A method and system for supervising urban construction solid resources

By implementing solid resource supervision methods and systems in urban construction projects, the negative impact of long-term storage of construction waste on the urban environment is solved, and the full supervision of solid resource utilization and effective resource utilization are achieved.

CN119027056BActive Publication Date: 2025-06-13GUANGDONG CTV INFORMATION TECH CO LTD
View PDF 2 Cites 0 Cited by

Patent Information

Application Number
CN202411138032.8
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-08-19
Publication Date
2025-06-13
Estimated Expiration
2044-08-19

AI Technical Summary

Technical Problem

The long-term storage of construction waste has a serious impact on urban environmental sanitation, land quality and air quality, and there is a lack of an effective regulatory mechanism.

Method used

A method and system for supervision of solid resources in urban buildings is adopted to obtain project process nodes and project schedules to generate solid resource supervision warning time and supervision nodes to ensure effective supervision of specific supervision projects at different stages, and calculate the legality of project execution and the total amount of solid resources based on project information, allocate service resources and generate supervision paths.

Benefits of technology

The full supervision of the utilization of solid resources for construction projects has been achieved, ensuring the effective utilization of resources and the targeted supervision, avoiding resource waste and environmental pollution, and improving urban environmental sanitation and land quality.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN119027056B_ABST
    Figure CN119027056B_ABST
Patent Text Reader

Abstract

An embodiment of the present invention discloses a method and system for supervising urban construction solid resources. By obtaining project process nodes and a project schedule, it generates solid resource supervision warning times and supervision nodes, and generates project information collection times. It monitors the project progress at preset time intervals to confirm whether to start the supervision process, ensuring effective supervision of specific supervision projects at different stages. When the project information collection time is met, it collects project information corresponding to the project process nodes, confirms the legality of the project information, helps to accurately grasp the handling situation of solid resources, guarantees the reasonable handling of solid resources, ensures the effective utilization of service resources, generates a supervision path corresponding to the current project process nodes, provides clear guidance for subsequent supervision work, ensures the timeliness and pertinence of supervision, and by allocating service resources and generating supervision paths according to the actual situation of the project, ensures the effective utilization of resources and the pertinence of supervision.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] The present invention relates to the technical field of urban resource processing, and particularly relates to a method and system for supervising urban construction solid resources. Background Art

[0002] Construction waste is solid waste generated during the construction, reconstruction, expansion or demolition of buildings. According to the different sources of construction waste, it can be divided into construction construction waste and demolition construction waste. As the name implies, construction construction waste is the solid waste generated during new construction, reconstruction or expansion projects, while demolition construction waste is the construction waste generated during the demolition of buildings. Construction waste has a wide range of erosive effects on our living environment. If construction waste is left unattended for a long time, it will have a bad impact on urban environmental sanitation, living conditions, land quality assessment, etc. First of all, after a large amount of land is piled up with construction waste, the quality of the soil will be reduced, and the productivity of the soil will be reduced; construction waste is piled up in the air, affecting air quality, and some dust particles will be suspended in the air, which is harmful to human health; during the stacking process of construction waste, long-term accumulation is that the harmful substances in construction waste seep into the underground water area, polluting the water environment; if construction waste is piled up in the city, it is not conducive to the urban environment and aesthetics; the stacking of construction waste may have certain safety hazards and some accidents may occur at any time. Therefore, it is necessary to clean up urban construction waste in time and establish a good supervision mechanism to ensure urban life. Summary of the Invention

[0003] In view of the above defects, embodiments of the present invention disclose a method and system for supervising urban construction solid resources, which can effectively supervise the whole process of solid resources.

[0004] A first aspect of an embodiment of the present invention discloses a method for supervising urban construction solid resources, including:

[0005] Obtaining project process nodes and a project schedule, generating solid resource supervision warning times and supervision nodes, and generating project information collection times according to the project process nodes;

[0006] When the solid resource supervision warning time is met, the project progress is monitored at preset time intervals to confirm whether to start the supervision process, and the supervision nodes include different supervision times and corresponding supervision projects;

[0007] In response to the supervision process start instruction, when the project information collection time is met, the project information corresponding to the project process node is collected, the project information includes project personnel and project execution paths, and the project information is confirmed in the first time and the project execution legality and the total amount of solid resources are calculated according to the project information;

[0008] When the legality exceeds the set threshold, allocate the corresponding number of service resources according to the total amount of solid resources, and generate a supervision path corresponding to the process node of this project.

[0009] When reaching the supervision time corresponding to any supervision node, supervise the current project process node according to the supervision path.

[0010] As an alternative implementation, in the first aspect of the embodiments of the present invention, generating the supervision warning time and supervision nodes of solid resources includes:

[0011] Collect the progress duration of the historical same project process nodes, and generate the progress duration range of this project process node.

[0012] Calculate the supervision warning time of solid resources according to the progress duration range and the preset calculation coefficient.

[0013] Obtain the corresponding project information according to the project process node, and generate supervision nodes for each execution node in the project information.

[0014] As an alternative implementation, in the first aspect of the embodiments of the present invention, confirming the project information at the first time includes:

[0015] Obtain the minimum professional level of the project personnel corresponding to the project process node, and generate at least one matching service path; the service path is used to indicate the execution matters and execution time of the project personnel.

[0016] Compare whether the professional level of the project personnel exceeds the minimum professional level of the project personnel.

[0017] As an alternative implementation, in the first aspect of the embodiments of the present invention, calculating the project execution legality according to the project information includes:

[0018] Obtain the professional level and the number of operations of the project personnel in the project information, and screen the project personnel whose professional level meets the minimum professional level of the project personnel and the number of operations meets the preset standard as the comparison project personnel.

[0019] Calculate the proportion of the comparison project personnel among all the project personnel in the project information, and obtain the execution path in the project information, and calculate the matching degree between the execution path and the service path.

[0020] Calculate the project execution legality according to the proportion and the matching degree.

[0021] As an alternative implementation, in the first aspect of the embodiments of the present invention, allocating the corresponding number of service resources according to the total amount of solid resources includes:

[0022] A relationship table between the preset total amount of solid resources and the number of divisions, and dividing the total amount of fixed resources into several segments of solid resources corresponding to the number of divisions according to the relationship table;

[0023] Calculate the average professional level of all project personnel, and evenly distribute the total number of project personnel according to the number of divisions, so that the number of project personnel corresponding to each segment of solid resources is the same, and the difference between the average professional levels of the project personnel corresponding to each segment of fixed resources is less than the set threshold;

[0024] When the project process node includes a transportation node, allocate a corresponding number of transportation tools according to the total amount of fixed resources and the single-load capacity of the transportation tool.

[0025] As an alternative implementation manner, in the first aspect of the embodiments of the present invention, generating a supervision path corresponding to the current project process node includes:

[0026] Obtain one or more execution projects corresponding to the current project process node, and obtain the execution tools and execution order corresponding to the execution projects;

[0027] Allocate to the execution tools corresponding to the execution projects, and generate a supervision path according to the execution order.

[0028] As an alternative implementation manner, in the first aspect of the embodiments of the present invention, it further includes:

[0029] Classify the solid resources, and collect the project process nodes, project schedules, and project information corresponding to each type of solid resources;

[0030] Generate supervision reference information for each type of solid resources.

[0031] The second aspect of the embodiments of the present invention discloses an urban construction solid resource supervision system, including:

[0032] An information acquisition module: used to acquire project process nodes and project schedules, generate solid resource supervision warning times and supervision nodes, and generate project information collection times according to the project process nodes;

[0033] A start confirmation module: used to monitor the project progress at preset time intervals to confirm whether to start the supervision process when the solid resource supervision warning time is met, and the supervision nodes include different supervision times and corresponding supervision projects;

[0034] An information confirmation module: used to collect project information corresponding to the project process nodes when the project information collection time is met in response to a supervision process start instruction, where the project information includes project personnel and project execution paths, and confirm the project information for the first time and calculate the project execution legality and the total amount of solid resources according to the project information;

[0035] Process Allocation Module: When the legality exceeds a set threshold, it is used to allocate corresponding amounts of service resources according to the total amount of solid resources, and generate a supervision path corresponding to the process nodes of the current project;

[0036] Node Supervision Module: When it reaches the supervision time corresponding to any supervision node, it is used to supervise the current project process node according to the supervision path.

[0037] As an optional implementation manner, in the second aspect of the embodiments of the present invention, generating the solid resource supervision warning time and supervision nodes includes:

[0038] Collect the progress durations of the historical same project process nodes, and generate the progress duration range of this project process node;

[0039] Calculate the solid resource supervision warning time according to the progress duration range and a preset calculation coefficient;

[0040] Obtain the corresponding project information according to the project process node, and generate supervision nodes for each execution node in the project information.

[0041] As an optional implementation manner, in the second aspect of the embodiments of the present invention, confirming the project information at the first time includes:

[0042] Obtain the minimum professional level of the project personnel corresponding to the project process node, and generate at least one matching service path; the service path is used to indicate the execution matters and execution time of the project personnel;

[0043] Compare whether the professional level of the project personnel exceeds the minimum professional level of the project personnel.

[0044] As an optional implementation manner, in the second aspect of the embodiments of the present invention, calculating the project execution legality according to the project information includes:

[0045] Obtain the professional levels and the number of operations of the project personnel in the project information, and screen out the project personnel whose professional levels meet the minimum professional level of the project personnel and the number of operations meets the preset standard as the comparison project personnel;

[0046] Calculate the proportion of the comparison project personnel among all the project personnel in the project information, and obtain the execution path in the project information, and calculate the matching degree between the execution path and the service path;

[0047] Calculate the project execution legality according to the proportion and the matching degree.

[0048] As an optional implementation manner, in the second aspect of the embodiments of the present invention, allocating corresponding amounts of service resources according to the total amount of solid resources includes:

[0049] A relationship table between the preset total amount of solid resources and the number of divisions, and dividing the total amount of fixed resources into several segments of solid resources corresponding to the number of divisions according to the relationship table;

[0050] Calculate the average professional level of all project personnel, and evenly distribute the total number of project personnel according to the number of divisions, so that the number of project personnel corresponding to each segment of solid resources is the same, and the difference between the average professional levels of the project personnel corresponding to each segment of fixed resources is less than the set threshold;

[0051] When the project process node includes a transportation node, allocate a corresponding number of transportation tools according to the total amount of fixed resources and the single-load capacity of the transportation tool.

[0052] As an alternative implementation manner, in the second aspect of the embodiments of the present invention, generating a supervision path corresponding to the current project process node includes:

[0053] Obtain one or more execution projects corresponding to the current project process node, and obtain the execution tools and execution order corresponding to the execution projects;

[0054] Allocate to the execution tools corresponding to the execution projects, and generate a supervision path according to the execution order.

[0055] As an alternative implementation manner, in the second aspect of the embodiments of the present invention, it further includes:

[0056] Classify the solid resources, and collect the project process nodes, project schedules, and project information corresponding to each type of solid resources;

[0057] Generate supervision reference information for each type of solid resources.

[0058] The third aspect of the embodiments of the present invention discloses an electronic device, including: a memory storing executable program code; a processor coupled to the memory; the processor calls the executable program code stored in the memory for executing the urban construction solid resource supervision method disclosed in the first aspect of the embodiments of the present invention.

[0059] The fourth aspect of the embodiments of the present invention discloses a computer-readable storage medium, which stores a computer program, wherein the computer program enables a computer to execute the urban construction solid resource supervision method disclosed in the first aspect of the embodiments of the present invention.

[0060] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:

[0061] In the embodiments of the present invention, the solid resource supervision warning time and supervision nodes are generated by obtaining project process nodes and a project schedule, and the project information collection time is generated according to the project process nodes. When the solid resource supervision warning time is met, the project progress is monitored at preset time intervals to confirm whether to start the supervision process, ensuring that specific supervision projects can be effectively supervised at different stages. When the project information collection time is met, the project information corresponding to the project process nodes is collected, and the legality of the project information is confirmed, which helps to accurately grasp the handling situation of solid resources and ensure the reasonable handling of solid resources. If the legality of the project exceeds the set threshold, the corresponding number of service resources is allocated according to the total amount of solid resources, which ensures the effective utilization of service resources and avoids waste of resources. At the same time, the system also generates a supervision path corresponding to the current project process nodes according to the actual situation of the project, providing clear guidance for subsequent supervision work. The embodiments ensure the timeliness and pertinence of supervision, helping to detect problems in a timely manner and take corresponding measures. Through refined process and time management, the whole process supervision of the utilization of solid resources in construction projects is realized. At the same time, by allocating service resources and generating supervision paths according to the actual situation of the project, the effective utilization of resources and the pertinence of supervision are ensured. BRIEF DESCRIPTION OF THE DRAWINGS

[0062] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following will briefly introduce the drawings required for use in the embodiments. Obviously, the drawings in the following description are only some embodiments of the present invention. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.

[0063] Figure 1 is a flowchart of a method for supervising urban construction solid resources provided by an embodiment of the present invention;

[0064] Figure 2 is a structural diagram of a device for supervising urban construction solid resources provided by an embodiment of the present invention;

[0065] Figure 3 is a structural diagram of an electronic device provided by an embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS

[0066] The following will clearly and completely describe the technical solutions in the embodiments of the present invention with reference to the drawings in the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present invention.

[0067] It should be noted that the terms "first", "second", "third", "fourth", etc. in the description and claims of the present invention are used to distinguish different objects, rather than to describe a specific order. The terms "comprising" and "having" in the embodiments of the present invention and any variations thereof are intended to cover non-exclusive inclusion. Exemplarily, a process, method, system, product, or device comprising a series of steps or units does not necessarily have to be limited to those steps or units clearly listed, but may include other steps or units not clearly listed or inherent to these processes, methods, products, or devices.

[0068] The embodiments of the present invention disclose a method, system, electronic device, and storage medium for supervising urban construction solid resources. By obtaining project process nodes and a project schedule, solid resource supervision warning times and supervision nodes are generated, and project information collection times are generated according to the project process nodes. When the solid resource supervision warning time is met, the project progress is monitored at preset time intervals to confirm whether to initiate the supervision process, ensuring effective supervision of specific supervision projects at different stages. When the project information collection time is met, the project information corresponding to the project process nodes is collected, and the legality of the project information is confirmed, which helps to accurately grasp the handling situation of solid resources and ensure the reasonable handling of solid resources. If the legality of the project exceeds the set threshold, the corresponding number of service resources is allocated according to the total amount of solid resources, which ensures the effective utilization of service resources and avoids waste of resources. At the same time, the system also generates a supervision path corresponding to the current project process node according to the actual situation of the project, providing clear guidance for subsequent supervision work. The embodiment ensures the timeliness and pertinence of supervision, helps to timely discover problems and take corresponding measures, and realizes the whole-process supervision of the utilization of solid resources in construction projects through refined process and time management. At the same time, by allocating service resources and generating supervision paths according to the actual situation of the project, the effective utilization of resources and the pertinence of supervision are ensured.

[0069] Embodiment 1

[0070] Please refer to Figure 1 , Figure 1 which is a schematic flowchart of a method for supervising urban construction solid resources disclosed in the embodiments of the present invention. Among them, the execution subject of the method described in the embodiments of the present invention is an execution subject composed of software or / and hardware, which can receive relevant information through wired or / and wireless means and can send certain instructions. Of course, it can also have certain processing functions and storage functions. The execution subject can control multiple devices, such as remote physical servers or cloud servers and related software, or can also be a local host or server and related software that performs relevant operations on devices placed somewhere. In some scenarios, multiple storage devices can also be controlled, and the storage devices can be placed in the same place or different places as the devices. For exampleFigure 1 As shown in Figure 1 , the urban construction solid resource supervision method includes the following steps:

[0071] 101. Obtain project process nodes and a project schedule, generate solid resource supervision warning times and supervision nodes, and generate project information collection times according to the project process nodes.

[0072] The method first generates solid resource supervision warning times and supervision nodes by obtaining project process nodes and a project schedule. This allows supervisors to preset key inspection points based on the actual progress of the project. At the same time, according to the project process nodes, project information collection times are also generated to ensure that project information can be accurately and timely collected when needed.

[0073] Furthermore, generating solid resource supervision warning times and supervision nodes includes: collecting the progress durations of historical same-project process nodes, generating the progress duration range of this project process node; calculating the solid resource supervision warning time according to the progress duration range and a preset calculation coefficient; obtaining corresponding project information according to the project process node, and generating a supervision node for each execution node in the project information.

[0074] For the currently ongoing project, the system first needs to collect the progress duration data of historical same-project process nodes. These data should include the actual progress situations of multiple similar projects to analyze and obtain a reasonable progress duration range. Based on the collected historical data, the system uses statistical methods (such as average, median, standard deviation, etc.) to calculate and generate the progress duration range of this project process node. This range should be able to reflect the normal progress situations of most projects at this process node. Next, the system calculates the solid resource supervision warning time according to the generated progress duration range and a preset calculation coefficient. This warning time should generally be earlier than the expected completion time of the project process node to leave enough response time for possible progress delays or resource shortages. The preset calculation coefficient can be set according to the actual situation of the project and the company's management strategy. For example, it can be set as a certain percentage of the progress duration range or a fixed time interval. After generating the solid resource supervision warning time, the system needs to generate corresponding supervision nodes for each execution node in the project process. The generation of supervision nodes should be based on the specific content and importance of the project process node. For key execution nodes, such as the procurement, use, and storage of solid resources, more intensive supervision nodes should be set to ensure the smooth execution of these nodes and the reasonable utilization of resources. Each supervision node should include information such as specific supervision time, supervision content, and supervision standards, so that supervisors can clearly understand the supervision requirements and operation specifications of each node.

[0075] Collect the progress duration data of the process nodes of historical similar projects, which usually includes the actual progress of multiple similar projects, so as to analyze and obtain a reasonable progress duration range. When calculating the warning time for solid resource supervision, statistical methods (such as mean, median, standard deviation, etc.) are used to analyze the collected historical data, and the progress duration range of the project process node is calculated. For example, the mean of the historical data plus or minus one standard deviation can be used to determine a reasonable progress duration range. According to the actual situation and management strategy of the project, a warning coefficient is set. Exemplarily, the warning coefficient can be a percentage, indicating the advance amount of the warning time relative to the expected completion time. For example, if the warning coefficient is set to 20%, it means that the warning time will be 20% earlier than the expected completion time. According to the project plan and schedule, calculate the expected completion time of the current project process node, combine the expected completion time with the warning coefficient, and calculate the warning time for solid resource supervision. Exemplarily, the specific calculation formula can be: warning time = expected completion time - (expected completion time * warning coefficient), where the warning coefficient is a decimal between 0 and 1, indicating the advance ratio of the warning time relative to the expected completion time.

[0076] 102. When the warning time for solid resource supervision is met, monitor the project progress at preset time intervals to confirm whether to start the supervision process. The supervision nodes include different supervision times and corresponding supervision projects.

[0077] When the warning time for solid resource supervision is met, the system will monitor the project progress at preset time intervals. This helps to detect anomalies or deviations in the project progress in a timely manner, so as to decide whether to start the supervision process. The supervision nodes are the key points in the supervision process, and each node has a specific supervision time and corresponding supervision project. This ensures that at different stages of the project, detailed inspections can be carried out for specific supervision projects.

[0078] 103. In response to the supervision process start instruction, collect the project information of the corresponding project process node when the project information collection time is met. The project information includes project personnel and project execution paths, and confirm the project information in the first time and calculate the project execution legality and the total amount of solid resources according to the project information.

[0079] Once the supervision process is started, the system will collect the project information of the corresponding project process node when the project information collection time is met. This information includes key data such as project personnel and project execution paths. After collecting the information, the system will confirm the accuracy of this information in the first time and calculate the legality of project execution and the total amount of solid resources according to the project information. This helps to ensure the compliance of the project and accurately master the utilization of solid resources.

[0080] The first time is a time point, which represents a certain time point after a certain time interval since the project information has been collected. It does not mean that the project information is confirmed immediately after the project information is collected. After a certain time interval since the project information is collected, this duration is set according to the actual situation, such as 5 minutes, 30 minutes, 1 hour, 24 hours, etc. after the information collection is completed.

[0081] Specifically, confirming the project information at the first time includes: obtaining the corresponding minimum professional level of project personnel according to the project process nodes, and generating at least one matching service path; the service path is used to indicate the execution matters and execution time of project personnel; comparing whether the professional level of the project personnel exceeds the minimum professional level of project personnel.

[0082] In the example, first collect the complete project information, including the basic information of the project, personnel configuration, time nodes, etc. Determine the minimum professional level of project personnel required for each node according to the project process nodes and the specific requirements of the project. Plan corresponding service paths for project personnel of different levels according to the minimum professional level and project process nodes. Extract the professional levels of all project personnel from the project information. Use the set screening condition, that is, the professional level needs to meet the minimum professional level of project personnel.

[0083] Furthermore, obtain the professional level and the number of operations of project personnel in the project information, screen project personnel whose professional level meets the minimum professional level of project personnel and the number of operations meets the preset standard as the comparison project personnel; calculate the proportion of the comparison project personnel among all project personnel in the project information, and obtain the execution path in the project information, calculate the matching degree between the execution path and the service path; calculate the project execution legality according to the proportion and the matching degree.

[0084] To more precisely evaluate the execution legality of a project, we can further consider the professional levels and the number of tasks of project personnel, as well as their degree of matching with the preset standards, and combine the matching degree of the execution path to comprehensively calculate the execution legality of the project. Collect the professional levels and the estimated or assigned number of tasks of all project personnel from the project information, and the number of tasks meets the preset standards, which may be an upper limit or a lower limit, to screen and compare project personnel. Of course, to improve service quality and ensure service standards, usually project personnel with more tasks are selected, representing more project experience. Calculate the proportion of the compared project personnel among all project personnel in the project information. The proportion calculation formula is: the number of compared project personnel / the number of all project personnel, and compare the calculated proportion with the comparison value. If the proportion exceeds the comparison value, it is considered that the project personnel configuration in the project information meets the requirements, and the project information is confirmed. During the application process, workload assessment methods (such as the analogy method, WBS decomposition method, etc.) can be used to estimate the total workload required for the project. Compare the actual execution path with the previously generated service path, and calculate the matching degree between them. The matching degree can be determined by comparing factors such as task assignment, execution order, and whether key activities are the same between the two. The matching degree can be represented by quantitative indicators (such as similarity percentage) or qualitative evaluation (such as high, medium, low matching degree). Take the proportion value of the compared project personnel and the matching degree of the execution path and the service path as two main indicators, and combine other possible evaluation factors (such as project financing situation, environmental impact assessment, etc.) to jointly calculate the execution legality of the project. Methods such as the weighted scoring method or the fuzzy comprehensive evaluation method can be used to integrate these indicators and obtain a comprehensive project execution legality score or grade. According to the calculated project execution legality score or grade, evaluate and provide feedback on the project. If the score or grade is low, it indicates that there may be illegal or non-compliant situations during the project execution process, and further investigation and corresponding corrective measures need to be taken.

[0085] The execution path in the embodiment includes the execution order. If transportation is involved, the execution path includes the transportation path. In specific calculations, multiple aspects such as static partial matching, parameter partial matching, and order matching are considered. Corresponding to the importance of different factors, different weights are set. Exemplarily, the weight assigned to static partial matching is 0.6, and the weight assigned to parameter partial matching is 0.4. If order matching is not considered, the matching degree calculation formula can be: Matching degree = (Static partial score * 0.6 + Parameter partial score * 0.4) / 10. Among them, the static part includes, for example, fixed strings or paths that must be executed as stipulated, which are unchangeable. For example, at node a, operation link a1 must be completed, and the operation order of operation link a1 is a11, which are all stipulated and unchangeable, and are used as the static part during comparison. Another example is that at node b, operation link b1 needs to be completed, and the reference order of operation link b1 is b11, but it is not unique, and there can also be b12, b13, and b14. Among them, b12 and b13 are closer and more preferable to b11. Then, when calculating the match, it depends on whether it is b14. If it is b14, it does not match. Here, the part with variability, certain changes, or a selection space is used as the parameter part. Or, in the case of the transportation path, the reference path is c, which is the most preferable path, but according to the actual situation, the planned path is c1, and this path is also used as the parameter part.

[0086] 104. When the legality exceeds the set threshold, corresponding amounts of service resources are allocated according to the total amount of solid resources, and a supervision path corresponding to the process node of this project is generated.

[0087] If the legality of the project exceeds the set threshold (i.e., the project is within the compliance range), the system will allocate corresponding amounts of service resources according to the total amount of solid resources. This ensures the effective utilization of service resources and avoids waste of resources. At the same time, the system will also generate a supervision path corresponding to the process node of this project according to the actual situation of the project. This provides clear guidance for subsequent supervision work.

[0088] Specifically, allocating corresponding amounts of service resources according to the total amount of solid resources includes: presetting a relationship table between the total amount of solid resources and the divided quantities, dividing the total amount of solid resources into several segments of solid resources corresponding to the divided quantities according to the relationship table; calculating the average professional level of all project personnel, and evenly distributing the total number of project personnel according to the divided quantities, so that the number of project personnel corresponding to each segment of solid resources is the same, and the difference between the average professional levels of the project personnel corresponding to each segment of solid resources is less than the set threshold; when the project process node includes a transportation node, allocating corresponding amounts of transportation tools according to the total amount of solid resources and the single-load capacity of the transportation tools.

[0089] In the above, according to the actual situation and requirements of the project, a relationship table between the total amount of solid resources and the number of divisions is preset. For example, for 0 - 1000 tons, the number of divisions is 1; for 1001 - 5000 tons, the number of divisions is 2; for 5001 - 10000 tons, the number of divisions is 3, and so on. According to the total amount of solid resources and the preset relationship table, the total amount of solid resources is divided into several segments of solid resources corresponding to the number of divisions. The total number of project personnel is evenly distributed according to the number of segments of solid resources divided. When distributing, it is necessary to consider that the difference between the average professional levels of the project personnel corresponding to each segment of solid resources is less than the set threshold. The project personnel are sorted according to their professional levels, and the project personnel are assigned to each segment of solid resources in order from high to low or from low to high, ensuring that the average professional level of each segment is close and the difference is less than the set threshold. According to the total amount of fixed resources and the single - load capacity of the transportation vehicle, the required number of transportation times is calculated. According to the required number of transportation times, the corresponding number of transportation vehicles is allocated. If all resources cannot be transported in one transportation, it is necessary to ensure that there are enough transportation vehicles for multiple transports.

[0090] The generation of the supervision path described above specifically includes obtaining one or more execution projects corresponding to the process nodes of the current project, and obtaining the execution tools and execution order corresponding to the execution projects; allocating the execution tools corresponding to the execution projects, and generating a supervision path according to the execution order. Execution tools include, for example, transportation vehicles, operation tools, etc. When transportation is required, the supervision path also includes the supervision of the transportation process.

[0091] 105. When reaching the supervision time corresponding to any supervision node, the current project process node is supervised according to the supervision path.

[0092] Whenever reaching the supervision time corresponding to any supervision node, the system will supervise the current project process node according to the pre - generated supervision path. This ensures the timeliness and pertinence of supervision, and helps to detect problems in a timely manner and take corresponding measures.

[0093] The embodiment further includes: classifying the solid resources, collecting the project process nodes, project schedules, and project information corresponding to each type of solid resource; generating supervision reference information for each type of solid resource.

[0094] Classify different solid resources, manage the corresponding information classification, which is convenient for data analysis and traceability. Correspondingly, for each type of solid resource, save the solid resource supervision warning time, supervision path, etc. generated in the past. Then, combine the project information, solid resource supervision warning time, supervision path, etc. that have been executed in each type of solid resource to generate a supervision reference information. For example, the solid resources of category a have been supervised four times, and the project information, solid resource supervision warning time, and supervision path are different each time. Then, combine the four situations and select the common features for retention. For example, project staff a is used in all four supervisions, so project staff a is included in the generated supervision reference information. And in three of the four supervision processes, execution tool b is used, and in one supervision, execution tool b is not included. Since execution tool b still appears more times, execution tool b is also included in the solid resource supervision warning plan for this type. For individual features, that is, the four different supervision situations, select the ones with higher priority for retention. The selection of priority can be comprehensively considered from aspects such as safety and economy.

[0095] Embodiment 2

[0096] Please refer to Figure 2 , Figure 2 which is a schematic structural diagram of a supervision system for urban construction solid resources disclosed in an embodiment of the present invention. As Figure 2 shown, the supervision system for urban construction solid resources may include: an information acquisition module 201, a start confirmation module 202, an information confirmation module 203, a process distribution module 204, and a node supervision module 205. Among them, the information acquisition module 201: is used to acquire project process nodes and a project schedule, generate a solid resource supervision warning time and supervision nodes, and generate a project information collection time according to the project process nodes; the start confirmation module 202: is used to monitor the project progress at preset time intervals to confirm whether to start the supervision process when the solid resource supervision warning time is met, and the supervision nodes include different supervision times and corresponding supervision projects; the information confirmation module 203: is used to collect project information corresponding to the project process nodes when the project information collection time is met in response to a supervision process start instruction, the project information includes project staff and a project execution path, and confirm the project information for the first time and calculate the project execution legality and the total amount of solid resources according to the project information; the process distribution module 204: is used to allocate corresponding service resources according to the total amount of solid resources when the legality exceeds a set threshold, and generate a supervision path corresponding to the current project process node; the node supervision module 205: is used to supervise the current project process node according to the supervision path every time the supervision time corresponding to any supervision node is reached.

[0097] In the information acquisition module 201, the supervision warning time and supervision nodes of solid resources are generated, including: collecting the progress duration of the same historical project process nodes, and generating the progress duration range of the project process nodes; calculating the supervision warning time of solid resources according to the progress duration range and a preset calculation coefficient; obtaining the corresponding project information according to the project process nodes, and generating supervision nodes for each execution node in the project information.

[0098] In the information confirmation module 203, the project information is confirmed at the first time, including: obtaining the minimum professional level of the corresponding project personnel according to the project process nodes, and generating at least one matching service path; the service path is used to indicate the execution matters and execution time of the project personnel; comparing whether the professional level of the project personnel exceeds the minimum professional level of the project personnel.

[0099] Furthermore, in the information confirmation module 203, the project execution legality is calculated according to the project information, including: obtaining the professional level and the number of operations of the project personnel in the project information, screening the project personnel whose professional level meets the minimum professional level of the project personnel and the number of operations meets the preset standard as the comparison project personnel; calculating the proportion of the comparison project personnel among all the project personnel in the project information, and obtaining the execution path in the project information, and calculating the matching degree between the execution path and the service path; calculating the project execution legality according to the proportion and the matching degree.

[0100] In the process allocation module 204, the corresponding number of service resources is allocated according to the total amount of solid resources, including: presetting a relationship table between the total amount of solid resources and the divided quantity, and dividing the total amount of fixed resources into several segments of solid resources corresponding to the divided quantity according to the relationship table; calculating the average professional level of all project personnel, and evenly allocating the total number of project personnel according to the divided quantity, so that the number of project personnel corresponding to each segment of solid resources is the same, and the difference between the average professional levels of the project personnel corresponding to each segment of fixed resources is less than a set threshold; when the project process node includes a transportation node, allocating the corresponding number of transportation tools according to the total amount of fixed resources and the single load capacity of the transportation tool.

[0101] As an optional implementation manner, in the first aspect of the embodiments of the present invention,

[0102] As an optional implementation manner, in the first aspect of the embodiments of the present invention,

[0103] Embodiment III

[0104] Please refer to Figure 3 , Figure 3It is a schematic structural diagram of an electronic device disclosed in an embodiment of the present invention. The electronic device can be a computer, a server, etc. Of course, in certain cases, it can also be an intelligent device such as a mobile phone, a tablet computer, and a monitoring terminal, as well as an image acquisition device with processing functions. As Figure 3 shown, the electronic device may include:

[0105] A memory 301 storing executable program code;

[0106] A processor 302 coupled to the memory 301;

[0107] Wherein, the processor 302 calls the executable program code stored in the memory 301 and executes some or all of the steps in the urban construction solid resource supervision method in the first embodiment.

[0108] An embodiment of the present invention discloses a computer-readable storage medium that stores a computer program, wherein the computer program causes a computer to execute some or all of the steps in the urban construction solid resource supervision method in the first embodiment.

[0109] An embodiment of the present invention also discloses a computer program product, wherein when the computer program product runs on a computer, it causes the computer to execute some or all of the steps in the urban construction solid resource supervision method in the first embodiment.

[0110] An embodiment of the present invention also discloses an application publishing platform, wherein the application publishing platform is used to publish a computer program product, wherein when the computer program product runs on a computer, it causes the computer to execute some or all of the steps in the urban construction solid resource supervision method in the first embodiment.

[0111] In various embodiments of the present invention, it should be understood that the magnitude of the serial numbers of the various processes does not necessarily mean the inevitable sequence of execution. The execution sequence of each process should be determined by its function and internal logic, and should not constitute any limitation to the implementation process of the embodiments of the present invention.

[0112] The unit described as a separated component may or may not be physically separated, and the component shown as a unit may or may not be a physical unit, that is, it may be located in one place, or may be distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.

[0113] In addition, in each embodiment of the present invention, the various functional units can be integrated into one processing unit, or each unit can exist physically alone, or two or more units can be integrated into one unit. The integrated unit can be implemented in the form of hardware or in the form of a software functional unit.

[0114] When the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-accessible memory. Based on this understanding, the technical solution of the present invention, in essence, or the part that contributes to the prior art, or all or part of this technical solution, can be embodied in the form of a software product. This computer software product is stored in a memory and includes several requests for causing a computer device (which can be a personal computer, a server, or a network device, etc., specifically, the processor in the computer device) to execute some or all of the steps of the methods described in the various embodiments of the present invention.

[0115] In the embodiments provided by the present invention, it should be understood that "B corresponding to A" means that B is associated with A, and B can be determined according to A. However, it should also be understood that determining B according to A does not mean determining B only according to A. B can also be determined according to A and / or other information.

[0116] Those of ordinary skill in the art can understand that some or all of the steps in the various methods of the embodiments can be completed by instructing relevant hardware through a program. This program can be stored in a computer-readable storage medium. The storage medium includes a read-only memory (ROM), a random access memory (RAM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), a one-time programmable read-only memory (OTPROM), an electrically-erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM), or other optical disc memories, magnetic disk memories, tape memories, or any other computer-readable medium that can be used to carry or store data.

[0117] The above has introduced in detail the urban construction solid resource supervision method, system, electronic device and storage medium disclosed in the embodiments of the present invention. Specific examples are used in this article to elaborate on the principle and implementation manner of the present invention. The description of the above embodiments is only used to help understand the method and its core idea of the present invention; at the same time, for those of ordinary skill in the art, according to the idea of the present invention, there will be changes in the specific implementation manner and application scope. In summary, the content of this specification should not be construed as a limitation on the present invention.

Claims

1. A method for supervising urban building solid resources, characterized in that: include: Obtain project process nodes and project schedule, generate solid resource supervision warning time and supervision nodes, and generate project information collection time according to project process nodes; When the solid resource supervision warning time is met, the project progress is monitored at preset time intervals to confirm whether to start the supervision process, and the supervision nodes include different supervision times and corresponding supervision projects; In response to the supervision process start instruction, the project information of the corresponding project process node is collected when the project information collection time is met, the project information includes project personnel and project execution path, and the corresponding minimum professional level of the project personnel is obtained according to the project process node, and at least one matching service path is generated; the service path is used to indicate the execution items and execution time of the project personnel; and the professional level of the project personnel is compared to see whether it exceeds the minimum professional level of the project personnel; Obtain the professional level and number of operations of the project personnel in the project information, and select the project personnel whose professional level meets the minimum professional level of the project personnel and whose number of operations meets the preset standards as the comparison project personnel; Calculate and compare the proportion of project personnel in all project personnel in the project information, obtain the execution path in the project information, and calculate the matching degree between the execution path and the service path; Calculate the legality of project execution based on the percentage value and matching degree, and calculate the total amount of solid resources based on project information; When the legality exceeds the set threshold, a relationship table between the total amount of solid resources and the number of divisions is preset, and the total amount of fixed resources is divided into several sections of solid resources of corresponding division numbers according to the relationship table; the average professional level of all project personnel is calculated, and the total number of project personnel is evenly distributed according to the number of divisions, so that the number of project personnel corresponding to each section of solid resources is consistent, and the difference between the average professional levels of project personnel corresponding to each section of fixed resources is less than the set threshold; when the project process node includes a transportation node, a corresponding number of transportation tools are allocated according to the total amount of fixed resources and the single carrying capacity of the transportation tool, and the supervision path corresponding to this project process node is generated; Whenever the supervision time corresponding to any supervision node is reached, the current project process node is supervised according to the supervision path.

2. The urban building solid resource supervision method according to claim 1 is characterized in that: Generate solid resource supervision warning time and supervision nodes, including: Collect the progress duration of the same project process nodes in history and generate the progress duration range of the project process nodes; Calculate the solid resource supervision warning time according to the progress time range and the preset calculation coefficient; Obtain the corresponding project information according to the project process node, and generate a supervision node for each execution node in the project information.

3. The urban building solid resource supervision method according to claim 1 is characterized in that: Generate the supervision path corresponding to the process nodes of this project, including: Obtain one or more execution projects corresponding to the process node of this project, and obtain the execution tools and execution order corresponding to the execution projects; Assign execution tools corresponding to execution projects and generate supervision paths based on the execution order.

4. The urban building solid resource supervision method according to claim 1 is characterized in that: Also includes: Classify solid resources and collect project process nodes, project schedules and project information corresponding to each type of solid resources; Generate regulatory reference information for each type of solid resource.

5. An urban building solid resource supervision system, characterized in that: include: Information acquisition module: used to obtain project process nodes and project schedules, generate solid resource supervision warning time and supervision nodes, and generate project information collection time according to project process nodes; Start confirmation module: used to monitor the project progress at preset time intervals to confirm whether to start the supervision process when the solid resource supervision warning time is met. The supervision node includes different supervision times and corresponding supervision items; Information confirmation module: used to respond to the supervision process start instruction and collect the project information of the corresponding project process node when the project information collection time is met, the project information includes project personnel, project execution path, and obtain the corresponding minimum professional level of the project personnel according to the project process node, and generate at least one matching service path; the service path is used to indicate the execution items and execution time of the project personnel; compare whether the professional level of the project personnel exceeds the minimum professional level of the project personnel; Obtain the professional level and number of operations of the project personnel in the project information, and select the project personnel whose professional level meets the minimum professional level of the project personnel and whose number of operations meets the preset standards as the comparison project personnel; Calculate and compare the proportion of project personnel in all project personnel in the project information, obtain the execution path in the project information, and calculate the matching degree between the execution path and the service path; Calculate the legality of project execution based on the percentage value and matching degree, and calculate the total amount of solid resources based on project information; Process allocation module: used to preset a relationship table between the total amount of solid resources and the number of divisions when the legality exceeds the set threshold, and divide the total amount of fixed resources into several sections of solid resources with corresponding divisions according to the relationship table; calculate the average professional level of all project personnel, and evenly distribute the total number of project personnel according to the number of divisions, so that the number of project personnel corresponding to each section of solid resources is consistent, and the difference between the average professional levels of project personnel corresponding to each section of fixed resources is less than the set threshold; when the project process node includes a transportation node, allocate a corresponding number of transportation tools according to the total amount of fixed resources and the single carrying capacity of the transportation tool, and generate the supervision path corresponding to this project process node; Node supervision module: used to supervise the current project process node according to the supervision path every time the supervision time corresponding to any supervision node is reached.

6. An electronic device, characterized in that: include: A memory storing executable program code; a processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the urban building solid resource supervision method described in any one of claims 1 to 4.

7. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a computer program, wherein the computer program enables a computer to execute the urban building solid resource supervision method according to any one of claims 1 to 4.

Citation Information

Patent Citations

  • Power grid infrastructure project safety management method and system

    CN117010616A

  • Enterprise risk data monitoring management method and device

    CN117114421A