Information processing apparatus, information processing method, and information processing program

The information processing device and method provide comprehensive structural analysis for building roofs by using a database to overlay load patterns, addressing the complexity of existing examination methods and enabling safety confirmation during events without needing to handle structural analysis models.

JP2026013742APending Publication Date: 2026-01-29TAKENAKA CORP
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Patent Information

Application Number
JP2024114299
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-07-17
Publication Date
2026-01-29

AI Technical Summary

Technical Problem

Existing technologies for confirming the safety of suspended loads on ceilings lack detailed examination methods and require handling complex structural analysis models, making it difficult to obtain comprehensive structural analysis results for building roofs.

Method used

An information processing device and method that utilizes a database storing structural analysis results from a structural analysis model, allowing for the extraction and overlaying of analysis results based on input or measured load patterns, enabling safety judgment without requiring direct handling of the structural analysis model.

Benefits of technology

Enables the generation of structural analysis results for the entire building roof, facilitating safety confirmation during event planning and setup, even when handling a structural analysis model is difficult.

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Abstract

To provide an information processing device, an information processing method, and an information processing program capable of obtaining a structure analysis result of an entire roof of a building even when it is difficult to handle a structure analysis model.SOLUTION: When a suspended load is checked at the time of event planning, a suspended load pattern is input by operating a client terminal. Accordingly, in the server, the reception and acquisition unit 20 acquires the input result of the suspended load pattern. The extraction unit 22 extracts the corresponding analysis result from the database 30 on the basis of the received suspended load pattern. Then, the creation unit 24 creates an analysis result for the suspension load pattern at the time of event planning by superimposing the extracted analysis results.SELECTED DRAWING: Figure 3
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Description

[Technical Field]

[0001] The present invention relates to an information processing device, an information processing method, and an information processing program. [Background technology]

[0002] Patent Document 1 proposes a method for confirming the safety of a suspended load on a ceiling, characterized in that the size, position or range of the suspended load for each suspended point prepared in advance on the ceiling is input into a computer, and a mechanical examination is performed in light of a safety confirmation program stored in the computer for the strength of the ceiling structure and the load capacity of each suspended point, and the output of the examination result is displayed as an image on a display, and instructions or indications are given for the corresponding suspended point on the ceiling, and the corresponding load is suspended from the corresponding suspended point based on these instructions or indications. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Publication No. 01-229370 Summary of the Invention [Problem to be solved by the invention]

[0004] The technology in Patent Document 1 discloses that the usage conditions for the suspension points provided on the ceiling are input into a computer, and the strength of the ceiling structure and the load capacity of each suspension point are mechanically examined and the examination results are displayed. However, as the detailed examination method is not disclosed, there is room for improvement.

[0005] It is also possible to use a structural analysis model to perform analysis each time, but it may be difficult for the building manager to handle the structural analysis model.

[0006] The present disclosure has been made in consideration of the above facts, and aims to provide an information processing device, an information processing method, and an information processing program that are capable of obtaining structural analysis results for the entire roof of a building even when it is difficult to handle a structural analysis model. [Means for solving the problem]

[0007] The information processing device according to the first aspect includes a database storing the results of an analysis performed using a structural analysis model in which a load is applied to each of a plurality of suspension points of a predetermined building, the building having the plurality of suspension points; a reception unit that receives a suspension load pattern assumed for the building; and a creation unit that creates an analysis result corresponding to the input suspension load pattern by extracting and overlaying relevant results from the database based on the suspension load pattern received by the reception unit.

[0008] According to the first aspect, the database stores the results of an analysis using a structural analysis model in which loads are applied to each suspension point of a predetermined building equipped with a plurality of suspension points. The receiving unit receives an expected suspension load pattern for the building, and the creating unit extracts and overlays the corresponding results from the database based on the suspension load pattern received by the receiving unit, thereby creating analysis results corresponding to the input suspension load pattern. This makes it possible to obtain structural analysis results for the entire roof of a building when planning an event, even when it is difficult to handle a structural analysis model.

[0009] An information processing device according to a second aspect is an information processing device according to the first aspect, wherein the database further stores information on the structural analysis model, and further includes an output unit that judges the safety of the structure from the analysis results created by the creation unit and the information on the structural analysis model, and outputs the judgment result.

[0010] According to the second aspect, information on the structural analysis model is further stored in the database, and the output unit outputs a judgment result on the safety of the structure based on the analysis results created by the creation unit and the information on the structural analysis model, making it possible to confirm the safety of the structure.

[0011] The information processing device according to the third aspect includes a database storing the results of an analysis performed using a structural analysis model in which a load is applied to each of a plurality of suspension points of a predetermined building, the predetermined building having the suspension points; an acquisition unit that acquires measurement results from a measurement unit that measures the load and is provided at the suspension points of the building; and a creation unit that creates analysis results corresponding to the actual suspended load by extracting and overlaying relevant results from the database based on the measurement results acquired by the acquisition unit.

[0012] According to a third aspect, the database stores the results of an analysis using a structural analysis model in which a load is applied to each of the suspension points of a predetermined building with multiple suspension points. An acquisition unit acquires measurement results from a measurement unit that measures the load and is installed at the suspension points of the building. A creation unit extracts and overlays corresponding results from the database based on the measurement results acquired by the acquisition unit, thereby creating analysis results corresponding to the actual suspended load. This makes it possible to obtain structural analysis results for the entire building roof when setting up for an event, even when it is difficult to handle a structural analysis model.

[0013] An information processing device according to a fourth aspect is an information processing device according to the third aspect, wherein the database further stores information on the structural analysis model, and further includes an output unit that judges the safety of the structure from the analysis results created by the creation unit and the information on the structural analysis model, and outputs the judgment result.

[0014] According to the fourth aspect, information on the structural analysis model is further stored in the database, and the output unit outputs a judgment result on the safety of the structure based on the analysis results created by the creation unit and the information on the structural analysis model, making it possible to confirm the safety of the structure.

[0015] In the information processing method according to the fifth aspect, a computer receives a suspension load pattern assumed for a predetermined building having a plurality of suspension points, and extracts and overlays corresponding results from a database storing results of an analysis in which loads are applied to each of the suspension points of the building based on the received suspension load pattern, thereby creating analysis results corresponding to the input suspension load pattern.

[0016] According to the fifth aspect, even if it is difficult to handle a structural analysis model, it is possible to obtain structural analysis results for the entire roof of a building when planning an event.

[0017] In the information processing method according to the sixth aspect, a computer acquires measurement results from a measurement unit that measures loads and is installed at predetermined suspension points of a building having multiple suspension points, and based on the acquired measurement results, extracts and overlays relevant results from a database that stores results of analyses in which loads were applied to each of the suspension points of the building, thereby creating analysis results corresponding to the loads actually being suspended.

[0018] According to the sixth aspect, even if it is difficult to handle a structural analysis model, it is possible to obtain structural analysis results for the entire roof of a building when setting up an event.

[0019] The information processing program according to the seventh aspect causes a computer to execute a process of receiving a hanging load pattern assumed in a predetermined building having a plurality of hanging points, extracting corresponding results from a database storing results of an analysis in which a load is applied to each of the hanging points of the building based on the received hanging load pattern, and overlaying the results to create an analysis result corresponding to the input hanging load pattern.

[0020] According to the seventh aspect, even if it is difficult to handle a structural analysis model, it is possible to obtain structural analysis results for the entire roof of a building when planning an event.

[0021] The information processing program according to the eighth aspect causes a computer to acquire measurement results from a measurement unit that measures loads and is installed at predetermined suspension points of a building having a plurality of suspension points, and based on the acquired measurement results, extracts and overlays relevant results from a database that stores results of analyses in which loads are applied to each of the suspension points of the building, thereby creating analysis results corresponding to the loads actually being suspended.

[0022] According to the eighth aspect, even if it is difficult to handle a structural analysis model, it is possible to obtain structural analysis results for the entire roof of a building when setting up an event. [Effects of the Invention]

[0023] As described above, according to the present invention, it is possible to provide an information processing device, an information processing method, and an information processing program that are capable of obtaining structural analysis results for the entire roof of a building even when it is difficult to handle a structural analysis model. [Brief explanation of the drawings]

[0024] [Figure 1] 1 is a diagram showing a schematic configuration of an information processing system according to an embodiment of the present invention; [Figure 2] 2 is a block diagram showing the configuration of the main electrical system of a server and a client terminal of the information processing system according to the present embodiment. FIG. [Figure 3] FIG. 2 is a functional block diagram showing the functional configuration of the information processing system according to the present embodiment. [Figure 4] FIG. 10 is a diagram showing a flow of confirmation of a hanging load when planning an event in the information processing system according to the present embodiment. [Figure 5] FIG. 10 is a diagram showing the flow of checking the hanging load when setting up an event in the information processing system according to the present embodiment. [Figure 6] 10 is a flowchart showing an example of a flow of processing performed when planning an event in a server of the information processing system according to the present embodiment. [Figure 7]10 is a flowchart showing an example of a flow of processing performed when setting up an event in a server of the information processing system according to the present embodiment. [Figure 8] 10A to 10C are diagrams showing examples of screens used when planning and setting up an event in the information processing system according to the present embodiment. [Figure 9] FIG. 1 is a diagram illustrating a general-purpose personal computer. DETAILED DESCRIPTION OF THE INVENTION

[0025] An example of an embodiment of the present invention will be described in detail below with reference to the drawings. Fig. 1 is a diagram showing a schematic configuration of an information processing system according to this embodiment.

[0026] As shown in FIG. 1, an information processing system 10 according to this embodiment includes a server 12 and a client terminal 14 as examples of information processing devices. The server 12 and the client terminal 14 are each connected to a communication line 16 and are capable of communicating with each other via the communication line 16. Examples of the communication line 16 include the Internet, a local area network (LAN), and a wide area network (WAN). While FIG. 1 shows an example in which a plurality of client terminals 14 (two in FIG. 1) are provided, the number of client terminals 14 may be one or three or more. The client terminal 14 may be a personal computer or a mobile terminal such as a tablet terminal or a smartphone.

[0027] The information processing system 10 according to this embodiment checks and displays the suspended load of the ceiling of an arena or the like, thereby assisting in checking the safety of the structure when planning and setting up an event.

[0028] 2 is a block diagram showing the main configuration of the electrical systems of the server 12 and the client terminal 14 of the information processing system 10 according to this embodiment. Since the server 12 and the client terminal 14 have a general computer configuration, the following description will be given using the server 12 as a representative.

[0029] The server 12 includes a CPU (Central Processing Unit) 12A as an example of a processor, a ROM (Read Only Memory) 12B, a RAM (Random Access Memory) 12C, a storage 12D, an operation unit 12E, a display unit 12F, and a communication I / F (Interface) unit 12G. The CPU 12A controls the overall operation of the server 12. The ROM 12B stores various control programs and parameters in advance. The RAM 12C is used as a work area when the CPU 12A executes various programs. The storage 12D stores various data and application programs. The operation unit 12E is used to input various information. The display unit 12F is used to display various information. The communication I / F unit 12G is connectable to external devices and transmits and receives various data to and from the external devices. The above-described units of the server 12 are electrically connected to each other via a system bus 12H. In the server 12 according to the present embodiment, the storage 12D is used as a storage unit, but the present invention is not limited to this, and other non-volatile storage units such as a hard disk or flash memory may also be used.

[0030] With the above configuration, the server 12 according to this embodiment uses the CPU 12A to access the ROM 12B, the RAM 12C, and the storage 12D, to obtain various data via the operation unit 12E, and to display various information on the display unit 12F. Also, the client terminal 14 uses the CPU 12A to control the transmission and reception of various data via the communication I / F unit 12G.

[0031] The information processing system 10 according to this embodiment realizes the functions shown in Fig. 3 by causing the CPU 12A of the server 12 to load an information processing program stored in advance in the ROM 12B into the RAM 12C and execute the program. Fig. 3 is a functional block diagram showing the functional configuration of the information processing system 10 according to this embodiment.

[0032] 3, the information processing system 10 according to this embodiment has the functions of a reception / acquisition unit 20 as an example of a reception unit and an acquisition unit, an extraction unit 22, a creation unit 24, a determination unit 26, and an output unit 28. In this embodiment, the functions of the reception / acquisition unit 20, the extraction unit 22, the creation unit 24, the determination unit 26, and the output unit 28 are described as functions of the server 12, but they may also be functions of the client terminal 14.

[0033] In this embodiment, as a preliminary preparation, an analysis is carried out in advance using a structural analysis model in which a load is applied to each of the suspension points provided on the ceiling of a predetermined building, and the analysis results are created in advance as a database (DB) 30. Here, the structural analysis model is a model used for structural analysis of members that make up a structure such as a building (for example, a combination of at least one of flooring, beams, pillars, and wall materials).

[0034] Information about the structural analysis model is also created and stored in the database 30. The information about the structural analysis model stored in the database 30 may be, for example, three CSV files that compile information about the elements, materials, and properties that make up the analysis model. The element information compiles the cross-section number and element length of each element, the material information compiles the Young's modulus and reference strength of each material, and the property information compiles the cross-sectional dimensions, cross-sectional performance, etc. of each property.

[0035] When planning an event, the reception and acquisition unit 20 receives a hanging load pattern for the load to be applied to each predetermined hanging point installed on the ceiling of the building. For example, when planning an event, the reception and acquisition unit 20 receives a hanging load pattern input by operating the client terminal 14. Furthermore, when setting up the event, the reception and acquisition unit 20 acquires the measurement results of the load at each hanging point measured by a measuring unit 32 such as a load cell installed at each hanging point.

[0036] The extraction unit 22 extracts from the database 30 analysis results corresponding to each suspension point where a load was input or measured, based on the suspension load pattern received by the reception / acquisition unit 20 when planning the event or the measurement results of the measurement unit 32 acquired when setting up the event. In other words, the extraction unit 22 extracts analysis results corresponding to the suspension load pattern or the measurement results of the measurement unit 32 from the analysis results created in advance.

[0037] The creation unit 24 creates an analysis result corresponding to the hanging load pattern accepted when planning the event, or an analysis result corresponding to the load actually being hung when setting up the event, by overlaying the analysis results extracted by the extraction unit 22.

[0038] The determination unit 26 determines the safety of the frame from the analysis results created by the creation unit 24 and information on the structural analysis model pre-stored in the database 30. Specifically, the determination unit 26 determines the safety of the frame by performing allowable stress calculations based on the Building Standards Act.

[0039] The output unit 28 outputs the assessment result of the safety of the structure assessed by the assessment unit 26. For example, the assessment result is output to the client terminal 14 and displayed on a predetermined output screen or the like. Note that in addition to or instead of the display output, the assessment result may be output as audio.

[0040] FIG. 4 is a diagram showing the flow of checking the hanging load when planning an event in the information processing system 10 according to this embodiment.

[0041] When checking the hanging load during event planning, the expected hanging load pattern is input by operating the client terminal 14. As a result, the reception / acquisition unit 20 in the server 12 acquires the input result of the hanging load pattern.

[0042] Furthermore, in the server 12, the extraction unit 22 extracts the corresponding analysis results from the database 30 based on the hanging load pattern received by the reception / acquisition unit 20. That is, the analysis results corresponding to the hanging load pattern are extracted from the analysis results prepared in advance, such as suspension point 1, suspension point 2, suspension point 3, etc.

[0043] Furthermore, in the server 12, the creation unit 24 creates analysis results for the hanging load pattern at the time of event planning by overlaying the analysis results extracted by the extraction unit 22. By creating a database 30 of analysis results and structural analysis models in advance in this way, the building manager does not need to handle structural analysis models and can obtain the analysis results of structural analysis at the time of event planning without having to purchase structural analysis software.

[0044] Then, the determination unit 26 of the server 12 performs a safety check by determining the safety of the structure from the analysis results created by the creation unit 24 and the information on the structural analysis model stored in advance in the database 30, and the output unit 28 outputs the determination result to the client terminal 14. As a result, the determination result of the safety of the structure is displayed on the client terminal 14, so that the safety of the structure based on the structural analysis model can be confirmed when planning an event.

[0045] FIG. 5 is a diagram showing the flow of checking the hanging load when setting up an event in the information processing system 10 according to this embodiment.

[0046] When checking the suspension load during event setup, the reception / acquisition unit 20 acquires the measurement results of the load at each suspension point measured by the measurement unit 32 installed at each suspension point. If the measurement unit 32 is connectable to the communication line 16, the measurement results of the measurement unit 32 may be acquired directly by the server 12 via the communication line 16. If the measurement unit 32 is not connected to the communication line 16, the measurement results of each suspension point may be collected on the building side where the measurement unit 32 is installed, and the collected measurement results may be acquired by the server 12. Note that the measurement results of the measurement unit 20 may be displayed moment by moment.

[0047] Furthermore, in the server 12, the extraction unit 22 extracts corresponding analysis results from the database 30 based on the measurement results of the measurement unit 32 acquired by the reception / acquisition unit 20. That is, the extraction unit 22 extracts analysis results corresponding to the measurement results of the measurement unit 32 from among the analysis results created in advance, such as suspension point 1, suspension point 2, suspension point 3, etc.

[0048] Furthermore, in the server 12, the creation unit 24 creates analysis results for the measurement results of the measurement unit 32 during event setup by overlaying the analysis results extracted by the extraction unit 22. By creating a database 30 of analysis results and structural analysis models in advance in this way, the building manager does not need to handle structural analysis models and can obtain the analysis results of structural analysis during event setup without having to purchase structural analysis software.

[0049] Then, the determination unit 26 of the server 12 performs a safety check by determining the safety of the structure from the analysis results created by the creation unit 24 and the information on the structural analysis model stored in advance in the database 30, and the output unit 28 outputs the determination result to the client terminal 14. As a result, the determination result of the safety of the structure is displayed on the client terminal 14, so that the safety of the structure based on the structural analysis model can be confirmed when setting up an event.

[0050] Next, specific processing performed by the server 12 of the information processing system 10 according to this embodiment configured as described above will be described.

[0051] First, the processing performed by the server 12 when planning an event will be described. Fig. 6 is a flowchart showing an example of the flow of processing performed when planning an event in the server 12 of the information processing system 10 according to this embodiment. The processing in Fig. 6 starts when, for example, the building manager operates the client terminal 14 to issue an instruction to check the hanging load when planning the event.

[0052] In step 100, the CPU 12A displays a predetermined hanging load pattern input screen and proceeds to step 102. For example, the input screen is transmitted from the server 12 to the client terminal 14, whereby the input screen is displayed on the display unit 14F of the client terminal 14. Note that the input screen itself may be provided by an application on the client terminal 14 side, and only the content to be displayed on the input screen may be transmitted from the server 12 to the client terminal 14.

[0053] In step 102, the CPU 12A determines whether a hanging load pattern has been input. This determination is made by determining whether a hanging load pattern input to the input screen by operating the client terminal 14 has been received. The process waits until the determination is affirmative, and then proceeds to step 104.

[0054] In step 104, the CPU 12A extracts the analysis results corresponding to the hanging load pattern from the database 30. That is, the extraction unit 22 extracts the analysis results corresponding to the hanging load pattern from the analysis results created in advance.

[0055] In step 106, the CPU 12A generates an analysis result by superimposing the extracted results, and the process proceeds to step 108. That is, the creation unit 24 creates an analysis result for the hanging load pattern accepted at the time of event planning by superimposing the analysis results extracted by the extraction unit 22.

[0056] In step 108, the CPU 12A performs a safety determination, and the process proceeds to step 110. That is, the determination unit 26 determines the safety of the frame from the analysis results created by the creation unit 24 and information on the structural analysis model pre-stored in the database 30. For example, the safety of the frame is determined by performing an allowable stress calculation based on the Building Standards Act.

[0057] In step 110, CPU 12A displays the result and ends the series of processes. That is, output unit 28 outputs the assessment result of the safety of the structure assessed by assessment unit 26 to client terminal 14, thereby displaying an output screen including the assessment result of the safety of the structure on display unit 14F of client terminal 14.

[0058] By having the server 12 perform the processing in this way, the safety of the structure based on the structural analysis model can be confirmed when planning an event, without the building manager having to handle the structural analysis model.

[0059] Next, the processing performed by the server 12 when setting up an event will be described. Fig. 7 is a flowchart showing an example of the flow of processing performed by the server 12 of the information processing system 10 according to this embodiment when setting up an event. The processing in Fig. 7 starts when, for example, the building manager operates the client terminal 14 to issue an instruction to check the hanging load when setting up an event. The processing common to Fig. 6 will be described using the same reference numerals.

[0060] In step 101, the CPU 12A acquires the measurement results of the measuring units 32, such as load cells, installed at each suspension point on the ceiling of the building, and proceeds to step 103. That is, the reception / acquisition unit 20 acquires the measurement results of the load at each suspension point measured by the measuring units 32, such as load cells, installed at each suspension point during the event setup.

[0061] In step 103, the CPU 12A starts displaying a screen that displays measurement results every moment, and then the process proceeds to step 105.

[0062] In step 105, CPU 12A extracts the analysis results corresponding to the actual suspension state from database 30, and proceeds to step 106. That is, extraction unit 22 extracts the corresponding analysis results from database 30 based on the measurement results obtained by measurement unit 32 during event setup.

[0063] In step 106, the CPU 12A generates an analysis result by superimposing the extracted results, and the process proceeds to step 108. That is, the creation unit 24 creates an analysis result for the measurement results measured during the event setup by superimposing the analysis results extracted by the extraction unit 22.

[0064] In step 108, the CPU 12A performs a safety determination, and the process proceeds to step 110. That is, the determination unit 26 determines the safety of the frame from the analysis results created by the creation unit 24 and information on the structural analysis model pre-stored in the database 30. For example, the safety of the frame is determined by performing an allowable stress calculation based on the Building Standards Act.

[0065] In step 110, CPU 12A displays the result and ends the series of processes. That is, output unit 28 outputs the assessment result of the safety of the structure assessed by assessment unit 26 to client terminal 14, thereby displaying an output screen including the assessment result of the safety of the structure on display unit 14F of client terminal 14.

[0066] By having the server 12 perform the processing in this way, the safety of the structure based on the structural analysis model can be confirmed when setting up an event without the building manager having to handle the structural analysis model.

[0067] Here, an example of a screen used when planning and setting up an event in the information processing system 10 according to this embodiment will be described. FIG. 8 is a diagram showing an example of a screen used when planning and setting up an event in the information processing system 10 according to this embodiment. Note that the screen in FIG. 8 is an example and is not limited to this. For example, a part of the screen in FIG. 8 may be displayed, or a screen including other content may be displayed.

[0068] When planning an event, the load to be applied to each suspension point is entered on the input screen 40 shown in Fig. 8. For example, as shown in Fig. 8, the planned load values ​​for each suspension point are entered in a box shape or spreadsheet format, with one cell representing one suspension point. The stage range and non-mountable range are displayed in different ways, such as by coloring them.

[0069] Furthermore, when setting up an event, the measurement results of the measuring unit 32 at each hanging point are acquired and displayed on the measurement result screen 42, similar to the input screen 40.

[0070] In addition to the input screen 40 or the measurement result screen 42, in the example of FIG. 8, a drawing 44 may be displayed. For example, the drawing 44 displayed when planning an event visualizes the location of the inputted position. Before safety is determined, the display mode may be changed, such as by coloring depending on the magnitude of the input value. The display mode of the safety determination result may also be changed, such as by coloring depending on the safety determination result. The drawing 44 displayed when setting up an event visualizes the location of the measurement result. For example, the display mode may be changed, such as by coloring depending on the measurement result.

[0071] 8, a safety judgment result screen 46 is also displayed in addition to the drawing 44. The safety judgment result displayed on the judgment result screen 46 may be a text display of only the NG result, or may also include OK.

[0072] In the above embodiment, the information processing system 10 including the server 12 and the client terminal 14 has been described as an example, but the present invention is not limited to this. For example, as shown in Fig. 9, the information processing system 10 may be realized by a single information processing device such as a general-purpose personal computer (PC) 50 having a display unit 50H and an operation unit 50S including a keyboard, a mouse, etc.

[0073] Furthermore, in each of the above embodiments, the processing performed by the server 12 of the information processing system 10 has been described as software processing performed by executing a program, but this is not limited to this. For example, the processing may be performed by hardware such as a GPU (Graphics Processing Unit), an ASIC (Application Specific Integrated Circuit), or an FPGA (Field-Programmable Gate Array). Alternatively, the processing may be a combination of both software and hardware. Furthermore, if the processing is software, the program may be stored in various storage media and distributed.

[0074] Furthermore, the present invention is not limited to the above, and it goes without saying that various modifications can be made without departing from the spirit of the present invention. [Explanation of symbols]

[0075] 10 Information Processing Systems 12 Servers 14 Client Terminal 16. Communication Lines 20 Reception and Acquisition Department 22 Extraction part 24 Creation Department 26 Judgment section 28 Output section 30 databases 32 Measuring part 40 Input screen 42 Measurement result screen 44 Drawings 46 Judgment result screen

Claims

1. a database storing the results of an analysis performed using a structural analysis model in which a load is applied to each of a plurality of suspension points of a predetermined building having the plurality of suspension points; a reception unit that receives a suspension load pattern assumed in the building; a creating unit that creates an analysis result corresponding to the inputted hanging load pattern by extracting and superimposing corresponding results from the database based on the hanging load pattern received by the receiving unit; An information processing device comprising:

2. the database further stores information about the structural analysis model; The information processing apparatus according to claim 1 , further comprising an output unit that determines the safety of the structure from the analysis result created by the creation unit and information on the structural analysis model, and outputs the determination result.

3. a database storing the results of an analysis performed using a structural analysis model in which a load is applied to each of a plurality of suspension points of a predetermined building having the plurality of suspension points; an acquisition unit that acquires a measurement result of a measurement unit that measures a load and is provided at the hanging point of the building; a creation unit that creates an analysis result corresponding to the actual suspended load by extracting and superimposing corresponding results from the database based on the measurement results acquired by the acquisition unit; An information processing device comprising:

4. the database further stores information about the structural analysis model; The information processing apparatus according to claim 3 , further comprising an output unit that determines the safety of the structure from the analysis result created by the creation unit and information on the structural analysis model, and outputs the determination result.

5. The computer Accepting an assumed lifting load pattern for a predetermined building having multiple lifting points; An information processing method that performs processing to create analysis results corresponding to the input hanging load pattern by extracting and overlaying relevant results from a database that stores the results of an analysis in which loads were applied to each of the hanging points of the building based on the received hanging load pattern.

6. The computer Acquire measurement results of a measurement unit that measures loads and is provided at a predetermined hanging point of a building having a plurality of hanging points; An information processing method that performs processing to create analysis results corresponding to the actual suspended load by extracting and overlaying relevant results from a database that stores the results of analyses in which loads were applied to each of the suspension points of the building based on the acquired measurement results.

7. On the computer, Accepting an assumed lifting load pattern for a predetermined building having multiple lifting points; An information processing program for executing a process to create analysis results corresponding to the inputted hanging load pattern by extracting and overlaying the relevant results from a database that stores the results of an analysis in which a load is applied to each of the hanging points of the building based on the received hanging load pattern.

8. On the computer, Acquire measurement results of a measurement unit that measures loads and is provided at a predetermined hanging point of a building having a plurality of hanging points; An information processing program for executing a process to create analysis results corresponding to the actual suspended load by extracting and overlaying the relevant results from a database that stores the results of an analysis in which a load was applied to each of the suspension points of the building based on the acquired measurement results.

Citation Information

Patent Citations

  • Safety confirming method for load hung from ceiling part

    JP1989229370A