Gearbox logistics information checking method and device, electronic equipment and medium
By automating the acquisition and comparison of part code information for transmission batches, the problem of low accuracy caused by manual verification has been solved, and high-accuracy verification of transmission logistics information has been achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- GAC TOYOTA MOTOR
- Filing Date
- 2022-06-23
- Publication Date
- 2026-04-21
Smart Images

Figure CN115238839B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of logistics information technology, and in particular to a method, device, electronic device and medium for verifying logistics information of a gearbox. Background Technology
[0002] As people's living standards improve, various vehicles have gradually become essential means of transportation in human life, and more and more vehicle transmissions are being produced. However, the vehicle industry has also placed higher demands on technology, such as on the product quality of vehicle transmissions.
[0003] With the continuous production of automotive transmissions, the application of transmission logistics information verification technology is becoming increasingly widespread in order to ensure the quality of vehicles leaving the factory. Currently, the operation of transmission logistics information verification mainly involves manually checking the production instruction ticket and corresponding part code for each transmission batch. However, this method relies on the subjective judgment of staff to verify the transmission production instruction ticket and transmission part code, which is prone to producing incorrect verification results, thus leading to low accuracy in transmission logistics information verification. Summary of the Invention
[0004] The main objective of this application is to provide a method, device, electronic device, and readable storage medium for verifying gearbox logistics information, aiming to solve the technical problem of low accuracy in the verification of gearbox logistics information in the prior art.
[0005] To achieve the above objectives, this application provides a method for verifying gearbox logistics information, the method comprising:
[0006] When a batch of transmissions enters the logistics information verification area, the component code identification information corresponding to each transmission in the batch is obtained. The component code identification information is used to identify whether the component codes of each transmission are consistent.
[0007] Based on the component code identification information, set the detection path for each gearbox in the gearbox batch;
[0008] Based on each of the aforementioned detection paths, the pre-entered component code sequence corresponding to each gearbox batch is queried by sequentially scanning the production instruction tickets corresponding to each gearbox batch.
[0009] Based on each of the detection paths, the component code information corresponding to each of the gearboxes is scanned sequentially to obtain the component code sequence to be detected for each batch of gearboxes.
[0010] The logistics information of the gearbox batch is verified by comparing the pre-entered part code sequence with the part code sequence to be detected.
[0011] Optionally, the step of setting the detection path corresponding to each gearbox in the gearbox batch based on the component code identification information includes:
[0012] Based on the component code identification information, each gearbox is divided into at least one gearbox group;
[0013] Based on the detection location of each gearbox in the gearbox assembly, the detection path of the gearbox assembly is set.
[0014] Optionally, the step of querying the pre-entered part code sequence corresponding to the gearbox batch by sequentially scanning the production instruction tickets corresponding to each of the gearboxes includes:
[0015] By sequentially scanning the production instruction tickets corresponding to each gearbox, the marking information corresponding to each gearbox can be obtained;
[0016] Based on the marked information, a correlation query is performed to obtain the pre-entered component code sequence corresponding to the batch of gearboxes.
[0017] Optionally, the production instruction ticket includes at least one identifier.
[0018] The step of obtaining the marking information in the production instruction tickets by sequentially scanning the production instruction tickets corresponding to each of the gearboxes includes:
[0019] Based on the identifier, the production code corresponding to each gearbox is obtained;
[0020] According to the preset production code rules, the production code is parsed to obtain the marking information corresponding to each gearbox. The preset production code rules are used to represent the meaning of different character combinations in the production code.
[0021] Optionally, the batch of transmissions includes at least one transmission to be tested, and the marking information corresponding to each transmission also includes the serial number corresponding to each transmission.
[0022] Before the step of performing a correlation query based on the marker information to obtain the pre-entered part code sequence corresponding to the gearbox batch, the method further includes:
[0023] Obtain the previous number corresponding to the previous gearbox of the gearbox to be tested, and determine whether the previous number and the current number are consecutive;
[0024] If so, then based on the marked information, perform an association query to obtain the pre-entered part code sequence corresponding to the gearbox batch;
[0025] If not, then the gearbox to be tested will be reset.
[0026] Optionally, the logistics information verification area includes a scanning area.
[0027] After the step of resetting the transmission to be tested, the method further includes:
[0028] Obtain the next number that is consecutive to the previous number, and determine the target gearbox corresponding to the next number;
[0029] The target gearbox is retrieved to the scanning area, the production instruction ticket corresponding to the target gearbox is scanned, and the pre-entered part code corresponding to the target gearbox is queried.
[0030] Optionally, the step of verifying the logistics information of the gearbox batch by comparing the pre-entered component code sequence with the component code sequence to be inspected includes:
[0031] The consistency comparison between the component code sequence to be detected and the pre-entered component code sequence is performed to obtain the consistency comparison result.
[0032] If the consistency comparison result is consistent, then the logistics information of the gearbox batch is accurate.
[0033] If the consistency comparison result is inconsistent, the logistics information of the gearbox batch is inaccurate, and the abnormal gearbox in the gearbox batch will be reset.
[0034] This application also provides a transmission logistics information verification device, which is applied to a transmission logistics information verification equipment, and the transmission logistics information verification device includes:
[0035] The module for obtaining part code identification information is used to obtain the part code identification information corresponding to each gearbox in the batch when the batch of gearboxes enters the logistics information verification area. The part code identification information is used to identify whether the part codes of each gearbox are consistent.
[0036] The detection path setting module is used to set the detection path corresponding to each gearbox in the gearbox batch according to the part code identification information.
[0037] The module for querying pre-entered part code sequences is used to query the pre-entered part code sequence corresponding to the batch of gearboxes by sequentially scanning the production instruction tickets corresponding to each gearbox according to each detection path.
[0038] The module for obtaining the code sequence of the parts to be inspected is used to scan the part code information corresponding to each gearbox in sequence according to each of the inspection paths to obtain the code sequence of the parts to be inspected corresponding to the batch of gearboxes.
[0039] The comparison module is used to verify the logistics information of the gearbox batch by comparing the pre-entered part code sequence with the part code sequence to be detected.
[0040] Optionally, the setting detection path module is further configured to:
[0041] Based on the component code identification information, each gearbox is divided into at least one gearbox group;
[0042] Based on the detection location of each gearbox in the gearbox assembly, the detection path of the gearbox assembly is set.
[0043] Optionally, the module for querying pre-entered component code sequences is further used for:
[0044] By sequentially scanning the production instruction tickets corresponding to each gearbox, the marking information corresponding to each gearbox can be obtained;
[0045] Based on the marked information, a correlation query is performed to obtain the pre-entered component code sequence corresponding to the batch of gearboxes.
[0046] Optionally, the module for querying pre-entered component code sequences is further used for:
[0047] Based on the identifier, the production code corresponding to each gearbox is obtained;
[0048] According to the preset production code rules, the production code is parsed to obtain the marking information corresponding to each gearbox. The preset production code rules are used to represent the meaning of different character combinations in the production code.
[0049] Optionally, the module for querying pre-entered component code sequences is further used for:
[0050] Obtain the previous number corresponding to the previous gearbox of the gearbox to be tested, and determine whether the previous number and the current number are consecutive;
[0051] If so, then based on the marked information, perform an association query to obtain the pre-entered part code sequence corresponding to the gearbox batch;
[0052] If not, then the gearbox to be tested will be reset.
[0053] Optionally, the gearbox logistics information verification method device is further used for:
[0054] Obtain the next number that is consecutive to the previous number, and determine the target gearbox corresponding to the next number;
[0055] The target gearbox is retrieved to the scanning area, the production instruction ticket corresponding to the target gearbox is scanned, and the pre-entered part code corresponding to the target gearbox is queried.
[0056] Optionally, the comparison module is further configured to:
[0057] The consistency comparison between the component code sequence to be detected and the pre-entered component code sequence is performed to obtain the consistency comparison result.
[0058] If the consistency comparison result is consistent, then the logistics information of the gearbox batch is accurate.
[0059] If the consistency comparison result is inconsistent, the logistics information of the gearbox batch is inaccurate, and the abnormal gearbox in the gearbox batch will be reset.
[0060] This application also provides an electronic device, which is a physical device, comprising: a memory, a processor, and a program for the gearbox logistics information verification method stored in the memory and executable on the processor. When the program for the gearbox logistics information verification method is executed by the processor, it can implement the steps of the gearbox logistics information verification method as described above.
[0061] This application also provides a computer-readable storage medium storing a program for implementing a method for verifying transmission logistics information. When the program for verifying transmission logistics information is executed by a processor, it implements the steps of the method for verifying transmission logistics information as described above.
[0062] This application provides a method, apparatus, electronic device, and medium for verifying transmission logistics information. Compared to existing technologies that rely on the subjective judgment of workers to verify transmission logistics information, this application includes: when a batch of transmissions enters the logistics information verification area, acquiring the component code identification information corresponding to each transmission in the batch, wherein the component code identification information is used to identify whether the component codes of each transmission are consistent; setting a detection path corresponding to each transmission in the batch based on the component code identification information; querying the pre-entered component code sequence corresponding to the batch of transmissions by sequentially scanning the production instruction tickets corresponding to each transmission according to each detection path; obtaining the component code sequence to be detected corresponding to the batch of transmissions by sequentially scanning the component code information corresponding to each transmission according to each detection path; and verifying the logistics information of the batch of transmissions by comparing the pre-entered component code sequence with the component code sequence to be detected. By objectively comparing the pre-entered part code sequence with the part code sequence to be inspected, the system eliminates the need for staff to independently verify the part code sequence to be inspected and the corresponding pre-entered part code sequence for each gearbox batch. This overcomes the technical defect that staff must rely on their subjective judgment to verify the part code sequence to be inspected and the corresponding pre-entered part code sequence for each gearbox batch, resulting in low accuracy and consequently low accuracy in gearbox logistics information verification. Therefore, the accuracy of gearbox logistics information verification is improved. Attached Figure Description
[0063] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with this application and, together with the description, serve to explain the principles of this application.
[0064] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0065] Figure 1 This is a flowchart illustrating the first embodiment of the gearbox logistics information verification method of this application;
[0066] Figure 2 This is a schematic diagram of the equipment structure of the hardware operating environment involved in the gearbox logistics information verification method in this application embodiment.
[0067] The purpose, features, and advantages of this application will be further explained in conjunction with the embodiments and with reference to the accompanying drawings. Detailed Implementation
[0068] To make the above-mentioned objects, features, and advantages of the present invention more apparent and understandable, the technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0069] Currently, the operation of verifying the logistics information of transmissions mainly involves manually checking the production instruction ticket and the corresponding part code for each batch of transmissions. However, this method relies on the subjective judgment of the staff to verify the transmission production instruction ticket and the transmission part code, which is prone to producing incorrect verification results, resulting in low accuracy of transmission logistics information verification.
[0070] This application provides a method for verifying transmission logistics information. In the first embodiment of this method, referring to... Figure 1 The method for verifying the logistics information of the transmission includes:
[0071] Step S10: When the batch of gearboxes enters the logistics information verification area, obtain the part code identification information corresponding to each gearbox in the batch of gearboxes, wherein the part code identification information is used to identify whether the part codes of each gearbox are consistent.
[0072] Step S20: Based on the part code identification information, set the detection path corresponding to each gearbox in the gearbox batch;
[0073] Step S30: Based on each of the detection paths, by sequentially scanning the production instruction tickets corresponding to each of the gearboxes, query the pre-entered part code sequence corresponding to the gearbox batch;
[0074] Step S40: According to each of the detection paths, scan the part code information corresponding to each of the gearboxes in sequence to obtain the part code sequence to be detected corresponding to the gearbox batch.
[0075] Step S50: By comparing the pre-entered part code sequence with the part codes in the same position in the part code sequence to be detected, the logistics information of the gearbox batch is verified.
[0076] In this embodiment, it should be noted that the gearbox logistics information includes the component code sequence information to be inspected corresponding to the gearbox batch and the pre-entered component code sequence information corresponding to the gearbox batch. The gearbox logistics information verification refers to the verification of the component code sequence to be inspected and the pre-entered component code sequence. The logistics information verification area includes the inspection area and the scanning area. The inspection path is the path for inspecting the logistics information corresponding to the gearbox batch. The production instruction ticket corresponding to each gearbox includes the marking information corresponding to each gearbox, the vehicle name corresponding to each gearbox, and the outer panel color corresponding to each gearbox, etc. The marking information corresponding to each gearbox includes the program number corresponding to each gearbox. The pre-entered component code sequence is the set of pre-entered component codes corresponding to each gearbox in the gearbox batch. The component code sequence to be inspected is the set of component codes to be inspected corresponding to each gearbox in the gearbox batch. One gearbox corresponds to one component code to be inspected, and one gearbox corresponds to one pre-entered component code.
[0077] As an example, steps S10 to S50 include: when the gearbox batch enters the logistics information verification area, obtaining the component code identification information corresponding to each gearbox in the gearbox batch, wherein the component code identification information is used to identify whether the component codes of each gearbox are consistent, and can be identified by 0 or 1. When the component code identification information is 1, it indicates that the component codes of each gearbox are consistent, and when the component code information is 0, it indicates that the component codes of each gearbox are inconsistent; according to the component code identification information, setting the detection path corresponding to each gearbox in the gearbox batch, wherein the detection path is the optimal verification path for the gearbox logistics information, and the optimal verification path can be set to prioritize detecting gearboxes with consistent component code identification information, and then detect gearboxes with inconsistent component code identification information, and the detection path can be an S-type detection path or an O-type detection path. The detection path can be either a standard path or a free-form path, where a free-form path refers to any type of detection path other than S-type and O-type detection paths. Based on each detection path, the production instruction slips corresponding to each gearbox are scanned sequentially to obtain the program number corresponding to each gearbox. Based on the program numbers corresponding to each gearbox, a correlation query is performed to obtain the pre-entered part code sequence corresponding to the gearbox batch. The gearbox program number and the pre-entered part code are in one-to-one correspondence, and the correlation query is to retrieve the pre-entered part code corresponding to the gearbox program number. Based on each detection path, the part code information corresponding to each gearbox is scanned sequentially to obtain the part code sequence to be inspected corresponding to the gearbox batch. The part code information can be a QR code or a barcode. The logistics information of the gearbox batch is verified by comparing the pre-entered part code sequence with the part code sequence to be inspected.
[0078] For example, assuming the gearbox batches are gearbox A, gearbox B, gearbox C, and gearbox D, when gearboxes A, B, C, and D enter the logistics information verification area, the component code identifiers of gearboxes A, B, and C are all 1, while the component code identifier of gearbox D is 0. This means the component codes of gearboxes A, B, and C are consistent. Based on this component code identifier information, gearboxes with consistent component code identifiers can be prioritized for detection. A detection path can be set for each gearbox when the component code identifier information is consistent, i.e., the detection path for gearboxes A, B, and C can be gearbox A-gearbox B-gearbox C, gearbox B-gearbox A-gearbox C, or gearbox C-gearbox B-gearbox A. Since the component code of gearbox D is inconsistent with gearboxes A, B, and C, gearbox D can be set as the last gearbox to be detected. Therefore, the total detection path can be gearbox A-gearbox B-gearbox C, gearbox B-gearbox A-gearbox C, or gearbox C-gearbox B-gearbox A. The transmission sequence is as follows: Transmission A - Transmission B - Transmission C - Transmission D, Transmission B - Transmission A - Transmission C - Transmission D, or Transmission C - Transmission B - Transmission A - Transmission D. Based on each of the aforementioned testing paths, the production instruction tickets corresponding to each transmission are scanned sequentially to obtain the program numbers 4, 5, 6, and 8 for transmissions A, B, C, and D, respectively. Through correlation query, the pre-entered part codes corresponding to program numbers 4, 5, 6, and 8 are obtained as H06, H21, 1AK, and 10D, respectively. That is, the pre-entered part codes corresponding to transmissions A, B, C, and D are H06, H21, 1AK, and 10D, respectively. Based on each of the aforementioned testing paths, the part code information corresponding to each transmission is scanned sequentially to obtain the part codes to be tested for transmissions A, B, C, and D as H06, H21, 1AK, and 10D, respectively. By comparing the pre-entered part code sequence with the part code sequence to be tested, the logistics information of the transmission batch is verified.
[0079] The step of setting the detection path for each gearbox in the gearbox batch based on the component code identification information includes:
[0080] Step S21: Based on the part code identification information, divide each gearbox into at least one gearbox group;
[0081] Step S22: Set the detection path of the gearbox group according to the detection position of each gearbox in the gearbox group.
[0082] In this embodiment, it should be noted that the gearbox assembly can be a combination of the gearboxes with the same part code identification information, and the detection position is the detection position of each gearbox in the gearbox assembly.
[0083] As an example, steps S21 to S22 include: grouping each gearbox with the same part code identification information into a gearbox group based on the part code identification information; setting a detection path for the gearbox group based on the detection position of each gearbox in each gearbox group, wherein the detection position corresponds to the detection order.
[0084] For example, assuming that the part code identification information of transmission A, transmission B, transmission C and transmission D are all 1, transmission A, transmission B, transmission C and transmission D are considered as a transmission group. Assuming that the detection positions of transmission A, transmission B, transmission C and transmission D are upper right-upper left-lower left-lower right respectively, that is, the detection sequence of this transmission group is upper right-upper left-lower left-lower right. Based on the detection position of this transmission group, the detection path of this transmission group is set as an O-type detection path.
[0085] The step of querying the pre-entered part code sequence corresponding to the batch of gearboxes by sequentially scanning the production instruction tickets corresponding to each gearbox includes:
[0086] Step S31: Obtain the marking information in the production instruction tickets by sequentially scanning the production instruction tickets corresponding to each of the gearboxes;
[0087] Step S32: Based on the marking information, perform an association query to obtain the pre-entered component code sequence corresponding to the gearbox batch.
[0088] As an example, steps S31 to S32 include: obtaining the program number sequence corresponding to the gearbox batch by scanning the QR code or barcode on the production instruction ticket corresponding to the gearbox batch, wherein the program number corresponds one-to-one with the pre-entered part code and is used for association query to obtain the pre-entered part code sequence corresponding to the gearbox batch.
[0089] For example, assuming the gearbox batches are gearbox A and gearbox B, the QR codes on the production instruction tickets corresponding to the gearbox batches are scanned sequentially to obtain program numbers 1 and 3 for gearbox A and gearbox B, respectively. Based on the program numbers, an association query is performed to obtain the pre-entered part code V09 corresponding to program number 1 and the pre-entered part code H00 corresponding to program number 3, thus obtaining the pre-entered part code sequence V09 and H00 corresponding to the gearbox batches.
[0090] The production instruction ticket includes at least one identifier.
[0091] The step of obtaining the marking information in the production instruction tickets by sequentially scanning the production instruction tickets corresponding to each of the gearboxes includes:
[0092] Step S311: Obtain the production code corresponding to each of the gearboxes based on the identifier;
[0093] Step S312: According to the preset production code rules, the production code is parsed to obtain the marking information corresponding to each gearbox. The preset production code rules are used to represent the meaning of different character combinations in the production code.
[0094] In this embodiment, it should be noted that the identifier can be a QR code or a barcode, used to store the production information of the gearbox, and the production code is a string of character codes of the production information.
[0095] As an example, steps S311 to S312 include: reading the production code corresponding to each gearbox by scanning the QR code or barcode on the production instruction ticket corresponding to each gearbox, wherein the production code is used to store the production information of the gearbox; parsing the production code according to the preset production code rules, that is, parsing the production information to obtain the meaning of each character combination in the production code, thereby obtaining the parsed marking information corresponding to each gearbox.
[0096] For example, scanning the QR code on the production instruction ticket of gearbox A reveals the production code of gearbox A as “L SA 1 ZAOUT P_P 0 0 0 4 1 0 0 4 1 1 0 0 1H3835303390027530339LVGB674K0MG633930 300 31”. Based on the rules of production codes, the meaning of different character combinations in this production code is obtained. The 26th to 28th character combination represents the number of gearbox A, and the last digit “1” represents the program number of gearbox A. Therefore, the number of gearbox A is “383”, and the program number of gearbox A is “1”.
[0097] The batch of gearboxes includes at least one gearbox to be tested, and the marking information corresponding to each gearbox also includes the corresponding serial number.
[0098] Before the step of performing a correlation query based on the marker information to obtain the pre-entered part code sequence corresponding to the gearbox batch, the method further includes:
[0099] Step A10: Obtain the previous number corresponding to the previous gearbox of the gearbox to be tested, and determine whether the previous number and the current number are consecutive;
[0100] Step A20: If yes, then based on the marking information of the gearbox to be tested, query the pre-entered part code corresponding to the production instruction ticket of the gearbox to be tested.
[0101] Step A30: If not, perform a reset operation on the gearbox to be tested.
[0102] In this embodiment, it should be noted that the batch number corresponding to the gearbox batch is the sorting number corresponding to the gearbox batch, which is used to sort the gearbox batches. The gearbox batch numbers of each gearbox in the same batch need to be consecutive.
[0103] As an example, steps A10 to A30 include: obtaining the previous number corresponding to the previous gearbox of the gearbox to be tested; determining whether the previous number and the current number are consecutive by comparing the previous number and the current number; if consecutive, performing an association query based on the marking information of each gearbox to be tested to obtain the pre-entered part code sequence corresponding to the gearbox batch; if not consecutive, performing a reset operation on the gearbox to be tested, wherein the reset operation is to restore the gearbox to be tested from the scanning area to the testing area. The reset operation on the gearbox can be performed in two situations: the part code is not consecutive or the part code is inconsistent. The reset method can be towing or hoisting. The towing method involves transporting the engine to the scanning area by a tow truck, which has multiple functions such as lifting, pulling, and towing. The hoisting method involves installing or positioning the engine using a lifting mechanism. During the inspection or maintenance process, various hoisting tools are used to lift equipment, workpieces, tools, materials, etc., to change their position.
[0104] For example, if the number of gearbox B is x, and the previous gearbox of gearbox B is gearbox A, and the number of gearbox A is y, then if x equals 258, it is determined that x and y are continuous, that is, gearbox A and gearbox B are continuous. Then, based on the marking information of gearbox B, an association query is performed to obtain the pre-entered part code corresponding to gearbox B. If x is not equal to 258, it is determined that x and y are not continuous, that is, gearbox A and gearbox B are not continuous. Then, gearbox B is reset and restored from the scanning area to the detection area by towing or hoisting.
[0105] The logistics information verification area includes a scanning area, and after the step of resetting the gearbox to be tested, it further includes:
[0106] Step B10: Obtain the next number that is consecutive to the previous number, and determine the target gearbox corresponding to the next number;
[0107] Step B20: The target gearbox is retrieved to the scanning area, and the production instruction ticket corresponding to the target gearbox is scanned to obtain the marking information corresponding to the target gearbox.
[0108] In this embodiment, it should be noted that the scanning area is the area where the production instruction ticket corresponding to the batch of gearboxes is scanned.
[0109] As an example, steps B10 to B20 include: obtaining the next number consecutive to the previous number, determining the target gearbox corresponding to the next number, wherein one gearbox corresponds to one number; retrieving the target gearbox to the scanning area, scanning the production instruction ticket corresponding to the target gearbox, and obtaining the marking information corresponding to the target gearbox. The retrieval method is the same as the reset method, and can be referred to the above reset method, which will not be elaborated here.
[0110] For example, gearbox B has the number x, and the previous gearbox of gearbox B is gearbox A. The number y of gearbox A is 257. Assuming that x and y are not consecutive, that is, gearbox A and gearbox B are not consecutive, then based on the number 258 which is consecutive with y, gearbox C with the number 258 is determined. Gearbox C is towed to the scanning area or hoisted to the scanning area to obtain the production instruction ticket of gearbox C. The production instruction ticket of gearbox C is scanned to query the pre-entered part code corresponding to gearbox C.
[0111] The step of verifying the logistics information of the gearbox batch by comparing the pre-entered component code sequence with the component code sequence to be inspected includes:
[0112] Step S51: Compare the part code sequence to be detected with the pre-entered part code sequence to obtain a consistency comparison result;
[0113] Step S52: If the consistency comparison result is consistent, then the logistics information of the gearbox is accurately verified.
[0114] Step S53: If the consistency comparison result is inconsistent, the logistics information of the gearbox is not accurately verified, and the abnormal gearbox in the gearbox batch is reset.
[0115] In this embodiment, it should be noted that the pre-entered component code sequence includes the pre-entered component codes corresponding to each gearbox in the gearbox batch, the component code sequence to be tested includes the component codes to be tested corresponding to each gearbox in the gearbox batch, the abnormal gearbox is the gearbox in the gearbox batch whose component code to be tested is inconsistent with the pre-entered component code, the component code to be tested corresponding to the abnormal gearbox exists in the component code sequence to be tested, and the pre-entered component code corresponding to the abnormal gearbox exists in the pre-entered component code sequence.
[0116] As an example, steps S51 to S53 include comparing the sequence of the component code to be detected with the pre-entered component code sequence to obtain a consistency comparison result. The consistency comparison is a comparison between the sequence of the component code to be detected and the pre-entered component code sequence. The consistency comparison result can be either consistent or inconsistent. When the comparison results of the pre-entered component code corresponding to each gearbox and the component code to be detected corresponding to each gearbox are consistent, then the comparison result of the sequence of the component code to be detected and the pre-entered component code sequence is consistent. When one or more abnormal gearboxes exist in the gearbox batch... If the comparison result between the part code sequence to be tested and the pre-entered part code sequence is inconsistent, then the logistics information of the gearbox batch is accurate. If the consistency comparison result is consistent, that is, the part code to be tested corresponding to each gearbox is the same as the pre-entered part code corresponding to each gearbox, then the logistics information of the gearbox batch is accurate. If the consistency comparison result is inconsistent, that is, the part code to be tested corresponding to each gearbox is not completely the same as the pre-entered part code corresponding to each gearbox, then the logistics information of the gearbox batch is inaccurate. In this case, a reset operation is performed on the abnormal gearbox in the gearbox batch, that is, the abnormal gearbox is moved to the testing area.
[0117] For example, assuming the part code sequence to be detected is Z = (H06, H21, 1AK, 10D), and the pre-entered part code sequence is W = (H06, H21, 1AK, 10D), and each part code to be detected in Z is the same as each pre-entered part code in W, then the part code sequence to be detected Z is compared with the pre-entered part code sequence W, and the consistency comparison result is consistent, then the logistics information of the gearbox is accurately verified; assuming the part code sequence to be detected is M = (30D, H21, 1AK, 10D), ... The pre-entered part code sequence N = (H06, H21, 1AK, 10D) is given. If the part code "30D" to be detected in sequence M is inconsistent with the pre-entered part code "H06" in sequence N, then the part code sequence M to be detected is compared with the pre-entered part code sequence N. If the consistency comparison result is inconsistent, then the logistics information of the gearbox is not accurately verified. The gearbox that corresponds to both the part code "30D" to be detected and the pre-entered part code "H06" is designated as an abnormal gearbox, and the abnormal gearbox is reset.
[0118] This application provides a method for verifying gearbox logistics information. Compared to existing technologies that rely on the subjective judgment of workers to verify gearbox logistics information, this method, when a batch of gearboxes enters the logistics information verification area, obtains the component code identification information corresponding to each gearbox in the batch. The component code identification information is used to identify whether the component codes of each gearbox are consistent. Based on the component code identification information, a detection path is set for each gearbox in the batch. According to each detection path, the pre-entered component code sequence corresponding to each gearbox is queried by sequentially scanning the production instruction ticket corresponding to each gearbox. According to each detection path, the component code information corresponding to each gearbox is sequentially scanned to obtain the component code sequence to be detected for the batch. By comparing the pre-entered component code sequence with the component code sequence to be detected, the logistics information of the gearbox batch is verified. By objectively comparing the pre-entered part code sequence with the part code sequence to be inspected, the system eliminates the need for staff to independently verify the part code sequence to be inspected and the corresponding pre-entered part code sequence for each gearbox batch. This overcomes the technical defect that staff must rely on their subjective judgment to verify the part code sequence to be inspected and the corresponding pre-entered part code sequence for each gearbox batch, resulting in low accuracy and consequently low accuracy in gearbox logistics information verification. Therefore, the accuracy of gearbox logistics information verification is improved.
[0119] This application embodiment also provides a gearbox logistics information verification device, which is applied to a gearbox logistics information verification equipment, and the gearbox logistics information verification device includes:
[0120] The module for obtaining part code identification information is used to obtain the part code identification information corresponding to each gearbox in the batch when the batch of gearboxes enters the logistics information verification area. The part code identification information is used to identify whether the part codes of each gearbox are consistent.
[0121] The detection path setting module is used to set the detection path corresponding to each gearbox in the gearbox batch according to the part code identification information.
[0122] The module for querying pre-entered part code sequences is used to query the pre-entered part code sequence corresponding to the batch of gearboxes by sequentially scanning the production instruction tickets corresponding to each gearbox according to each detection path.
[0123] The module for obtaining the code sequence of the parts to be inspected is used to scan the part code information corresponding to each gearbox in sequence according to each of the inspection paths to obtain the code sequence of the parts to be inspected corresponding to the batch of gearboxes.
[0124] The comparison module is used to verify the logistics information of the gearbox batch by comparing the pre-entered part code sequence with the part code sequence to be detected.
[0125] Optionally, the setting detection path module is further configured to:
[0126] Based on the component code identification information, each gearbox is divided into at least one gearbox group;
[0127] Based on the detection location of each gearbox in the gearbox assembly, the detection path of the gearbox assembly is set.
[0128] Optionally, the module for querying pre-entered component code sequences is further used for:
[0129] By sequentially scanning the production instruction tickets corresponding to each gearbox, the marking information corresponding to each gearbox can be obtained;
[0130] Based on the marked information, a correlation query is performed to obtain the pre-entered component code sequence corresponding to the batch of gearboxes.
[0131] Optionally, the module for querying pre-entered component code sequences is further used for:
[0132] Based on the identifier, the production code corresponding to each gearbox is obtained;
[0133] According to the preset production code rules, the production code is parsed to obtain the marking information corresponding to each gearbox. The preset production code rules are used to represent the meaning of different character combinations in the production code.
[0134] Optionally, the module for querying pre-entered component code sequences is further used for:
[0135] Obtain the previous number corresponding to the previous gearbox of the gearbox to be tested, and determine whether the previous number and the current number are consecutive;
[0136] If so, then based on the marked information, perform an association query to obtain the pre-entered part code sequence corresponding to the gearbox batch;
[0137] If not, then the gearbox to be tested will be reset.
[0138] Optionally, the gearbox logistics information verification method device is further used for:
[0139] Obtain the next number that is consecutive to the previous number, and determine the target gearbox corresponding to the next number;
[0140] The target gearbox is retrieved to the scanning area, the production instruction ticket corresponding to the target gearbox is scanned, and the pre-entered part code corresponding to the target gearbox is queried.
[0141] Optionally, the comparison module is further configured to:
[0142] The consistency comparison between the component code sequence to be detected and the pre-entered component code sequence is performed to obtain the consistency comparison result.
[0143] If the consistency comparison result is consistent, then the logistics information of the gearbox batch is accurate.
[0144] If the consistency comparison result is inconsistent, the logistics information of the gearbox batch is inaccurate, and the abnormal gearbox in the gearbox batch will be reset.
[0145] The transmission logistics information verification device provided by this invention, employing the transmission logistics information verification method described in the above embodiments, solves the technical problem of low accuracy in transmission logistics information verification in the prior art. Compared with the prior art, the beneficial effects of the transmission logistics information verification device provided by this invention are the same as those of the transmission logistics information verification method described in the above embodiments, and other technical features of this transmission logistics information verification device are the same as those disclosed in the methods of the above embodiments, and will not be repeated here.
[0146] This invention provides an electronic device, which includes: at least one processor; and a memory communicatively connected to the at least one processor; wherein the memory stores instructions executable by the at least one processor, which are executed by the at least one processor to enable the at least one processor to perform the gearbox logistics information verification method in Embodiment 1 above.
[0147] The following is for reference. Figure 2 The diagram illustrates a structural schematic of an electronic device suitable for implementing embodiments of the present disclosure. The electronic devices in the embodiments of the present disclosure may include, but are not limited to, mobile terminals such as mobile phones, laptops, digital broadcast receivers, PDAs (personal digital assistants), PADs (tablet computers), PMPs (portable multimedia players), in-vehicle terminals (e.g., in-vehicle navigation terminals), and fixed terminals such as digital TVs and desktop computers. Figure 2 The electronic device shown is merely an example and should not be construed as limiting the functionality and scope of the embodiments disclosed herein.
[0148] like Figure 2 As shown, an electronic device may include a processing unit (such as a central processing unit, graphics processing unit, etc.) that can perform various appropriate actions and processes based on a program stored in read-only memory (ROM) or a program loaded from a storage device into random access memory (RAM). The RAM also stores various programs and data required for the operation of the electronic device. The processing unit, ROM, and RAM are interconnected via a bus. Input / output (I / O) interfaces are also connected to the bus.
[0149] Typically, the following systems can be connected to the I / O interface: input devices including, for example, touchscreens, touchpads, keyboards, mice, image sensors, microphones, accelerometers, gyroscopes, etc.; output devices including, for example, liquid crystal displays (LCDs), speakers, vibrators, etc.; storage devices including, for example, magnetic tapes, hard disks, etc.; and communication devices. Communication devices allow electronic devices to communicate wirelessly or wiredly with other devices to exchange data. Although electronic devices with various systems are shown in the figures, it should be understood that it is not required to implement or possess all the systems shown. More or fewer systems may be implemented alternatively.
[0150] In particular, according to embodiments of this disclosure, the processes described above with reference to the flowcharts can be implemented as computer software programs. For example, embodiments of this disclosure include a computer program product comprising a computer program carried on a computer-readable medium, the computer program containing program code for performing the methods shown in the flowcharts. In such embodiments, the computer program can be downloaded and installed from a network via a communication device, or installed from a storage device, or installed from a ROM. When the computer program is executed by a processing device, it performs the functions defined above in the methods of embodiments of this disclosure.
[0151] The electronic device provided by this invention, employing the gearbox logistics information verification method described in the above embodiments, solves the technical problem of low accuracy in verifying safety gearbox logistics information at construction sites. Compared with the prior art, the beneficial effects of the electronic device provided by this invention are the same as those of the gearbox logistics information verification method provided in the above embodiments, and other technical features of this electronic device are the same as those disclosed in the methods of the above embodiments, and will not be repeated here.
[0152] It should be understood that various parts of this disclosure can be implemented using hardware, software, firmware, or a combination thereof. In the description of the above embodiments, specific features, structures, materials, or characteristics may be combined in any suitable manner in one or more embodiments or examples.
[0153] The above description is merely a specific embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any variations or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present invention should be included within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
[0154] This embodiment provides a computer-readable storage medium having computer-readable program instructions stored thereon, which are used to execute the method for verifying gearbox logistics information in Embodiment 1 above.
[0155] The computer-readable storage medium provided in this embodiment of the invention may be, for example, a USB flash drive, but is not limited to, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, device, or any combination thereof. More specific examples of a computer-readable storage medium may include, but are not limited to: an electrical connection having one or more wires, a portable computer disk, a hard disk, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage device, magnetic storage device, or any suitable combination thereof. In this embodiment, the computer-readable storage medium may be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, system, or device. The program code contained on the computer-readable storage medium may be transmitted using any suitable medium, including but not limited to: wires, optical cables, RF (radio frequency), etc., or any suitable combination thereof.
[0156] The aforementioned computer-readable storage medium may be included in an electronic device or may exist independently without being assembled into an electronic device.
[0157] The aforementioned computer-readable storage medium carries one or more programs. When these programs are executed by an electronic device, the electronic device causes the following actions: When a batch of gearboxes enters the logistics information verification area, the electronic device acquires the component code identification information corresponding to each gearbox in the batch, wherein the component code identification information is used to identify whether the component codes of each gearbox are consistent; based on the component code identification information, it sets a detection path corresponding to each gearbox in the batch; according to each detection path, it queries the pre-entered component code sequence corresponding to the batch of gearboxes by sequentially scanning the production instruction tickets corresponding to each gearbox; according to each detection path, it sequentially scans the component code information corresponding to each gearbox to obtain the component code sequence to be detected corresponding to the batch of gearboxes; and by comparing the pre-entered component code sequence with the component code sequence to be detected, it verifies the logistics information of the batch of gearboxes.
[0158] Computer program code for performing the operations of this disclosure can be written in one or more programming languages or a combination thereof, including object-oriented programming languages such as Java, Smalltalk, and C++, and conventional procedural programming languages such as the "C" language or similar programming languages. The program code can be executed entirely on the user's computer, partially on the user's computer, as a standalone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In cases involving remote computers, the remote computer can be connected to the user's computer via any type of network—including a local area network (LAN) or a wide area network (WAN)—or can be connected to an external computer (e.g., via the Internet using an Internet service provider).
[0159] The flowcharts and block diagrams in the accompanying drawings illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer program products according to various embodiments of the present invention. In this regard, each block in a flowchart or block diagram may represent a module, segment, or portion of code containing one or more executable instructions for implementing a specified logical function. It should also be noted that in some alternative implementations, the functions indicated in the blocks may occur in a different order than those indicated in the drawings. For example, two consecutively indicated blocks may actually be executed substantially in parallel, and they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the block diagrams and / or flowcharts, and combinations of blocks in the block diagrams and / or flowcharts, can be implemented using a dedicated hardware-based system that performs the specified function or operation, or using a combination of dedicated hardware and computer instructions.
[0160] The modules described in the embodiments of this disclosure can be implemented in software or hardware. The names of the modules do not necessarily limit the functionality of the unit itself.
[0161] The computer-readable storage medium provided by this invention stores computer-readable program instructions for executing the above-described gearbox logistics information verification method, thus solving the technical problem of low accuracy in gearbox logistics information verification in the prior art. Compared with the prior art, the beneficial effects of the computer-readable storage medium provided in the embodiments of this invention are the same as the beneficial effects of the gearbox logistics information verification method provided in the above-described embodiments, and will not be repeated here.
[0162] This application also provides a computer program product, including a computer program that, when executed by a processor, implements the steps of the gearbox logistics information verification method described above.
[0163] The computer program product provided in this application solves the technical problem of low accuracy in the verification of gearbox logistics information in the prior art. Compared with the prior art, the beneficial effects of the computer program product provided in the embodiments of this invention are the same as the beneficial effects of the gearbox logistics information verification method provided in the above embodiments, and will not be repeated here.
[0164] The above are merely preferred embodiments of this application and do not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent scope of this application.
Claims
1. A method for verifying logistics information of a transmission, characterized in that, The method for verifying the logistics information of the transmission includes: When a batch of transmissions enters the logistics information verification area, the component code identification information corresponding to each transmission in the batch is obtained. The component code identification information is used to identify whether the component codes of each transmission are consistent. Based on the component code identification information, set the detection path for each gearbox in the gearbox batch; Based on each of the aforementioned detection paths, the pre-entered component code sequence corresponding to each gearbox batch is queried by sequentially scanning the production instruction tickets corresponding to each gearbox batch. Based on each of the detection paths, the component code information corresponding to each of the gearboxes is scanned sequentially to obtain the component code sequence to be detected for each batch of gearboxes. The logistics information of the gearbox batch is verified by comparing the pre-entered part code sequence with the part code sequence to be detected. The step of querying the pre-entered part code sequence corresponding to the batch of gearboxes by sequentially scanning the production instruction tickets corresponding to each gearbox includes: By sequentially scanning the production instruction tickets corresponding to each gearbox, the marking information corresponding to each gearbox can be obtained; Based on the marked information, an association query is performed to obtain the pre-entered part code sequence corresponding to the gearbox batch; The gearbox batch includes at least one gearbox to be tested, and the marking information corresponding to each gearbox also includes the corresponding serial number of each gearbox; before the step of performing an association query based on the marking information to obtain the pre-entered part code sequence corresponding to the gearbox batch, the method further includes: Obtain the previous number corresponding to the previous gearbox of the gearbox to be tested, and determine whether the previous number and the current number are consecutive; If so, then based on the marked information, perform an association query to obtain the pre-entered part code sequence corresponding to the gearbox batch; If not, then the gearbox to be tested will be reset.
2. The method for verifying gearbox logistics information as described in claim 1, characterized in that, The step of setting the detection path for each gearbox in the gearbox batch based on the component code identification information includes: Based on the component code identification information, each gearbox is divided into at least one gearbox group; Based on the detection location of the gearbox in each gearbox group, the detection path of each gearbox group is set.
3. The method for verifying gearbox logistics information as described in claim 1, characterized in that, The production instruction ticket includes at least one identifier, and the step of obtaining the identifier information in the production instruction ticket by sequentially scanning the production instruction tickets corresponding to each of the gearboxes includes: Based on the identifier, the production code corresponding to each gearbox is obtained; According to the preset production code rules, the production code is parsed to obtain the marking information corresponding to each gearbox. The preset production code rules are used to represent the meaning of different character combinations in the production code.
4. The method for verifying gearbox logistics information as described in claim 1, characterized in that, The logistics information verification area includes a scanning area. After the step of resetting the transmission to be tested, the method further includes: Obtain the next number that is consecutive to the previous number, and determine the target gearbox corresponding to the next number; The target gearbox is retrieved to the scanning area, the production instruction ticket corresponding to the target gearbox is scanned, and the pre-entered part code corresponding to the target gearbox is queried.
5. The method for verifying gearbox logistics information as described in claim 1, characterized in that, The step of verifying the logistics information of the gearbox batch by comparing the pre-entered component code sequence with the component code sequence to be inspected includes: The consistency comparison between the component code sequence to be detected and the pre-entered component code sequence is performed to obtain the consistency comparison result. If the consistency comparison result is consistent, then the logistics information of the gearbox batch is accurate. If the consistency comparison result is inconsistent, the logistics information of the gearbox batch is inaccurate, and the abnormal gearbox in the gearbox batch will be reset.
6. A method and apparatus for verifying logistics information of a transmission, characterized in that, The gearbox logistics information verification method device includes: The module for obtaining part code identification information acquires the part code identification information corresponding to each gearbox in the batch when the batch of gearboxes enters the logistics information verification area. The part code identification information is used to identify whether the part codes of each gearbox are consistent. The detection path setting module sets the detection path for each gearbox in the gearbox batch based on the part code identification information. The module for querying pre-entered part code sequences queries the pre-entered part code sequence corresponding to the batch of gearboxes by sequentially scanning the production instruction tickets corresponding to each gearbox according to each detection path. The module for obtaining the code sequence of the parts to be inspected scans the part code information corresponding to each gearbox in sequence according to each of the detection paths to obtain the code sequence of the parts to be inspected corresponding to the batch of gearboxes. The comparison module verifies the logistics information of the gearbox batch by comparing the pre-entered part code sequence with the part code sequence to be detected. The module for querying pre-entered part code sequences is also used to obtain the marking information corresponding to each gearbox by sequentially scanning the production instruction tickets corresponding to each gearbox; and to perform an association query based on the marking information to obtain the pre-entered part code sequence corresponding to the gearbox batch. The batch of gearboxes includes at least one gearbox to be tested, and the marking information corresponding to each gearbox also includes the corresponding serial number of each gearbox; the pre-entered part code sequence query module is also used to obtain the previous serial number corresponding to the previous gearbox of the gearbox to be tested, and determine whether the previous serial number and the serial number are consecutive; if so, then based on the marking information, an association query is performed to obtain the pre-entered part code sequence corresponding to the batch of gearboxes; if not, then the gearbox to be tested is reset.
7. An electronic device, characterized in that, The electronic device includes: At least one processor; and, A memory communicatively connected to the at least one processor; wherein, The memory stores instructions that can be executed by the at least one processor to enable the at least one processor to perform the steps of the gearbox logistics information verification method according to any one of claims 1 to 5.
8. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores a program for implementing a method for verifying transmission logistics information, the program for implementing the method for verifying transmission logistics information being executed by a processor to implement the steps of the method for verifying transmission logistics information as described in any one of claims 1 to 5.
Citation Information
Patent Citations
Component checking error prevention method and device and computer readable storage medium
CN113642647A