorting information of the maize seeds to be identified under each test group according to the variety information and the preset packaging rules; Generate labels containing the variety information, the seed sorting information and the test group, and package the maize seeds to be identified according to the labels; After the packaging is completed, according to the test group corresponding to each packaged maize seed to be identified, put it into a transport box in a preset storage area matching the test group respectively, wherein at least one transport box is arranged in each preset storage area.

[0007] According to the seed sorting method for maize variety identification tests provided by the present invention, the method further includes: Electronically verify the labels of the packaged maize seeds to be identified; When the verification result is correct, associate the code of the shipping box with the two-dimensional code on the shipping label of the shipping box, and upload the association result to the server database for storage.

[0008] According to a seed sorting method for corn variety identification test provided by the present invention, the electronic verification of the labels of the corn seeds to be identified after packing specifically includes: Scan the two-dimensional code in the label of the corn seeds to be identified after packing through a code scanning device, or read the RFID electronic tag in the label of the corn seeds to be identified after packing through an RFID reader / writer, and compare the obtained identification information with the variety information of the corresponding shipping box; When it is determined that the comparison information does not match, output an alarm prompt message; When it is determined that the comparison information matches, determine the code of the shipping box corresponding to the corn seeds to be identified after packing.

[0009] According to a seed sorting method for corn variety identification test provided by the present invention, the variety information includes variety name, source information, and seed trait information.

[0010] According to a seed sorting method for corn variety identification test provided by the present invention, the seed sorting information includes sub-packaging weight, sub-packaging times, and the required number of seeds.

[0011] The present invention also provides a seed sorting system for corn variety identification test, including the following modules: An acquisition module for acquiring the variety information of the corn seeds to be identified; A processing module for determining the seed sorting information of the corn seeds to be identified under each test group according to the variety information and a preset sub-packaging rule; A sub-packaging module for generating labels including the variety information, the seed sorting information, and the test group, and sub-packaging the corn seeds to be identified according to the labels; A packing module for, after completing the sub-packaging, putting each of the corn seeds to be identified after sub-packaging into a shipping box in a preset storage area matching the test group corresponding to it, wherein at least one shipping box is provided in each preset storage area.

[0012] According to a seed sorting system for corn variety identification test provided by the present invention, it further includes the following modules: A verification module for electronically verifying the labels of the corn seeds to be identified after packing; An association module for, when the verification result is correct, associating the code of the shipping box with the two-dimensional code on the shipping label of the shipping box, and uploading the association result to the server database for storage.

[0013] The present invention also provides an electronic device, including a memory, a processor, and a computer program stored on the memory and executable on the processor. When the processor executes the program, the method for separating seeds for maize variety identification as described in any one of the above is implemented.

[0014] The present invention also provides a non-transitory computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, the method for separating seeds for maize variety identification as described in any one of the above is implemented.

[0015] The present invention also provides a computer program product, including a computer program. When the computer program is executed by a processor, the method for separating seeds for maize variety identification as described in any one of the above is implemented.

[0016] In summary, one or more technical solutions provided in the embodiments of the present application have at least the following technical effects or advantages: By obtaining the variety information of the maize seeds to be identified, the basic data of the variety can be comprehensively grasped, including the variety name, source information, and seed trait information, providing detailed data support for subsequent seed separation operations. By determining the seed separation information of the maize seeds to be identified under each test group according to the variety information and the preset packaging rules, the required packaging weight and quantity can be accurately calculated according to the specific requirements of different test groups. By generating labels containing variety information, seed separation information, and test groups, and packaging the maize seeds to be identified according to the labels, efficient management of the packaging process can be achieved. The use of labels also reduces the error rate of manual marking through electronic records, and at the same time provides a clear packaging basis for subsequent verification, storage, and transportation, thus ensuring the standardization and informatization of the packaging work. After the packaging is completed, according to the test group corresponding to each packaged maize seed to be identified, it can be respectively placed in a transport box in a preset storage area matching the test group, so as to achieve efficient classification management of the boxing work, thus avoiding the occurrence of mis-matching and confusion problems. In summary, through this technical solution, a complete and efficient seed separation process is formed, thereby effectively improving the efficiency and accuracy of maize seed separation. Description of the Drawings

[0017] In order to more clearly illustrate the technical solutions in the present invention or the prior art, the following will briefly introduce the drawings required for use in the description of the embodiments or the prior art. Obviously, the following drawings are some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.

[0018] Figure 1 is one of the flow diagrams of the method for separating seeds for maize variety identification provided by the present invention.

[0019] Figure 2 It is the second schematic flow chart of the seed-sorting method for maize variety identification test provided by the present invention.

[0020] Figure 3 It is the third schematic flow chart of the seed-sorting method for maize variety identification test provided by the present invention.

[0021] Figure 4 It is the schematic structural diagram of the seed-sorting system for maize variety identification test provided by the present invention.

[0022] Figure 5 It is the schematic structural diagram of the electronic device provided by the present invention. Detailed implementation manners

[0023] To make the objectives, technical solutions and advantages of the present invention clearer, the technical solutions in the present invention will be clearly and completely described below with reference to the accompanying drawings in the present invention. Obviously, the described embodiments are some but not all of the embodiments of the present invention. All other embodiments obtained by those of ordinary skill in the art based on the embodiments in the present invention without making creative efforts shall fall within the protection scope of the present invention.

[0024] It should be noted that in the description of the present invention, the terms "include", "comprise" or any other variants thereof are intended to cover non-exclusive inclusion, so that a process, method, article or device including a series of elements not only includes those elements but also includes other elements not explicitly listed, or further includes elements inherent to such process, method, article or device. Without further limitations, the element defined by the statement "including one..." does not exclude the existence of additional identical elements in the process, method, article or device including the said element. The orientation or positional relationship indicated by the terms "upper", "lower", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the system or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be construed as a limitation to the present invention. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0025] The terms "first", "second", etc. in the present invention are used to distinguish similar objects, rather than to describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances, so that the embodiments of the present invention can be implemented in an order other than those illustrated or described herein, and the objects distinguished by "first", "second", etc. are generally of the same type, and do not limit the number of objects. For example, the first object can be one or multiple. In addition, "and / or" means at least one of the connected objects, and the character " / " generally indicates an "or" relationship between the associated objects before and after.

[0026] The following will Figures 1 - 5 describe the seed sorting method, system, electronic device, and storage medium provided by the present invention for corn variety identification tests.

[0027] Figure 1 is one of the flow schematic diagrams of the seed sorting method provided by the present invention for corn variety identification tests. As Figure 1 shown, it includes but is not limited to the following steps: Step 101: Obtain the variety information of the corn seeds to be identified.

[0028] In a possible implementation manner, the variety information includes the variety name, source information, and seed trait information.

[0029] In step 101, by obtaining the variety information of the corn seeds to be identified, detailed data support can be provided for subsequent seed sorting operations, thereby ensuring the accuracy and standardization of the seed sorting work during the test process. Corn variety identification tests involve multiple test groups, and each group has strict requirements for the packaging weight and quantity of seeds. Specifically, according to the "Implementation Plan for the National Corn Variety Tests in 2023" issued by the National Agricultural Technology Extension and Service Center of the Ministry of Agriculture and Rural Affairs, according to the same suitable ecological regions for nationally approved corn varieties, 12 test groups are set for common corn variety tests, including the northern extra-early maturing spring corn group, the northern early maturing spring corn group, the middle-early maturing spring corn group in the Northeast China, the middle maturing spring corn group in the Northeast China, the middle-late maturing spring corn group in the Northeast China, the Huang-Huai-Hai summer corn group, the early maturing summer corn group in Beijing-Tianjin-Hebei, the spring corn group in the Northwest, the southwest spring corn (low to medium altitude) group, the southwest spring corn (medium to high altitude) group, the tropical and subtropical corn group, and the southeast spring corn group.

[0030] To meet these requirements, it is necessary to comprehensively master the key characteristics of the seeds before seed sorting, including the variety name, source information, and seed trait information, as the basis for designing the seed sorting plan.

[0031] Specifically, in the process of obtaining variety information, it is first necessary to register each corn seed to be identified. The variety name is used to uniquely identify the source and use of the seed; source information such as the express waybill number and contact information ensures the quick confirmation of the integrity and authenticity of the sample during the logistics receiving process; seed trait information includes characteristics such as weight, volume, and morphology, providing necessary parameter support for subsequent determination of sub-seeding information (such as sub-packaging weight and sub-packaging times). At the same time, in this process, the appearance characteristics of the seeds can be saved through image recording technology to form a visual archive, providing a basis for subsequent quality inspection and problem tracing.

[0032] This operation can be implemented through information collection devices and dedicated software to ensure the efficiency and accuracy of data entry. For example, barcode or QR code scanning devices are used to automatically register the variety name and source information, and the seed trait information is entered into the system through electronic weighing and image collection devices, and an electronic archive corresponding to the seeds is automatically generated. These data will be uploaded to the server database in real time to achieve multi-link sharing and traceability management.

[0033] Through the above operation of obtaining variety information, a complete data set covering all key information of the test seeds can be formed before sub-seeding, thus providing an accurate reference for the subsequent design of the sub-seeding plan. This method not only improves the efficiency of information management but also reduces the errors that may be caused by manual registration. At the same time, the digital and visual storage of information also lays a solid foundation for subsequent sub-packaging, checking, and tracing work, ensuring the standardization and efficiency of the entire sub-seeding process.

[0034] Step 102: Determine the sub-seeding information of the corn seeds to be identified under each test group according to the variety information and the preset sub-packaging rules.

[0035] In a possible implementation manner, the sub-seeding information includes sub-packaging weight, sub-packaging times, and the required number of seeds.

[0036] In step 102, determining the sub-seeding information of the corn seeds to be identified under each test group according to the variety information and the preset sub-packaging rules is a key link to ensure the accuracy, efficiency, and meeting of test requirements of the sub-seeding work. Corn variety identification tests usually involve multiple test groups, and different groups have clear requirements for the sub-packaging weight, sub-packaging times, and the required number of seeds of the seeds. To meet these diverse requirements, it is necessary to design a sub-seeding plan that meets the requirements of the test groups before sub-seeding to ensure sufficient and reasonable distribution of seeds.

[0037] In the specific implementation process, first, the variety information obtained in step 101 is matched with the preset sub-packaging rules through a computer program or a minute management system. The sub-packaging rules are usually preset according to the experimental design requirements of the test groups. For example, if the planting density required for a certain group is 4,500 plants per hectare, the weight of the seeds required for a single sub-packaging needs to be calculated based on the 100-grain weight of the variety. Taking a variety with a 100-grain weight of 30 grams as an example, the program automatically calculates the sub-packaging weight (such as 135 grams per time) and the total number of sub-packagings (such as 3 sub-packagings, a total of 405 grams) of this variety in a specific group through a formula. At the same time, the system automatically summarizes the total amount of seeds required according to the total number of test groups and other test requirements (such as disease resistance identification, DNA fingerprint detection), facilitating the operator to quickly understand whether it is necessary to adjust the sub-seeding plan.

[0038] To improve the sub-seeding efficiency, the generation process of the sub-packaging information can be realized through an automated macro program written. The program can not only output the sub-packaging weight and times of each test group in real time, but also record the generated sub-packaging information log and upload it to the server to ensure the traceability and security of the data. At the same time, the system will automatically adjust the plan according to the sub-seeding requirements. If the number of seeds is insufficient, the operator can immediately modify the rules to give priority to meeting the key test groups, thus avoiding resource waste or delays in the sub-seeding plan.

[0039] Through this implementation method, the generation of sub-packaging information has realized the transformation from manual calculation to automated processing, greatly improving the work efficiency and accuracy. Using a computer program avoids errors caused by complex calculations in the manual sub-seeding process and ensures that the sub-seeding requirements of each test group can be accurately met. In addition, the sub-seeding plan is directly associated with the variety information, providing a precise basis for subsequent sub-packaging and verification work. Thus, while ensuring the scientific nature of the experimental design, it significantly reduces the errors caused by data inconsistencies in the sub-seeding process and improves the standardization and reliability of the overall sub-seeding process.

[0040] Step 103: Generate labels containing variety information, sub-packaging information, and test groups, and sub-package the maize seeds to be identified according to the labels.

[0041] In step 103, generating labels containing variety information, sub-packaging information, and test groups and sub-packaging the maize seeds to be identified according to the labels is a key link to achieve precise sub-packaging of seeds and standardized management. Since the sub-seeding work of maize variety identification tests involves complex requirements of multiple groups and batches, it is difficult to ensure the integrity and accuracy of information only relying on manual marking and memory. Generating and using labels can clarify the source, attributes, and test purposes of each sub-packaged seed, reducing possible errors and omissions in the sub-seeding process.

[0042] In the specific implementation process, first, the seeding management system automatically calls the data generated in Steps 101 and 102, including variety information (such as variety name, source information), seeding information (such as packaging weight, number of packagings), and test group information. The system uses this data to generate a standardized label template, with each label containing a uniquely identified QR code or RFID electronic tag, and prints or writes it onto the label. The label content intuitively displays the key information of the packaged seeds, facilitating quick identification by the operator. At the same time, the electronic characteristics of the QR code or RFID tag further enhance the reliability and traceability of information recording.

[0043] After generating the labels, the seeding operation is guided according to the seeding information recorded on each label. The seeding personnel package the maize seeds to be identified according to the packaging weight, number of packagings, and test group indicated on the label. For example, when the label shows that the current packaging weight is 135 grams and 3 packagings are required, the seeding personnel can directly rely on this information to complete the packaging step by step. After the packaging is completed, the corresponding label is attached to the outside of the packaging, ensuring that each packaged seed can be uniquely identified and corresponding to the test requirements one by one. In addition, the system also records the time, operator, and relevant logs of each label generation and seeding operation, and uploads them to the server to form a complete data storage and tracking chain.

[0044] Through the above implementation method, generating labels and packaging according to the labels not only makes the seeding process more intuitive and efficient, but also reduces the possibility of human error through electronic information management. Each packaged seed is attached with detailed and accurate identification, facilitating subsequent verification, storage, and transportation operations, while improving the transparency and traceability of the seeding process. Through this standardized packaging management method, the complexity of the seeding process is effectively reduced, laying a solid foundation for the smooth progress of the maize variety identification test.

[0045] Step 104: After the packaging is completed, according to the test group corresponding to each packaged maize seed to be identified, place it into a transport box in a preset storage area that matches the test group, where at least one transport box is set in each preset storage area.

[0046] In Step 104, after the packaging is completed, according to the test group corresponding to each packaged maize seed to be identified, place it into a transport box in a preset storage area that matches the test group, where at least one transport box is set in each preset storage area. This step is a key link to ensure that the packaged maize seeds can be efficiently classified and stored and are convenient for subsequent transportation and test distribution. In the maize variety identification test, different test groups have different requirements for the number, weight, and storage order of seeds. Without standardized classification and boxing management, it is easy to cause confusion in types or distribution errors, thus affecting the test process and the accuracy of the results.

[0047] In the specific implementation process, first, according to the test group information recorded in the labels of the packaged corn seeds, the seeded corn seeds are classified. The seeding personnel, in accordance with the distribution rules of the test groups, centrally place the seeds of the same group in the corresponding storage areas, which are pre-divided in the seeding site and clearly marked according to the test groups. For example, if a batch of seed labels is marked as "East China North Middle Maturity Group", the seeding personnel need to put this batch of seeds into the corresponding area and reserve appropriate space for each transport box in the area for subsequent boxing.

[0048] After completing the area classification, the classified stored corn seeds are loaded one by one into transport boxes matching the test groups. Group labels are pre-pasted on the transport boxes to clearly identify the group information of the box and its boxing content. During the boxing process, the seeding personnel will check the seed quantity and label information one by one according to the seeding plan to ensure that the boxing content is completely consistent with the test requirements. After each transport box is filled, an outer box label will also be attached, including information such as the transport box code, test group, and seed quantity, providing clear guidance for subsequent transportation and use.

[0049] In the above way, the seeds of each test group can be properly classified and stored and the transport box management can be carried out, avoiding operation delays and test errors caused by storage chaos or unclear classification. In addition, closely associating the boxing process with the test group information helps with subsequent transportation and distribution management. The planning of the preset storage areas makes the seeding and boxing processes more efficient and orderly, and the use of transport box labels ensures that the content information of each transport box is clear. This standardized operation process improves the overall efficiency and accuracy of the seeding work for corn variety identification tests, providing a reliable guarantee for the smooth progress of large-scale tests.

[0050] In a possible implementation manner, the method further includes steps 201-202: Step 201: Electronically check the labels of the corn seeds to be identified after boxing.

[0051] In step 201, electronically checking the labels of the corn seeds to be identified after boxing is a key step to ensure the accuracy of the information of the seeded and boxed seeds. In corn variety identification tests, the seeds after boxing need to be completely matched with the seeding plan and transportation requirements of the corresponding test groups. Any error will have an adverse impact on the test process and the accuracy of the results. Therefore, through electronic checking, possible errors can be quickly discovered to ensure that the seeds loaded in each transport box meet the preset requirements, thus realizing precise management of the entire seeding process.

[0052] In a possible implementation manner, step 201 specifically includes steps 301-303: Step 301: Scan the QR code on the label of the corn seeds to be identified after packing through a QR code scanning device, or read the RFID electronic tag on the label of the corn seeds to be identified after packing through an RFID reader / writer, and compare the obtained identification information with the variety information of the corresponding transport box.

[0053] In the specific implementation process, each sub-packaging of the corn seeds to be identified is attached with a label containing sub-species information. The label records key information such as variety name, test group, and sub-packaging weight in the form of a QR code or an RFID electronic tag. In the verification process, the sub-species operator uses a QR code scanning device to scan the QR code on the package, or brings the package close to the RFID reader / writer to read the electronic information in the tag. These devices are connected to the sub-species management system through a standardized interface and transmit the read tag information to the system in real time.

[0054] After the system receives the information scanned by the QR code or read by the RFID, it will automatically call the preset sub-packaging data of the corresponding transport box and compare the read information with the variety information corresponding to the transport box. For example, if the variety recorded in the tag belongs to the "Mid-maturing Group in Northeast and North China", the system will check whether this information matches the test group of the transport box and further verify whether the sub-packaging weight is consistent with the sub-packaging plan.

[0055] The effects of this operation are reflected in the following aspects. First, through automated QR code scanning or RFID reading, the cumbersome process of manual recording and verification is avoided, greatly improving the verification efficiency. Second, the electronic reading method has high accuracy and repeatability, which can effectively reduce information errors and omissions caused by manual operations. Finally, after reading the information, the system will generate a comparison log and upload it to the server to form a complete verification record, which is convenient for subsequent data traceability and test verification.

[0056] Step 302: When it is determined that the comparison information does not match, output an alarm prompt message.

[0057] In the specific implementation process, when the system reads the tag information in Step 301, it compares it with the variety information corresponding to the preset transport box. If the comparison result shows that the tag information (such as variety name, test group, sub-packaging weight, etc.) is inconsistent with the test group requirements preset for the transport box, the system will immediately trigger the alarm mechanism and output an alarm prompt message to the operator. For example, when the tag shows that the seeds belong to the "Mid-maturing Group in Northeast and North China", but the system detects that they are loaded into a transport box marked as the "Summer Maize Group in Huang-Huai-Hai Region", the system will issue an error prompt in the form of interface warning, voice broadcast, or indicator light flashing to remind the operator to check and correct.

[0058] After the alarm prompt message is output, the system simultaneously locks the current verification status and pauses the subsequent minute-by-minute verification process until the operator completes the error correction operation and passes the re-verification. During the error correction process, the operator can refer to the error details provided by the system (such as the inconsistencies between the actual group and the target group) to quickly locate the root cause of the problem and solve the problem by adjusting the transport box or re-packaging.

[0059] Step 303: When it is determined that the comparison information matches, determine the code of the transport box corresponding to the corn seeds to be identified after packing.

[0060] In the specific implementation process, after the label information is scanned or read through Step 301, the system automatically compares the obtained label information (such as variety name, test group, packing weight, etc.) with the preset information of the transport box. When the comparison result shows that the label information completely matches the preset information of the transport box, the system will immediately confirm that the packed seeds belong to the current transport box and associate and store its code with the seed information. During this process, the system will generate a corresponding transport box code record according to the unique identifier (such as QR code or RFID data) in each seed label to ensure that the information of each packed seed is traceable.

[0061] After the comparison and association are completed, the system will further notify the operator of the confirmation result by means of interface prompt, voice broadcast or mark update. For example, the system will display "Comparison successful: Transport box code XYZ123 has been matched" and synchronize the successfully matched record to the server database. This process ensures that each seed in the transport box has a clear digital identifier, forming a complete packing data chain.

[0062] Through this operation, Step 303 realizes the accurate association between the packed seeds and the transport box code, providing reliable data information support for the subsequent transportation and distribution links. This automated association mechanism not only reduces the information omission and errors that may be caused by manual records, but also enhances the transparency and standardization of the packing operation. In addition, the electronic association between the transport box code and the information of the packed seeds can quickly locate the problem seeds or transport boxes in any subsequent link, thus greatly improving the management efficiency and traceability of the test data.

[0063] Step 202: When the verification result is correct, associate the code of the transport box with the QR code on the transport box express bill and upload the association result to the server database for storage.

[0064] In step 202, when the verification result is correct, the encoding of the shipping box is associated with the two-dimensional code on the shipping label of the shipping box, and the association result is uploaded to the server database for storage. This is a key step to ensure the integrity and traceability of information in the transportation process. The corn variety identification test involves multiple test groups. The seeds carried by each shipping box need to be accurately matched with the test requirements, and their sources and contents can be quickly identified through the encoding and shipping order number during transportation and use. Therefore, by establishing the association between the shipping box encoding and the shipping order number, accurate data support can be provided for logistics management and subsequent test operations.

[0065] In the specific implementation process, after confirming the packing seeds and the shipping box encoding in step 303, the seed sorting operator scans the two-dimensional code on the external label of the shipping box through a scanning device to read the encoding of the shipping box, and at the same time scans the two-dimensional code on the corresponding shipping label to obtain the unique identification information of the shipping label. These data are transmitted to the seed sorting management system in real time, and the system establishes an association relationship between the shipping box encoding and the shipping order number. For example, if the encoding of a certain shipping box is "XYZ123" and the corresponding shipping order number is "EXP456789", the system will record this pair of association information in a unique mapping manner and store it in the server database.

[0066] After the association is completed, the system will generate a storage confirmation log of the association record and prompt the operator of the storage result through interface display or voice broadcast. For example, the system will display "The shipping box encoding XYZ123 is successfully associated with the shipping order number EXP456789 and has been uploaded to the database". This operation not only ensures the successful storage of the association relationship, but also provides real-time feedback to the operator for easy verification and adjustment.

[0067] Through this implementation method, the association between the shipping box encoding and the shipping order number realizes the digital and precise management of information in the seed transportation process. After the association record is uploaded to the server database, a complete set of transportation data chains is formed. In subsequent test links, the seed information and test group content in the shipping box can be quickly queried through the shipping order number, greatly improving the logistics efficiency and transparency. In addition, this mechanism ensures the traceability of seed transportation and distribution. When it is necessary to locate a certain batch of seeds or a certain shipping box during the test process, its transfer status and logistics information can be quickly found through the system, thereby improving the reliability and efficiency of test management.

[0068] It should be noted that in the variety sorting and verification process, the macro file program developed based on the VBA (Visual Basic for Applications) language runs through the entire operation steps. Combined with the detailed processes of steps 101 to 202, it effectively achieves the goals of information management and automated operation. VBA is a macro language of Visual Basic and is a programming language for performing general automation (OLE) tasks in its desktop applications. It can mainly be used to expand the functions of Windows applications, especially Microsoft Office software. It can also be said to be a Basic script for visualizing application programs.

[0069] The macro file program is designed for the specific requirements of variety sorting and verification, covering the whole process management from information collection to the final association of shipping boxes, significantly improving the efficiency and accuracy of variety sorting and verification.

[0070] In the variety sorting stage, the variety sorting macro file (steps 101 to 104) provides powerful data processing and visualization support. According to step 101, the variety sorting macro file extracts key information including variety name, parental combination, test group, and experimental stage from the variety information and displays it in the window interface for the variety sorters to quickly verify. At the same time, the macro program determines whether a variety participates in multiple test groups through an automatic detection function (step 102) and informs the operator in the form of a prompt to ensure that the relevant variety sorting tasks are completed at one time.

[0071] In the calculation of the sorting weight, the program automatically generates weight distribution data for sorting requirements such as regional trials and production trials according to the preset sorting rules in step 102 and the hundred-grain weight of the variety, and calculates the total weight required in real time. This calculation result is directly displayed in the window, facilitating the operator to adjust the sorting plan according to the total amount of seeds, thus achieving precise resource allocation. During the sorting process, the program records data such as the source of seeds, sorting time, RFID information, etc. in real time, and these records are integrated into the sorting label in the label generation link of step 103, providing reliable data support for subsequent traceability.

[0072] The label printing function is another key link of the variety sorting macro file. In step 103, the macro program automatically generates labels containing variety information, sorting information, and test group information, and supports the synchronous printing of sorting labels and outer box labels. If the operator needs to adjust the label quantity or content, it can be flexibly modified through the program interface, such as adjusting the sorting weight or increasing the label quantity. In addition, for seeds from external units, the program can generate specific labels according to actual needs to adapt to the diverse requirements of the variety sorting work.

[0073] After the sub-packaging is completed, the program guides the operator to classify and store the sub-packaged corn seeds in the preset areas of different test groups according to Step 104, and identifies the group information of the shipping box through the outer box label. This process further standardizes the management in the later stage of sub-packaging and provides a clear grouping basis for packing and transportation.

[0074] In the verification stage, the verification macro file (from Step 201 to Step 202) realizes the accurate matching of the shipping box and the sub-packaged seeds through electronic operations. In Step 201, the operator uses a barcode scanning device or an RFID reader / writer to read the label information and compares it with the variety information of the shipping box stored in the system. If it is found that the label information does not match the preset information, the program will issue a voice alarm according to Step 302 to remind the operator to check and correct the error; if the comparison is successful, the program will confirm the corresponding relationship between the seeds and the shipping box according to Step 303 and automatically record the association between the shipping box code and the seed information.

[0075] When all the verification work is completed, the program enters Step 202, scans and associates the shipping box code with the QR code of the express waybill, and uploads the association result to the server database for storage. Through this step, all the key information of the shipping box is completely recorded and bound to the express waybill number, providing an accurate traceability basis for logistics management and distribution at the test sites.

[0076] Through the coordinated work of the above steps, the macro file program runs through the entire process of sub-packaging and verification. The sub-packaging stage realizes the full-process automated operation from information collection, sub-packaging weight calculation, label generation to shipping box management; the verification stage ensures the accurate matching relationship between the seeds and the shipping box through barcode scanning or RFID reading, and finally establishes an association with the logistics information. This information-based and automated management mode not only ensures the efficiency and accuracy of the sub-packaging work, but also provides technical guarantee for the whole-process traceability of the corn variety identification test.

[0077] Refer to Figure 4 , Figure 4 which is the structural schematic diagram of the sub-packaging system for corn variety identification test provided by the present invention. The system includes: An acquisition module, which is used to acquire the variety information of the corn seeds to be identified; A processing module, which is used to determine the sub-packaging information of the corn seeds to be identified under each test group according to the variety information and the preset sub-packaging rules; A sub-packaging module, which is used to generate a label containing the variety information, sub-packaging information and test group, and sub-package the corn seeds to be identified according to the label; The packing module is used to, after the sub-packaging is completed, put the sub-packaged corn seeds to be identified into the transport boxes in the preset storage areas that match the test groups corresponding to each sub-packaged corn seed to be identified, where at least one transport box is provided in each preset storage area.

[0078] In a possible implementation manner, the system further includes: The verification module is used to electronically verify the labels of the corn seeds to be identified after packing; The association module is used to, when the verification result is correct, associate the code of the transport box with the two-dimensional code on the express bill of the transport box, and upload the association result to the server database for storage.

[0079] In a possible implementation manner, the verification module is further used to: Scan the two-dimensional code in the label of the corn seeds to be identified after packing through a code scanning device, or read the RFID electronic tag in the label of the corn seeds to be identified after packing through an RFID reading and writing device, and compare the obtained identification information with the variety information of the corresponding transport box; When it is determined that the comparison information does not match, output an alarm prompt message; When it is determined that the comparison information matches, determine the code of the transport box corresponding to the corn seeds to be identified after packing.

[0080] It should be noted that the seed sorting system for corn variety identification provided by the present invention can execute the seed sorting method for corn variety identification in any of the above embodiments during specific operation, and this embodiment will not be elaborated here.

[0081] Figure 5 It is a schematic structural diagram of the electronic device provided by the present invention, as Figure 5As shown, the electronic device may include: a processor 510, a communications interface 520, a memory 530, and a communication bus 540. Among them, the processor 510, the communications interface 520, and the memory 530 complete communication with each other through the communication bus 540. The processor 510 may call logical instructions in the memory 530 to execute a seed sorting method for corn variety identification tests. The method includes: obtaining variety information of corn seeds to be identified; determining the seed sorting information of the corn seeds to be identified under each test group according to the variety information and a preset packaging rule; generating a label including the variety information, the seed sorting information, and the test group, and packaging the corn seeds to be identified according to the label; after the packaging is completed, according to the test group corresponding to each packaged corn seed to be identified, respectively placing it in a transport box in a preset storage area matching the test group, where at least one transport box is provided in each preset storage area.

[0082] In addition, when the logical instructions in the above-mentioned memory 530 are implemented in the form of software functional units and sold or used as independent products, they may be stored in a computer-readable storage medium. Based on such an understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art, or a part of this technical solution, may 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 may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods in various embodiments of the present invention. The foregoing storage medium includes: various media such as USB flash drives, mobile hard disks, read-only memories (ROMs), random access memories (RAMs), magnetic disks, or optical discs that can store program codes.

[0083] On the other hand, the present invention also provides a computer program product. The computer program product includes a computer program stored on a non-transitory computer-readable storage medium. The computer program includes program instructions. When the program instructions are executed by a computer, the computer can execute the seed sorting method for corn variety identification tests provided in the above-mentioned various embodiments. The method includes: obtaining variety information of corn seeds to be identified; determining the seed sorting information of the corn seeds to be identified under each test group according to the variety information and a preset packaging rule; generating a label including the variety information, the seed sorting information, and the test group, and packaging the corn seeds to be identified according to the label; after the packaging is completed, according to the test group corresponding to each packaged corn seed to be identified, respectively placing it in a transport box in a preset storage area matching the test group, where at least one transport box is provided in each preset storage area.

[0084] In another aspect, the present invention also provides a non-transitory computer-readable storage medium, on which a computer program is stored. When the computer program is executed by a processor, it is used to execute the seed sorting method for corn variety identification provided in the above embodiments. The method includes: obtaining the variety information of the corn seeds to be identified; determining the seed sorting information of the corn seeds to be identified under each test group according to the variety information and a preset packaging rule; generating a label including the variety information, the seed sorting information, and the test group, and packaging the corn seeds to be identified according to the label; after the packaging is completed, according to the test group corresponding to each packaged corn seed to be identified, respectively putting it into a transport box in a preset storage area matching the test group, wherein at least one transport box is provided in each preset storage area.

[0085] The system embodiments described above are merely illustrative. The units described as separate components may or may not be physically separated, and the components shown as units may or may not be physical units, that is, they may be located in one place or distributed to multiple network units. Some or all of the modules can be selected according to actual needs to achieve the purpose of the solution of this embodiment. Those of ordinary skill in the art can understand and implement it without creative labor.

[0086] Through the description of the above embodiments, those skilled in the art can clearly understand that each embodiment can be implemented by means of software plus a necessary general hardware platform, and of course, it can also be implemented by hardware. Based on this understanding, the essence of the above technical solution, or the part that contributes to the prior art, can be embodied in the form of a software product. The computer software product can be stored in a computer-readable storage medium, such as ROM / RAM, magnetic disk, optical disc, etc., and includes several instructions for causing a computer device (which can be a personal computer, a server, or a network device, etc.) to execute the methods of each embodiment or some parts of the embodiments.

[0087] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit them; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present invention.

Claims

1. A method for sorting corn varieties for testing, characterized in that: include: Obtaining variety information of corn seeds to be identified; Determining the classification information of the corn seeds to be identified in each test group according to the variety information and the preset classification rules; Generating a label including the variety information, the classification information and the test group, and packaging the corn seeds to be identified according to the label; After the subpackaging is completed, each packaged corn seed to be identified is placed in a transport box in a preset storage area matching the test group corresponding to the test group, wherein at least one transport box is set in each preset storage area.

2. The method for corn variety identification test according to claim 1, characterized in that: The method further comprises: Electronically check the labels of the corn seeds to be identified after packing; When the verification result is correct, the code of the transport box is associated with the QR code on the express delivery note of the transport box, and the association result is uploaded to the server database for storage.

3. The method for corn variety identification test according to claim 2, characterized in that: The electronic verification of the labels of the packed corn seeds to be identified specifically includes: Scan the QR code in the label of the packed corn seeds to be identified by a code scanning device, or read the RFID electronic tag in the label of the packed corn seeds to be identified by an RFID reader / writer, and compare the obtained identification information with the variety information of the corresponding transport box; When it is determined that the comparison information does not match, an alarm prompt message is output; When it is determined that the comparison information matches, the code of the transport box corresponding to the packed corn seeds to be identified is determined.

4. The method for corn variety identification test according to claim 1, characterized in that: The variety information includes variety name, source information and seed trait information.

5. The method for separating corn varieties for identification test according to claim 1, characterized in that: The seed distribution information includes the packaging weight, the number of packaging times and the required number of seeds.

6. A seed sorting system for corn variety identification test, characterized in that: include: An acquisition module is used to obtain the variety information of the corn seeds to be identified; A processing module, used for determining the classification information of the corn seeds to be identified in each test group according to the variety information and the preset packaging rules; A packaging module, used for generating a label including the variety information, the classification information and the test group, and packaging the corn seeds to be identified according to the label; The packing module is used to place the corn seeds to be identified after the packing is completed into a transport box in a preset storage area matching the test group corresponding to each package, wherein at least one transport box is arranged in each preset storage area.

7. The seed sorting system for corn variety identification test according to claim 6, characterized in that: Also includes: A verification module is used to electronically verify the labels of the corn seeds to be identified after packing; The association module is used to associate the code of the transport box with the QR code on the express delivery note of the transport box when the verification result is correct, and upload the association result to the server database for storage.

8. An electronic device comprising a memory, a processor, and a computer program stored in the memory and running on the processor, characterized in that: When the processor executes the computer program, the seed separation method for corn variety identification test as described in any one of claims 1 to 5 is implemented.

9. A non-transitory computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the seed separation method for corn variety identification test as described in any one of claims 1 to 5 is implemented.

10. A computer program product, comprising a computer program, characterized in that When the computer program is executed by a processor, the seed separation method for corn variety identification test as described in any one of claims 1 to 5 is implemented.