Automatic reporting method and device in high-frequency reporting scene

By automatically determining the process number by scanning a QR code with a mobile terminal, the problem of low production efficiency and quality under the traditional work reporting method is solved, and efficient and accurate production is achieved in high-frequency work reporting scenarios.

CN121544014BActive Publication Date: 2026-04-10蒲惠智造科技股份有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2026-01-20
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Traditional work reporting methods are time-consuming in high-frequency, small-batch production scenarios, which can easily disrupt the production rhythm, cause operators to confuse the process, and lead to quality problems and production delays.

Method used

By scanning the QR code with a mobile terminal to obtain the target QR code identifier, the system identifies the processing card and the current process status table, automatically determines the process number to be executed, and automatically completes the work reporting operation if the conditions are met.

Benefits of technology

It reduces the time operators spend manually recording and entering data, improves the smoothness and accuracy of the production process, avoids skipping or repeating operations due to human error, and ensures the stability and reliability of the production process.

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Abstract

The application discloses an automatic reporting method and device in a high-frequency reporting scene, and a mobile terminal method, which comprises the following steps: in response to a scanning code reporting instruction triggered by a user for a mobile terminal, scanning a two-dimensional code image for analysis to obtain a target two-dimensional code identifier; determining a to-be-processed flow card and a current process state table according to the target two-dimensional code identifier; determining a target process number of an unfinished state that should be executed according to the current process state table and process information in a process flow sequence; when the target process number is one, calculating a current finished quantity based on material information and the target process number to automatically report work; or when the target process number does not exist, displaying warning information of process errors and prohibiting the user from performing a reporting operation; or when the target process number is multiple, generating and displaying prompt information for prompting the user to manually select a process number. By using the application, production interruption caused by complicated reporting operations can be effectively avoided, and production efficiency is significantly improved.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of industrial management, and in particular relates to an automatic reporting method and device in a high-frequency reporting scenario. BACKGROUND

[0002] In a modern discrete manufacturing workshop, with the deepening of lean production management, the production mode is gradually changing from traditional single and large-batch production to flexible production of small batch and multiple batches. This high-frequency and small-batch production mode puts forward very high requirements on the real-time and accuracy of production data to ensure that the production management subsystem (MES / ERP) can accurately track the work-in-process (WIP) state.

[0003] In the related art, most manufacturing enterprises still rely on traditional reporting methods, mainly including paper document recording and PC terminal timing input. In the above application scenario, the operator needs to manually find the corresponding work order information after completing the assembly of a tray, fill in the reporting data, and then input on the PC terminal.

[0004] However, the manual traditional reporting method is time-consuming, and in a high-frequency reporting scenario, this tedious operation seriously disrupts the production rhythm and reduces the production efficiency. In a complex process route, such as repeated processes of "plating-polishing-plating-polishing", the operator is easy to confuse the current process to be performed, resulting in sequence skipping or repeated operation, and thus causing quality problems and production delay. SUMMARY

[0005] The embodiments of the present application provide an automatic reporting method and device in a high-frequency reporting scenario. In order to have a basic understanding of some aspects of the disclosed embodiments, a brief summary is given below. This part is not a general review, nor is it intended to determine the key / important elements or delineate the protection scope of these embodiments. Its only purpose is to present some concepts in a simple form as a prelude to the detailed description that follows.

[0006] In a first aspect, the embodiments of the present application provide an automatic reporting method in a high-frequency reporting scenario, applied to a mobile terminal, and the method comprises:

[0007] In response to a scanning reporting instruction triggered by a user for the mobile terminal, a two-dimensional code image is scanned and analyzed to obtain a target two-dimensional code identifier;

[0008] According to the target two-dimensional code identifier, a to-be-processed flow card and a current process state table are determined; the to-be-processed flow card is bound with material information and process information; the current process state table records the process number, process state and completed quantity of each process, and the process state is completed or to be completed;

[0009] According to the current process state table and the process information, a target process number of an unfinished state to be executed is determined according to a process flow sequence;

[0010] In a case where the target process number is one, a current finished quantity is calculated based on the material information and the target process number to automatically report work; or, in a case where the target process number does not exist, warning information of a process error is displayed and the user is prohibited from performing a work reporting operation; or, in a case where the target process number is multiple, prompt information prompting the user to manually select a process number is generated and displayed.

[0011] Optionally, according to the target two-dimensional code identifier, the to-be-processed flow card and the current process state table are determined, including:

[0012] The to-be-processed flow card corresponding to the target two-dimensional code identifier is obtained from a first mapping relationship between the two-dimensional code identifiers and the flow cards that is established in advance;

[0013] The current process state table corresponding to the target two-dimensional code identifier is obtained from a second mapping relationship between the two-dimensional code identifiers and the process state tables that is established in advance.

[0014] Optionally, the first mapping relationship is generated according to the following steps, including:

[0015] A work order task issued by a production management system is received, and the work order task is split into multiple flow cards according to minimum logistics units;

[0016] Basic material information and basic process information of each flow card are obtained and associated to each flow card to obtain each flow card with key information;

[0017] A two-dimensional code identifier is assigned to each flow card with key information to obtain the two-dimensional code identifier of each flow card with key information;

[0018] A first mapping relationship between each flow card with key information and the two-dimensional code identifier of each flow card with key information is stored; wherein,

[0019] The second mapping relationship is generated according to the following steps, including:

[0020] Original process information of each flow card is obtained;

[0021] According to the original process information of each flow card, a process state table containing a process number, a process state and a finished quantity of each process is created to obtain a process state table corresponding to each flow card; the process state is set to unfinished and the finished quantity is set to 0;

[0022] A second mapping relationship between the two-dimensional code identifier of each flow card and the process state table of each flow card is stored.

[0023] Optionally, after generating and displaying the prompt message asking the user to manually select the process number, the process may also include:

[0024] In response to the user's instruction to select a process number on the mobile terminal, determine the final process number selected by the user;

[0025] Based on material information and the final process number, the current completed quantity is calculated and automatically reported.

[0026] Optionally, based on the current process status table and process information, determine and display the target process number for the currently incomplete process according to the process flow sequence, including:

[0027] Parse the process information to obtain the complete standard process sequence corresponding to the transfer card to be processed;

[0028] Convert each standard process in the complete standard process sequence into a master node;

[0029] Encapsulate each process and its status in the current process status table into a process status auxiliary node;

[0030] Based on each main node and each process status auxiliary node, a standard process status list is generated, which reflects the process status of each standard process.

[0031] Starting from the first standard operation in the standard operation status list, check the current status of each standard operation one by one to find the first standby operation that is yet to be completed.

[0032] Obtain the process number of the backup process as the target process number.

[0033] Optionally, a standard process status list is generated based on each master node and each process status auxiliary node, including:

[0034] Associate each process status auxiliary node with each master node to obtain the master-auxiliary node diagram;

[0035] Compare the main nodes in each main-auxiliary node diagram with the auxiliary nodes for each process status;

[0036] Pass the status parameters of auxiliary nodes with the same process status as the master node to the master node to obtain the status of each master node;

[0037] The status of each master node is mapped one by one to the complete standard process sequence to obtain the standard process status list.

[0038] Optionally, each process in the current process status table and the status of each process can be encapsulated into a process status auxiliary node, including:

[0039] traverse each original record in the current process state table, each original record including a process number, a process state and a finished quantity of each process;

[0040] perform data validity check on the process number, the process state and the finished quantity of each process included in each original record to obtain a check result;

[0041] in a case where the check result indicates that each original record is valid, create a structured binary tuple node object for each original record; the binary tuple node object stores the process number and the process state; take each binary tuple node object as each process state auxiliary node; or,

[0042] in a case where the check result indicates that each original record is invalid, generate a form interface for representing that there is an error in the record for display to remind the user to modify each original record, and in response to a modification completion instruction triggered by the user, continue to perform the step of performing data validity check on the process number, the process state and the finished quantity of each process included in each original record until each process state auxiliary node is generated.

[0043] Optionally, based on the material information and the target process number, the current finished quantity is calculated to automatically report work, including:

[0044] analyze the material information to extract a planned total quantity corresponding to the target process number;

[0045] query the current process state table to count the number of records with a completed state under the target process number to obtain a finished cumulative quantity

[0046] calculate a difference between the planned total quantity and the finished cumulative quantity as a current to-be-reported finished quantity of the target process number;

[0047] fill the target process number and the current to-be-reported finished quantity of the target process number into a preset visualization template to obtain a visualization result for display;

[0048] in response to a confirmation instruction of the user for the visualization result, submit the target process number and the current to-be-reported finished quantity of the target process number to the production management system;

[0049] when receiving a work reporting success response information from the production management system, update the current process state table based on the current to-be-reported finished quantity of the target process number.

[0050] Optionally, update the current process state table based on the current to-be-reported finished quantity of the target process number, including:

[0051] locate the original record corresponding to the target process number in the current process state table;

[0052] updating the process state in the original record to completed;

[0053] updating the finished quantity field in the original record to the current to-be-reported finished quantity.

[0054] In a second aspect, the embodiments of the present application provide an automatic reporting device in a high-frequency reporting scene, which comprises:

[0055] The scanning and analyzing module is configured to, in response to a code scanning reporting instruction triggered by a user for the mobile terminal, scan and analyze a two-dimensional code image to obtain a target two-dimensional code identifier.

[0056] The information determining module is configured to determine a to-be-processed circulation card and a current process state table according to the target two-dimensional code identifier; the to-be-processed circulation card is bound with material information and process information; and the current process state table records a process number, a process state and a finished quantity of each process, wherein the process state is completed or to be completed.

[0057] The process number determining and displaying module is configured to determine a target process number of a to-be-completed process according to the current process state table and the process information in a process circulation order.

[0058] The automatic reporting module is configured to, in a case where the target process number is one, calculate a current finished quantity based on the material information and the target process number to automatically report the work; or, in a case where the target process number does not exist, display warning information of a process error and prohibit the user from performing a reporting operation; or, in a case where the target process number is multiple, generate and display prompt information prompting the user to manually select a process number.

[0059] The technical scheme provided by the embodiments of the present application can have the following beneficial effects:

[0060] In the embodiments of the present application, on the one hand, the target two-dimensional code identifier can be quickly obtained by scanning the two-dimensional code through the mobile terminal, and the to-be-processed circulation card and the current process state table can be directly determined, based on which the system can automatically determine the process number to be executed at present and automatically complete the reporting operation in the case of meeting the conditions. This process greatly reduces the time of manual recording and inputting by the operator, makes the production process more smooth, effectively avoids the production interruption caused by tedious reporting operation, and thus significantly improves the production efficiency. On the other hand, the system accurately determines the target process number of the to-be-completed process according to the process state table and the process information in the process circulation order. Even in a complex process route, the system can clearly indicate the process to be executed by the operator at present, avoid the skip or repeated operation caused by human judgment error, ensure the accuracy and continuity of the production process, effectively reduce the occurrence of quality problems and production delay, improve the stability and reliability of the production process, and guarantee the efficient operation of the entire production system.

[0061] It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory only and are not restrictive of the application, as claimed. BRIEF DESCRIPTION OF DRAWINGS

[0062] The accompanying drawings, which are incorporated in and constitute a part of this specification, illustrate embodiments consistent with the application and serve to explain the principles of the application, in which, like reference numerals designate corresponding parts throughout the several views.

[0063] Figure 1 is a method flow diagram of an automatic reporting method in a high-frequency reporting scene according to an embodiment of the application;

[0064] Figure 2 is a process schematic block diagram of a process for determining a to-be-processed flow card and a current process state table according to an embodiment of the application;

[0065] Figure 3 is a process node schematic diagram according to an embodiment of the application;

[0066] Figure 4 is a standard process state list schematic diagram according to an embodiment of the application;

[0067] Figure 5 is a process schematic block diagram of a master-slave node graph construction process according to an embodiment of the application;

[0068] Figure 6 is a process schematic block diagram of a target process number determination process according to an embodiment of the application;

[0069] Figure 7 is a visualization result schematic diagram displayed by a mobile terminal according to an embodiment of the application;

[0070] Figure 8 is a process schematic diagram of an automatic reporting process in a high-frequency reporting scene according to an embodiment of the application;

[0071] Figure 9 is a structural schematic diagram of an automatic reporting device in a high-frequency reporting scene according to an embodiment of the application;

[0072] Figure 10 is a structural schematic diagram of an electronic device according to an embodiment of the application. DETAILED DESCRIPTION

[0073] The following description and drawings are illustrative of specific embodiments of the application and are not intended to limit the generality of the application as claimed.

[0074] It should be noted that the described embodiments are merely some of the embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without creative labor fall within the scope of protection of the present application.

[0075] The following description refers to the accompanying drawings. Unless otherwise noted, like elements in different drawings represent the same or similar elements. The implementations described in the following exemplary embodiments are not meant to represent all implementations consistent with the present application. Rather, they are merely examples of apparatuses and methods consistent with some aspects of the present application as detailed in the appended claims.

[0076] In the description of the present application, it should be understood that the terms "first", "second" and the like are used only for descriptive purposes, and cannot be understood as indicating or implying relative importance. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to the specific circumstances. In addition, in the description of the present application, unless otherwise specified, "multiple" means two or more. The association between the associated objects is described as "and / or", which means that there can be three relationships, for example, A and / or B can mean that A exists alone, A and B exist together, and B exists alone. The character " / " generally represents that the associated objects before and after are in an "or" relationship.

[0077] At present, most manufacturing enterprises still rely on traditional reporting methods, mainly including paper document recording and PC terminal timing input.

[0078] The applicant of the present application realizes that the manual traditional reporting method is time-consuming, and in the high-frequency reporting scene, such cumbersome operation seriously interrupts the production rhythm and reduces the production efficiency. In a complex process route, such as repeated processes of "plating-polishing-plating-polishing", the operator is easy to confuse the current process to be performed, resulting in sequence skipping or repeated operation, and further causing quality problems and production delay.

[0079] To solve the above problems, the application provides an automatic reporting method and device in a high-frequency reporting scene to solve the problems in the above related technical problems. In the embodiments of the application, on the one hand, the target two-dimensional code identifier can be quickly obtained by scanning the two-dimensional code through the mobile terminal, and the to-be-processed flow card and the current process state table are directly determined, based on which the system can automatically determine the process number to be executed, and automatically complete the reporting operation if the conditions are met. This process greatly reduces the time for manual recording and input by the operator, makes the production process more smooth, effectively avoids the production interruption caused by tedious reporting operation, and thus significantly improves the production efficiency. On the other hand, the system accurately determines the target process number of the unfinished state to be executed according to the process state table and the process information according to the process flow sequence. Even in a complex process route, the system can clearly indicate the process to be executed by the operator, avoid the skip or repeated operation caused by human judgment error, ensure the accuracy and continuity of the production process, effectively reduce the occurrence of quality problems and production delay, improve the stability and reliability of the production process, and ensure the efficient operation of the entire production system. The following exemplary embodiments are described in detail.

[0080] The following will be described in detail with reference to the accompanying drawings. Figure 1 -Appendix Figure 8 The automatic reporting method in a high-frequency reporting scene provided by the embodiments of the application is described in detail. The method can be realized by relying on a computer program and can be run on an automatic reporting device in a high-frequency reporting scene based on the von Neumann system. The computer program can be integrated in an application or run as an independent tool application.

[0081] Please refer to Figure 1 A flowchart of an automatic reporting method in a high-frequency reporting scene is provided for the embodiments of the application and applied to a mobile terminal. As shown in Figure 1 The method of the embodiments of the application includes the following steps:

[0082] S101, in response to a scanning reporting instruction triggered by a user for a mobile terminal, scanning a two-dimensional code image for analysis to obtain a target two-dimensional code identifier;

[0083] The user is an operator or staff who uses the mobile terminal to perform the scanning reporting operation. The mobile terminal is an electronic device that can be moved and used, such as a smart phone, a tablet computer, etc. The scanning reporting instruction is an operation instruction triggered by the user on the mobile terminal, which is used to start the scanning reporting process. The two-dimensional code image is a kind of graphic information composed of black and white geometric patterns, which is used to store information.

[0084] In some embodiments of the present application, the user opens an application supporting code scanning reporting on the mobile terminal. The user finds the "code scanning reporting" function button in the APP interface and clicks it to trigger the code scanning reporting instruction. After receiving the code scanning reporting instruction triggered by the user, the mobile terminal starts the camera of the device. The camera collects image data by aiming at the two-dimensional code image. The application on the mobile terminal uses a two-dimensional code analysis algorithm (such as ZXing, QR Code Decoder, etc.) to analyze the collected two-dimensional code image. The analysis algorithm identifies the geometric patterns in the two-dimensional code, extracts the information stored therein, and converts it into text or data format. After the analysis is completed, the application extracts the target two-dimensional code identifier from the analysis result. The target two-dimensional code identifier is a string that uniquely identifies a production task or a flow card.

[0085] In one possible implementation, after completing a process, the worker picks up the mobile phone (as a mobile terminal) and opens the production management APP. In the main interface of the APP, the worker clicks the "code scanning reporting" button to trigger the code scanning reporting instruction. After receiving the instruction, the mobile phone automatically starts the camera. The worker aims the camera at the two-dimensional code image on the flow card, and the camera collects image data of the two-dimensional code. The APP on the mobile phone uses the built-in two-dimensional code analysis algorithm to analyze the image. The analysis algorithm identifies the geometric patterns in the two-dimensional code and extracts the information stored in the two-dimensional code (such as "123456789"). The APP extracts the target two-dimensional code identifier "123456789" from the analysis result. "123456789" is the unique identifier of the flow card, which is used to associate the material information and process information of the flow card.

[0086] S102, according to the target two-dimensional code identifier, determine the to-be-processed flow card and the current process state table; the to-be-processed flow card is bound with material information and process information; the current process state table records the process number, process state and completed quantity of each process, and the process state is completed or to be completed;

[0087] The target two-dimensional code identifier is a unique identifier parsed from the two-dimensional code image, used to associate a specific production task or flow card. The to-be-processed flow card is a production task record associated with the target two-dimensional code identifier, used to track material and process information in the production process. The material information is detailed information about the production material bound to the to-be-processed flow card, such as material number, name, specification, quantity, etc. The process information is detailed information about the production process bound to the to-be-processed flow card, such as process name, process sequence, operation requirements, etc. The current process state table is used to record the current state of each process, including process number, process state and finished quantity, for real-time reflection of the completion of each process, for production management and monitoring. The process number is a number used to uniquely identify each process. The process state indicates the completion of each process, which can be "completed" or "to be completed". The finished quantity records the number of products that have been completed for each process.

[0088] In some embodiments of the present application, according to the target two-dimensional code identifier, the specific process of determining the to-be-processed flow card and the current process state table includes: obtaining the to-be-processed flow card corresponding to the target two-dimensional code identifier from a first mapping relationship between the two-dimensional code identifier and the flow card established in advance; obtaining the current process state table corresponding to the target two-dimensional code identifier from a second mapping relationship between the two-dimensional code identifier and the process state table established in advance.

[0089] In a possible implementation, the APP extracts the target two-dimensional code identifier "123456789" from the parsing result. The identifier "123456789" is a unique identifier of the flow card, used to associate the material information and process information of the flow card. The system queries the to-be-processed flow card associated with the identifier in the database according to the identifier. The to-be-processed flow card queried contains the following information:

[0090] Material information: part number: P12345, specification: 10cm x 10cm, quantity: 50 pieces.

[0091] Process information: process 1: cutting, process 2: welding, process 3: polishing.

[0092] At the same time, the background system queries the content of the current process state table associated with the identifier as follows:

[0093] Process number: 1, process state: completed, finished quantity: 50 pieces.

[0094] Process number: 2, process state: completed, finished quantity: 50 pieces.

[0095] Process number: 3, process state: to be completed, finished quantity: 0 pieces.

[0096] Specifically, the specific process of generating the first mapping relationship comprises: receiving a work order task issued by a production management system, and splitting the work order task into multiple flow cards according to minimum logistics units; obtaining basic material information and basic process information of each flow card, and associating the basic material information and the basic process information to each flow card to obtain each flow card with key information; assigning a two-dimensional code identifier to each flow card with key information to obtain the two-dimensional code identifier of each flow card with key information; and storing a first mapping relationship between each flow card with key information and the two-dimensional code identifier of each flow card with key information. For example, the first mapping relationship is shown in Table 1.

[0097] Table 1

[0098]

[0099] Specifically, the specific process of generating the second mapping relationship comprises: obtaining original process information of each flow card; creating a process state table containing a process number, a process state, and a completed quantity of each process according to the original process information of each flow card to obtain a process state table corresponding to each flow card; setting the process state as incomplete and the completed quantity as 0; and storing a second mapping relationship between the two-dimensional code identifier of each flow card and the process state table of each flow card. For example, the second mapping relationship is shown in Table 2.

[0100] Table 2

[0101]

[0102] For example Figure 2 as shown, Figure 2 is a process schematic block diagram of a process provided by the present application for determining a to-be-processed flow card and a current process state table, and receiving a work order task issued by a production management system. The work order task is split into multiple flow cards according to minimum logistics units. Basic material information and basic process information are obtained for each flow card. The basic material information and the basic process information are associated to each flow card. A unique two-dimensional code identifier is assigned to each flow card. A first mapping relationship between the flow card and the two-dimensional code identifier is stored. Original process information of each flow card is obtained. A process state table is created according to the original process information, the initial state is “incomplete”, and the completed quantity is 0. A second mapping relationship between the two-dimensional code identifier of the flow card and the process state table is stored. The mapping relationship generation and storage are completed, and the actual reporting scene is entered. After determining a target two-dimensional code identifier, the to-be-processed flow card can be obtained from the first mapping relationship according to the target two-dimensional code identifier, and the current process state table can be obtained from the second mapping relationship.

[0103] S103, determining a target process number of an incomplete work state to be executed according to the current process state table and process information in a process flow sequence;

[0104] In some embodiments of the present application, the specific process of determining and displaying the target process number of the unfinished state that should be executed according to the current process state table and the process information in accordance with the process flow sequence includes: parsing the process information to obtain the complete standard process sequence corresponding to the to-be-processed flow card; converting each standard process in the complete standard process sequence into a main node; encapsulating each process and the state of each process in the current process state table as each process state auxiliary node; generating a standard process state list according to each main node and each process state auxiliary node, the standard process state list reflecting the process state of each standard process; starting from the starting standard process of the standard process state list, checking the current state of each standard process one by one to find the first state of the standby process to be completed; and obtaining the process number of the standby process as the target process number.

[0105] The process flow sequence is the execution sequence of the process, which is predefined according to the production process to ensure that the production process is carried out in the predetermined sequence and to avoid process confusion. The main node is used to represent each process node in the standard process sequence, and the main node is used as the basic structure of the standard process state list to associate the process state auxiliary node. The process state auxiliary node is used to represent each process and its state in the current process state table. The auxiliary node stores the current state information of each process for generating the standard process state list. The standard process state list is a list reflecting the process state of each standard process, and the standard process state list is used to determine the target process number of the unfinished state that should be executed.

[0106] Specifically, the specific process of encapsulating each process and the state of each process in the current process state table as each process state auxiliary node includes: traversing each original record in the current process state table, each original record including the process number, process state and completed quantity of each process; performing data validity check on the process number, process state and completed quantity of each process included in each original record to obtain a check result; in the case that the check result indicates that each original record is valid, creating a structured two-tuple node object for each original record; the two-tuple node object stores the process number and the process state; each two-tuple node object is used as each process state auxiliary node; or in the case that the check result indicates that each original record is invalid, generating a form interface for displaying to indicate that there is an error in the record to remind the user to modify each original record, and in response to a user-triggered modification completion instruction, continuing to perform the step of performing data validity check on the process number, process state and completed quantity of each process included in each original record until each process state auxiliary node is generated.

[0107] Specifically, the specific process of generating the standard process state list according to each master node and each process state auxiliary node includes: associating each process state auxiliary node to each master node to obtain a master-auxiliary node graph; comparing the master node and each process state auxiliary node in each master-auxiliary node graph; transferring the state parameters of the process state auxiliary node that is the same as the master node to the master node to obtain the state of each master node; and corresponding the state of each master node to the complete standard process sequence one by one to obtain the standard process state list. For example, as shown in Figure 3 . The standard process state list is, for example, as shown in Figure 4 .

[0108] For example, as shown in Figure 5 , Figure 5 is a process schematic block diagram of a master-auxiliary node graph construction process provided by the present application. First, process information is parsed to obtain a complete standard process sequence corresponding to a flow card to be processed. The complete process sequence is extracted from the process information. Each standard process is converted into a master node. Each record in the current process state table is traversed. Data validity check is performed on each record. If the data is valid, a binary tuple node object is created. If the data is invalid, an error form interface is displayed. The user modifies the error record. The modified record is rechecked for data validity. After the check passes, an auxiliary node of each process state is generated. Each process state auxiliary node is associated with the corresponding master node to generate a master-auxiliary node graph.

[0109] For example, as shown in Figure 6 , Figure 6 is a process schematic block diagram of a target process number determination process provided by the present application. First, the states of the master node and the auxiliary node are compared. The state parameters of the auxiliary node are transferred to the master node. A list reflecting each standard process state is generated. The state of each process is checked from the starting process of the list. The first process with a to-be-completed state is found. The process number of the process is obtained as the target process number.

[0110] S104, in the case where the target process number is one, the current completion quantity is calculated based on the material information and the target process number to automatically report work; or, in the case where the target process number does not exist, a process error warning information is displayed and the user is prohibited from reporting work; or, in the case where the target process number is multiple, a prompt information prompting the user to manually select the process number is generated and displayed.

[0111] The process error warning information is an error prompt information displayed to the user when the system detects that the target process number does not exist. It is used to remind the user that there is a problem in the current operation to prevent incorrect production operation.

[0112] In some embodiments of the present application, the system determines a target process number of the unfinished state that should be executed according to the current process state table and the process information in the order of the process flow. The system checks the number of the target process number. If the target process number is one, the automatic reporting is performed. If the target process number does not exist, a warning message of process error is displayed and the user is prohibited from reporting operation. If the target process number is multiple, a prompt information prompting the user to manually select the process number is generated and displayed. The system calculates the current finished quantity based on the material information and the target process number. The system automatically records the finished quantity into the production management system to complete the reporting operation.

[0113] Specifically, the specific process of calculating the current finished quantity based on the material information and the target process number to automatically report the work includes: analyzing the material information to extract the planned total quantity corresponding to the target process number; querying the current process state table to count the records of all states under the target process number, and obtaining the cumulative finished quantity; calculating the difference between the planned total quantity and the cumulative finished quantity as the current to-be-reported finished quantity of the target process number; filling the target process number and the current to-be-reported finished quantity of the target process number into the preset visual template to obtain a visual result for display; in response to the confirmation instruction of the user for the visual result, submitting the target process number and the current to-be-reported finished quantity of the target process number to the production management system; and when receiving the reporting success response information from the production management system, updating the current process state table based on the current to-be-reported finished quantity of the target process number. The visual result is shown in FIG. Figure 7

[0114] Specifically, the specific process of updating the current process state table based on the current to-be-reported finished quantity of the target process number includes: locating the original record corresponding to the target process number in the current process state table; updating the process state in the original record to completed; and updating the finished quantity field in the original record to the current to-be-reported finished quantity.

[0115] Specifically, after generating and displaying the prompt information prompting the user to manually select the process number, the system determines the final process number selected by the user in response to the process number selection instruction of the mobile terminal; and calculates the current finished quantity based on the material information and the final process number to automatically report the work.

[0116] For example Figure 8 as shown in FIG. Figure 8 ​is a process schematic block diagram of an automatic reporting process provided by the present application. The system determines the target process number of the unfinished state that should be executed according to the current process state table and process information according to the process flow sequence. If the target process number is one, the material information is parsed to extract the planned total quantity corresponding to the target process number. The planned total quantity is extracted from the material information. The current process state table is queried to obtain all records of the target process number with the state completed. The completed records are aggregated to obtain the completed cumulative quantity. The difference between the planned total quantity and the completed cumulative quantity is calculated as the to-be-reported completed quantity. The target process number and the to-be-reported completed quantity are filled into the preset visualization template and displayed to the user. The user confirms the visualization result. The target process number and the to-be-reported completed quantity are submitted to the production management system. The reporting success response information from the production management system is received. Based on the to-be-reported completed quantity, the current process state table is updated. If the target process number is multiple, prompt information prompting the user to manually select the process number is generated and displayed. The user selects a process number according to the prompt. If the target process number does not exist, warning information of process error is displayed and the user is prohibited from reporting operation.

[0117] In the embodiments of the present application, on the one hand, the target two-dimensional code identifier can be quickly obtained by scanning the two-dimensional code through the mobile terminal, and the to-be-processed flow card and the current process state table are directly determined, based on which the system can automatically determine the process number that should be executed at present, and automatically complete the reporting operation if the conditions are met. This process greatly reduces the time of manual recording and inputting by the operator, makes the production process more smooth, effectively avoids the production interruption caused by tedious reporting operation, and thus significantly improves the production efficiency. On the other hand, the system accurately determines the target process number of the unfinished state that should be executed at present according to the process state table and the process information according to the process flow sequence. Even in a complex process route, the system can clearly indicate the process that the operator needs to execute at present, avoid the skip or repeated operation caused by human judgment error, ensure the accuracy and continuity of the production process, effectively reduce the occurrence of quality problems and production delay, improve the stability and reliability of the production process, and ensure the efficient operation of the entire production system.

[0118] The following is an apparatus embodiment of the present application, which can be used to execute the method embodiments of the present application. For details not disclosed in the apparatus embodiments of the present application, please refer to the method embodiments of the present application.

[0119] Please refer to Figure 9As shown in FIG. 1, which shows a structural schematic diagram of an automatic reporting device in a high-frequency reporting scenario according to an example embodiment of the present application. The automatic reporting device in the high-frequency reporting scenario can be implemented as all or part of an electronic device through software, hardware, or a combination of both. The device 1 includes a scanning and analyzing module 10, an information determining module 20, a process number determining and displaying module 30, and an automatic reporting module 40.

[0120] The scanning and analyzing module 10 is configured to analyze a two-dimensional code image to obtain a target two-dimensional code identifier in response to a user triggering a code scanning reporting instruction for a mobile terminal.

[0121] The information determining module 20 is configured to determine a to-be-processed flow card and a current process state table according to the target two-dimensional code identifier. The to-be-processed flow card is bound with material information and process information. The current process state table records a process number, a process state, and a completed quantity of each process. The process state is completed or to be completed.

[0122] The process number determining and displaying module 30 is configured to determine a target process number of an uncompleted process according to the current process state table and the process information in a process flow order.

[0123] The automatic reporting module 40 is configured to, in a case where the target process number is one, calculate a current completed quantity based on the material information and the target process number to automatically report the work; or, in a case where the target process number does not exist, display warning information of a process error and prohibit a user from performing a reporting operation; or, in a case where the target process number is multiple, generate and display prompt information prompting the user to manually select a process number.

[0124] It should be noted that the automatic reporting device in the high-frequency reporting scenario provided by the above example is only used as an example to divide the above functional modules in the execution of the automatic reporting method in the high-frequency reporting scenario. In actual applications, the above functions can be completed by different functional modules according to needs, that is, the internal structure of the device is divided into different functional modules to complete all or part of the above-described functions. In addition, the automatic reporting device in the high-frequency reporting scenario and the automatic reporting method in the high-frequency reporting scenario provided by the above example belong to the same concept, and the implementation process is described in detail in the method embodiment. Here, it is not repeated.

[0125] The serial numbers of the above embodiments of the present application are only for description, and do not represent the advantages and disadvantages of the embodiments.

[0126] In the embodiments of the present application, on the one hand, the target two-dimensional code identifier can be quickly obtained by scanning the two-dimensional code through the mobile terminal, and the to-be-processed flow card and the current process state table are directly determined, based on which the system can automatically determine the process number to be executed at present, and automatically complete the operation of reporting work in the case of meeting the conditions. This process greatly reduces the time of manual recording and inputting of the operator, makes the production process more smooth, effectively avoids the production interruption caused by the tedious reporting operation, and thus significantly improves the production efficiency. On the other hand, the system accurately determines the target process number of the unfinished state to be executed at present according to the process state table and the process information in accordance with the process flow sequence. Even in a complex process route, the system can clearly indicate the process to be executed at present for the operator, avoid the skip sequence or repeated operation caused by human judgment error, ensure the accuracy and continuity of the production process, effectively reduce the occurrence of quality problems and production delay, improve the stability and reliability of the production process, and guarantee the efficient operation of the entire production system.

[0127] The present application also provides a computer readable medium having program instructions stored thereon, which, when executed by a processor, implement the automatic reporting method in the high-frequency reporting work scenario provided by each of the method embodiments.

[0128] The present application also provides a computer program product containing instructions, which, when running on a computer, causes the computer to execute the automatic reporting method in the high-frequency reporting work scenario of each of the method embodiments.

[0129] Please refer to Figure 10 The present application provides a structural schematic diagram of an electronic device. As shown in the figure, Figure 10 The electronic device 1000 can include at least one processor 1001, at least one network interface 1004, a user interface 1003, a memory 1005, and at least one communication bus 1002.

[0130] The communication bus 1002 is used to realize the connection and communication between the components.

[0131] The user interface 1003 can include a display screen (Display) and a camera (Camera), and the optional user interface 1003 can also include a standard wired interface and a wireless interface.

[0132] The network interface 1004 can optionally include a standard wired interface and a wireless interface (such as a WI-FI interface).

[0133] The processor 1001 can include one or more processing cores. The processor 1001 connects various parts within the entire electronic device 1000 through various interfaces and lines, and performs various functions of the electronic device 1000 and processes data by running or executing instructions, programs, code sets, or instruction sets stored in the memory 1005, and calling data stored in the memory 1005. Alternatively, the processor 1001 can be implemented in at least one of a hardware form of a digital signal processor (DSP), a field-programmable gate array (FPGA), a programmable logic array (PLA). The processor 1001 can integrate a combination of one or several of a central processing unit (CPU), a graphics processing unit (GPU), and a modem. Among them, the CPU mainly processes an operating system, a user interface, and an application program; the GPU is responsible for rendering and drawing the content to be displayed on the display screen; and the modem is used for processing wireless communication. It can be understood that the above-mentioned modem can also not be integrated into the processor 1001, but can be realized by a separate chip.

[0134] The memory 1005 can include a random access memory (RAM) and can also include a read-only memory (ROM). Alternatively, the memory 1005 includes a non-transitory computer-readable storage medium. The memory 1005 can be used to store instructions, programs, codes, code sets, or instruction sets. The memory 1005 can include a program storage area and a data storage area, wherein the program storage area can store instructions for implementing an operating system, instructions for at least one function (such as a touch function, a sound playing function, an image playing function, etc.), instructions for implementing the above-mentioned various method embodiments, etc.; the data storage area can store data involved in the above-mentioned various method embodiments, etc. The memory 1005 can alternatively be at least one storage system located away from the aforementioned processor 1001. As shown in the figure, the memory 1005 as a computer storage medium can include an operating system, a network communication module, a user interface module, and an automatic reporting application in a high-frequency reporting scenario. Figure 10

[0135] In Figure 10 ​The electronic device 1000 shown, the user interface 1003 is mainly used for providing the interface for the user to input, obtaining the data input by the user; and the processor 1001 can be used for calling the automatic reporting work application in the high-frequency reporting work scene stored in the memory 1005, and specifically performing the following operations:

[0136] In response to the scanning code reporting work instruction triggered by the user for the mobile terminal, the two-dimensional code image is scanned and analyzed to obtain a target two-dimensional code identifier;

[0137] According to the target two-dimensional code identifier, a to-be-processed flow card and a current process state table are determined; the to-be-processed flow card is bound with material information and process information; the current process state table records a process number, a process state and a completed quantity of each process, and the process state is completed or to be completed;

[0138] According to the current process state table and the process information, a target process number of an uncompleted state to be executed is determined according to a process flow sequence;

[0139] In the case where the target process number is one, the current completed quantity is calculated based on the material information and the target process number to automatically report work; or, in the case where the target process number does not exist, warning information of process error is displayed and the user is prohibited from reporting work; or, in the case where the target process number is multiple, prompt information prompting the user to manually select the process number is generated and displayed.

[0140] In one embodiment, when the processor 1001 executes the operation of determining the to-be-processed flow card and the current process state table according to the target two-dimensional code identifier, the following operations are specifically performed:

[0141] From a first mapping relationship between the two-dimensional code identifier and the flow card, the to-be-processed flow card corresponding to the target two-dimensional code identifier is obtained;

[0142] From a second mapping relationship between the two-dimensional code identifier and the process state table, the current process state table corresponding to the target two-dimensional code identifier is obtained.

[0143] In one embodiment, when the processor 1001 executes the operation of generating the first mapping relationship, the following operations are specifically performed:

[0144] Receiving a work order task issued by a production management system, and splitting the work order task into multiple flow cards according to the smallest logistics unit;

[0145] Obtaining the basic material information and the basic process information of each flow card, and associating them to each flow card to obtain each flow card with key information;

[0146] Assigning a two-dimensional code identifier to each flow card with key information to obtain the two-dimensional code identifier of each flow card with key information.

[0147] store a first mapping relationship between each flow card with key information and the two-dimensional code identifier of each flow card with key information.

[0148] In one embodiment, the processor 1001, when executing the generation of the second mapping relationship, specifically executes the following operations:

[0149] obtain the original process information of each flow card;

[0150] According to the original process information of each flow card, create a process state table containing the process number, process state and finished quantity of each process, and obtain the process state table corresponding to each flow card; the process state is set to unfinished, and the finished quantity is set to 0;

[0151] store a second mapping relationship between the two-dimensional code identifier of each flow card and the process state table of each flow card.

[0152] In one embodiment, the processor 1001, when executing the generation and display of the prompt information prompting the user to manually select the process number, further executes the following operations:

[0153] In response to the process number selection instruction of the mobile terminal by the user, determine the final process number selected by the user;

[0154] Based on the material information and the final process number, calculate the current finished quantity to automatically report the work.

[0155] In one embodiment, the processor 1001, when executing the determination and display of the target process number of the unfinished state to be executed according to the current process state table and the process information in the order of process flow, specifically executes the following operations:

[0156] Parse the process information to obtain the complete standard process sequence corresponding to the flow card to be processed;

[0157] Convert each standard process in the complete standard process sequence into a main node;

[0158] Encapsulate each process and the state of each process in the current process state table as each process state auxiliary node;

[0159] Generate a standard process state list according to each main node and each process state auxiliary node, and the standard process state list reflects the process state of each standard process;

[0160] Start from the starting standard process of the standard process state list and check the current state of each standard process one by one to find the first standby process whose state is to be completed;

[0161] Obtain the process number of the standby process as the target process number.

[0162] In one embodiment, the processor 1001, in performing the generating of the standard process state list according to each master node and each process state auxiliary node, specifically performs the following operations:

[0163] associating each process state auxiliary node to each master node to obtain a master-auxiliary node graph;

[0164] comparing the master node and each process state auxiliary node in the master-auxiliary node graph;

[0165] passing the state parameters of the process state auxiliary node identical to the master node to the master node to obtain the state of each master node;

[0166] corresponding the state of each master node to the complete standard process sequence one by one to obtain the standard process state list.

[0167] In one embodiment, the processor 1001, in performing the encapsulating of each process and the state of each process in the current process state table as each process state auxiliary node, specifically performs the following operations:

[0168] traversing each original record in the current process state table, each original record including the process number, process state and finished quantity of each process;

[0169] performing data validity check on the process number, process state and finished quantity of each process included in each original record to obtain a check result;

[0170] in the case that the check result indicates that each original record is valid, creating a structured two-tuple node object for each original record; the two-tuple node object stores the process number and process state; taking each two-tuple node object as each process state auxiliary node; or,

[0171] in the case that the check result indicates that each original record is invalid, generating a form interface for displaying to indicate that there is an error in the record to remind the user to modify each original record, and in response to a user-triggered modification completion instruction, continuing to perform the step of performing data validity check on the process number, process state and finished quantity of each process included in each original record until each process state auxiliary node is generated.

[0172] In one embodiment, the processor 1001, in performing the automatic reporting of the current finished quantity based on the material information and the target process number, specifically performs the following operations:

[0173] parsing the material information to extract the planned total quantity corresponding to the target process number;

[0174] Query the current process state table, and aggregate the number of records with a completed state under the target process number to obtain the cumulative completed quantity

[0175] Calculate the difference between the total quantity and the cumulative completed quantity as the current unreported completed quantity of the target process number.

[0176] Fill the target process number and the current unreported completed quantity of the target process number into the preset visualization template to obtain a visualization result for display.

[0177] In response to a confirmation instruction of the user for the visualization result, submit the target process number and the current unreported completed quantity of the target process number to the production management system.

[0178] When receiving a successful reporting response information from the production management system, update the current process state table based on the current unreported completed quantity of the target process number.

[0179] In one embodiment, when the processor 1001 updates the current process state table based on the current unreported completed quantity of the target process number, it specifically performs the following operations:

[0180] Locate the original record corresponding to the target process number in the current process state table.

[0181] Update the process state in the original record to completed.

[0182] Update the completed quantity field in the original record to the current unreported completed quantity.

[0183] In the embodiments of the present application, on the one hand, the target two-dimensional code identifier can be quickly obtained by scanning the two-dimensional code through the mobile terminal, and the to-be-processed flow card and the current process state table are directly determined, based on which the system can automatically determine the process number to be executed and automatically complete the reporting operation if the conditions are met. This process greatly reduces the time for manual recording and inputting by operators, makes the production process more smooth, effectively avoids production interruption caused by tedious reporting operation, and thus significantly improves the production efficiency. On the other hand, the system accurately determines the target process number of the uncompleted state to be executed according to the process state table and the process information in accordance with the process flow sequence. Even in a complex process route, the system can clearly indicate the process to be executed by the operator, avoid sequence skipping or repeated operation caused by human judgment errors, ensure the accuracy and continuity of the production process, effectively reduce the occurrence of quality problems and production delays, improve the stability and reliability of the production process, and ensure the efficient operation of the entire production system.

[0184] Those skilled in the art can understand that all or part of the processes in the above-mentioned embodiment methods can be completed by a computer program instructing related hardware. The program of the automatic reporting of the high-frequency reporting scene can be stored in a computer readable storage medium. When the program is executed, the program can include the processes of the above-mentioned embodiment methods. The storage medium of the program of the automatic reporting of the high-frequency reporting scene can be a magnetic disk, an optical disk, a read-only memory, a random access memory, or the like.

[0185] The above disclosure is only the preferred embodiment of the present application, and of course cannot limit the scope of the right of the present application, so the equivalent changes made according to the claims of the present application still belong to the scope covered by the present application.

Claims

1. An automated reporting method in a high-frequency reporting scenario, characterized in that, The method is applied to a mobile terminal and comprises the following steps: In response to a user triggering a code scanning work reporting instruction for the mobile terminal, a two-dimensional code image is scanned and analyzed to obtain a target two-dimensional code identifier; According to the target two-dimensional code identifier, a to-be-processed flow card and a current process state table are determined; the to-be-processed flow card is bound with material information and process information; the current process state table records a process number, a process state and a completed quantity of each process, and the process state is completed or to be completed; The process information is analyzed to obtain a complete standard process sequence corresponding to the to-be-processed flow card; each standard process in the complete standard process sequence is converted into a main node; each process in the current process state table and the state of each process are encapsulated into each process state auxiliary node; each process state auxiliary node is associated with each main node to obtain each main-auxiliary node graph; the main node and each process state auxiliary node in each main-auxiliary node graph are compared; the state parameter of each process state auxiliary node that is the same as the main node is transmitted to the main node to obtain the state of each main node; the state of each main node is corresponded to the complete standard process sequence one by one to obtain a standard process state list, which reflects the process state of each standard process; starting from a starting standard process of the standard process state list, the current state of each standard process is checked one by one to find out a standby process whose first state is to be completed; the process number of the standby process is obtained as a target process number; In the case that the target process number is one, the current completed quantity is calculated based on the material information and the target process number to automatically report work; or, in the case that the target process number does not exist, warning information of process error is displayed and the user is prohibited from performing a work reporting operation; or, in the case that the target process number is multiple, prompt information prompting the user to manually select a process number is generated and displayed.

2. The method of claim 1, wherein, The determination of the to-be-processed flow card and the current process state table according to the target two-dimensional code identifier comprises the following steps: The to-be-processed flow card corresponding to the target two-dimensional code identifier is obtained from a first mapping relationship between the two-dimensional code identifier and the flow card that is established in advance; The current process state table corresponding to the target two-dimensional code identifier is obtained from a second mapping relationship between the two-dimensional code identifier and the process state table that is established in advance.

3. The method of claim 2, wherein, The first mapping relationship is generated according to the following steps, comprising: A work order task issued by a production management system is received, and the work order task is split into multiple flow cards according to the smallest logistics unit; The basic material information and the basic process information of each flow card are obtained and associated with each flow card to obtain each flow card with key information; A two-dimensional code identifier is assigned to each flow card with key information to obtain the two-dimensional code identifier of each flow card with key information; The first mapping relationship between each flow card with key information and the two-dimensional code identifier of each flow card with key information is stored; and The second mapping relationship is generated according to the following steps, comprising: The original process information of each flow card is obtained; According to the original process information of each flow card, a process state table containing a process number, a process state and a finished work quantity of each process is created to obtain a process state table corresponding to each flow card; the process state is set as unfinished, and the finished work quantity is set as 0; A second mapping relationship between the two-dimensional code identifier of each flow card and the process state table of each flow card is stored.

4. The method of claim 1, wherein, After the prompt information prompting the user to manually select the process number is generated and displayed, the method further includes: In response to a process number selection instruction of the user for the mobile terminal, a final process number selected by the user is determined; Based on the material information and the final process number, a current finished work quantity is calculated for automatic reporting of work.

5. The method of claim 1, wherein, The method of encapsulating each process and the state of each process in the current process state table as each process state auxiliary node includes: Each original record in the current process state table is traversed, and each original record includes a process number, a process state and a finished work quantity of each process; Data validity of the process number, the process state and the finished work quantity of each process included in each original record is checked to obtain a checking result; In a case where the checking result indicates that each original record is valid, a structured two-tuple node object is created for each original record; the two-tuple node object stores the process number and the process state; each two-tuple node object is used as each process state auxiliary node; or In a case where the checking result indicates that each original record is invalid, a form interface for indicating that there is an error in the record is generated and displayed to remind the user to modify each original record, and in response to a modification completion instruction triggered by the user, the step of checking data validity of the process number, the process state and the finished work quantity of each process included in each original record is continued to be executed until each process state auxiliary node is generated.

6. The method of claim 1, wherein, The method of calculating a current finished work quantity based on the material information and the target process number for automatic reporting of work includes: The material information is analyzed to extract a planned total quantity corresponding to the target process number; The current process state table is queried to count a cumulative finished work quantity of all records with a completed state under the target process number; A difference between the planned total quantity and the cumulative finished work quantity is calculated as a current to-be-reported finished work quantity of the target process number; The target process number and the current to-be-reported finished work quantity of the target process number are filled into a preset visual template to obtain a visual result for display; In response to a confirmation instruction of the user for the visual result, the target process number and the current to-be-reported finished work quantity of the target process number are submitted to a production management system; When a work reporting success response information from the production management system is received, the current to-be-reported finished work quantity of the target process number is used to update the current process state table.

7. The method of claim 6, wherein, The method of updating the current process state table based on the current to-be-reported finished work quantity of the target process number includes: In the current process state table, an original record corresponding to the target process number is located; updating a procedure state in the original record as completed; updating a finished quantity field in the original record as the current to-be-reported finished quantity.

8. An automated reporting device in a high-frequency reporting scenario, implemented using the method of any one of claims 1-7, characterized in that, The device comprises: a scanning and analyzing module, configured to analyze a two-dimensional code image to obtain a target two-dimensional code identifier in response to a code scanning and reporting instruction triggered by a user for the mobile terminal; an information determining module, configured to determine a to-be-processed flow card and a current procedure state table according to the target two-dimensional code identifier; the to-be-processed flow card is bound with material information and procedure information; the current procedure state table records a procedure number, a procedure state and a finished quantity of each procedure, and the procedure state is completed or to be completed; a procedure number determining and displaying module, configured to determine a target procedure number of an unfinished state that should be executed according to the current procedure state table and the procedure information according to a procedure flow sequence; an automatic reporting module, configured to, in a case where the target procedure number is one, calculate a current finished quantity based on the material information and the target procedure number to automatically report the work; or, in a case where the target procedure number does not exist, display warning information of procedure error and prohibit the user from performing a reporting operation; or, in a case where the target procedure number is multiple, generate and display prompt information prompting the user to manually select a procedure number.

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