A method, apparatus, system and storage medium for digital processing of workstations

By digitally processing the office floor plan, identifying workstation locations and adding status indicators, the high cost of existing workstation management systems is solved, achieving low-cost and efficient workstation management.

CN115081052BActive Publication Date: 2026-03-10PING AN BANK CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-06-27
Publication Date
2026-03-10

AI Technical Summary

Technical Problem

Existing workstation management systems based on hardware RFID technology or data modeling methods are costly and have high maintenance costs, making them difficult to adapt to frequent renovation and remodeling scenarios.

Method used

By receiving the floor plan of the office building, performing grayscale and binarization processing, identifying the location of the target workstation, and adding status indicators to the floor plan, digital management is achieved.

Benefits of technology

Workstations can be managed efficiently and accurately without additional hardware support or modeling processes, reducing costs and improving management efficiency.

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Abstract

This invention discloses a method, apparatus, system, and storage medium for digital workstation processing. The method includes: receiving a floor plan of an office building, the floor plan including target workstations; preprocessing the floor plan; performing region recognition on the preprocessed floor plan to obtain the location information of the target workstations in the floor plan; and adding status markers to the corresponding workstations based on the location information of the target workstations and pre-collected office information. By performing image processing on the office floor plan, identifying the workstation locations, and adding corresponding status markers to the floor plan based on workstation usage, digital workstation identification is achieved. This allows for efficient and accurate workstation management without additional hardware support or modeling processes, effectively improving workstation management efficiency and reducing workstation management costs.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of computer, and particularly relates to a work station digital processing method, device, system and storage medium. BACKGROUND

[0002] At present, the work station management in various industries is basically based on hardware RFID (Radio Frequency Identification) technology or data modeling method to build a work station management system. The cost of this scheme is high, the maintenance cost is high, and for enterprises with more jobs and frequent job modification or local modification, the investment cost and maintenance cost are magnified, which reduces the investment and output ratio. SUMMARY

[0003] In view of the above deficiencies of the prior art, the purpose of the present application is to provide a work station digital processing method, device, system and storage medium, which aims to improve the efficiency of work station management and reduce the investment and maintenance cost.

[0004] The technical scheme of the present application is as follows:

[0005] A work station digital processing method, comprising:

[0006] Receiving a plan engineering drawing of an office floor, wherein the plan engineering drawing comprises a target work station;

[0007] Preprocessing the plan engineering drawing;

[0008] Region recognition is performed on the preprocessed plan engineering drawing to obtain position information of the target work station in the plan engineering drawing;

[0009] According to the position information of the target work station and the pre-collected office information, a state identifier is added to the corresponding work station.

[0010] In one embodiment, the preprocessing of the plan engineering drawing comprises:

[0011] Gray scale processing is performed on the plan engineering drawing;

[0012] The gray scale processed plan engineering drawing is subjected to binary processing to convert the plan engineering drawing into a two-dimensional matrix.

[0013] In one embodiment, the region recognition of the preprocessed plan engineering drawing to obtain the position information of the target work station in the plan engineering drawing comprises:

[0014] Region recognition is performed on the preprocessed plan engineering drawing to obtain a target region set;

[0015] traversing each target region in the target region set, calculating a similarity between each target region and a preset graphic region;

[0016] confirming a target workstation as a target region whose similarity is greater than a preset threshold, and obtaining position information of the target workstation according to a position of the target region.

[0017] In an embodiment, the region identification on the preprocessed plan engineering drawing obtains a target region set, specifically including:

[0018] target region selection on a two-dimensional matrix by a recursive algorithm, wherein the two-dimensional matrix is obtained after the plan engineering drawing is preprocessed.

[0019] In an embodiment, the traversing each target region in the target region set, calculating a similarity between each target region and a preset graphic region, includes:

[0020] offset traversal on each element in the target region point set to obtain an offset region;

[0021] calculating a similarity between the offset region and a preset graphic region by a similarity algorithm.

[0022] In an embodiment, the method further includes:

[0023] statistically counting usage information of the target workstation according to the state identifier, and generating a workstation statistical report.

[0024] In an embodiment, the method further includes:

[0025] generating expected usage information of the target workstation by workstation prediction according to a workstation statistical report generated in a historical time period.

[0026] A workstation digitization processing device includes:

[0027] a receiving module configured to receive a plan engineering drawing of an office floor, wherein the plan engineering drawing includes a target workstation;

[0028] a preprocessing module configured to preprocess the plan engineering drawing;

[0029] an identification module configured to perform region identification on the preprocessed plan engineering drawing to obtain position information of the target workstation in the plan engineering drawing;

[0030] an identification module configured to add a state identifier on a corresponding workstation according to the position information of the target workstation and pre-collected office information.

[0031] A workstation digitization processing system, the system comprising at least one processor; and,

[0032] A memory in communication connection with the at least one processor; wherein,

[0033] The memory stores instructions executable by the at least one processor, the instructions being executed by the at least one processor to enable the at least one processor to perform the above-mentioned workstation digitization processing method.

[0034] A non-volatile computer-readable storage medium storing computer-executable instructions, the computer-executable instructions being executed by one or more processors to cause the one or more processors to perform the above-mentioned workstation digitization processing method.

[0035] Beneficial effects: The present application discloses a workstation digitization processing method, device, system and storage medium, compared with the prior art, the present application embodiment adds the corresponding state identifier on the plane engineering drawing by image processing the office floor plane engineering drawing, identifying the workstation position, combining the workstation use condition, realizes the digitization workstation identification, without additional hardware support or modeling process can complete efficient and accurate workstation management, effectively improves the workstation management efficiency and reduces the workstation management cost. BRIEF DESCRIPTION OF DRAWINGS

[0036] The present application will be further described below in conjunction with the drawings and embodiments, wherein:

[0037] Figure 1 A flowchart of the workstation digitization processing method provided by the present application embodiment;

[0038] Figure 2 A flowchart of step S200 in the workstation digitization processing method provided by the present application embodiment;

[0039] Figure 3 A flowchart of step S300 in the workstation digitization processing method provided by the present application embodiment;

[0040] Figure 4 A flowchart of step S302 in the workstation digitization processing method provided by the present application embodiment;

[0041] Figure 5 A functional module schematic diagram of the workstation digitization processing device provided by the present application embodiment;

[0042] Figure 6 A hardware structure schematic diagram of the workstation digitization processing system provided by the present application embodiment. DETAILED DESCRIPTION

[0043] In order to make the objects, technical solutions and effects of the present application clearer and more apparent, the present application will be further described in detail below. It should be understood that the specific embodiments described herein are only used to explain the present application and not to limit the present application. The embodiments of the present application will be described below with reference to the drawings.

[0044] Please refer to Figure 1 , Figure 1 The flowchart of an embodiment of the work station digitization processing method provided by the present application. The work station digitization processing method provided by the embodiment is suitable for the case of realizing efficient and low-cost work station management, and is specifically applied to a system composed of a terminal device, a network and a server, wherein the network is a medium for directly providing a communication link between the terminal device and the server, and can include various connection types, such as wired, wireless communication link or optical fiber cable, etc.; the operating system on the terminal device can include a handheld device operating system (iPhone operating system, iOS system), an Android system or other operating systems, and the terminal device is connected to the server through the network to realize interaction, so as to perform operations such as receiving or sending data, etc. Specifically, it can be various electronic devices with a display screen and supporting web browsing, including but not limited to smart phones, tablet computers, portable computers and desktop servers, etc. As shown in Figure 1 , the method specifically includes the following steps:

[0045] S100, receiving a plan engineering drawing of an office floor, wherein the plan engineering drawing includes a target work station.

[0046] In the embodiment, by receiving a plan engineering drawing of an office floor, and the plan engineering drawing including a target work station, efficient management of the target work station is realized based on the plan engineering drawing. Engineering drawing, referred to as drawing, is a projection surface of an object expressed according to the projection method. According to the different ways of projection, it can be divided into orthographic projection and oblique projection. The most common engineering drawings are one-dimensional projection, two-dimensional projection and axonometric projection. Drawings are indispensable in building construction. Drawings are a collection of information throughout the design, construction and use of the building. Specifically, one office floor can support one or more engineering drawings. Based on the target work station range involved in the current work station management requirements, the plan engineering drawing of the corresponding office floor is accurately obtained to realize flexible and efficient work station processing.

[0047] S200, preprocessing the plan engineering drawing.

[0048] In the embodiment, the received plan engineering drawing is preprocessed to eliminate interference information between the plan engineering drawings. When there are multiple plan engineering drawings, the parameters such as contrast and brightness of different plan engineering drawings can also be corrected and adjusted through preprocessing to realize consistent adjustment and improve the accuracy of subsequent work station management.

[0049] In one embodiment, see Figure 2 Please see Figure 2 This is a flowchart of step S200 in the workstation digitization processing method provided in the embodiments of the present invention, as follows: Figure 2 As shown, step S200 includes:

[0050] S201. Perform grayscale processing on the aforementioned planar engineering drawing;

[0051] S202. Perform binarization processing on the grayscale-processed planar engineering drawing to convert the planar engineering drawing into a two-dimensional matrix.

[0052] In this embodiment, during preprocessing, the planar engineering drawing is first converted to grayscale. This grayscale conversion can be achieved through methods such as histogram manipulation, grayscale transformation, or orthogonal transformation, converting the R, G, and B three-dimensional color image into a two-dimensional grayscale image represented by grayscale values. Grayscale conversion significantly reduces the computational load in subsequent tasks, minimizes the influence of different colored lines in the planar engineering drawing, and improves processing efficiency. Next, the grayscale-converted planar engineering drawing is binarized, converting each pixel into a two-dimensional array to obtain a two-dimensional matrix corresponding to the planar engineering drawing. This allows for efficient and accurate data processing based on the two-dimensional matrix in subsequent workstation identification and management, improving the accuracy and efficiency of workstation processing.

[0053] Furthermore, before binarization, the grayscale planar engineering drawing can be further filtered to remove stray points, reduce subsequent computation, and improve data processing efficiency as much as possible.

[0054] S300. Perform region identification on the preprocessed planar engineering drawing to obtain the location information of the target workstation in the planar engineering drawing.

[0055] In this embodiment, image recognition is used to identify target workstations in the preprocessed planar engineering drawing. The image recognition identifies attributes such as shape and size of different areas in the planar engineering drawing, thereby obtaining the location information of the target workstations. The specific target workstations can be single-card workstations, long table workstations, double-card workstations, conference room workstations, etc., and can be flexibly set and adjusted according to actual office needs. The image recognition method enables flexible acquisition of workstation locations without the need for additional hardware support or high-cost modeling methods, effectively reducing the maintenance costs of workstation management.

[0056] In one embodiment, see Figure 3 Please see Figure 3 This is a flowchart of step S300 in the workstation digitization processing method provided in the embodiments of the present invention, as follows: Figure 3As shown, step S300 includes:

[0057] S301. Perform region identification on the preprocessed planar engineering drawing to obtain a set of target regions;

[0058] S302. Traverse each target region in the target region set and calculate the similarity between each target region and the preset graphic region;

[0059] S303. The target area with a similarity greater than a preset threshold is identified as the target workstation, and the location information of the target workstation is obtained based on the location of the target area.

[0060] In this embodiment, when identifying target workstations in a planar engineering drawing, the preprocessed planar engineering drawing is first subjected to region identification to obtain a set of target regions. That is, the set of target regions includes several target regions to be matched. Each target region is traversed and matched with a preset graphic region. The similarity between each target region and the preset graphic region is calculated. Specifically, there can be one or more preset graphic regions, which can be flexibly set according to the type and number of target workstations to be identified. For example, if only single-card workstations need to be identified, the preset graphic regions are only standard single-card workstation graphics, thus realizing flexible and adjustable workstation processing.

[0061] After traversing and calculating the similarity of each target area, the target area with a similarity greater than a preset threshold with the preset graphic area is identified as the target workstation. Combined with the position of the target area in the figure, the location information of the target workstation can be obtained. For example, if the similarity of a target area with the single card workstation graphic is greater than the preset threshold, it is identified as a single card workstation; if the similarity of a target area with the long table workstation graphic is greater than the preset threshold, it is identified as a long table workstation, and so on. Through image recognition and matching calculation, the location information of the target workstation is efficiently and accurately identified and obtained in the planar engineering drawing.

[0062] In one embodiment, step S301 specifically includes:

[0063] The target region is selected by recursive algorithm using a two-dimensional matrix to obtain the target region point set, wherein the two-dimensional matrix is ​​obtained by preprocessing the planar engineering drawing.

[0064] In this embodiment, the target region is selected from the preprocessed two-dimensional matrix. That is, the planar engineering drawing is converted into a corresponding two-dimensional matrix after grayscale and binarization processing. The two-dimensional matrix is ​​then subjected to efficient data processing. The target region is selected from the two-dimensional matrix through a recursive algorithm to obtain the corresponding target region point set. In a digital way, the image region recognition is converted into an array for efficient processing, thereby improving the efficiency of workstation recognition.

[0065] In one embodiment, see Figure 4 Please see Figure 4 This is a flowchart of step S302 in the workstation digitization processing method provided in the embodiments of the present invention, as follows: Figure 4 As shown, step S302 includes:

[0066] S3021. Perform offset traversal on each element of the target region point set to obtain the offset region;

[0067] S3022. Calculate the similarity between the offset region and the preset graphic region using a similarity algorithm.

[0068] In this embodiment, after obtaining the target region point set by acquiring the target region from the two-dimensional matrix, each element in the target region point set is subjected to offset traversal processing to obtain the offset region. The offset traversal ensures that each target region in the target region point set can be completely traversed and acquired. After the offset traversal, the target region has an offset amount of one point to form the offset region, but its shape will not change. Furthermore, the similarity algorithm is used to calculate the similarity of each offset region obtained by the traversal and calculate its similarity with the preset image region to achieve complete and accurate target region recognition calculation.

[0069] S400. Based on the location information of the target workstation and the pre-collected office information, add a status identifier to the corresponding workstation.

[0070] In this embodiment, after identifying the location information of the target workstations in the planar engineering drawing, the system matches each target workstation with the pre-collected office information and adds status identifiers to the corresponding workstations. That is, after digitizing the target workstations on the planar engineering drawing, each target workstation is marked accordingly. For example, different symbols are used to distinguish different types of workstations. After marking, specific office information, including personnel information, meeting status, etc., can be combined to assign corresponding status identifiers to each target workstation. For example, employee name, attendance status, meeting room usage status, etc. can be added to the corresponding workstations to achieve status monitoring and statistics of all workstations. This achieves low-cost and efficient unified management of workstations without the need for radio frequency hardware support or high-cost modeling.

[0071] In one embodiment, the method further includes:

[0072] The usage information of the target workstation is statistically analyzed based on the status identifier, and a workstation statistical report is generated.

[0073] In this embodiment, after the workstations are digitized and the corresponding status markers are added in a timely manner in conjunction with office information, the usage information of the target workstations can be statistically analyzed according to needs. For example, a statistical period can be set to analyze the usage information of the target workstations once a month, once a quarter, or once a year, and generate corresponding workstation statistical reports. Specifically, this may include, for example, the total number of workstations, the number of occupied workstations, the average daily occupancy time, the workstation expiration date, etc., so as to obtain the overall usage of workstations at any time, realize the overall management of workstations, and effectively prevent situations such as workstation surplus, workstation shortage, and workstation expiration.

[0074] Furthermore, based on the usage information of the target workstations, flexible and efficient workstation allocation can be carried out when new employees join or workstations are adjusted, ensuring the utilization efficiency of each workstation.

[0075] In one embodiment, the method further includes:

[0076] Workstation prediction is performed based on workstation statistical reports generated within a historical time period to generate expected usage information for the target workstation.

[0077] In this embodiment, workstation prediction is performed based on workstation statistical reports generated within historical time periods, such as workstation statistical reports for the past year, six months, etc. This predicts the workstation usage trend in future time periods and generates expected usage information for target workstations. For example, for some meeting rooms, there may be periodic meetings, and their usage information in future time periods can be predicted in advance so as to lock the meeting room in advance and avoid the meeting room being occupied. Workstation prediction enables flexible adjustment of the overall workstation arrangement, achieving more flexible and reliable workstation management.

[0078] Another embodiment of the present invention provides a workstation digitization processing device, such as... Figure 5 As shown, device 1 includes:

[0079] Receiving module 11 is used to receive the floor plan of the office building, which includes the target workstations;

[0080] Preprocessing module 12 is used to preprocess the planar engineering drawing;

[0081] The identification module 13 is used to perform region identification on the preprocessed planar engineering drawing to obtain the location information of the target workstation in the planar engineering drawing;

[0082] The identification module 14 is used to add status identifiers to the corresponding workstations based on the location information of the target workstations and the pre-collected office information.

[0083] The receiving module 11, the preprocessing module 12, the identification module 13 and the marking module 14 are connected in sequence. The module referred to in this invention is a series of computer program instruction segments that can perform specific functions. It is more suitable than a program for describing the execution process of digital processing at the workstation. For the specific implementation of each module, please refer to the corresponding method embodiments above, which will not be repeated here.

[0084] In one embodiment, the preprocessing module 12 includes:

[0085] A grayscale unit is used to perform grayscale processing on the planar engineering drawing;

[0086] The binarization unit is used to perform binarization processing on the grayscale-processed planar engineering drawing, converting the planar engineering drawing into a two-dimensional matrix.

[0087] In one embodiment, the identification module 13 includes:

[0088] The identification unit is used to identify regions in the preprocessed planar engineering drawing to obtain a set of target regions.

[0089] The traversal calculation unit is used to traverse each target region in the target region set and calculate the similarity between each target region and the preset graphic region;

[0090] The matching unit is used to identify the target area with a similarity greater than a preset threshold as the target workstation, and to obtain the location information of the target workstation based on the location of the target area.

[0091] In one embodiment, the identification unit is specifically used for:

[0092] The target region is selected by recursive algorithm using a two-dimensional matrix to obtain the target region point set, wherein the two-dimensional matrix is ​​obtained by preprocessing the planar engineering drawing.

[0093] In one embodiment, the traversal calculation unit includes:

[0094] The sub-unit is used to perform offset traversal on each element of the target region point set to obtain the offset region.

[0095] The calculation subunit is used to calculate the similarity between the offset region and the preset graphic region using a similarity algorithm.

[0096] In one embodiment, the device 1 further includes:

[0097] The statistics module is used to collect statistics on the usage information of the target workstation based on the status identifier and generate a workstation statistics report.

[0098] In one embodiment, the device 1 further includes:

[0099] The prediction module is used to predict the expected usage information of the target workstation based on the workstation statistical reports generated within the historical time period.

[0100] Another embodiment of the present invention provides a workstation digital processing system, such as Figure 6 As shown, system 10 includes:

[0101] One or more processors 110 and memory 120, Figure 6 The following description uses a processor 110 as an example. The processor 110 and the memory 120 can be connected via a bus or other means. Figure 6 Taking the example of a connection between China and Israel via a bus.

[0102] Processor 110 is used to perform various control logics of system 10, and can be a general-purpose processor, digital signal processor (DSP), application-specific integrated circuit (ASIC), field-programmable gate array (FPGA), microcontroller, ARM (Acorn RISC Machine) or other programmable logic device, discrete gate or transistor logic, discrete hardware components, or any combination of these components. Furthermore, processor 110 can also be any conventional processor, microprocessor, or state machine. Processor 110 can also be implemented as a combination of computing devices, such as a combination of DSP and microprocessor, multiple microprocessors, one or more microprocessors combined with DSP and / or any other such configuration.

[0103] The memory 120, as a non-volatile computer-readable storage medium, can be used to store non-volatile software programs, non-volatile computer-executable programs, and modules, such as the program instructions corresponding to the workstation digitization processing method in the embodiments of the present invention. The processor 110 executes various functional applications and data processing of the system 10 by running the non-volatile software programs, instructions, and units stored in the memory 120, thereby realizing the workstation digitization processing method in the above-described method embodiments.

[0104] The memory 120 may include a program storage area and a data storage area. The program storage area may store the operating system and applications required for at least one function; the data storage area may store data created according to the use of the system 10. Furthermore, the memory 120 may include high-speed random access memory and may also include non-volatile memory, such as at least one disk storage device, flash memory device, or other non-volatile solid-state storage device. In some embodiments, the memory 120 may optionally include memory remotely located relative to the processor 110, and these remote memories may be connected to the system 10 via a network. Examples of such networks include, but are not limited to, the Internet, corporate intranets, local area networks, mobile communication networks, and combinations thereof.

[0105] One or more units are stored in memory 120, and when executed by one or more processors 110, perform the following steps:

[0106] Receive the floor plan of the office building, which includes the target workstations;

[0107] The planar engineering drawing is preprocessed;

[0108] The preprocessed planar engineering drawing is subjected to region identification to obtain the location information of the target workstation in the planar engineering drawing;

[0109] Based on the location information of the target workstation and the pre-collected office information, a status indicator is added to the corresponding workstation.

[0110] In one embodiment, the preprocessing of the planar engineering drawing includes:

[0111] The planar engineering drawing is converted to grayscale.

[0112] The grayscale-processed planar engineering drawing is binarized to convert it into a two-dimensional matrix.

[0113] In one embodiment, the step of performing region identification on the preprocessed planar engineering drawing to obtain the location information of the target workstation in the planar engineering drawing includes:

[0114] The preprocessed planar engineering drawing is subjected to region identification to obtain a set of target regions;

[0115] Each target region in the target region set is traversed, and the similarity between each target region and the preset graphic region is calculated.

[0116] The target area with a similarity greater than a preset threshold is identified as the target workstation, and the location information of the target workstation is obtained based on the location of the target area.

[0117] In one embodiment, the step of performing region identification on the preprocessed planar engineering drawing to obtain a set of target regions specifically includes:

[0118] The target region is selected by recursive algorithm using a two-dimensional matrix to obtain the target region point set, wherein the two-dimensional matrix is ​​obtained by preprocessing the planar engineering drawing.

[0119] In one embodiment, traversing each target region in the target region set and calculating the similarity between each target region and a preset graphic region includes:

[0120] For each element in the target region point set, perform an offset traversal to obtain the offset region;

[0121] The similarity between the offset region and the preset graphic region is calculated using a similarity algorithm.

[0122] In one embodiment, the method further includes:

[0123] The usage information of the target workstation is statistically analyzed based on the status identifier, and a workstation statistical report is generated.

[0124] In one embodiment, the method further includes:

[0125] Workstation prediction is performed based on workstation statistical reports generated within a historical time period to generate expected usage information for the target workstation.

[0126] This invention provides a non-volatile computer-readable storage medium storing computer-executable instructions that are executed by one or more processors, for example, to perform the operations described above. Figure 1 The method steps S100 to S400.

[0127] As examples, non-volatile storage media can include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable ROM (EEPROM), or flash memory. Volatile memory can include random access memory (RAM) as external cache memory. By way of illustration and not limitation, RAM can be obtained in many forms such as synchronous RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), dual data rate SDRAM (DDRSDRAM), enhanced SDRAM (ESDRAM), Synchlink DRAM (SLDRAM), and direct Rambus RAM (DRRAM). The memory components or memories disclosed in the operating environment described herein are intended to include one or more of these and / or any other suitable types of memory.

[0128] In summary, the workstation digitization processing method, apparatus, system, and storage medium disclosed in this invention involves receiving a floor plan of an office building, which includes target workstations; preprocessing the floor plan; performing region identification on the preprocessed floor plan to obtain the location information of the target workstations; and adding status markers to the corresponding workstations based on the location information of the target workstations and pre-collected office information. By processing the office floor plan to identify the workstation locations and adding corresponding status markers to the floor plan based on workstation usage, digital workstation identification is achieved. This enables efficient and accurate workstation management without additional hardware support or modeling processes, effectively improving workstation management efficiency and reducing workstation management costs.

[0129] Of course, those skilled in the art will understand that all or part of the processes in the above embodiments can be implemented by a computer program instructing related hardware (such as a processor, controller, etc.). The computer program can be stored in a non-volatile, computer-readable storage medium, and when executed, it can include the processes described in the above method embodiments. The storage medium can be a memory, magnetic disk, floppy disk, flash memory, optical storage, etc.

[0130] It should be understood that the application of the present invention is not limited to the examples above. Those skilled in the art can make improvements or modifications based on the above description, and all such improvements and modifications should fall within the protection scope of the appended claims.

Claims

1. A method of digitizing a station, characterized in that, The method comprises the following steps: receiving a floor plan of an office building, the floor plan comprising target workstations; preprocessing the floor plan; performing region recognition on the preprocessed floor plan to obtain position information of the target workstations in the floor plan; wherein the target workstations comprise single-card workstations, long-table workstations, double-card workstations, and conference room workstations; adding state identifiers to the corresponding workstations according to the position information of the target workstations and pre-collected office information; statistically analyzing the use information of the target workstations according to the state identifiers to generate a workstation statistical report, including the total number of workstations, the number of occupied workstations, the average daily occupation time, and the workstation term; based on the use information of the target workstations, when a new employee or workstation adjustment occurs, performing corresponding workstation allocation according to the use information of the target workstations; performing workstation prediction based on the workstation statistical report generated in the historical time period to obtain expected use information of the target workstations; for periodic meetings, the expected use information of the conference room in the future time period is predicted in advance, and the conference room is locked in advance to avoid being occupied; the region recognition on the preprocessed floor plan to obtain the position information of the target workstations in the floor plan comprises: performing region recognition on the preprocessed floor plan to obtain a target region set; iterating through each target region in the target region set to calculate the similarity between each target region and a preset graphic region; confirming a target region with a similarity greater than a preset threshold as a target workstation, and obtaining the position information of the target workstation according to the position of the target region; the region recognition on the preprocessed floor plan to obtain a target region set comprises: performing target region selection on a two-dimensional matrix by a recursive algorithm to obtain a target region point set, wherein the two-dimensional matrix is obtained by preprocessing the floor plan; the iteration through each target region in the target region set to calculate the similarity between each target region and a preset graphic region comprises: performing offset iteration on each element in the target region point set to obtain an offset region; calculating the similarity between the offset region and the preset graphic region by a similarity algorithm.

2. The method of claim 1, wherein, the preprocessing of the floor plan comprises: gray-scale processing of the floor plan; binary processing of the gray-scale processed floor plan to convert the floor plan into a two-dimensional matrix.

3. A station digitizing device, characterized by, The method comprises the following steps: a receiving module for receiving a floor plan of an office building, the floor plan comprising target workstations; a preprocessing module for preprocessing the floor plan; an identification module for performing region recognition on the preprocessed floor plan to obtain position information of the target workstations in the floor plan; wherein the target workstations comprise single-card workstations, long-table workstations, double-card workstations, and conference room workstations; an identifier module for adding state identifiers to the corresponding workstations according to the position information of the target workstations and pre-collected office information. The statistical module is configured to count usage information of the target workstation according to the state identifier, and generate a workstation statistical report including a total number of workstations, an occupied number of workstations, a daily average occupation time length, and a workstation deadline. The allocation module is configured to allocate workstations to new employees or to adjust workstations based on the usage information of the target workstations. The prediction module is configured to predict workstations based on the workstation statistical report generated in a historical time period, and generate expected usage information of the target workstations. The identification module includes: An identification unit configured to perform region identification on the preprocessed planar engineering drawing to obtain a target region set. A traversal calculation unit configured to perform traversal on each target region in the target region set, and calculate a similarity between each target region and a preset graphic region. A matching unit configured to confirm a target region with a similarity greater than a preset threshold as a target workstation, and obtain position information of the target workstation according to a position of the target region. The identification unit is specifically configured to: Select a target region from a two-dimensional matrix by using a recursive algorithm to obtain a target region point set, wherein the two-dimensional matrix is obtained after preprocessing the planar engineering drawing. The traversal calculation unit includes: A traversal subunit configured to perform offset traversal on each element in the target region point set to obtain an offset region. A calculation subunit configured to calculate a similarity between the offset region and the preset graphic region by using a similarity algorithm.

4. A station digitizing system, characterized by, The system includes at least one processor; and The memory is communicatively connected to the at least one processor; wherein The memory stores instructions executable by the at least one processor, and the instructions are executed by the at least one processor to enable the at least one processor to perform the workstation digitization processing method of any one of claims 1-2.

5. A non-transitory computer readable storage medium, comprising: The non-volatile computer-readable storage medium stores computer-executable instructions, and the computer-executable instructions are executed by one or more processors to enable the one or more processors to perform the workstation digitization processing method of any one of claims 1-2.

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