Performance management system, performance management method, and performance management program

The performance management system addresses the challenge of managing complex construction site tasks by associating site information, work type, and hierarchical locations to accurately calculate performance indices, enhancing precision and ease of management.

JP7720048B1Active Publication Date: 2025-08-07RVSTA INC
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Patent Information

Application Number
JP2025016582
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2024-03-07
Filing Date
2025-02-04
Publication Date
2025-08-07
Estimated Expiration
2045-02-04

AI Technical Summary

Technical Problem

Existing management systems struggle to effectively manage construction work performance at sites with complex correspondences between areas and tasks, making it difficult to track and calculate indices such as completed volume and unit rates accurately.

Method used

A performance management system that includes a storage unit, reception unit, creation processing unit, and tallying unit to associate construction site information, work type, and hierarchical location structure, allowing for input and calculation of construction indices based on actual work volume and conditions.

Benefits of technology

Enables easy and accurate management of construction performance by area, calculating indices like completed volume and unit rates with high precision, even in complex construction environments, by using hierarchical location structures and construction conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a performance management system, a performance management method, and a performance management program. SOLUTION: The performance management system 1 comprises a storage unit, a reception unit, a creation processing unit, and a counting processing unit. The storage unit stores, in association with each other, site information relating to the construction site, the type of work for each construction task, construction locations having a hierarchical structure, and construction conditions including area classification. The reception unit receives, from the user terminal, a selection input of a work type corresponding to the construction site and a specific construction location corresponding to the hierarchical structure. The creation processing unit associates the construction site, work type, and specific construction location based on the selected input, and creates and processes an actual performance task into which the actual workload of construction work at the specific construction location can be input, and the aggregation processing unit calculates the construction index corresponding to the actual performance task based on the actual workload and construction conditions.
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Description

[Technical Field]

[0001] The present invention relates to a performance management system, a performance management method, and a performance management program. [Background technology]

[0002] Management systems for managing the work performance of workers at construction sites have been in practical use for some time. Recently, various efforts have been made to manage performance, especially for each task unit.

[0003] For example, Patent Document 1 discloses that in a work management device, an acquisition unit acquires work package information (area ID, schedule information, workload information, etc.) and can display the work packages as a list on a display device of a terminal device. [Prior art documents] [Patent documents]

[0004] [Patent Document 1] Patent No. 7142790 Summary of the Invention [Problem to be solved by the invention]

[0005] By using the technology of Patent Document 1, users can view schedules and work volume information for each area. However, at actual construction sites, there are complex correspondences between each area and each task, making it difficult to manage these appropriately using the technology of Patent Document 1.

[0006] The present invention has been made in consideration of the problems with the above-mentioned conventional technology, and its purpose is to provide a performance management system that can simply and effectively manage the performance of each task for each area at a construction site where there is a complex correspondence between each area and each task. [Means for solving the problem]

[0007] In order to solve the above problems, the present invention provides a performance management system for managing performance of construction work, The performance management system includes a storage unit, a reception unit, a creation processing unit, and a compilation processing unit, The storage unit stores site information related to the construction site, the type of work for each construction task, the construction location having a hierarchical structure, and the construction conditions including the area classification in association with each other; The reception unit receives a selection input of a work type and a region classification corresponding to the construction site and a specific construction location corresponding to the hierarchical structure from a user terminal, The creation processing unit associates the construction site, the type of work, and the specific construction location based on the selection input, and creates and processes an achievement task in which the achievement of the amount of work of the construction work at the specific construction location can be input; The tallying unit calculates a construction index corresponding to the performed task based on the performed work amount and the construction conditions.

[0008] The present invention also provides a performance management method executed by a performance management system that manages performance of construction work, comprising: The performance management system includes a storage unit, a reception unit, a creation processing unit, and a compilation processing unit, The storage unit stores site information related to the construction site, the type of work for each construction task, the construction location having a hierarchical structure, and the construction conditions including the area classification in association with each other; The receiving unit receives, from a user terminal, a selection input of a work type and a region classification corresponding to the construction site, and a specific construction location corresponding to the hierarchical structure; The creation processing unit associates the construction site, the type of work, and the specific construction location based on the selection input, and creates and processes an achievement task that allows input of the achievement of the amount of work of the construction work at the specific construction location; The method includes a step in which the tallying processing unit calculates a construction index corresponding to the performed task based on the performed work amount and the construction conditions.

[0009] The present invention also provides a performance management program for managing performance of construction work, The computer functions as a storage unit, a reception unit, a creation processing unit, and a counting processing unit; The storage unit stores site information related to the construction site, the type of work for each construction task, the construction location having a hierarchical structure, and the construction conditions including the area classification in association with each other; The reception unit receives a selection input of a work type and a region classification corresponding to the construction site and a specific construction location corresponding to the hierarchical structure from a user terminal, The creation processing unit associates the construction site, the type of work, and the specific construction location based on the selection input, and creates and processes an achievement task in which the achievement of the amount of work of the construction work at the specific construction location can be input; The tallying unit calculates a construction index corresponding to the performed task based on the performed work amount and the construction conditions.

[0010] With this configuration, it is possible to easily and effectively manage the results of each task by area and construction conditions at a construction site. For example, even if there is a complex correspondence between each area and each task at a construction site, by using the construction location (location information) with a hierarchical structure, it is possible to appropriately manage the results tasks for each area. Furthermore, at the construction site, it is possible to easily and accurately calculate construction indicators (various indicators such as completed volume, unit rate, and other construction-related figures) corresponding to the results tasks.

[0011] In a preferred embodiment of the present invention, the construction conditions further include a construction division, The reception unit further receives a selection input of a construction category corresponding to the construction site, The tallying unit calculates a construction index corresponding to the performed task based on the performed work amount and the construction conditions.

[0012] This configuration allows for more accurate calculation of construction indices corresponding to actual tasks. For example, construction indices such as completed volume and unit rate can be calculated with high accuracy by using civil engineering classifications such as dams, tunnels, and roads in civil engineering, or building classifications such as office buildings, condominiums, hotels, factories, and hospitals in buildings.

[0013] In a preferred embodiment of the present invention, the construction index is a volume of work completed in construction work, The construction plan includes a planned quantity corresponding to the construction work at the specific construction location, The work volume record includes a record quantity corresponding to the construction work at the specific construction location, the receiving unit receives an input of the actual quantity from the user terminal, The tallying unit calculates the ratio of the actual quantity to the planned quantity as the completed volume of the construction work at the specific construction location, based on the actual quantity and the planned quantity.

[0014] With this configuration, the completed amount (for example, rebar amount xx%) can be calculated based on the actual quantity input from the user terminal. In other words, the user does not need to calculate the completed amount; the worker simply inputs the actual quantity, and the completed amount can be automatically calculated (and viewed by the manager, etc.).

[0015] In a preferred embodiment of the present invention, the construction index is a work rate in construction work, The tallying unit calculates the work rate corresponding to the construction work in the performed task based on the construction conditions and the performed work volume.

[0016] With this configuration, it is possible to calculate the unit rate (for example, the amount of rebar per worker) based on the construction conditions. In other words, the user does not need to calculate the unit rate, and the unit rate can be automatically calculated (and viewed by the administrator) based on the construction conditions, including regional classifications such as urban areas, narrow areas, and along railway tracks.

[0017] In a preferred embodiment of the present invention, the construction index is a volume of work completed in the construction work, and the site information is a construction system including a subordinate relationship of contractors at the construction site, The tallying unit calculates the amount of work performed for each contractor in charge of the construction work based on the construction system.

[0018] By configuring in this way, it is possible to calculate the amount of work corresponding to the contractor using the construction system. For example, at a construction site where each area and each task has a complex correspondence relationship, if the construction system manages the contractor and the contractor's responsibilities (area, work volume, work content), it is possible to determine the planned quantity and contractor (responsible company) from the construction system, and the amount of work can be calculated based on this information.

[0019] In a preferred embodiment of the present invention, the site information is a construction system including individuals belonging to a contractor at the construction site, The calculation processing unit determines the number of workers corresponding to the contractor in charge of the construction work based on the construction system and the construction conditions, and calculates the unit rate corresponding to the construction work based on the number of workers and the actual work volume.

[0020] With this configuration, the work rate corresponding to a specific construction job can be calculated using the construction system and construction conditions. For example, the construction system (and / or construction conditions) can be used to determine the planned number of people required for the construction job.

[0021] In a preferred embodiment of the present invention, the performance management system further comprises a display processing unit, The display processing unit displays the planned quantity, the contractor, the specific construction location, the completed volume and the work rate, and transmits the results of the display processing.

[0022] By configuring in this way, it is possible to display the production volume and unit rate for each specific location.

[0023] In a preferred embodiment of the present invention, the performance management system further comprises a display processing unit, The user terminal includes a management terminal used by the prime contractor; The display processing unit displays a list of a plurality of completed tasks performed by different contractors, and transmits the display processing results to the management terminal.

[0024] This configuration makes it possible to display a list of multiple completed tasks for different contractors. For example, the completed tasks for multiple areas that a prime contractor's manager is responsible for can be displayed in a list, allowing the manager to grasp at a glance the progress status of the area that he or she is responsible for.

[0025] In a preferred embodiment of the present invention, the user terminal includes a work terminal used by a contractor, the receiving unit receives an input of a production volume report for reporting a production volume from the work terminal, The creation processing unit associates the production amount report with the performance task and stores the report in the storage unit.

[0026] With this configuration, the progress report received from the worker (either the report content of progress XX% directly, or the amount of work and XX%) can be linked to the actual task. The manager of the prime contractor company can check the results of this progress report from the worker (and the rate of work calculated from the progress report) on the manager's terminal.

[0027] In a preferred embodiment of the present invention, the receiving unit receives one unit selected from a plurality of units for the amount of work performed in the performed task, The tallying unit calculates the volume based on the selected unit.

[0028] This configuration allows the user to select the units of output according to their preference. For example, when displaying weight as output, units such as "t" or "kg" can be selected appropriately depending on the type of work or area.

[0029] In a preferred embodiment of the present invention, the hierarchical structure includes buildings, floors, and construction sections at a construction site.

[0030] This configuration allows you to select specific locations on the construction site and manage the volume and rate of completion. By using this hierarchical structure, you can properly manage information on work locations with complex subordinate relationships on the construction site.

[0031] In a preferred embodiment of the present invention, the performance management system further comprises a display processing unit, The display processing unit performs display processing to distinguish between an achievement task related to ongoing construction work and an achievement task related to completed construction work.

[0032] With this configuration, the user can easily and quickly check the completed tasks for which construction work has been completed from among the multiple completed tasks. [Effects of the Invention]

[0033] According to the present invention, a new technology related to performance management systems can be provided by performing specified processing using information regarding construction sites with a hierarchical structure and construction conditions (such as area classification and construction classification). [Brief explanation of the drawings]

[0034] [Figure 1] 1 shows a block diagram of a system configuration according to an embodiment of the present invention. [Figure 2] 1A and 1B are schematic diagrams illustrating an example of the hardware configuration of an information processing device and a terminal according to an embodiment of the present invention. [Figure 3] 1 shows a flowchart of a processing procedure of a performance management system according to an embodiment of the present invention. [Figure 4] 2 shows an example of each piece of information used in a performance management system according to an embodiment of the present invention. [Figure 5] 2 shows an example of each piece of information used in a performance management system according to an embodiment of the present invention. [Figure 6] 1 shows a schematic image diagram of a construction system according to one embodiment of the present invention. [Figure 7] 10 shows an example of a display processing result (setting screen) on the terminal according to one embodiment of the present invention. [Figure 8] 10 shows an example of a display processing result (setting screen) on the terminal according to one embodiment of the present invention. [Figure 9]10 shows an example of a display processing result (achieved task) on the terminal according to one embodiment of the present invention. DETAILED DESCRIPTION OF THE INVENTION

[0035] The present invention will now be described more fully with reference to the accompanying drawings, in which preferred embodiments are shown, but which may be embodied in many different forms and are not limited to the embodiments set forth herein.

[0036] For example, although the configuration, operation, etc. of the performance management system will be described in this embodiment, similar effects can be achieved by the executed method (steps), device, computer program, etc. The program in this embodiment may be provided as a non-transitory computer-readable recording medium, or may be provided so as to be downloadable from an external server.

[0037] Furthermore, in this embodiment, the term "unit" may include, for example, a combination of hardware resources implemented by circuits in a broad sense and software information processing that can be specifically realized by these hardware resources.

[0038] In this embodiment, "information" is represented by, for example, the physical value of a signal representing voltage or current, the high or low value of a signal as a binary bit set consisting of 0 or 1, or quantum superposition (so-called quantum bits), and communication and calculations can be performed on a circuit in a broad sense.

[0039] A circuit in the broad sense is a circuit realized by appropriately combining a circuit, circuitry, processor, memory, etc. That is, it includes a CPU (Central Processing Unit), a GPU (Graphics Processing Unit), an LSI (Large Scale Integration), an ASIC (Application Specific Integrated Circuit), an FPGA (Field-Programmable Gate Array), etc.

[0040] <System configuration> Fig. 1 is a block diagram showing a system configuration according to one embodiment of the present invention. As shown in Fig. 1, the performance management system 1 includes an information processing device 10 and a database DB. The performance management system 1 is configured to be able to communicate with a plurality of management terminals 2 (reference numerals 2(a) to 2(c) in Fig. 1) and work terminals 3 (reference numerals 3(a) to 3(c)) via a network NW. In this embodiment, the management terminals 2 and work terminals 3 may be collectively referred to as user terminals.

[0041] The information processing device 10 operates as a server, the management terminal 2 is a terminal used by the prime contractor, etc., and the work terminal 3 is a terminal used by cooperating companies and workers to input work information (actual quantities, etc.) into the actual tasks.

[0042] In this embodiment, the network NW is an IP (Internet Protocol) network, but there is no limitation on the type of communication protocol, and there is also no limitation on the type and scale of the network.

[0043] It should be noted that a general-purpose server computer, a personal computer, or the like can be used as the information processing device 10. It is also possible to configure the performance management system 1 by implementing the functional components described below on multiple computers.

[0044] The management terminal 2 is a terminal used by the prime contractor (or the prime contractor's staff), etc. A smartphone, tablet terminal, personal computer, wearable device, etc. can be used as the management terminal 2. The management terminal 2 stores a performance management application program for management purposes, and this application program is configured with a function that allows the user to view performance tasks, etc.

[0045] The work terminal 3 is a terminal used by cooperating companies, workers, etc. Smartphones, tablet terminals, personal computers, wearable devices, etc. can be used as the work terminal 3. The work terminal 3 stores a work performance management application program and is configured with functions for inputting and viewing the work volume performance for the performance tasks.

[0046] The management terminal 2 and the work terminal 3 may be configured not to have their own performance management application programs. In this case, the management terminal 2 and the work terminal 3 can use a web browser or the like to view and transmit each piece of information.

[0047] <Hardware configuration> 2(a) is a diagram showing an example of the hardware configuration of the information processing device 10. The information processing device 10 includes a control unit 11, a storage unit 12, and a communication unit 13 as the hardware configuration.

[0048] The control unit 11 includes one or more processors such as a CPU, and controls the overall operation and processing of the information processing device 10 by executing the performance management program according to the present invention, an OS, and other applications.

[0049] The storage unit 12 is an HDD, SSD, ROM, RAM, etc., and stores the performance management program according to the present invention and data used when the control unit 11 executes processing based on the program. The control unit 11 executes processing based on the performance management program stored in the storage unit 12, thereby realizing the functional configuration described below.

[0050] The communication unit 13 controls communication with the network NW, and performs inputs required to operate the information processing device 10 and outputs related to the operation results.

[0051] 2(b) is a diagram showing an example of the hardware configuration of a terminal 90 (the management terminal 2 and the operation terminal 3 in FIG. 1). The terminal 90 includes, as its hardware configuration, a control unit 91, a storage unit 92, a communication unit 93, an input unit 94, and an output unit 95.

[0052] The control unit 91 of the terminal 90 includes one or more processors such as a CPU, and controls the overall operation and processing of the terminal 90. The storage unit 92 of the terminal 90 is an HDD, SSD, ROM, RAM, or the like, and stores the above-mentioned performance management application program as well as data and the like used when the control unit 91 executes processing based on the program.

[0053] A communication unit 93 of the terminal 90 controls communication with the network. An input unit 94 of the terminal 90 is a touch panel, a mouse, a keyboard, or the like, and inputs operation requests from the user to the control unit 91. An output unit 95 of the terminal 90 is a display, or the like, and displays the results of processing by the control unit 91, etc.

[0054] <Functional configuration> 2(a), the information processing device 10 has, as its functional configuration, a reception unit 101, a transmission unit 102, a creation processing unit 103, a counting processing unit 104, and a display processing unit 105. These are information processing performed by software (stored in the storage unit 12) that is specifically realized by hardware (such as the control unit 11).

[0055] The reception unit 101 receives and registers various information from a user terminal. In this embodiment, the reception unit 101 receives, from the user terminal, a selection input of the type of work and construction conditions (such as a regional classification, a construction classification including a civil engineering classification and a building classification) corresponding to the construction site, and a specific construction location (a location where the user manages the results) corresponding to the hierarchical structure. The construction conditions referred to here include, for example, a regional classification and a construction classification. The construction classification includes the civil engineering classification and the building classification described below. The reception unit 101 receives an input of the results quantity from the user terminal. Furthermore, the reception unit 101 receives an input of the number of workers required for the construction work from the user terminal. For example, the reception unit 101 receives the input of the number of workers and stores it in the memory unit 12 (which may be the information processing device 10 or a separate DB), and can then use the number of workers stored in the memory unit 12 for displaying and calculating (creating and aggregating) each item in the results task.

[0056] The receiving unit 101 can also receive an input of a production amount report for reporting the production amount to a manager or the like from the work terminal 3. The receiving unit 101 can also receive one unit selected from a plurality of units for the production amount of the achieved task.

[0057] The transmitting unit 102 transmits various information to the user terminal. In this embodiment, the transmitting unit 102 transmits the type of work corresponding to the construction site and the specific construction location corresponding to the hierarchical structure, etc., based on a request from the user.

[0058] The creation processing unit 103 creates and processes information necessary for performance management. In this embodiment, the creation processing unit 103 associates a construction site, a work type, and a specific construction location based on a selection input from the user terminal, and creates and processes a performance task that allows input of the performance of the amount of work, the number of workers, and a construction plan for the construction work at the specific construction location. For example, the creation processing unit 103 associates a construction site, a work type, and a specific construction location based on a selection input from the user terminal, and creates and processes a performance task that allows input of the performance of the amount of work for the construction work at the specific construction location. In addition, the creation processing unit 103 associates a progress report for reporting the progress received from the work terminal 3 with the progress task, and stores the report in the memory unit 12.

[0059] The tallying unit 104 tally (calculates) information (such as numerical values) used for performance management. In this embodiment, the tallying unit 104 calculates a construction index corresponding to a performance task based on the performance of the amount of work and the construction conditions. The construction indexes referred to here are various numerical values related to the construction, more specifically, the completed volume and the rate of work. Based on the performance of the amount of work and the planned volume, the tallying unit 104 calculates the ratio of the performed volume to the planned volume as the completed volume of the construction work at a specific construction location.

[0060] The tallying processing unit 104 also calculates the unit rate for the construction work based on the construction conditions (and / or type of work) and the actual amount of work. Furthermore, the tallying processing unit 104 can calculate the amount of work completed for the contractor in charge of the construction work based on the construction system. For example, the tallying processing unit can determine the number of workers corresponding to the contractor in charge of the construction work based on the construction system and construction conditions, and calculate the unit rate for the construction work based on the construction conditions and the actual amount of work. The tallying processing unit 104 calculates the amount of work completed based on a unit selected from the multiple units accepted by the accepting unit 101.

[0061] The display processing unit 105 performs display processing on the display screens of the management terminal 2 and the work terminal 3. In this embodiment, the display processing unit 105 displays the planned quantity, contractor, specific construction location, completed volume, and unit rate, and transmits the display processing results. The display processing unit 105 can also display a list of multiple completed tasks by different contractors and transmit the display processing results to the management terminal. The display processing unit 105 can also perform display processing to distinguish between completed tasks related to ongoing construction work and completed tasks for which construction work has been completed.

[0062] <Database> 1 stores user information on users such as managers and workers, company information on prime contractors and cooperating companies, construction site information on the construction site, location information on the construction location, work type information on the work type, area classification, civil engineering classification and building classification as work classifications (area classification and work classification are sometimes collectively referred to as construction conditions), construction system information on the construction system at the construction site, performance task information, and other information necessary for performance management. Some or all of these may be stored in the memory unit 12 or the like, or some of them may be stored in another database or the like.

[0063] The performance management system 1 and the processing contents of each functional component will be described below with reference to FIGS.

[0064] <Outline of the performance management system> The performance management system 1 according to this embodiment is a system for simply and appropriately managing performance data related to construction work carried out at a construction site. The performance management system 1 accepts input of work volume data and the like from workers, and can automatically calculate the completed volume and unit rate in accordance with specific construction locations at the construction site, which have a hierarchical structure such as buildings, floors, and work sections. The performance data of work volume here refers to the actual quantity of work performed by workers, work data that is difficult to quantify, and the like.

[0065] Furthermore, the performance management system 1 according to this embodiment can automatically calculate accurate unit rates that take into account the construction conditions at each construction site (e.g., structure type, construction method, machinery used, regional classification, etc.). For example, when assembling rebar for columns, even for the same type of work, the unit rate generally differs depending on whether the work is performed on-site or directly. This embodiment can automatically calculate more accurate unit rates that take these various conditions into account. For example, construction conditions can be determined based on the results of unit rates accumulated at similar past construction sites. Furthermore, unit rates from similar past cases can be presented (displayed) based on site information, etc. For example, in this embodiment, the unit rate calculated at each construction site can be linked to the construction conditions (regional classification, construction division, etc.). As a result, past unit rates that are closer to the actual situation at a new construction site can be used for construction planning, etc.

[0066] In other words, by accepting the input of the actual work volume, the manager of the prime contractor can easily and accurately manage the actual work at the construction site where there is a complex correspondence between each area and each work (and the type of work and the construction conditions corresponding to the type of work). The flow of processing in the work result management system 1 will be explained in detail below.

[0067] <Registering various information> 3 shows a flowchart of the processing steps in a performance management system according to one embodiment of the present invention. In S201, users such as prime contractors and cooperating companies (and individuals belonging to these companies) register their user information in advance. The reception unit 101 of the information processing device 10 registers various information to be used for performance management. Note that users in this embodiment include not only prime contractors and cooperating companies, but also on-site personnel of prime contractors and workers of cooperating companies (people involved in construction work).

[0068] As shown in Figure 4(a), user information includes information such as the user's name, contact information, job information, information about qualifications held, facial image, user identification information, registration date, information about the company to which the user belongs (prime contractor or subcontractor) (company ID, which will be described later), etc. Users include not only site supervisors and site managers, but also, for example, responsible persons who do not actually visit the construction site but manage the site situation or approve construction work (responsible persons belonging to the head office of the prime contractor), etc.

[0069] In the performance management system 1 of this embodiment, in addition to user information, information such as company information regarding the prime contractor or cooperating company to which the user belongs, construction site information regarding each construction site, site information such as buildings and floors, and work type information regarding the type of work at the construction site is registered in advance.

[0070] As shown in Figure 4(b), company information is managed by company ID and includes the company name (e.g., Company A or Construction D), company contact information, company address, type indicating whether the company is a prime contractor or a subcontractor, available duties, etc. This company information can also include information about sole proprietors, for example.

[0071] Furthermore, as shown in Figure 4(c), construction site information is managed using a construction site ID, and includes the site name (e.g., Construction Site A, Construction Site B), the site address, the construction period, etc. Location information is managed using a location ID, and includes the level (e.g., the first level), the level name (e.g., building or floor), and the location name (e.g., Building A, 2nd floor), as shown in Figure 4(d). This location information can be managed by linking it to construction site information, etc. Furthermore, work type information is managed using a work type ID, and includes the major work type (e.g., concrete, rebar, etc.), the minor work type (e.g., rebar processing and assembly, pumping work, etc.), as shown in Figure 4(e).

[0072] 3, the reception unit 101 of the information processing device 10 acquires construction conditions such as area classification and construction classification, and the construction organization at the construction site, and stores them in the storage unit 12. In this embodiment, the construction organization and construction conditions can be used to identify a contractor, or to identify labor hours, labor rate, etc. at the construction site.

[0073] As mentioned above, construction conditions include regional classification and construction classification (civil engineering classification and building classification). As shown in Figure 5(a), regional classification includes the type of regional classification (such as urban area, narrow land, or along a railroad track), and the unit rate conditions that define the labor force for each type of work (such as the amount of work that one worker can complete in a day), and are managed using a regional classification ID. Regional classification takes into account the influence of regional characteristics on each task and determines the conditions for calculating the unit rate for each task (type of work) performed in each region. For example, when assembling rebar for columns, this takes into account the fact that the actual unit rate will differ even for the same type of work, depending on whether it is done on-site or directly assembled.

[0074] Construction conditions such as area classification and construction classification can also be linked in advance to each type of work, such as rebar or concrete, and managed accordingly. In this case, construction classifications including area classification, civil engineering classification, and architectural classification are managed by linking them to the work type ID. For example, if the construction site's area classification is small land and the type of work is concrete work, it is possible that more labor is required to transport the materials needed for the work than at a general construction site, and therefore more labor is required (normally 5 man-hours, but under these conditions it becomes 8 man-hours).

[0075] As shown in FIG. 5(b), civil engineering classifications are managed by civil engineering classification IDs, including the type of civil engineering classification (e.g., tunnel, road, dam), the unit rate conditions that define the labor required for each type of work, and other information. For example, civil engineering classification types can also include other civil engineering works. Furthermore, as shown in FIG. 5(c), building classifications are managed by building classification IDs, including the type of building classification (e.g., condominium, hotel, hospital), the unit rate conditions that define the labor required for each type of work, and other information. For example, building classification types can also include office buildings and factories. Furthermore, using both civil engineering classifications and building classifications can be used to more accurately calculate unit rates, etc. For example, when road construction and factory construction are carried out in a specified area, more accurate unit rates can be calculated for each area. In this embodiment, the construction classifications include the civil engineering classifications and building classifications shown in FIGS. 5(b) and 5(c), and the construction projects include the regional classifications and construction classifications shown in FIGS. 5(a) to 5(c).

[0076] The construction conditions can also include the design company, construction company, client, etc. For example, when narrowing down the construction companies by type of work, it is possible to refer to the track record (unit rate, etc.) of multiple primary specialized construction companies in a specific region, or to the fact that the unit rate in Osaka is at a standard level but not in Tokyo (if the construction company operates nationwide). Furthermore, in this embodiment, various conditions can be applied to the calculation of the unit rate, such as the client's past track record, the track record (unit rate) of buildings of the same type and scale, and the design company's past required level.

[0077] The unit rate conditions in Figures 5(a) to (c) are predetermined coefficients and conditions. For example, as mentioned above, even for the same type of work, the actual unit rate can differ depending on whether the reinforcing bars for columns are assembled on the site or directly on the site. The performance management system 1 can take such circumstances into account to calculate a more accurate unit rate.

[0078] That is, in this embodiment, by using the construction conditions (construction conditions corresponding to each type of work) such as the area classification and construction classification (civil engineering classification, building classification) shown in Figures 5(a) to (c), construction indices such as completed volume and unit rate can be calculated simply and accurately. Note that, in this embodiment, the construction indices are explained as completed volume and unit rate, but the construction indices are not limited to these and may be any indices related to construction.

[0079] A schematic image diagram of a construction system according to one embodiment of the present invention is shown in Figure 6. As shown in the figure, the construction system shows the subordinate relationships between a prime contractor and multiple cooperating companies (contractors).

[0080] The construction system in Fig. 6 is diagrammatically expressed so that subordinate relationships and the like can be seen at a glance. Fig. 6 is expressed as a schematic image for understanding the construction system in this embodiment. The memory unit 12 of the information processing device 10 stores construction system information including information on the construction site, subordinate relationships between the prime contractor and multiple cooperating companies, and the like.

[0081] For example, as shown in Figure 5(d), construction system information (information related to the construction system) includes the construction site ID of the construction site information, construction work ID, work type ID, company ID, user ID, information on the subordinate relationships between companies such as primary and secondary, the company ID of the parent company, information on the duties that can be handled, etc., and is managed by the construction system ID. Furthermore, the construction system can also include the contractor (company ID) and the contractor's responsibilities (area and workload for work, work content, planned number of people, etc.). Note that in this specification, construction system information may also be simply referred to as the construction system.

[0082] In Figure 6, the subcontractors from 1st to 5th tier for prime contractor A and their subordinate relationships are shown for each job function, such as rebar work, civil engineering, and interior work. In Figure 6, subcontractors performing the job "rebar work" are shown as D Construction (1st tier) and E Construction (2nd tier), and subcontractors performing "civil engineering work" are shown as F Group (1st tier), G Industry (2nd tier), and H Machinery (3rd tier). Also shown are subcontractors performing "interior work": J Interior (1st tier), K Construction (2nd tier), L House (3rd tier), Yamada Taro (4th tier), Sato Ichiro (5th tier), and Nakamura Jiro (5th tier).

[0083] Furthermore, as shown in Figure 6, the construction system is linked to company information, including information on the prime contractor and cooperating companies, work type information, construction site information, and user information. In this way, by linking the construction system to company information, work type information, construction site information, and user information, it is possible to create actual tasks easily and accurately at construction sites where there are complex subordinate relationships between cooperating companies and complex correspondence relationships between construction locations and work types.

[0084] <Registering actual tasks> In S203, the reception unit 101 receives the type of work, construction site, etc. from the user. First, when the reception unit 101 receives information on the construction site, etc., the transmission unit 102 transmits information that allows the user to select the type of work and construction location. Specifically, as shown in the setting screen W10 of FIG. 8, the transmission unit 102 transmits to the management terminal 2 construction information that allows the user to set the type of work, such as reinforcing bars, and information that allows the user to select (and input) the area where the worker will perform the work and the planned quantity of work in that area (the display process will be described later). Note that, although specific transmission content is explained here using FIG. 8, the information that the user can select is not limited to the display format of FIG. 6.

[0085] The reception unit 101 in this embodiment can receive construction conditions such as the type of work, construction site, area classification, and construction classification from the user. The reception unit 101 can also receive a selection input of all or any of the area classification and construction classification. For example, if a construction classification is set without dividing it into civil engineering, building, etc., a selection input of "building" in the construction classification can be received, and then a selection input of the building use (for example, an apartment building or a hospital as shown in FIG. 5(c)) can be received as a further construction condition. In this case, the transmission unit 102 (or the display processing unit 105) transmits information (screen information) that allows each construction condition to be selected (and entered) to the management terminal 2.

[0086] In S204 of Fig. 3, an actual task is created based on a selection input from the user. Specifically, in Fig. 7, the user selects "rebar work" as the carpentry type and "rebar processing and assembly" as the minor work type. The user can select a carpentry type and a minor work type (subordinate concept) included in the carpentry type (superordinate concept) from multiple options.

[0087] In this embodiment, "rebar work" is shown as the type of carpentry, but broader concepts such as "rebar" or "concrete" can also be input (or selected) as the type of carpentry. Also, while Figure 7 shows two types of carpentry and minor work, it is also possible to select medium work as a concept between the carpentry and minor work types. In addition, the user can select "rebar volume" as the progress indicator and "t" as the unit of volume.

[0088] In this embodiment, the unit of the completed volume can be selected from a plurality of units and used as desired by the user. In other words, the unit is not determined for each type of work, such as "t" for rebar or "m2" for concrete work, but can be freely set according to the user's preference, such as "t" for rebar, "kg" or "pounds." The receiving unit 101 receives one unit selected from a plurality of units for the completed volume of the actual task, and the calculation processing unit 104, as described below, can calculate the completed volume based on the selected unit.

[0089] In this embodiment, in addition to the above-mentioned type of work, etc., the construction location (also called work location) can be selected. As shown in Fig. 7, multiple hierarchical structures such as building, floor, etc. can be selected. In (1) of Fig. 7, it is selected whether or not to set the construction location. If a construction location is not selected, all work at the construction site is lumped together and the completed volume and unit rate are calculated. If a construction location is selected, the user inputs (2).

[0090] Then, in (2) of FIG. 7, the user sets the hierarchical structure of the desired construction location (specific construction location). In this embodiment, "building" is selected as the first layer of the building, "floor" as the second layer, "area" as the third layer, and "work section" as the fourth layer. In this embodiment, the hierarchical structure of the construction location is expressed using terms such as "building," "floor," "area," and "work section," but of course other terms can be used as long as they can express the building or area as the construction location in a hierarchical structure. For example, the hierarchical structure can be freely set according to the construction site, such as by expressing the concept of a subdivided area as a work section, or by expressing a specific area as an area or work section, or by further subdividing the work section or area.

[0091] In addition, the construction location can be selectively set to correspond to all or any of the hierarchical structures including building, floor, and work area. This configuration allows for special circumstances when managing the actual work volume of buildings at each construction site, i.e., when managing buildings located in a certain area, it is possible to assume that Building A is three stories tall and Building B is eight stories tall, and depending on the size of the floor, the floor may or may not be divided into work areas (conditions vary depending on the building), or even in complex situations where there is a construction site where only ground-level construction is performed, it is possible to create actual work tasks based on the appropriate construction location. More specifically, for a one-story building, only the building and work area can be set, or for ground-level work, only the work area can be set as a hierarchical structure.

[0092] The first level in Figure 7 shows each building (Building A, Building B, etc.) when multiple buildings are constructed at a construction site. The second level shows the internal floors of the buildings on the first level, such as the second floor of Building A and the fourth floor of Building B. The second level also includes things like x floors above ground and x floors below ground. The third level shows the southern area when the second floor of Building A is divided into two areas, the south and the north. The fourth level shows the construction sections that further subdivide the area, such as construction sections 1 and 2 in the southern area.

[0093] In this embodiment, an example of four levels from the first level to the fourth level is shown, but there is naturally no limit to the number of levels in the hierarchical structure. For example, it is possible to have a configuration without an area (third level), or to set only areas or work sections at a site where only flat construction is carried out, and it is also possible to set up even more detailed sections with a fifth level or more. For example, it is possible to have a hierarchical structure in which areas (sites) and work sections are the first and second levels, and multiple buildings (and floors within buildings) exist within a specified area in the area or work section.

[0094] In Figure 7 (3), you can select whether or not to display the first level as a tab (as a heading). For example, when displaying the second construction section in the south area on the second floor of Building A, if (3) is checked (selected), this construction location can be displayed as "Building A." In this way, construction locations with a hierarchical structure can be classified so that the user can get a general idea of the structure (not the detailed construction location, but simply understand which building the work was performed in).

[0095] In this way, in this embodiment, the user can freely set up a construction site with a hierarchical structure, which allows for achievement management that appropriately responds to the complex situations at an actual construction site. For example, by using this hierarchical structure setting, the user can search for achievement tasks by hierarchy.

[0096] Furthermore, in this embodiment, the screen changes by selecting "Next" in Fig. 7. Specifically, as shown in Fig. 8, it is possible to set a construction location where the completed volume and unit rate, which will be described later, can be registered (calculated). As shown in (4) of Fig. 8, the user can freely set a construction location where the completed volume (and unit rate) will be registered.

[0097] In Figure 8, all construction locations are selected, but the user can set it as desired, such as selecting only the first floor without setting the basement, or selecting only the two construction sections in the northern area of the basement, etc. After making this selection in (4), the planned quantity is also entered for each specific construction location selected (for example, for each building or each construction section).

[0098] In this way, the creation processing unit 103 can create and process the actual task desired by the user by receiving the type of work, the required construction location in the hierarchical structure, and the planned quantity for each construction location.

[0099] As shown in Figure 5(e), the actual task information includes the construction site ID, construction organization ID, work type ID, location ID, construction location, partner company (contractor), planned quantity, completed work, labor, work rate, reported drawings, etc., and is managed by task ID. Furthermore, the actual task information can also be managed as monthly results (current month results) and cumulative totals (cumulative total of work done to date) for completed work and labor. For example, it is possible to create and process actual tasks such as those shown in Figure 9, which will be described later.

[0100] Furthermore, in the actual task information, the actual labor hours (actual labor hours) can be entered after the work is completed, or the results calculated using the type of work, construction conditions, or construction system can be registered as labor hours and units (for example, estimated labor hours and estimated units). In this way, in this embodiment, labor hours and units can be calculated easily and accurately, and the results can be registered.

[0101] <Calculation of production volume and unit rate> 3, the reception unit 101 receives input of the actual work volume. This actual work volume indicates, for example, actual quantities such as XXX tons of rebar processing and assembly, XXX m2 of concrete pumping work, and other work volumes that are difficult to quantify. Then, in S206, the aggregation processing unit 104 of the information processing device 10 calculates the completed volume and the unit rate.

[0102] The reception unit 101 receives input of the actual quantity from the work terminal 3 (user terminal). Then, the tallying unit 104 calculates the ratio of the actual quantity to the planned quantity as the volume of work completed at the specific construction location based on the actual work volume and the planned quantity.

[0103] For example, if the planned quantity is 100,000t of rebar and the actual amount for that month is 12,500t, the contractor's completed work is calculated to be 12.5%.Also, if the planned quantity is 40,000m2 of pouring and the actual amount for that month is 1,200m2, the contractor's completed work is calculated to be 3% (see Figure 9).

[0104] In this embodiment, the output is expressed as a percentage (%), but it is not limited to this and the output can also be expressed as a numerical value or symbol other than a percentage. For example, when the output is expressed as a symbol, a rebar quantity of 0 to 50 t can be expressed as output A, a rebar quantity of 51 to 100 t can be expressed as output B, a rebar quantity of 100 to 200 t can be expressed as output C, etc.

[0105] In the past, users would calculate the amount of work done based on information on the actual amount of work from workers and enter it in a report (or input it into a computer, etc.), but in this embodiment, the amount of work done can be calculated automatically by accepting input of the actual amount of work done from workers, and the results can then be confirmed by the manager.

[0106] Furthermore, in this embodiment, the unit rate can be calculated. The reception unit 101 receives input of the number of workers required for the construction work from the work terminal 3 (user terminal) (or uses the number of workers stored in the storage unit 12, etc.). The tallying unit 104 then calculates the unit rate corresponding to the construction work based on the number of workers and the actual amount of work.

[0107] For example, if the planned quantity is 100,000 tons of rebar, the actual result (actual quantity) for the current month is 12,500 tons, and 250 people are needed to achieve this actual quantity, the tallying processor 104 will calculate the unit rate as 50 tons / person (see FIG. 9). This performance management system 1 can be used particularly effectively when compensation is paid to each cooperating company (for example, each primary cooperating company) according to this unit rate.

[0108] In this embodiment, the construction system can be used to calculate the unit rate. The tallying unit 104 determines the number of workers corresponding to the contractor in charge of the construction work based on the construction system, and calculates the unit rate corresponding to the construction work based on the number of workers and the actual work volume. By using the construction system, the unit rate can be calculated more accurately and easily.

[0109] Furthermore, in this embodiment, the unit rate can be calculated using construction conditions. The tallying unit 104 calculates the unit rate based on construction conditions such as the type of work (e.g., reinforcing steel or concrete) and the area classification and construction division. In this case, the unit rate can be calculated with high accuracy without receiving input of the number of workers from the work terminal 3 (user terminal).

[0110] In this embodiment, the unit rate is based on the number of people, but is not limited to this and can also be based on, for example, the number of machines or the performance of the machines. Machine performance is not limited to the number of vehicles, but can also be, for example, the output capacity (kW) that the vehicle can exert in carrying out the work. Specifically, if the number of machines is used as the basis, it will be XX t / unit, and if the performance of the machines is used as the basis, it will be XX t / kW. In these cases, the number of machines, performance, etc. can be stored and managed in the memory unit 12.

[0111] Then, in S207, the tallying unit 104 links the completed volume and the unit rate to the actual task and registers them. In this way, in this embodiment, by executing a series of processes from S201 to S207, it is possible to easily register and view actual tasks that meet the user's requests even at a construction site where there is a complex correspondence between the type of work and the construction location.

[0112] <Display processing> Fig. 9 shows an example of a display processing result in a user terminal according to an embodiment of the present invention. Fig. 9 shows a display processing result in the management terminal 2. As shown in the figure, a plurality of actual tasks W30 are displayed in a list W40 on a display screen W20. The display processing unit 105 of the information processing device 10 displays the actual tasks based on a display request operation from the user terminal, and transmits the display processing result to the user terminal.

[0113] 9, the completed tasks can be selectively displayed by major work type, minor work type, construction location, and primary partner company (according to the user's selection input). In addition, the display processing unit 105 can sort and display the completed tasks based on the order of work type or other conditions (for example, in order of earliest construction period). By enabling sorting and rearrangement in this way, user convenience can be improved.

[0114] Also, in FIG. 9, when the user selects (touches) "Data Output" (the display processing unit 105 receives a selection input from the user), the achieved tasks can be output as general-purpose data (for example, CSV data or Excel data), and when the user further selects (touches) "Performance Report," a report (report form) containing the details of the achieved tasks can be output. These output data are transmitted by the transmission unit 102 to a user terminal or a printer. In this way, the achieved tasks in this embodiment can be used as paper media or general-purpose data according to the user's request.

[0115] For example, in Figure 9, the completed tasks "concrete pouring labor" and "concrete floor finishing" are marked with a check mark, indicating that the completed tasks have been confirmed. In this way, the display processing unit 105 can display completed tasks related to ongoing construction work in a way that makes it possible to distinguish between completed tasks and completed tasks. This setting can be made using "Completion Amount Setting."

[0116] In the actual task W30 in Figure 9, the primary subcontractor, planned quantity, progress of completed work, actual labor hours, and unit rate are displayed along with the carpentry type, minor work type, and construction location. For example, Figure 9 shows primary subcontractors such as Rivasta Rebar, but it is also possible to display secondary subcontractors as needed. In this case, the contractor to be displayed can be set using the construction system.

[0117] In Figure 9, the construction location for the work of the minor work type "rebar assembly" of the carpentry type "rebar" is shown to be the second floor, and the completed volume and unit rate for this location are displayed. In this way, the user can easily check the results for a specific construction location set according to their wishes. Regarding the display of the construction location, if there is only one building in question, it can be displayed as "second floor," etc., and the display processing unit 105 can also display details of the selected hierarchical structure, such as "1st construction section in the north area on the second floor of building A," according to user input.

[0118] In addition, the current month's actual results and cumulative totals are displayed as progress and labor force figures. By displaying the current month's actual results and cumulative totals (and planned quantities) side by side in this way, users can quickly grasp the appropriate progress status.

[0119] For example, the labor hours for each type of work can be calculated based on construction conditions such as area classification and construction classification (civil engineering classification or building classification) and the type of work such as reinforcing bars. The display processing unit 105 can calculate the labor hours and work rate based on the construction conditions and type of work, and display the calculation results.

[0120] In FIG. 9, a report drawing is linked to each actual task W30, and the progress status of each task is displayed so that it can be grasped. For example, by selecting (touching) "Confirm" on the report drawing for the actual task W30, a drawing can be displayed in which the portion of the work that has actually been completed can be visually confirmed (not shown). In this way, in this embodiment, by linking the report drawing to the actual task, it is possible to visually confirm the actual progress status. When a user wants to visually check the progress status together with the completed volume and unit rate, the report drawing can be easily viewed without going through another database or system.

[0121] 7 and 8 described above, and transmits the display processing result to the management terminal 2. The receiving unit 101 can receive information necessary for creating an achievement task from the management terminal 2 based on an input selected from the display processing result.

[0122] As described above, according to the performance management system 1 of the present invention, performance management at construction sites can be easily and effectively realized by executing predetermined processing using information about construction locations with a hierarchical structure and construction conditions (such as area classification and construction classification).

[0123] Furthermore, in this embodiment, performance management at a construction site has been described, but the same effects as those of the present invention can be obtained when the performance management system 1 is used in fields other than construction sites. [Explanation of symbols]

[0124] 1. Performance management system 2 Management terminal 3 Work terminal 10. Information processing equipment 11 Control section 12 Storage section 13 Communications Department 90 terminals (management terminal 2, work terminal 3) 91 Control Unit 92 Memory section 93 Communications Department 94 Input section 95 Output section 101 Reception 102 Transmitter 103 Creation processing unit 104 Aggregation processing unit 105 Display processing unit NW Network W10 setting screen W20 display screen W30 Achievement Tasks W40 List

Claims

1. A performance management system for managing performance of construction work, The performance management system includes a storage unit, a reception unit, a creation processing unit, and a compilation processing unit, The storage unit stores construction conditions including site information on the construction site, the type of work for each construction task, construction locations having a hierarchical structure, and area classifications in association with each other, The reception unit receives, from a user terminal, a selection input of a work type and a regional classification corresponding to the construction site and a specific construction location corresponding to the hierarchical structure, The creation processing unit associates the construction site, the type of work, and the specific construction location based on the selection input, and creates and processes an achievement task in which the achievement of the amount of work of the construction work at the specific construction location can be input; the aggregation processing unit calculates a construction index corresponding to the performance task based on the performance amount and the performance conditions. Performance management system.

2. The construction conditions further include construction classification, The reception unit further receives a selection input of a construction category corresponding to the construction site, the aggregation processing unit calculates a construction index corresponding to the performance task based on the performance amount and the performance conditions. The performance management system according to claim 1 .

3. The storage unit stores a construction plan based on input from the user terminal, The construction index is the volume of work completed in the construction work, The construction plan includes a planned quantity corresponding to the construction work at the specific construction location, The work volume record includes a record quantity corresponding to the construction work at the specific construction location, the receiving unit receives an input of the actual quantity from the user terminal, The aggregation processing unit calculates the ratio of the actual quantity to the planned quantity as the progress of the construction work at the specific construction location based on the actual quantity and the planned quantity.

3. The performance management system according to claim 1 or 2.

4. The construction index is a work rate in construction work, the tallying unit calculates a work rate corresponding to the construction work in the performed task based on the construction conditions and the performed work volume.

3. The performance management system according to claim 1 or 2.

5. The construction index is the volume of work completed in the construction work, The site information is a construction system including a subordinate relationship of contractors at the construction site, The tallying unit calculates the completed amount corresponding to the contractor in charge of the construction work based on the construction system.

3. The performance management system according to claim 1 or 2.

6. The site information is a construction system including individuals belonging to a contractor at the construction site, The calculation processing unit determines the number of workers corresponding to the contractor in charge of the construction work based on the construction system and the construction conditions, and calculates the rate of work corresponding to the construction work based on the number of workers and the actual work volume. The performance management system according to claim 4 .

7. The performance management system further comprises a display processing unit, The storage unit stores a construction plan input from a user terminal, The construction plan includes a planned quantity corresponding to the construction work at the specific construction location, The display processing unit displays the planned quantity, the contractor, and the specific construction location together with the work rate, and transmits the display processing results. The performance management system according to claim 6 .

8. The performance management system further comprises a display processing unit, The user terminal includes a management terminal used by the prime contractor; the display processing unit displays a list of a plurality of completed tasks performed by different contractors and transmits the display processing result to the management terminal; 3. The performance management system according to claim 1 or 2.

9. The user terminal includes a work terminal used by a contractor, the receiving unit receives an input of a production volume report for reporting a production volume from the work terminal; The creation processing unit associates the production amount report with the performance task and stores the production amount report in the storage unit. The performance management system according to claim 3 .

10. the receiving unit receives one unit selected from a plurality of units for the amount of work performed in the achieved task; The tallying unit calculates the volume based on the selected unit. The performance management system according to claim 3 .

11. The hierarchical structure includes all or any of the buildings, floors, and construction areas at the construction site, 3. The performance management system according to claim 1 or 2.

12. The performance management system further comprises a display processing unit, The display processing unit performs display processing to distinguishably display an achievement task related to ongoing construction work from an achievement task related to the completed construction work.

3. The performance management system according to claim 1 or 2.

13. A performance management method executed by a performance management system that manages the performance of construction work, The performance management system includes a storage unit, a reception unit, a creation processing unit, and a compilation processing unit, The storage unit stores construction conditions including site information on the construction site, the type of work for each construction task, construction locations having a hierarchical structure, and area classifications in association with each other; The receiving unit receives, from a user terminal, a selection input of a work type and a regional classification corresponding to the construction site and a specific construction location corresponding to the hierarchical structure; The creation processing unit associates the construction site, the type of work, and the specific construction location based on the selection input, and creates and processes an achievement task that allows the input of the achievement of the amount of work of the construction work at the specific construction location; The calculation processing unit calculates a construction index corresponding to the performed task based on the work amount performance and the construction conditions. Performance management methods.

14. A performance management program for managing the performance of construction work, causing a computer to function as a storage unit, a reception unit, a creation processing unit, and a counting processing unit; The storage unit stores construction conditions including site information on the construction site, the type of work for each construction task, construction locations having a hierarchical structure, and area classifications in association with each other, The reception unit receives, from a user terminal, a selection input of a work type and a regional classification corresponding to the construction site and a specific construction location corresponding to the hierarchical structure, The creation processing unit associates the construction site, the type of work, and the specific construction location based on the selection input, and creates and processes an achievement task in which the achievement of the amount of work of the construction work at the specific construction location can be input; the aggregation processing unit calculates a construction index corresponding to the performance task based on the performance amount and the performance conditions. Performance management programs.

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