An engineering full-link penetration type information processing method, device, equipment, storage medium and program product

CN122597092APending Publication Date: 2026-08-18CHINA THREE GORGES RENEWABLES (GRP) CO LTD
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Patent Information

Application Number
CN202610482462.4
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2026-04-13
Publication Date
2026-08-18

AI Technical Summary

Technical Problem

[0002]当前建筑工程信息处理领域面临四大核心痛点:工期安排不科学、过程签证与支付脱节、现场突发支出确权难、资源挪用与截流,导致信息处理滞后、纠纷频发、拖欠风险突出

Benefits of technology

[0019]本公开实施例提供的技术方案与现有技术相比具有如下优点:

✦ Generated by Eureka AI based on patent content.

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Abstract

The method, device, equipment, storage medium and program product provided by the embodiments of the present disclosure can calculate the theoretical minimum physical construction period through the obtained engineering related data, check and update the subjective requirement data of the tendering party, generate subjective update data, extract the parameterized content and key parameters of the subjective update data, write into the electronic contract after determining the actual use ratio and the standby ratio, form the engineering contract, decompose the sub-division engineering into the most basic acceptable tasks according to the engineering contract, generate the right-verification voucher after the instant visa of the temporary event is checked and accepted, grade the payment after the work results in the right-verification voucher are mapped through three levels, finally generate the completion report based on the payment results, realize the whole-link penetration type information processing management from the tendering to the completion, and realize the transformation of the engineering information processing from the lagging audit to the instant locking and from the fuzzy allocation to the accurate and direct.
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Description

Technical Field

[0001] This disclosure relates to the field of intelligent construction technology, and in particular to a method, apparatus, equipment, storage medium, and program product for end-to-end information processing in engineering. Background Technology

[0002] The current field of construction engineering information processing faces four major pain points: unscientific schedule planning, disconnect between process approvals and payments, difficulty in confirming ownership of unexpected on-site expenditures, and misappropriation and interception of resources. These issues lead to delayed information processing, frequent disputes, and significant risks of payment delays. The traditional "work first, pay later" and final audit models cannot solve the problems of real-time ownership confirmation and transparent payment during the construction process.

[0003] Therefore, the present invention provides a method, apparatus, device, storage medium and program product for end-to-end information processing in engineering. Summary of the Invention

[0004] In order to solve the above-mentioned technical problems, or at least partially solve the above-mentioned technical problems, this disclosure provides a method, apparatus, device, storage medium and program product for full-link penetration information processing in engineering.

[0005] This disclosure provides a method for end-to-end information processing in engineering projects, the method comprising: Obtain engineering-related data for the target project, calculate the theoretical minimum physical construction period of the target project based on the engineering-related data, obtain subjective requirement data from several bidding parties, verify the subjective requirement data according to the minimum physical construction period, and update the subjective requirement data according to the verification results to obtain subjective updated data. The engineering-related data includes bill of quantities, climate data, and resource allocation data, and the subjective requirement data includes the required construction period and payment requirements. Extract the parameterized content of the subjective update data, write the parameterized content into the electronic contract, extract the key parameters from the subjective update data, determine the actual usage ratio and reserve ratio based on the key parameters, and write the actual usage ratio and reserve ratio into the electronic contract to obtain the engineering contract; According to the engineering contract, the sub-projects are broken down into the most basic and acceptable tasks. The most basic and acceptable tasks are inspected according to the preset inspection rules, temporary events are obtained, and the temporary events are immediately certified based on the inspection results to obtain the certificate of ownership. Extract the work results from the confirmation certificate, map the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, perform tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generate the completion certificate of the target project based on the tiered redemption results.

[0006] The method provided in this disclosure includes: acquiring engineering-related data of a target project; calculating the theoretical minimum physical construction period of the target project based on the engineering-related data; acquiring subjective requirement data from several bidding parties; verifying the subjective requirement data according to the minimum physical construction period; and updating the subjective requirement data according to the verification results to obtain subjectively updated data, including: Obtain engineering-related data for the target project, identify critical path quantities from the bill of quantities and resource allocation data in the engineering-related data, determine the local climate coefficient from the climate data in the engineering-related data, and calculate the theoretical minimum physical construction period based on the critical path quantities and the local climate coefficient. Obtain subjective requirement data from several bidding parties, and verify the required construction period in the subjective requirement data based on the theoretical minimum physical construction period to obtain the verification result; If the verification result is a reasonable construction period, the corresponding subjective requirement data will be directly used as the subjective update data. If the verification result indicates irrational rushing of work, the bidding party is required to add additional items for rushing work measures and update the corresponding subjective requirement data to obtain subjective updated data.

[0007] The method provided in this disclosure includes extracting parameterized content from the subjective update data, writing the parameterized content into an electronic contract, extracting key parameters from the subjective update data, determining the actual usage ratio and reserve ratio based on the key parameters, and writing the actual usage ratio and reserve ratio into the electronic contract to obtain an engineering contract. Extract the text information from the subjective update data, convert the ambiguous expressions in the text information into standard logic code, obtain parameterized content, and write the parameterized content into the corresponding clause position of the electronic contract; Field matching is performed on the subjective update data to determine the key parameters related to allocation in the subjective update data; Based on the key parameters, several historical projects are selected from the historical project table. Historical risk data is determined according to the temporary events corresponding to the historical projects. The difference in construction period between the historical risk data and the subjective update data is input into a preset dynamic probability model. Based on the dynamic probability model, the resource consumption of temporary events in the corresponding historical projects is calculated. The reserve ratio and the actual usage ratio are determined according to the resource consumption. The temporary events, reserve ratio, and actual usage ratio in the historical project are written into the electronic contract to obtain the project contract.

[0008] The method provided in this disclosure, according to the engineering contract, decomposes the sub-project into the most basic acceptable tasks, performs acceptance of the most basic acceptable tasks according to preset acceptance rules, obtains temporary events, and performs immediate certification of the temporary events based on the acceptance results to obtain a certificate of ownership, including: Read the bill of quantities and parameterized content in the engineering contract, break down the sub-projects corresponding to the target project into the most basic acceptable tasks based on the bill of quantities, and determine the execution rule set of the most basic acceptable tasks according to the parameterized content; The most basic acceptable task is accepted based on the set of execution rules, and the acceptance result is obtained. The temporary events include temporary task orders and abnormal equipment events; Based on the acceptance results, temporary task orders and abnormal equipment events are extracted from each sub-project. The temporary event confirmation certificate of the temporary task order is determined according to the first preset operation, and the abnormal event confirmation certificate is determined according to the second preset operation. The ownership confirmation certificate includes temporary event ownership confirmation certificate and abnormal event ownership confirmation certificate.

[0009] The method provided in this disclosure extracts temporary task orders and abnormal equipment events from each sub-project, determines temporary event confirmation credentials for the temporary task orders according to a first preset operation, and determines abnormal event confirmation credentials according to a second preset operation, including: The first preset operation is to determine the task content based on the temporary task order, verify the task personnel and work hour quota based on the task content, use the static default approval mechanism to confirm the effectiveness of the verification result, and generate a temporary event confirmation certificate based on the effectiveness confirmation result. The second preset operation is to determine the cause of the abnormal device event. If the cause is abnormal idleness, then an automatic recording and evidence locking operation is performed to generate an abnormal event ownership certificate.

[0010] The method provided in this disclosure includes extracting work results from the confirmation certificate, mapping the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, performing tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generating a completion certificate for the target project based on the tiered redemption results. Extract the work results from the confirmation certificate, and use a preset three-level penetration mapping logic to map the work results to the engineering layer, subcontracting layer and worker layer to obtain the penetration mapping result; Write the penetration mapping results into the real-time progress, refresh the work results and payable resources between each level, and generate resource links based on the work results and payable resources; An electronic entrustment protocol chain is generated based on the resource link. According to the electronic entrustment protocol chain and the resource link, the redemption is carried out in a tiered manner according to the preset priority and the redemption requirements in the subjective requirement data, and the tiered redemption result is obtained. The tiered redemption results are collected according to a preset time period to obtain the time period data packet for the preset time period; The completion point is determined based on the target project. All time period data packets are identified based on the completion point, and an accumulation operation is performed. The completion report of the target project is generated based on the accumulation operation result.

[0011] This disclosure also provides an engineering end-to-end penetrating information processing device, the device comprising: The acquisition module is used to acquire engineering-related data of the target project, calculate the theoretical minimum physical construction period of the target project based on the engineering-related data, acquire subjective requirement data of several bidding parties, verify the subjective requirement data according to the minimum physical construction period, and update the subjective requirement data according to the verification results to obtain subjective updated data. The engineering-related data includes bill of quantities, climate data, and resource allocation data. The extraction module is used to extract the parameterized content of the subjective update data, write the parameterized content into the electronic contract, extract the key parameters in the subjective update data, determine the actual usage ratio and the reserve ratio based on the key parameters, and write the actual usage ratio and the reserve ratio into the electronic contract to obtain the engineering contract. The acceptance module is used to decompose the sub-project into the most basic acceptable tasks according to the engineering contract, to accept the most basic acceptable tasks according to the preset acceptance rules, to obtain temporary events, to immediately sign the temporary events based on the acceptance results, and to obtain the confirmation certificate. The generation module is used to extract the work results from the confirmation certificate, map the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, perform tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generate the completion certificate of the target project based on the tiered redemption results.

[0012] The method provided in this disclosure, wherein the acquisition module is used for: Obtain engineering-related data for the target project, identify critical path quantities from the bill of quantities and resource allocation data in the engineering-related data, determine the local climate coefficient from the climate data in the engineering-related data, and calculate the theoretical minimum physical construction period based on the critical path quantities and the local climate coefficient. Obtain subjective requirement data from several bidding parties, and verify the required construction period in the subjective requirement data based on the theoretical minimum physical construction period to obtain the verification result; If the verification result is a reasonable construction period, the corresponding subjective requirement data will be directly used as the subjective update data. If the verification result indicates irrational rushing of work, the bidding party is required to add additional items for rushing work measures and update the corresponding subjective requirement data to obtain subjective updated data.

[0013] The extraction module in the method provided in this disclosure is used for: Extract the text information from the subjective update data, convert the ambiguous expressions in the text information into standard logic code, obtain parameterized content, and write the parameterized content into the corresponding clause position of the electronic contract; Field matching is performed on the subjective update data to determine the key parameters related to allocation in the subjective update data; Based on the key parameters, several historical projects are selected from the historical project table. Historical risk data is determined according to the temporary events corresponding to the historical projects. The difference in construction period between the historical risk data and the subjective update data is input into a preset dynamic probability model. Based on the dynamic probability model, the resource consumption of temporary events in the corresponding historical projects is calculated. The reserve ratio and the actual usage ratio are determined according to the resource consumption. The temporary events, reserve ratio, and actual usage ratio in the historical project are written into the electronic contract to obtain the project contract.

[0014] The method provided in this disclosure, wherein the acceptance module is used for: Read the bill of quantities and parameterized content in the engineering contract, break down the sub-projects corresponding to the target project into the most basic acceptable tasks based on the bill of quantities, and determine the execution rule set of the most basic acceptable tasks according to the parameterized content; The most basic acceptable task is accepted based on the set of execution rules, and the acceptance result is obtained. The temporary events include temporary task orders and abnormal equipment events; Based on the acceptance results, temporary task orders and abnormal equipment events are extracted from each sub-project. The temporary event confirmation certificate of the temporary task order is determined according to the first preset operation, and the abnormal event confirmation certificate is determined according to the second preset operation. The ownership confirmation certificate includes temporary event ownership confirmation certificate and abnormal event ownership confirmation certificate.

[0015] The method provided in this disclosure, wherein the acceptance module is used for: The first preset operation is to determine the task content based on the temporary task order, verify the task personnel and work hour quota based on the task content, use the static default approval mechanism to confirm the effectiveness of the verification result, and generate a temporary event confirmation certificate based on the effectiveness confirmation result. The second preset operation is to determine the cause of the abnormal device event. If the cause is abnormal idleness, then an automatic recording and evidence locking operation is performed to generate an abnormal event ownership certificate.

[0016] The method provided in this disclosure, wherein the generation module is used for: Extract the work results from the confirmation certificate, and use a preset three-level penetration mapping logic to map the work results to the engineering layer, subcontracting layer and worker layer to obtain the penetration mapping result; Write the penetration mapping results into the real-time progress, refresh the work results and payable resources between each level, and generate resource links based on the work results and payable resources; An electronic entrustment protocol chain is generated based on the resource link. According to the electronic entrustment protocol chain and the resource link, the redemption is carried out in a tiered manner according to the preset priority and the redemption requirements in the subjective requirement data, and the tiered redemption result is obtained. The tiered redemption results are collected according to a preset time period to obtain the time period data packet for the preset time period; The completion point is determined based on the target project. All time period data packets are identified based on the completion point, and an accumulation operation is performed. The completion report of the target project is generated based on the accumulation operation result.

[0017] This disclosure also provides an electronic device, comprising: a processor; a memory for storing executable instructions of the processor; the processor being configured to read the executable instructions from the memory and execute the instructions to implement the engineering end-to-end penetrating information processing method provided in this disclosure.

[0018] This disclosure also provides a computer-readable storage medium storing a computer program for executing the engineering end-to-end penetration information processing method provided in this disclosure.

[0019] The technical solution provided in this disclosure has the following advantages compared with the prior art: The engineering end-to-end penetrating information processing method provided in this disclosure acquires relevant engineering data to calculate the theoretical minimum physical construction period, verifies subjective requirement data and updates it to subjective update data, determines parameterized content and actual usage ratio and reserve ratio from the subjective update data, and writes them into an electronic contract to generate an engineering contract. It decomposes sub-projects into the most basic acceptable tasks, accepts the most basic acceptable tasks and obtains immediate certification, extracts the work results from the certification for three-level penetrating mapping, and generates a completion certificate after tiered payment. By verifying the construction period, it curbs irrational rush work; by utilizing atomic acceptance and immediate certification, it solves the problem of process certification; by relying on penetrating payment, it blocks the risk of fund misappropriation; and by combining monthly final review and dispute resolution mechanisms, it avoids information processing deadlocks, realizing a transformation in engineering information processing from delayed auditing to immediate locking, and from fuzzy allocation to precise direct access. Attached Figure Description

[0020] The above and other features, advantages, and aspects of the embodiments of this disclosure will become more apparent from the accompanying drawings and the following detailed description. Throughout the drawings, the same or similar reference numerals denote the same or similar elements. It should be understood that the drawings are schematic, and the originals and elements are not necessarily drawn to scale.

[0021] Figure 1 A flowchart illustrating the end-to-end penetrating information processing method for engineering provided in this embodiment of the disclosure; Figure 2 This is a schematic diagram of a first preset operation interface provided in an embodiment of the present disclosure; Figure 3 The second preset operation abnormality device event handling flow provided in the embodiments of this disclosure; Figure 4 This is a schematic diagram of the structure of the engineering end-to-end penetrating information processing device provided in the embodiments of this disclosure; Figure 5 This is a schematic diagram of the structure of an electronic device provided in an embodiment of this disclosure. Detailed Implementation

[0022] Embodiments of this disclosure will now be described in more detail with reference to the accompanying drawings. While some embodiments of this disclosure are shown in the drawings, it should be understood that this disclosure can be implemented in various forms and should not be construed as limited to the embodiments set forth herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of this disclosure. It should be understood that the accompanying drawings and embodiments of this disclosure are for illustrative purposes only and are not intended to limit the scope of protection of this disclosure.

[0023] It should be understood that the steps described in the method embodiments of this disclosure may be performed in different orders and / or in parallel. Furthermore, the method embodiments may include additional steps and / or omit the steps shown. The scope of this disclosure is not limited in this respect.

[0024] The term "comprising" and its variations as used herein are open-ended inclusions, meaning "including but not limited to". The term "based on" means "at least partially based on". The term "one embodiment" means "at least one embodiment"; the term "another embodiment" means "at least one additional embodiment"; the term "some embodiments" means "at least some embodiments". Definitions of other terms will be given in the description below.

[0025] It should be noted that the concepts of "first" and "second" mentioned in this disclosure are used only to distinguish different devices, modules or units, and are not used to limit the order of functions performed by these devices, modules or units or their interdependencies.

[0026] It should be noted that the terms "a" and "a plurality of" used in this disclosure are illustrative rather than restrictive, and those skilled in the art should understand that, unless otherwise expressly indicated in the context, they should be understood as "one or more".

[0027] The names of messages or data exchanged between multiple devices in the embodiments of this disclosure are for illustrative purposes only and are not intended to limit the scope of such messages or data.

[0028] To address the aforementioned issues, this disclosure provides a method for end-to-end information processing in engineering projects. The method will be described below with reference to specific embodiments.

[0029] Figure 1 This is a flowchart illustrating an engineering end-to-end penetrating information processing method provided in an embodiment of the present disclosure. The method can be executed by an engineering end-to-end penetrating information processing device, which can be implemented in software and / or hardware and is generally integrated into an electronic device.

[0030] Example 1: This embodiment of the present disclosure provides a method for end-to-end penetration-based information processing in engineering, such as... Figure 1 As shown, it includes: S101: Obtain engineering-related data for the target project, calculate the theoretical minimum physical construction period of the target project based on the engineering-related data, obtain subjective requirement data from several bidding parties, verify the subjective requirement data according to the minimum physical construction period, and update the subjective requirement data according to the verification results to obtain subjective updated data. The engineering-related data includes bill of quantities, climate data, and resource allocation data, and the subjective requirement data includes the required construction period and payment requirements. S102: Extract the parameterized content of the subjective update data, write the parameterized content into the electronic contract, extract the key parameters in the subjective update data, determine the actual usage ratio and the reserve ratio based on the key parameters, and write the actual usage ratio and the reserve ratio into the electronic contract to obtain the engineering contract. S103: According to the engineering contract, the sub-project is decomposed into the most basic acceptable tasks, and the most basic acceptable tasks are inspected according to the preset acceptance rules to obtain temporary events. Based on the acceptance results, the temporary events are immediately certified to obtain the confirmation certificate. S104: Extract the work results from the confirmation certificate, map the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, perform tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generate the completion certificate of the target project based on the tiered redemption results.

[0031] In this embodiment, the engineering-related data includes the physical quantities of critical path processes such as earthwork, concrete, and steel structure in the bill of quantities, as well as objective physical data such as the climate coefficient and conventional resource allocation scheme of the project location, which are used to calculate the theoretical minimum physical construction period.

[0032] In this embodiment, the theoretical minimum physical construction period is the shortest necessary construction period of the project calculated by the system based on the critical path workload, standard construction efficiency, and climate coefficient, and serves as a benchmark value for verifying whether the tenderer's construction period requirements are reasonable.

[0033] In this embodiment, the subjective requirements data are the project requirements filled in by the bidding party on the electronic bidding platform, including non-objective physical data such as the required construction period, the maximum bid limit, the original text of the payment terms, and the intention to allocate resources.

[0034] In this embodiment, the bidding party is the project construction unit that initiates the bidding activity on the electronic bidding platform. It is responsible for filling in the subjective requirements data and accepting system verification. The verification result will force the modification of its bidding documents.

[0035] In this embodiment, the verification process involves comparing the required construction period (Treq) filled in by the tendering party with the theoretical minimum physical construction period (Tmin). If Treq ≥ Tmin × 0.9, it is determined to be a reasonable construction period; if Treq < Tmin × 0.8, it is determined to be an irrational rush to complete the work.

[0036] In this embodiment, the verification results are based on the comparison between the theoretical minimum physical construction period and the construction period required by the tendering party, and are divided into two categories: reasonable construction period (no correction required) and irrational rush work (requiring mandatory additional fees for rush work measures).

[0037] In this embodiment, the subjectively updated data is a mandatory revision of the tender document, which adds a charge for expedited construction measures and amounts for irrationally rushed projects, serving as the basis for subsequent contract generation and construction execution.

[0038] In this embodiment, the parameterized content is a standardized set of logic code that has been transformed and can be used for smart contract execution, including payment triggering conditions, acceptance confirmation rules, resource allocation ratios, etc., which are written into the corresponding clauses of the electronic contract.

[0039] In this embodiment, the key parameters are the core values ​​extracted from the subjectively updated data for calculating the allocation ratio, including the total contract price, labor cost budget, material and equipment cost budget, expedited work fee amount, and time difference.

[0040] In this embodiment, the reserve ratio is a dynamic reserve pool ratio of reserve resources determined based on resource usage, which is forcibly locked in the range of 5%-10% and is specifically used for resource protection for temporary visas and claims for idle time.

[0041] In this embodiment, the actual usage ratio is the allocation ratio among the labor cost account, the material and equipment account, and the general contracting management fee account after deducting the reserve ratio. The labor cost ratio shall not be less than 25% and can only be increased.

[0042] In this embodiment, the engineering contract is a complete electronic contract with parameterized content, reserve ratio and actual usage ratio written in, which serves as the basis for subsequent construction rights confirmation and resource penetration payment.

[0043] In this embodiment, a sub-project is a component of a unit project. It is an intermediate level divided according to the construction location or profession, such as foundation and substructure engineering, main structure engineering, decoration and renovation engineering, etc. It is a transitional level between the bill of quantities and the most basic acceptable tasks.

[0044] In this embodiment, the most basic and acceptable task is the smallest work unit after the system further breaks down the sub-projects, specifically down to the floor, axis, and process, such as plastering the wall on axis A of the 3rd floor.

[0045] In this embodiment, the preset acceptance rules are a set of operation specifications bound to each most basic acceptable task based on the parameterized content in the engineering contract, including payment trigger conditions (IF-THEN logic), quality acceptance standards, three-level attribution mapping templates, etc.

[0046] In this embodiment, the acceptance process involves the team leader initiating an acceptance application by uploading on-site photos or videos via a handheld terminal after completing the most basic and acceptable tasks. The supervisor or owner's representative then signs an electronic signature along with GPS coordinates and a timestamp to confirm the work.

[0047] In this embodiment, the acceptance result is the status of the work results after being confirmed by the electronic signature of the supervisor or owner's representative. The system changes the output value corresponding to the task from "budget" to "accounts payable" and generates a hash-encrypted certificate of ownership.

[0048] In this embodiment, temporary events include temporary task orders and abnormal equipment events, and the ownership certificates include temporary event ownership certificates and abnormal event ownership certificates.

[0049] In this embodiment, the bill of quantities and parameterized content in the engineering contract are read, the sub-projects are broken down into the most basic acceptable tasks, the execution rule set is determined and accepted according to the parameterized content, and temporary task orders and abnormal equipment events are extracted based on the acceptance results. Temporary event confirmation certificates and abnormal event confirmation certificates are determined through the first and second preset operations, respectively.

[0050] In this embodiment, the work results are the completed construction tasks and their corresponding resource value recorded in the certificate of ownership, including the completed quantity of specific components (such as walls), the working hours of temporary workers, the idle time of machinery, etc., which are the basic data for penetration mapping and tiered redemption.

[0051] In this embodiment, the preset three-level penetration mapping logic is a built-in ownership mapping rule that decomposes each work result layer by layer to the engineering layer (specific components), the subcontracting layer (responsible subcontractors), and the worker layer (specific workers).

[0052] In this embodiment, the penetration mapping result is a complete attribution data formed by decomposing the work results according to the three-level penetration mapping logic, which includes three layers of mapping information: engineering layer, subcontracting layer, and worker layer.

[0053] In this embodiment, the tiered payment result is a record of the resource allocation performed according to a preset priority, including the actual amount of resources paid out at each level, the payment time, and the payment recipients, for subsequent period aggregation. Additionally, a disputed resource circuit breaker pool is set up during tiered payment. If a dispute arises between the parties for a payment, the system isolates it and freezes it in the circuit breaker pool, without halting the instant payment of other undisputed payments, thus mitigating the risk of a partial dispute blocking the overall wage payment.

[0054] In this embodiment, the completion report is the final information processing file generated based on the cumulative calculation results. It includes a summary of the work results of each sub-project, details of resource redemption at each level, and a full-cycle traceability diagram of the resource link, etc., and the generation time is shortened to the second level.

[0055] In this embodiment, the work results are extracted from the confirmation certificate, and the results are mapped to the engineering layer, subcontracting layer, and worker layer through three levels. The real-time progress is refreshed to generate resource links. Based on the resource links, an electronic entrustment agreement chain is generated and redeemed according to priority. Data packets for different time periods are collected and accumulated to generate a completion certificate upon completion.

[0056] In this embodiment, the bill of quantities is a detailed list of all construction items in the target project, including the physical totals of critical path processes such as earthwork excavation, concrete pouring, and steel structure installation tonnage. It serves as the basic data for calculating the theoretical minimum physical construction period. The climate data consists of climate impact parameters of the project location, including the number of rainy season days, winter construction efficiency reduction coefficient, and extreme temperature cycles. These are used to adjust standard construction efficiency to conform to local actual operating conditions. The resource allocation data consists of resource input assumptions in conventional construction organization design, including the number of configurable excavators, tower crane specifications and quantity, and peak labor force. These are used for resource matching in the construction period calculation.

[0057] In this embodiment, the required construction period is the number of days the project is planned to be completed, which is filled in by the tendering party on the electronic bidding platform. It is the core object for the system to verify the reasonableness of the construction period. It is compared with the theoretical minimum physical construction period to determine whether it is reasonable or rushed. The payment requirements are the constraints on fund payment in the tender documents, including payment trigger conditions, progress payment ratio, quality guarantee deposit retention rules, etc. The system converts them into IF-THEN logic code.

[0058] The working principle and beneficial effects of this disclosed embodiment are as follows: The minimum theoretical physical construction period is calculated by acquiring relevant engineering data; subjective requirement data is verified and updated to subjective update data; parameterized content, actual usage ratio, and reserve ratio are determined from the subjective update data and written into an electronic contract to generate an engineering contract; sub-projects are decomposed into the most basic acceptable tasks; the most basic acceptable tasks are accepted and immediately certified to obtain a certificate of ownership; the work results in the certificate of ownership are extracted for three-level penetration mapping; and a completion certificate is generated after tiered payment. By verifying the construction period, irrational rush work is curbed; atomic acceptance and immediate certification solve the problem of process ownership confirmation; penetration payment blocks the risk of resource misappropriation; and monthly final review and dispute resolution mechanisms prevent information processing deadlocks. This achieves a transformation in engineering information processing from delayed auditing to immediate locking and from fuzzy allocation to precise direct access.

[0059] Example 2: The method provided in this embodiment of the present disclosure obtains engineering-related data of a target project, calculates the theoretical minimum physical construction period of the target project based on the engineering-related data, obtains subjective requirement data from several bidding parties, verifies the subjective requirement data according to the minimum physical construction period, and updates the subjective requirement data according to the verification results to obtain subjectively updated data, including: Obtain engineering-related data for the target project, identify critical path quantities from the bill of quantities and resource allocation data in the engineering-related data, determine the local climate coefficient from the climate data in the engineering-related data, and calculate the theoretical minimum physical construction period based on the critical path quantities and the local climate coefficient. Obtain subjective requirement data from several bidding parties, and verify the required construction period in the subjective requirement data based on the theoretical minimum physical construction period to obtain the verification result; If the verification result is a reasonable construction period, the corresponding subjective requirement data will be directly used as the subjective update data. If the verification result indicates irrational rushing of work, the bidding party is required to add additional items for rushing work measures and update the corresponding subjective requirement data to obtain subjective updated data.

[0060] In this embodiment, the target project refers to a specific construction project that requires schedule verification and information processing management. It includes complete information such as its design drawings, bill of quantities, and geological and climatic conditions. It is the core object for the system to perform theoretical schedule calculation and bidding verification.

[0061] In this embodiment, the critical path workload refers to the workload of the core processes that directly affect the overall project duration, such as earthwork excavation, concrete pouring, and steel structure installation tonnage. The completion time of these processes determines the theoretical shortest project duration.

[0062] In this embodiment, the local climate coefficient is a climate impact correction parameter for the project location, including the number of rainy season days, the efficiency reduction coefficient of winter construction, and extreme temperature cycles, which is used to adjust the standard construction efficiency to meet the actual local operating conditions.

[0063] In this embodiment, the additional item for rush work measures is a special item forcibly added by the system for irrational rush work. The algorithm automatically calculates night shift fees, equipment rental fees, template turnover acceleration fees, etc. based on the difference in the construction period and includes them in the maximum price limit.

[0064] The working principle and beneficial effects of this disclosed embodiment are as follows: It identifies the critical path workload and local climate coefficient in engineering-related data, calculates the theoretical minimum physical construction period, obtains the subjective requirements data of the bidding party, and verifies the subjective requirements data based on the theoretical minimum physical construction period. If the verification result indicates irrational rushing of work, it forcibly adds additional rushing measures and updates the data to the subjective update data. This curbs irrational rushing of work from the source, provides construction units with quantitative rebuttal evidence, and avoids quality risks and cost surges caused by time compression.

[0065] Example 3: The method provided in this embodiment of the present disclosure extracts the parameterized content of the subjective update data, writes the parameterized content into an electronic contract, extracts key parameters from the subjective update data, determines the actual usage ratio and reserve ratio based on the key parameters, and writes the actual usage ratio and reserve ratio into the electronic contract to obtain an engineering contract, including: Extract the text information from the subjective update data, convert the ambiguous expressions in the text information into standard logic code, obtain parameterized content, and write the parameterized content into the corresponding clause position of the electronic contract; Field matching is performed on the subjective update data to determine the key parameters related to allocation in the subjective update data; Based on the key parameters, several historical projects are selected from the historical project table. Historical risk data is determined according to the temporary events corresponding to the historical projects. The difference in construction period between the historical risk data and the subjective update data is input into a preset dynamic probability model. Based on the dynamic probability model, the resource consumption of temporary events in the corresponding historical projects is calculated. The reserve ratio and the actual usage ratio are determined according to the resource consumption. The temporary events, reserve ratio, and actual usage ratio in the historical project are written into the electronic contract to obtain the project contract.

[0066] In this embodiment, the text information is natural language descriptions such as payment terms and acceptance rules contained in the subjective update data. Unstructured content such as "payment will be made after the owner deems it qualified" needs to be converted into machine-readable logic code through semantic recognition. This is the basic input for the system to realize automatic contract execution.

[0067] In this embodiment, vague expressions refer to ambiguous and unquantifiable clauses in engineering contracts, which can easily lead to disputes during execution. The system uses natural language processing technology to transform these vague clauses into explicit IF-THEN logic, eliminating ambiguity.

[0068] In this embodiment, the standard logic code is the "IF-THEN" format code that transforms the fuzzy expression, such as "IF Sub-item acceptance status = qualified AND no dispute visa amount locked THEN resource frozen X%", which can be automatically recognized by smart contracts and used to trigger payment actions.

[0069] In this embodiment, field matching involves the system automatically scanning and semantically recognizing resource allocation-related fields in the subjectively updated data to extract structured parameters such as total contract resources, labor resource budget, and expedited resource quota, forming a parameter set for subsequent calculations.

[0070] In this embodiment, allocation-related data refers to data directly associated with resource allocation, including accounting rule parameters such as the proportion of labor costs in the special account, the proportion of materials and equipment in the special account, the proportion of general contracting management fees, and the proportion of reserve resources.

[0071] In this embodiment, the historical project table is a record of all past projects stored in the system database. It includes data such as the frequency of temporary events, resource consumption, and project duration compression for each project, and is used for risk matching and reserve ratio calculation.

[0072] In this embodiment, historical projects are completed projects selected from the historical project table that are similar to the current project in terms of project type, scale, climate zone, etc., and their temporary event data serve as a reference sample for risk assessment of the current project.

[0073] In this embodiment, historical risk data is statistical information extracted from historical projects, such as the frequency of occurrence of temporary visas, idle time claims, etc., the amount of resources used in a single instance, and the total amount of resources used, which is used to predict the risks of the current project.

[0074] In this embodiment, the time difference is the difference between the theoretical minimum physical time and the time required by the tendering party, reflecting the degree of time compression. The greater the compression, the higher the probability of temporary events and the higher the resource consumption.

[0075] In this embodiment, the input of the dynamic probability model is to use historical risk data and the difference between the construction period and the project duration as input parameters to calculate the resource consumption of temporary events that may occur during the construction period of the current project. The output is the expected value of the resource consumption of temporary events calculated by the model, which serves as the core basis for determining the proportion of reserve resources and ensuring that the reserve amount covers the risks.

[0076] In this embodiment, the resource occupancy amount is the amount of resources that need to be reserved for temporary events such as temporary labor and machinery idleness that may occur during the construction period, based on a dynamic probability model, and is used to determine the reserve ratio.

[0077] The working principle and beneficial effects of this embodiment are as follows: Textual information is extracted from subjective update data, converted into parameterized content, and written into the electronic contract. Key parameters are matched to filter historical projects. Resource occupancy is calculated using a dynamic probability model based on the difference between temporary events and project duration. The reserve ratio and actual usage ratio of resources for the target project are determined and then written into the electronic contract. Vague clauses are transformed into executable logic, and the reserve ratio is scientifically set based on historical data, ensuring the source of resources for temporary events and preventing the risk of resource misappropriation.

[0078] Example 4: The method provided in this embodiment of the present disclosure decomposes the sub-project into the most basic acceptable tasks according to the engineering contract, performs acceptance of the most basic acceptable tasks according to preset acceptance rules, obtains temporary events, and performs immediate certification of the temporary events based on the acceptance results to obtain a certificate of ownership, including: Read the bill of quantities and parameterized content in the engineering contract, break down the sub-projects corresponding to the target project into the most basic acceptable tasks based on the bill of quantities, and determine the execution rule set of the most basic acceptable tasks according to the parameterized content; The most basic acceptable task is accepted based on the set of execution rules, and the acceptance result is obtained. The temporary events include temporary task orders and abnormal equipment events; Based on the acceptance results, temporary task orders and abnormal equipment events are extracted from each sub-project. The temporary event confirmation certificate of the temporary task order is determined according to the first preset operation, and the abnormal event confirmation certificate is determined according to the second preset operation. The ownership confirmation certificate includes temporary event ownership confirmation certificate and abnormal event ownership confirmation certificate.

[0079] In this embodiment, the bill of quantities is a detailed list of all construction items and their quantities specified in the engineering contract, including the physical totals of each process such as earthwork excavation, concrete pouring, and steel structure installation tonnage. It serves as the basis for the system to break down the target project into sub-projects and perform subsequent atomized decomposition.

[0080] In this embodiment, the temporary task order is an electronic instruction created by on-site management personnel in the APP for sudden needs such as sporadic labor outside the contract, temporary transportation, and repairs. It specifies the task content, the number of people required, the estimated working hours, and other information.

[0081] In this embodiment, the abnormal equipment event is an abnormal operating condition in which large equipment collects ignition status, GPS location, and load sensor data in real time through an added intelligent terminal, and the state machine determines that the equipment is abnormally idle.

[0082] In this embodiment, the first preset operation is a standardized processing procedure for temporary task orders, including identity verification, automatic capture of job unit price, confirmation of the effectiveness of the silent approval mechanism, and finally, the automatic generation of temporary event ownership certificates. This addresses the information processing blind spots of traditional models for sporadic labor outside of contracts, temporary transportation, and repairs. Task initiation: On-site management personnel create a "temporary task order" in the APP, specifying the task content, number of workers, and estimated working hours. Identity verification: Participating workers need to scan their faces or ID cards on-site. The system automatically captures the real-time unit price corresponding to the job. Key mechanism (silent approval): The system sends a pop-up notification to the owner's representative / supervisor's mobile phone. If the owner's representative does not click "reject" within the preset "silent period" (e.g., 4 hours), the system defaults to "informed and consented," automatically generating a valid certificate. Resource pre-allocation: At the end of the task, the system automatically calculates the cost and immediately pre-allocates and freezes the resource from the dynamic reserve resource pool (corresponding to the reserve ratio), marking it as belonging to a specific worker.

[0083] In this embodiment, such as Figure 2 As shown, this illustrates the linkage mechanism between on-site task management and resource redemption. (Left side) Figure 2 A generates a temporary labor task order on-site, including image data, GPS location, and verified personnel work hours information. Once completed, the task is locked on the blockchain. (Right side) Figure 2 B's repayment is distributed according to a preset ratio based on the smart contract: 30% to the workers' wages account, 40% to the material subcontractors, and 30% to the general contractor's profit account.

[0084] In this embodiment, the temporary event confirmation certificate is a hash-encrypted electronic certificate generated after the temporary task order has been processed by the first preset operation. It includes the task content, working hours, the identities of the participants, the unit price of the job, the amount of the fee and the attribution information, and cannot be tampered with.

[0085] In this embodiment, the second preset operation is a handling procedure for abnormal equipment events, including the operation procedure of state machine determining idle status, pushing idle warning to the owner's end, automatically accumulating claim fees and attaching GPS trajectory map as evidence. For claims for equipment idleness (work stoppage) caused by the owner, evidence is retained through hardware status identification: Physical layer collection: Large equipment (tower cranes, excavators, elevators) are equipped with or connected to smart terminals to collect ignition status, GPS / BeiDou location data and load sensor data in real time. State machine logic determination: State A (normal construction): Engine on + coordinate change + load change = included in normal progress payment. State B (abnormal idleness): Engine off (or only idling) + coordinate unchanged + time exceeds 24 hours + no construction plan for the day in the system = determined as "work stoppage". Automatic claim triggering: When the system determines that it has entered "State B", it pushes an "idle warning" to the owner's end. If the owner does not issue an "exit order", the system will automatically claim compensation based on the pre-set downtime rate in the contract (usually 60%-70% of the normal rate), and attach a GPS track map as proof.

[0086] In this embodiment, such as Figure 3 As shown, after the equipment arrives on site, it collects GPS and engine status in real time via an IoT terminal. If the engine is turned off and the GPS remains stationary for more than 24 hours, and the system finds no construction plan for the day, a claim for idle time is triggered and an electronic visa is generated; if the engine is not turned off or the GPS continues to change, it is determined to be normal construction or normal break.

[0087] In this embodiment, the abnormal event confirmation certificate is a hash-encrypted electronic certificate generated after the abnormal device event is processed by the second preset operation. It contains evidence information such as idle time, idle shift unit price, GPS trajectory map, and judgment timestamp.

[0088] The working principle and beneficial effects of this embodiment are as follows: The bill of quantities and parameterized content in the engineering contract are read, and the sub-projects are broken down into the most basic acceptable tasks. An execution rule set is determined and accepted based on the parameterized content. Temporary task orders and abnormal equipment events are extracted based on the acceptance results. Temporary event confirmation certificates and abnormal event confirmation certificates are determined through first and second preset operations, respectively. This transforms on-site operations into tamper-proof confirmation certificates, resolving the disconnect between process approval and payment, and avoiding the difficulty of restoring the on-site situation during post-audit.

[0089] Example 5: The method provided in this embodiment of the present disclosure extracts temporary task orders and abnormal equipment events from each sub-project, determines the temporary event confirmation certificate of the temporary task order according to a first preset operation, and determines the abnormal event confirmation certificate according to a second preset operation, including: The first preset operation is to determine the task content based on the temporary task order, verify the task personnel and work hour quota based on the task content, use the static default approval mechanism to confirm the effectiveness of the verification result, and generate a temporary event confirmation certificate based on the effectiveness confirmation result. The second preset operation is to determine the cause of the abnormal device event. If the cause is abnormal idleness, then an automatic recording and evidence locking operation is performed to generate an abnormal event ownership certificate.

[0090] In this embodiment, the task content is a specific work description clearly stated in the temporary task order, such as "clearing water accumulation on the roadbed", which includes information such as the scope of work, work requirements, and expected completion standards, and serves as the basis for subsequent verification and measurement.

[0091] In this embodiment, the task personnel are workers participating in temporary tasks. They need to complete the identity verification by scanning their faces or ID cards on-site to ensure that the personnel's identities are genuine and their qualifications meet the task requirements, thus avoiding impersonation or mismatched qualifications.

[0092] In this embodiment, the time quota is the real-time work efficiency standard corresponding to the job type, which is automatically captured, such as "30 yuan / hour for strong workers", which serves as the unit price basis for calculating the cost of temporary tasks, ensuring fair and transparent pricing.

[0093] In this embodiment, the silent default consent mechanism is that the system sends a pop-up notification to the owner's representative or supervisor's mobile phone. If the rejection is not clicked within the preset silent period (e.g., 4 hours), the system defaults to "informed and consented" and automatically generates a confirmation rule for a valid visa.

[0094] In this embodiment, the confirmation of effectiveness is a silent approval mechanism that performs the final confirmation of the verification result. If the owner representative does not refuse during the silent period, the verification result will automatically take effect and a valid visa can be generated without manual signature.

[0095] In this embodiment, the temporary event confirmation certificate is a hash-encrypted electronic certificate generated after the first preset operation processing, which includes task content, working hours, participant identity, job unit price, fee amount and ownership information.

[0096] In this embodiment, abnormal equipment events are abnormal operating conditions where large equipment (tower cranes, excavators, elevators, etc.) are identified as abnormally idle by the state machine based on real-time data collected by intelligent terminals on ignition status, GPS location, and load.

[0097] In this embodiment, the cause is determined by the state machine logic to determine the specific cause of the abnormal equipment event, including engine shutdown or only idling, coordinates remaining unchanged for a long time, and no construction plan for the day in the system, which is used to distinguish between normal construction and abnormal idleness.

[0098] In this embodiment, abnormal idle is a specific type of abnormality determined by the state machine. When the equipment simultaneously meets the conditions of engine shutdown, unchanged coordinates, time exceeding 24 hours, and no construction plan for the day in the system, it is determined to be in an abnormal idle state.

[0099] In this embodiment, automatic recording is the operation by which the system automatically records equipment events that are determined to be abnormally idle, including the collection and storage of key information such as the start time of idleness, duration, equipment location, and the status of the daily construction plan.

[0100] In this embodiment, evidence locking involves the system hash-encrypting and locking the criteria for determining abnormal idle events, including GPS trajectory maps, sensor data, state machine determination timestamps, etc., to ensure that the evidence is tamper-proof and irrefutable.

[0101] In this embodiment, the abnormal event confirmation certificate is a hash-encrypted electronic certificate generated after the second preset operation. It contains irrefutable evidence information such as idle time, idle shift unit price, GPS trajectory map, and judgment timestamp, which is used for subsequent claims.

[0102] The working principle and beneficial effects of this embodiment are as follows: the task content is determined according to the temporary task order, and after verifying the task personnel and working hours quota, the temporary event confirmation certificate is generated after the static default confirmation mechanism is activated; the cause of the abnormal equipment event is determined, and when the abnormal idleness occurs, the abnormal event confirmation certificate is automatically recorded and the evidence is locked to generate the abnormal event confirmation certificate, which instantly transforms sporadic labor and mechanical idleness into tamper-proof confirmation certificates and avoids the loss of paper documents.

[0103] Example 6: The method provided in this embodiment of the present disclosure extracts the work results from the confirmation certificate, maps the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, performs tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generates a completion certificate for the target project based on the tiered redemption results, including: Extract the work results from the confirmation certificate, and use a preset three-level penetration mapping logic to map the work results to the engineering layer, subcontracting layer and worker layer to obtain the penetration mapping result; Write the penetration mapping results into the real-time progress, refresh the work results and payable resources between each level, and generate resource links based on the work results and payable resources; An electronic entrustment protocol chain is generated based on the resource link. According to the electronic entrustment protocol chain and the resource link, the redemption is carried out in a tiered manner according to the preset priority and the redemption requirements in the subjective requirement data, and the tiered redemption result is obtained. The tiered redemption results are collected according to a preset time period to obtain the time period data packet for the preset time period; The completion point is determined based on the target project. All time period data packets are identified based on the completion point, and an accumulation operation is performed. The completion report of the target project is generated based on the accumulation operation result.

[0104] In this embodiment, the engineering layer is the first level of the three-level mapping, which clarifies the specific engineering components or parts corresponding to the work results, such as plastering the wall on the A axis of the 3rd floor.

[0105] In this embodiment, the subcontracting layer is the second level of the three-level mapping, which clarifies the responsible subcontractor corresponding to the work result, such as subcontractor A.

[0106] In this embodiment, the worker layer is the third level of the three-level mapping, which clarifies the specific workers and their due resources included in the work results, such as workers Zhang San and Li Si receiving a total of 300 yuan.

[0107] In this embodiment, the resource link is a complete attribution chain from engineering components to specific workers, generated based on the penetration mapping results, which includes the relationship between the amount of work completed and the resources to be paid between each level.

[0108] In this embodiment, the electronic entrustment agreement chain is a set of three-party electronic agreements generated based on the resource link, including the entrustment payment instruction issued by the general contractor to the owner and the payment confirmation letter issued by the subcontractor to the general contractor.

[0109] In this embodiment, the resources to be paid are the amount of resources that each level should receive based on the work results and resource links, including workers' wages, subcontractors' payments, general contractors' management fees and profits, etc.

[0110] In this embodiment, the preset priority is the execution order of tiered redemption. The first priority ensures the redemption of worker resources, the second priority redeems materials, equipment and idle resources, and the third priority aggregates the remaining resources into a general contract.

[0111] In this embodiment, the preset time period is the resource collection cycle set by the system, usually one month, which is used to package the tiered redemption results into time period data packages according to the time dimension, so as to facilitate monthly final review and completion summary.

[0112] In this embodiment, the time-period data packet is a data set formed by hashing and locking data such as the tiered redemption results, penetration mapping results, and electronic entrustment protocol chain within a preset time period, and is marked as the final state. Re-verification is prohibited during the completion stage.

[0113] In this embodiment, the completion point is the moment when the last construction node of the target project is completed. The system uses this as the trigger condition to identify all time period data packets and start generating the completion report.

[0114] In this embodiment, the cumulative calculation result is a complete data set formed by the system after summarizing the work results, resource payment amount, penetration mapping relationship, etc. in the data packets of all time periods. It is the numerical basis of the completion report.

[0115] The working principle and beneficial effects of this embodiment are as follows: the work results are extracted from the confirmation certificate, and the results are mapped to the engineering layer, subcontracting layer and worker layer through three levels of penetration mapping. The real-time progress is refreshed to generate resource links. Based on the resource links, an electronic entrustment agreement chain is generated and payment is made in priority. Data packets are collected for different time periods and accumulated to generate a completion certificate upon completion. This realizes real-time confirmation of rights during the construction process, penetration payment of resources and monthly final review and locking, completely solving the problem of information processing lag. The time for generating the completion certificate is shortened from several months to seconds.

[0116] To achieve the above embodiments, this disclosure also proposes an engineering end-to-end penetrating information processing device.

[0117] Figure 4 This is a schematic diagram of the structure of the engineering end-to-end penetrating information processing device provided in an embodiment of this disclosure. This device 200 can be implemented by software and / or hardware, and is generally integrated into an electronic device. For example... Figure 4 As shown, the device 200 includes: an acquisition module 201, an extraction module 202, an acceptance module 203, and a generation module 204, wherein, The acquisition module 201 is used to acquire engineering-related data of the target project, calculate the theoretical minimum physical construction period of the target project based on the engineering-related data, acquire subjective requirement data of several bidding parties, verify the subjective requirement data according to the minimum physical construction period, and update the subjective requirement data according to the verification results to obtain subjective updated data. The engineering-related data includes bill of quantities, climate data, and resource allocation data. Extraction module 202 is used to extract the parameterized content of the subjective update data, write the parameterized content into the electronic contract, extract key parameters from the subjective update data, determine the actual usage ratio and reserve ratio based on the key parameters, and write the actual usage ratio and reserve ratio into the electronic contract to obtain the engineering contract. The acceptance module 203 is used to decompose the sub-project into the most basic acceptable tasks according to the engineering contract, to accept the most basic acceptable tasks according to the preset acceptance rules, to obtain temporary events, to immediately sign the temporary events based on the acceptance results, and to obtain the confirmation certificate. The generation module 204 is used to extract the work results from the confirmation certificate, map the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, perform tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generate the completion certificate of the target project based on the tiered redemption results.

[0118] The method provided in this disclosure, wherein the acquisition module 201 is used for: Obtain engineering-related data for the target project, identify critical path quantities from the bill of quantities and resource allocation data in the engineering-related data, determine the local climate coefficient from the climate data in the engineering-related data, and calculate the theoretical minimum physical construction period based on the critical path quantities and the local climate coefficient. Obtain subjective requirement data from several bidding parties, and verify the required construction period in the subjective requirement data based on the theoretical minimum physical construction period to obtain the verification result; If the verification result is a reasonable construction period, the corresponding subjective requirement data will be directly used as the subjective update data. If the verification result indicates irrational rushing of work, the bidding party is required to add additional items for rushing work measures and update the corresponding subjective requirement data to obtain subjective updated data.

[0119] The extraction module 202, provided in this embodiment of the method, is used for: Extract the text information from the subjective update data, convert the ambiguous expressions in the text information into standard logic code, obtain parameterized content, and write the parameterized content into the corresponding clause position of the electronic contract; Field matching is performed on the subjective update data to determine the key parameters related to allocation in the subjective update data; Based on the key parameters, several historical projects are selected from the historical project table. Historical risk data is determined according to the temporary events corresponding to the historical projects. The difference in construction period between the historical risk data and the subjective update data is input into a preset dynamic probability model. Based on the dynamic probability model, the resource consumption of temporary events in the corresponding historical projects is calculated. The reserve ratio and the actual usage ratio are determined according to the resource consumption. The temporary events, reserve ratio, and actual usage ratio in the historical project are written into the electronic contract to obtain the project contract.

[0120] The method provided in this disclosure, wherein the acceptance module 203 is used for: Read the bill of quantities and parameterized content in the engineering contract, break down the sub-projects corresponding to the target project into the most basic acceptable tasks based on the bill of quantities, and determine the execution rule set of the most basic acceptable tasks according to the parameterized content; The most basic acceptable task is accepted based on the set of execution rules, and the acceptance result is obtained. The temporary events include temporary task orders and abnormal equipment events; Based on the acceptance results, temporary task orders and abnormal equipment events are extracted from each sub-project. The temporary event confirmation certificate of the temporary task order is determined according to the first preset operation, and the abnormal event confirmation certificate is determined according to the second preset operation. The ownership confirmation certificate includes temporary event ownership confirmation certificate and abnormal event ownership confirmation certificate.

[0121] The method provided in this disclosure, wherein the acceptance module 203 is used for: The first preset operation is to determine the task content based on the temporary task order, verify the task personnel and work hour quota based on the task content, use the static default approval mechanism to confirm the effectiveness of the verification result, and generate a temporary event confirmation certificate based on the effectiveness confirmation result. The second preset operation is to determine the cause of the abnormal device event. If the cause is abnormal idleness, then an automatic recording and evidence locking operation is performed to generate an abnormal event ownership certificate.

[0122] The method provided in this disclosure, wherein the generation module 204 is used for: Extract the work results from the confirmation certificate, and use a preset three-level penetration mapping logic to map the work results to the engineering layer, subcontracting layer and worker layer to obtain the penetration mapping result; Write the penetration mapping results into the real-time progress, refresh the work results and payable resources between each level, and generate resource links based on the work results and payable resources; An electronic entrustment protocol chain is generated based on the resource link. According to the electronic entrustment protocol chain and the resource link, the redemption is carried out in a tiered manner according to the preset priority and the redemption requirements in the subjective requirement data, and the tiered redemption result is obtained. The tiered redemption results are collected according to a preset time period to obtain the time period data packet for the preset time period; The completion point is determined based on the target project. All time period data packets are identified based on the completion point, and an accumulation operation is performed. The completion report of the target project is generated based on the accumulation operation result.

[0123] The engineering end-to-end penetrating information processing device provided in this disclosure can execute the engineering end-to-end penetrating information processing method provided in any embodiment of this disclosure, and has the corresponding functional modules and beneficial effects of the method execution.

[0124] To implement the above embodiments, this disclosure also proposes a computer program product, including a computer program / instruction, which, when executed by a processor, implements the engineering end-to-end penetrating information processing method in the above embodiments.

[0125] Figure 5 This is a schematic diagram of the structure of an electronic device provided in an embodiment of this disclosure.

[0126] The following is a detailed reference. Figure 5 The diagram illustrates a structural schematic suitable for implementing the electronic device 300 in the embodiments of this disclosure. The electronic device 300 in the embodiments of this disclosure may include, but is not limited to, mobile terminals such as mobile phones, laptops, digital broadcast receivers, PDAs (personal digital assistants), PADs (tablet computers), PMPs (portable multimedia players), in-vehicle terminals (e.g., in-vehicle navigation terminals), and fixed terminals such as digital TVs and desktop computers. Figure 5 The electronic device shown is merely an example and should not be construed as limiting the functionality and scope of the embodiments disclosed herein.

[0127] like Figure 5 As shown, the electronic device 300 may include a processor (e.g., a central processing unit, a graphics processing unit, etc.) 301, which can perform various appropriate actions and processes according to a program stored in a read-only memory (ROM) 302 or a program loaded from a memory 308 into a random access memory (RAM) 303. The RAM 303 also stores various programs and data required for the operation of the electronic device 300. The processor 301, ROM 302, and RAM 303 are interconnected via a bus 304. An input / output (I / O) interface 305 is also connected to the bus 304.

[0128] Typically, the following devices can be connected to I / O interface 305: input devices 306 including, for example, touchscreens, touchpads, keyboards, mice, cameras, microphones, accelerometers, gyroscopes, etc.; output devices 307 including, for example, liquid crystal displays (LCDs), speakers, vibrators, etc.; memory devices 308 including, for example, magnetic tapes, hard disks, etc.; and communication devices 309. Communication device 309 allows electronic device 300 to communicate wirelessly or wiredly with other devices to exchange data. Although Figure 5 An electronic device 300 with various devices is shown; however, it should be understood that it is not required to implement or possess all of the devices shown. More or fewer devices may be implemented or possessed alternatively.

[0129] In particular, according to embodiments of this disclosure, the processes described above with reference to the flowcharts can be implemented as computer software programs. For example, embodiments of this disclosure include a computer program product comprising a computer program carried on a non-transitory computer-readable medium, the computer program containing program code for performing the methods shown in the flowcharts. In such embodiments, the computer program can be downloaded and installed from a network via communication device 309, or installed from memory 308, or installed from ROM 302. When the computer program is executed by processor 301, it performs the functions defined in the engineering end-to-end penetration information processing method of embodiments of this disclosure.

[0130] It should be noted that the computer-readable medium described in this disclosure can be a computer-readable signal medium or a computer-readable storage medium, or any combination thereof. A computer-readable storage medium can be, for example,—but not limited to—an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any combination thereof. More specific examples of a computer-readable storage medium may include, but are not limited to: an electrical connection having one or more wires, a portable computer disk, a hard disk, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage device, magnetic storage device, or any suitable combination thereof. In this disclosure, a computer-readable storage medium can be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, apparatus, or device. In this disclosure, a computer-readable signal medium can include a data signal propagated in baseband or as part of a carrier wave, carrying computer-readable program code. Such propagated data signals can take various forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination thereof. A computer-readable signal medium can be any computer-readable medium other than a computer-readable storage medium, which can send, propagate, or transmit a program for use by or in connection with an instruction execution system, apparatus, or device. The program code contained on the computer-readable medium can be transmitted using any suitable medium, including but not limited to: wires, optical fibers, RF (radio frequency), etc., or any suitable combination thereof.

[0131] In some implementations, clients and servers can communicate using any currently known or future-developed network protocol such as HTTP (Hypertext Transfer Protocol) and can interconnect with digital data communication (e.g., communication networks) of any form or medium. Examples of communication networks include local area networks (“LANs”), wide area networks (“WANs”), the Internet (e.g., the Internet of Things), and peer-to-peer networks (e.g., ad hoc peer-to-peer networks), as well as any currently known or future-developed networks.

[0132] The aforementioned computer-readable medium may be included in the aforementioned electronic device; or it may exist independently and not assembled into the electronic device.

[0133] The aforementioned computer-readable medium carries one or more programs, which, when executed by the electronic device, cause the electronic device to perform the aforementioned end-to-end information processing method.

[0134] Electronic devices can be programmed with computer program code in one or more programming languages ​​or combinations thereof to perform the operations of this disclosure. These programming languages ​​include, but are not limited to, object-oriented programming languages ​​such as Java, Smalltalk, and C++, as well as conventional procedural programming languages ​​such as "C" or similar languages. The program code can be executed entirely on the user's computer, partially on the user's computer, as a standalone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In cases involving remote computers, the remote computer can be connected to the user's computer via any type of network—including a local area network (LAN) or a wide area network (WAN)—or can be connected to an external computer (e.g., via the Internet using an Internet service provider).

[0135] The flowcharts and block diagrams in the accompanying drawings illustrate the architecture, functionality, and operation of possible implementations of systems, methods, and computer program products according to various embodiments of this disclosure. In this regard, each block in a flowchart or block diagram may represent a module, segment, or portion of code containing one or more executable instructions for implementing a specified logical function. It should also be noted that in some alternative implementations, the functions indicated in the blocks may occur in a different order than those indicated in the drawings. For example, two consecutively indicated blocks may actually be executed substantially in parallel, and they may sometimes be executed in reverse order, depending on the functions involved. It should also be noted that each block in the block diagrams and / or flowcharts, and combinations of blocks in the block diagrams and / or flowcharts, can be implemented using a dedicated hardware-based system that performs the specified function or operation, or using a combination of dedicated hardware and computer instructions.

[0136] The units described in the embodiments of this disclosure can be implemented in software or hardware. The names of the units are not, in some cases, intended to limit the specific unit.

[0137] The functions described above in this document can be performed at least in part by one or more hardware logic components. For example, exemplary types of hardware logic components that can be used, without limitation, include: field-programmable gate arrays (FPGAs), application-specific integrated circuits (ASICs), application-specific standard products (ASSPs), system-on-a-chip (SoCs), complex programmable logic devices (CPLDs), and so on.

[0138] In the context of this disclosure, a machine-readable medium can be a tangible medium that may contain or store a program for use by or in conjunction with an instruction execution system, apparatus, or device. A machine-readable medium can be a machine-readable signal medium or a machine-readable storage medium. A machine-readable medium can be, but is not limited to, electronic, magnetic, optical, electromagnetic, infrared, or semiconductor systems, apparatus, or devices, or any suitable combination of the foregoing. More specific examples of machine-readable storage media include electrical connections based on one or more wires, portable computer disks, hard disks, random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM or flash memory), optical fiber, portable compact disk read-only memory (CD-ROM), optical storage devices, magnetic storage devices, or any suitable combination of the foregoing.

[0139] The above description is merely a preferred embodiment of this disclosure and an explanation of the technical principles employed. Those skilled in the art should understand that the scope of this disclosure is not limited to technical solutions formed by specific combinations of the above-described technical features, but should also cover other technical solutions formed by arbitrary combinations of the above-described technical features or their equivalents without departing from the above-described concept. For example, technical solutions formed by substituting the above features with (but not limited to) technical features disclosed in this disclosure that have similar functions.

[0140] Furthermore, while the operations are described in a specific order, this should not be construed as requiring these operations to be performed in the specific order shown or in a sequential order. In certain environments, multitasking and parallel processing may be advantageous. Similarly, while several specific implementation details are included in the above discussion, these should not be construed as limiting the scope of this disclosure. Certain features described in the context of individual embodiments may also be implemented in combination in a single embodiment. Conversely, various features described in the context of a single embodiment may also be implemented individually or in any suitable sub-combination in multiple embodiments.

[0141] Although the subject matter has been described using language specific to structural features and / or methodological logic, it should be understood that the subject matter defined in the appended claims is not necessarily limited to the specific features or actions described above. Rather, the specific features and actions described above are merely illustrative examples of implementing the claims.

Claims

1. A method for end-to-end information processing in engineering, characterized in that, include: Obtain engineering-related data for the target project, calculate the theoretical minimum physical construction period of the target project based on the engineering-related data, obtain subjective requirement data from several bidding parties, verify the subjective requirement data according to the minimum physical construction period, and update the subjective requirement data according to the verification results to obtain subjective updated data. The engineering-related data includes bill of quantities, climate data, and resource allocation data, and the subjective requirement data includes the required construction period and payment requirements. Extract the parameterized content of the subjective update data, write the parameterized content into the electronic contract, extract the key parameters from the subjective update data, determine the actual usage ratio and reserve ratio based on the key parameters, and write the actual usage ratio and reserve ratio into the electronic contract to obtain the engineering contract; According to the engineering contract, the sub-projects are broken down into the most basic and acceptable tasks. The most basic and acceptable tasks are inspected according to the preset inspection rules, temporary events are obtained, and the temporary events are immediately certified based on the inspection results to obtain the certificate of ownership. Extract the work results from the confirmation certificate, map the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, perform tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generate the completion certificate of the target project based on the tiered redemption results.

2. The method according to claim 1, characterized in that, Obtain engineering-related data for the target project; calculate the theoretical minimum physical construction period of the target project based on the engineering-related data; obtain subjective requirement data from several bidding parties; verify the subjective requirement data according to the minimum physical construction period; and update the subjective requirement data according to the verification results to obtain subjectively updated data, including: Obtain engineering-related data for the target project, identify critical path quantities from the bill of quantities and resource allocation data in the engineering-related data, determine the local climate coefficient from the climate data in the engineering-related data, and calculate the theoretical minimum physical construction period based on the critical path quantities and the local climate coefficient. Obtain subjective requirement data from several bidding parties, and verify the required construction period in the subjective requirement data based on the theoretical minimum physical construction period to obtain the verification result; If the verification result is a reasonable construction period, the corresponding subjective requirement data will be directly used as the subjective update data. If the verification result indicates irrational rushing of work, the bidding party is required to add additional items for rushing work measures and update the corresponding subjective requirement data to obtain subjective updated data.

3. The method according to claim 1, characterized in that, Extract the parameterized content of the subjective update data, write the parameterized content into the electronic contract, extract the key parameters from the subjective update data, determine the actual usage ratio and reserve ratio based on the key parameters, and write the actual usage ratio and reserve ratio into the electronic contract to obtain the engineering contract, including: Extract the text information from the subjective update data, convert the ambiguous expressions in the text information into standard logic code, obtain parameterized content, and write the parameterized content into the corresponding clause position of the electronic contract; Field matching is performed on the subjective update data to determine the key parameters related to allocation in the subjective update data; Based on the key parameters, several historical projects are selected from the historical project table. Historical risk data is determined according to the temporary events corresponding to the historical projects. The difference in construction period between the historical risk data and the subjective update data is input into a preset dynamic probability model. Based on the dynamic probability model, the resource consumption of temporary events in the corresponding historical projects is calculated. The reserve ratio and the actual usage ratio are determined according to the resource consumption. The temporary events, reserve ratio, and actual usage ratio in the historical project are written into the electronic contract to obtain the project contract.

4. The method according to claim 1, characterized in that, According to the engineering contract, the sub-projects are broken down into the most basic acceptable tasks. These tasks are then inspected according to pre-defined acceptance rules to obtain temporary events. Based on the inspection results, these temporary events are immediately certified to obtain ownership certificates, including: Read the bill of quantities and parameterized content in the engineering contract, break down the sub-projects corresponding to the target project into the most basic acceptable tasks based on the bill of quantities, and determine the execution rule set of the most basic acceptable tasks according to the parameterized content; The most basic acceptable task is accepted based on the set of execution rules, and the acceptance result is obtained. The temporary events include temporary task orders and abnormal equipment events; Based on the acceptance results, temporary task orders and abnormal equipment events are extracted from each sub-project. The temporary event confirmation certificate of the temporary task order is determined according to the first preset operation, and the abnormal event confirmation certificate is determined according to the second preset operation. The ownership confirmation certificate includes temporary event ownership confirmation certificate and abnormal event ownership confirmation certificate.

5. The method according to claim 4, characterized in that, Temporary task orders and abnormal equipment events are extracted from each sub-project. A temporary event authorization certificate for the temporary task order is determined according to a first preset operation, and an abnormal event authorization certificate is determined according to a second preset operation, including: The first preset operation is to determine the task content based on the temporary task order, verify the task personnel and work hour quota based on the task content, use the static default approval mechanism to confirm the effectiveness of the verification result, and generate a temporary event confirmation certificate based on the effectiveness confirmation result. The second preset operation is to determine the cause of the abnormal device event. If the cause is abnormal idleness, then an automatic recording and evidence locking operation is performed to generate an abnormal event ownership certificate.

6. The method according to claim 1, characterized in that, Extract the work results from the confirmation certificate, map the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, perform tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generate the completion certificate of the target project based on the tiered redemption results, including: Extract the work results from the confirmation certificate, and use a preset three-level penetration mapping logic to map the work results to the engineering layer, subcontracting layer and worker layer to obtain the penetration mapping result; Write the penetration mapping results into the real-time progress, refresh the work results and payable resources between each level, and generate resource links based on the work results and payable resources; An electronic entrustment protocol chain is generated based on the resource link. According to the electronic entrustment protocol chain and the resource link, the redemption is carried out in a tiered manner according to the preset priority and the redemption requirements in the subjective requirement data, and the tiered redemption result is obtained. The tiered redemption results are collected according to a preset time period to obtain the time period data packet for the preset time period; The completion point is determined based on the target project. All time period data packets are identified based on the completion point, and an accumulation operation is performed. The completion report of the target project is generated based on the accumulation operation result.

7. A comprehensive, end-to-end information processing device for engineering projects, the device comprising: The acquisition module is used to acquire engineering-related data of the target project, calculate the theoretical minimum physical construction period of the target project based on the engineering-related data, acquire subjective requirement data of several bidding parties, verify the subjective requirement data according to the minimum physical construction period, and update the subjective requirement data according to the verification results to obtain subjective updated data. The engineering-related data includes bill of quantities, climate data, and resource allocation data. The extraction module is used to extract the parameterized content of the subjective update data, write the parameterized content into the electronic contract, extract the key parameters in the subjective update data, determine the actual usage ratio and the reserve ratio based on the key parameters, and write the actual usage ratio and the reserve ratio into the electronic contract to obtain the engineering contract. The acceptance module is used to decompose the sub-project into the most basic acceptable tasks according to the engineering contract, to accept the most basic acceptable tasks according to the preset acceptance rules, to obtain temporary events, to immediately sign the temporary events based on the acceptance results, and to obtain the confirmation certificate. The generation module is used to extract the work results from the confirmation certificate, map the work results using a preset three-level penetration mapping logic to obtain penetration mapping results, perform tiered redemption based on the penetration mapping results and the redemption requirements in the subjective requirement data, and generate the completion certificate of the target project based on the tiered redemption results.

8. An electronic device, characterized in that, include: Memory; processor; as well as Computer programs; The computer program is stored in the memory and configured to be executed by the processor to implement the steps of the method as described in any one of claims 1-6.

9. A computer-readable storage medium, characterized in that, It stores a computer program / instruction thereon, which, when executed by a processor, implements the steps of the method described in any one of claims 1-6.

10. A computer program product comprising a computer program / instructions, characterized in that, When the computer program / instructions are executed by the processor, they implement the steps of the method according to any one of claims 1-6.