Method and device for determining arrangement position of shot point, and storage medium
By dividing the layout area and analyzing the weights of target influencing factors, a layout value distribution map is generated, which solves the problem of uneven layout of artillery checkpoints and achieves more suitable layout location selection of artillery checkpoints to meet construction needs.
Patent Information
- Application Number
- CN202410336870.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-03-22
- Publication Date
- 2025-09-23
AI Technical Summary
In the existing technology, the layout method of blasting inspection points in the exploration area is uniform and does not take into account factors such as surface characteristics and topography, resulting in some areas being unsuitable for layout and construction difficulties.
By dividing the area to be deployed, determining the target area, and generating a deployment value distribution map based on the weight value and area of the target influencing factors, the appropriate gun inspection point deployment location is selected.
It has achieved the selective layout of artillery checkpoints based on factors such as surface characteristics and terrain, meeting construction needs and improving the applicability and efficiency of artillery checkpoint layout.
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Figure CN120686312A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of geophysical exploration technology, and in particular to a method, device, and storage medium for determining the layout position of a shot checkpoint. Background Art
[0002] Seismic exploration technology is an important technology in the field of geophysical exploration. It is usually used to identify underground geological structures to help relevant personnel find mineral resources such as oil and gas fields. Before measuring seismic exploration data, it is necessary to first determine the layout of the blast points.
[0003] Currently, shot checkpoints are typically evenly distributed throughout the exploration area, with the distance between adjacent shot points or adjacent receiver points being the same. However, within the exploration area, some areas are unsuitable for shot checkpoint placement due to factors such as surface characteristics, topography, slope, and ambient noise. Therefore, determining the placement of shot checkpoints to facilitate their implementation is a pressing issue. Summary of the Invention
[0004] In view of this, the present application provides a method, device and storage medium for determining the layout location of artillery inspection points, which can determine the layout area of artillery inspection points and better meet construction needs.
[0005] Specifically, the following technical solutions are included:
[0006] In a first aspect, an embodiment of the present application provides a method for determining the layout location of a gun inspection point, the method comprising:
[0007] Divide the area to be deployed to obtain at least one target area, wherein the area to be deployed corresponds to multiple target influencing factors;
[0008] For each target area, obtaining the area occupied by each target influencing factor and the weight value of each target influencing factor, and obtaining a layout value distribution map based on the area occupied by each target influencing factor and the weight value of each target influencing factor;
[0009] Based on the layout value distribution map of each target area, the layout positions of the shot inspection points in the area to be deployed are determined.
[0010] In some embodiments, obtaining the area occupied by each target influencing factor and the weight value of each target influencing factor includes:
[0011] According to the value of each target influencing factor, determine the area occupied by each target influencing factor;
[0012] Obtain the corresponding relationship between influencing factors and weight values;
[0013] The weight value corresponding to each target influencing factor is searched in the correspondence between the influencing factors and the weight values to obtain the weight value of each target influencing factor.
[0014] In some embodiments, obtaining the layout value distribution map based on the area occupied by each target influencing factor and the weight value of each target influencing factor includes:
[0015] Dividing the target area based on the area occupied by each target influencing factor to obtain multiple target sub-areas;
[0016] The layout value distribution map is obtained based on the multiple target sub-areas and the weight value of each target influencing factor.
[0017] In some embodiments, obtaining the layout value distribution map based on the multiple target sub-areas and the weight value of each target influencing factor includes:
[0018] Obtain the area of each target sub-region and the weight ratio of each target influencing factor;
[0019] Determining a layout value for each target sub-area based on the weight value of each target influencing factor, the area of each target sub-area, and the weight ratio of each target influencing factor;
[0020] The layout value of each target sub-region is assigned to the target sub-region accordingly to determine the layout value distribution map.
[0021] In some embodiments, the layout value of the target sub-area is obtained according to the following formula:
[0022] f m =aS m A i +bS m B j +…+nS m N k (i,j,…,k≤5), when A i ,B j ,…,N k All ≠ 0;
[0023] f m =0, when A i ,B j ,…,N k Any weight value in = 0;
[0024] Among them, f m A is the layout value of the target sub-area; i ,B j ,…,N kis the weight value of each target influencing factor; a, b, ..., n are the weight proportions of each target influencing factor, where a + b + ... + n = 1; S m is the area of the target sub-region.
[0025] In some embodiments, determining the placement positions of the shot check points in the to-be-placed area based on the placement value distribution map of each target area includes:
[0026] In the case where the number of target areas is greater than the number of gun check points to be deployed, the maximum values of the target sub-areas in the target area's deployment value distribution map are arranged in descending order, and a plurality of target areas having the same number as the gun check points to be deployed are determined, and based on the deployment value distribution maps corresponding to the plurality of target areas, the deployment positions of the gun check points in the plurality of target areas are determined as the deployment positions of the gun check points in the area to be deployed;
[0027] When the number of target areas is less than or equal to the number of shot inspection points to be deployed, the deployment positions of the shot inspection points in the target areas are determined as the deployment positions of the shot inspection points in the deployment areas based on the deployment value distribution map of each target area.
[0028] In some embodiments, dividing the area to be deployed to obtain at least one target area includes:
[0029] Obtaining the azimuth of the area to be deployed;
[0030] The area to be deployed is divided along the azimuth angle to obtain the at least one target area.
[0031] In some embodiments, the target influencing factors include multiple slope levels and multiple noise levels, wherein the multiple slope levels include a first-level slope with a slope value less than or equal to 10°, a second-level slope with a slope value greater than 10° and less than or equal to 20°, a third-level slope with a slope value greater than 20° and less than or equal to 30°, a fourth-level slope with a slope value greater than 30° and less than or equal to 40°, and a fifth-level slope with a slope value greater than 40°; the multiple noise levels include a first-level noise with a noise value less than or equal to 10μV, a second-level noise with a noise value greater than 10μV and less than or equal to 40μV, and a third-level noise with a noise value greater than 40μV.
[0032] In a second aspect, an embodiment of the present application further provides a device for determining the layout location of a gun inspection point, the device comprising:
[0033] A first obtaining module is configured to divide the area to be deployed into at least one target area, wherein the area to be deployed corresponds to a plurality of target influencing factors;
[0034] The second obtaining module is used to obtain, for each target area, the area occupied by each target influencing factor and the weight value of each target influencing factor, and obtain a layout value distribution map based on the area occupied by each target influencing factor and the weight value of each target influencing factor;
[0035] The determination module is used to determine the layout position of the gun inspection point in the area to be deployed based on the layout value distribution map of each target area.
[0036] In a third aspect, an embodiment of the present application further provides a non-volatile readable storage medium, in which at least one program is stored, and the at least one program is loaded and executed by a processor to implement a method for determining the layout position of a gun inspection point as described in any one of the first aspects.
[0037] The beneficial effects of the technical solutions provided by the embodiments of the present application include at least:
[0038] The method for determining the layout position of artillery checkpoints provided in the embodiment of the present application is to first divide the area to be laid out, determine the target area, and then for each target area, use the weight value of the target influencing factors affecting the layout of artillery checkpoints and the area occupied by each target influencing factor to obtain a weight value distribution map, and determine the layout position of artillery checkpoints in the area to be laid out based on the layout value distribution map of each target area, so that the layout of artillery checkpoints is no longer uniform, but is selectively laid out based on the target influencing factors. Since this method incorporates the target influencing factors and their corresponding weights, the determined layout position of artillery checkpoints is more suitable for artillery checkpoint layout and better meets construction needs. BRIEF DESCRIPTION OF THE DRAWINGS
[0039] In order to more clearly illustrate the technical solutions in the embodiments of the present application, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0040] Figure 1 A flowchart of a method for determining the placement of artillery inspection points provided in an embodiment of the present application;
[0041] Figure 2 A distribution diagram of gun inspection point layout values provided in an embodiment of the present application;
[0042] FIG3( a ) is a distribution diagram of shot checkpoint layout values in which a target influencing factor includes a slope attribute, provided in an embodiment of the present application;
[0043] FIG3( b ) is a distribution diagram of shot checkpoint layout values in which a target influencing factor includes noise attributes, provided in an embodiment of the present application;
[0044] FIG3( c ) is a distribution diagram of shot checkpoint layout values in which target influencing factors include slope attribute and noise attribute, provided in an embodiment of the present application;
[0045] Figure 4 A schematic diagram of the structure of a device for determining the layout position of artillery inspection points provided in an embodiment of the present application.
[0046] The above drawings illustrate specific embodiments of the present application, which will be described in more detail below. These drawings and the textual description are not intended to limit the scope of the present application in any way, but rather to illustrate the concepts of the present application to those skilled in the art by reference to specific embodiments. DETAILED DESCRIPTION
[0047] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are part of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.
[0048] Unless otherwise defined, all technical terms used in the embodiments of the present application have the same meanings as commonly understood by those skilled in the art.
[0049] In this application, "shot detection point" refers to the shot point and the detection point. In actual use, the layout positions of the shot point and the detection point can be different, but the layout method can be the same.
[0050] In order to make the technical solutions and advantages of the present application clearer, the implementation methods of the present application will be described in further detail below with reference to the accompanying drawings.
[0051] Seismic exploration technology utilizes the differences in elasticity and density of underground media to infer the properties and morphology of underground rock formations by observing and analyzing the earth's response to artificially stimulated seismic waves. It is an important technology in the field of geophysical exploration. Seismic exploration technology is usually used to identify underground geological structures to help relevant personnel find geological mineral resources such as oil, natural gas resources, and solid resources. Before measuring seismic exploration data, it is necessary to first determine the layout of the shot check points for artificially stimulating seismic waves.
[0052] Currently, seismic exploration technology is the technology that describes the location of shot points, receiver points, and the relationship between them. In actual application, the exploration area where shot points and receiver points need to be deployed can reach thousands of square kilometers. In related technologies, both shot points and receiver points are deployed in the same way, and are evenly distributed throughout the entire exploration area, with the distance between two adjacent shot points or two adjacent receiver points being the same. However, within the exploration area, due to factors such as surface characteristics and topography, some areas are not suitable for the deployment of shot and receiver points, especially in complex urban areas and areas with large and drastic surface elevation differences. Therefore, how to determine the deployment area of shot and receiver points to facilitate construction is an urgent problem that needs to be solved.
[0053] In order to solve the technical problems existing in the related art, the embodiment of the present application provides a method for determining the layout location of the blasting inspection point, which can determine the layout area of the blasting inspection point to better meet construction needs.
[0054] Figure 1 This is a flow chart of a method for determining the placement of gun inspection points provided in an embodiment of the present application. Figure 1 The method is executed by a computer and comprises the following steps:
[0055] Step 101: Divide the area to be deployed to obtain at least one target area.
[0056] Among them, the area to be deployed corresponds to multiple target influencing factors.
[0057] Since the area of the area to be deployed may be large, when determining the placement positions of the gun inspection points in the area to be deployed, it is necessary to first divide the area to be deployed, that is, to refine the area to be deployed.
[0058] Optionally, the area to be deployed may be divided into grids, that is, the area to be deployed is divided into grids, and each grid corresponds to a target area.
[0059] In some embodiments, this step specifically includes: obtaining the azimuth angle of the area to be deployed; dividing the area to be deployed along the azimuth angle to obtain at least one target area.
[0060] Dividing the area to be deployed according to its azimuth angle can ensure that the shape and area of each target area obtained by division are roughly equal, and avoid the appearance of redundant small areas of irregular shape after the area to be deployed is divided.
[0061] In the embodiment of the present application, the target area is a rectangular area. When the azimuth angle is 30°, the side lengths of the target area can be 60m and 180m respectively.
[0062] In some embodiments, target influencing factors include, but are not limited to, surface characteristics, topography, slope, ambient noise, structural morphology, reservoir size, wave group characteristics, and fault characteristics. Of course, target influencing factors may also include other factors, which are not specifically limited here.
[0063] In an embodiment of the present application, the target influencing factors include multiple slope levels and multiple noise levels, wherein the multiple slope levels include a first-level slope with a slope value less than or equal to 10°, a second-level slope with a slope value greater than 10° and less than or equal to 20°, a third-level slope with a slope value greater than 20° and less than or equal to 30°, a fourth-level slope with a slope value greater than 30° and less than or equal to 40°, and a fifth-level slope with a slope value greater than 40°; the multiple noise levels include a first-level noise with a noise value less than or equal to 10μV, a second-level noise with a noise value greater than 10μV and less than or equal to 40μV, and a third-level noise with a noise value greater than 40μV.
[0064] Step 102 : For each target area, obtain the area occupied by each target influencing factor and the weight value of each target influencing factor, and obtain a layout value distribution map based on the area occupied by each target influencing factor and the weight value of each target influencing factor.
[0065] By determining a layout value distribution map for each target area, the layout position of the gun inspection point in each target area is determined based on the layout value distribution map.
[0066] It is understandable that, in actual use, the layout positions of the gun detection points are determined first, and then the layout positions of the detection points are determined.
[0067] In some embodiments, obtaining the area occupied by each target influencing factor and the weight value of each target influencing factor includes: determining the area occupied by each target influencing factor based on the value of each target influencing factor; obtaining the correspondence between the influencing factor and the weight value; searching for the weight value corresponding to each target influencing factor in the correspondence between the influencing factor and the weight value to obtain the weight value of each target influencing factor.
[0068] Since the correspondence between influencing factors and weight values is known and stored in the computer, the target influencing factors belong to the influencing factors. Therefore, by looking up the weight value corresponding to each target influencing factor in the correspondence between influencing factors and weight values, the weight value of each target influence can be obtained.
[0069] For example, the weight value corresponding to the first level slope can be 0.4, the weight value corresponding to the second level slope can be 0.3, the weight value corresponding to the third level slope can be 0.2, the weight value corresponding to the fourth level slope can be 0.1, and the weight value corresponding to the fifth level slope can be 0. The weight value corresponding to the first level noise can be 0.6, the weight value corresponding to the second level noise can be 0.4, and the weight value corresponding to the third level noise can be 0.
[0070] In some embodiments, based on the area occupied by each target influencing factor and the weight value of each target influencing factor, obtaining a layout value distribution map includes: dividing the target area based on the area occupied by each target influencing factor to obtain multiple target sub-areas; based on the multiple target sub-areas and the weight value of each target influencing factor, obtaining a layout value distribution map.
[0071] That is, the layout value distribution map is composed of multiple target sub-areas.
[0072] For example, see Figure 2 and Figure 3, where Figure 2 FIG3 is a distribution diagram of the layout value of a gun inspection point provided in an embodiment of the present application, and FIG4 is another distribution diagram of the layout value of a gun inspection point provided in an embodiment of the present application. Based on the area occupied by each target influencing factor, the target area is divided to obtain multiple target sub-areas in the following manner: when the target influencing factors are the first-level slope, the second-level slope, the first-level noise and the second-level noise, for the slope attribute of the target area, as shown in FIG3(a), the area occupied by the first-level slope is the area where x1 is located, and the area occupied by the second-level slope is the area where x2 is located; for the noise attribute of the target area, as shown in FIG3(b), the area occupied by the first-level noise is the area where y1 is located, and the area occupied by the second-level noise is the area where y2 is located; when dividing the target area, Figure 3(a) and 3(b) By superimposing them, a schematic diagram of a target area including multiple target sub-areas is obtained as shown in FIG3( c ).
[0073] In some embodiments, based on multiple target sub-areas and the weight value of each target influencing factor, obtaining a layout value distribution map specifically includes: obtaining the area of each target sub-area and the weight ratio of each target influencing factor; determining the layout value of each target sub-area based on the weight value of each target influencing factor, the area of each target sub-area and the weight ratio of each target influencing factor; assigning the layout value of each target sub-area to the target sub-area to determine the layout value distribution map.
[0074] Since the layout value needs to be calculated based on the area of each target sub-area, the weight ratio of each target influencing factor and the weight value of each target influencing factor, after obtaining the layout value, the layout value of each target sub-area is assigned to the target sub-area accordingly, thereby obtaining a layout value distribution map. The layout value distribution map can intuitively reflect the distribution of layout values in the target area, thereby helping relevant personnel to accurately select the layout location of the gun inspection point.
[0075] In some embodiments, the layout value of the target sub-area is obtained according to the following formula:
[0076] f m =aS m A i +bS m B j +…+nS m N k (i,j,…,k≤5), when A i ,B j ,…,N k All ≠ 0;
[0077] f m =0, when A i ,B j ,…,N k Any weight value in = 0;
[0078] Among them, f m is the layout value of the target sub-area; A i ,B j ,…,N k is the weight value of each target influencing factor; a, b, ..., n are the weight proportions of each target influencing factor, where a + b + ... + n = 1; S m is the area of the target sub-region.
[0079] For example, when there are two target areas and the target influencing factors are the first-level slope, the second-level slope, and the third-level slope, the weight of each target influencing factor is 1. Figure 2 The target area on the left side of the figure includes the target influencing factors of the first level slope and an area of 3240m 2 The S1 target sub-area and target influencing factors are the third-level slope and the area is 7560m 2 The target area on the right contains the target influencing factor of the first-level slope and an area of 4320m 2 The S1 target sub-area and target influencing factors are the second-level slope and the area is 6480m 2For the S2 target sub-area, if the number of target areas is not 1 and the number of shot checkpoints is less than the number of target areas, it is necessary to first determine the target area with the largest total layout value. The total layout value of the target area on the left is:
[0080] f=a1S1+a3S2=0.4×3240+0.2×7560=2808;
[0081] The total placement value for the target area on the right is:
[0082] f=a1S3+a2S4=0.4×4320+0.3×6480=3768.
[0083] When the number of target areas is 1 but the target influencing factors include multiple slope levels and multiple noise levels, the weight of each slope level can be 0.7, and the weight of each noise level can be 0.3. 2 The target influencing factors are the third-level slope and the first-level noise f1 target sub-area, with an area of 3240m 2 , the target influencing factors are the f2 target sub-area with the first-level slope and the first-level noise, and the f3 target sub-area and the f4 target sub-area with a weight value of 0 corresponding to at least one target influencing factor. The layout values of each target sub-area are as follows:
[0084] f1=aS x1 A3+bS x1 B1=0.7×(2160×0.2)+0.3×(2160×0.6)=691.2;
[0085] f2=aS x2 A1+bS x2 B1=0.7×(3240×0.4)+0.3×(3240×0.6)=1490.4;
[0086] f3=aS x3 A3+bS x3 B3=0;
[0087] f4=aS x4 A1+bS x4 B3=0.
[0088] Step 103 : Determine the placement positions of the shot check points in the area to be placed based on the placement value distribution map of each target area.
[0089] That is to say, after obtaining the layout value distribution map of each target area, the layout position of the gun inspection point in the layout area can be determined.
[0090] In some embodiments, step 103 specifically includes: determining, according to a distribution map of placement values of each target area, a target sub-area with the largest placement value in each target area as the placement location of the shot check point in the area to be placed.
[0091] That is, the target sub-region with the largest layout value in each target region is determined according to the layout value distribution map of each target region, and the target sub-region with the largest layout value is the most suitable position for arranging the gun inspection point in the target region.
[0092] In some embodiments, step 103 includes two possible implementations:
[0093] In one possible implementation, when the number of target areas is greater than the number of gun inspection points to be deployed, the maximum values of the layout values of the target sub-areas in the layout value distribution map of the target area are arranged in descending order, and multiple target areas with the same number as the gun inspection points to be deployed are determined, and based on the layout value distribution maps corresponding to the multiple target areas, the layout positions of the gun inspection points in the multiple target areas are determined as the layout positions of the gun inspection points in the areas to be deployed.
[0094] When the number of target areas is greater than the number of artillery checkpoints to be deployed, it is not possible to deploy artillery checkpoints in every target area. Therefore, it is necessary to select target areas with larger deployment values to deploy artillery checkpoints. After selecting the appropriate target areas based on the size relationship of the total deployment value, the sub-area with the largest deployment value is selected according to the deployment value distribution map corresponding to each target area, thereby completing the determination of the deployment location of the artillery checkpoints. For example, see Figure 2 , when the number of gun checkpoints is 1, the target area on the right is the target area where the gun checkpoints are placed, and the f2 target sub-area in Figure 3 is the target sub-area where the gun checkpoints are placed.
[0095] In another possible implementation, when the number of target areas is less than or equal to the number of artillery inspection points to be deployed, the deployment positions of the artillery inspection points in the target areas are determined as the deployment positions of the artillery inspection points in the deployment areas based on the deployment value distribution map of each target area.
[0096] When the number of gun checkpoints is the same as or greater than the number of target areas, each target area can be assigned to a gun checkpoint. Therefore, there is no need to calculate the total layout value of each target area. The layout position of the gun checkpoint can be determined directly based on the layout value distribution map of each target area.
[0097] Therefore, the method for determining the layout position of artillery checkpoints provided in the embodiment of the present application first divides the area to be laid out to determine the target area, and then for each target area, uses the weight value of the target influencing factors affecting the layout of artillery checkpoints and the area occupied by each target influencing factor to obtain a weight value distribution map, and determines the layout position of the artillery checkpoints in the area to be laid out based on the layout value distribution map of each target area, so that the layout of the artillery checkpoints is no longer uniform, but selectively laid out based on the target influencing factors. Since this method incorporates the target influencing factors and their corresponding weights, the determined layout position of the artillery checkpoints is more suitable for artillery checkpoint layout and better meets construction needs.
[0098] Figure 4 This is a schematic diagram of a structure of a device for determining the location of a gun inspection point provided in an embodiment of the present application, see Figure 4 , the apparatus 400 comprises:
[0099] The first obtaining module 401 is used to divide the area to be deployed to obtain at least one target area, and the area to be deployed corresponds to multiple target influencing factors;
[0100] The second obtaining module 402 is configured to obtain, for each target area, the area occupied by each target influencing factor and the weight value of each target influencing factor, and obtain a layout value distribution map based on the area occupied by each target influencing factor and the weight value of each target influencing factor;
[0101] The determination module 403 is configured to determine the placement positions of the shot check points in the area to be placed based on the placement value distribution map of each target area.
[0102] In some embodiments, the second obtaining module includes:
[0103] A first determination submodule is configured to determine the area occupied by each target influencing factor according to the value of each target influencing factor;
[0104] The first acquisition submodule is used to obtain the corresponding relationship between the influencing factors and the weight values;
[0105] The first obtaining submodule is used to find the weight value corresponding to each target influencing factor in the corresponding relationship between the influencing factors and the weight values, and obtain the weight value of each target influencing factor.
[0106] In some embodiments, the second obtaining module further comprises:
[0107] The second submodule is used to divide the target area based on the area occupied by each target influencing factor to obtain multiple target sub-areas;
[0108] The third obtaining submodule is used to obtain a layout value distribution map based on multiple target sub-areas and the weight value of each target influencing factor.
[0109] In some embodiments, the second obtaining module further comprises:
[0110] The second acquisition submodule is used to obtain the area of each target sub-region and the weight ratio of each target influencing factor;
[0111] A second determination submodule is configured to determine a layout value for each target subregion based on a weight value of each target influencing factor, an area of each target subregion, and a weight ratio of each target influencing factor;
[0112] The third determining submodule is configured to assign the layout value of each target sub-region to the target sub-region to determine a layout value distribution map.
[0113] In some embodiments, the layout value of the target sub-area is obtained according to the following formula:
[0114] f m =aS m A i +bS m B j +…+nS m N k (i,j,…,k≤5), when A i ,B j ,…,N k All ≠ 0;
[0115] f m =0, when A i ,B j ,…,N k Any weight value in = 0;
[0116] Among them, f m is the layout value of the target sub-area; A i ,B j ,…,N k is the weight value of each target influencing factor; a, b, ..., n are the weight proportions of each target influencing factor, where a + b + ... + n = 1; S m is the area of the target sub-region.
[0117] In some embodiments, the determining module includes:
[0118] The fourth determination submodule is used to arrange the maximum layout values of the target sub-areas in the layout value distribution map of the target area in descending order when the number of target areas is greater than the number of artillery inspection points to be deployed, to determine multiple target areas with the same number as the artillery inspection points to be deployed, and based on the layout value distribution maps corresponding to the multiple target areas, to determine the layout positions of the artillery inspection points in the multiple target areas as the layout positions of the artillery inspection points in the areas to be deployed.
[0119] The fifth determination submodule is used to determine the layout position of the gun inspection point in the target area as the layout position of the gun inspection point in the layout area based on the layout value distribution map of each target area when the number of target areas is less than or equal to the number of gun inspection points to be deployed.
[0120] In some embodiments, the first obtaining module includes:
[0121] The third acquisition submodule is used to obtain the azimuth of the area to be deployed;
[0122] The fourth obtaining submodule is used to divide the area to be deployed along the azimuth angle to obtain at least one target area.
[0123] In some embodiments, the target influencing factors include multiple slope levels and multiple noise levels, wherein the multiple slope levels include a first-level slope with a slope value less than or equal to 10°, a second-level slope with a slope value greater than 10° and less than or equal to 20°, a third-level slope with a slope value greater than 20° and less than or equal to 30°, a fourth-level slope with a slope value greater than 30° and less than or equal to 40°, and a fifth-level slope with a slope value greater than 40°; the multiple noise levels include a first-level noise with a noise value less than or equal to 10μV, a second-level noise with a noise value greater than 10μV and less than or equal to 40μV, and a third-level noise with a noise value greater than 40μV.
[0124] Therefore, the device for determining the layout position of artillery check points provided in the embodiment of the present application first divides the area to be laid out to determine the target area, and then for each target area, uses the weight value of the target influencing factors affecting the layout of artillery check points and the area occupied by each target influencing factor to obtain a weight value distribution map, and determines the layout position of the artillery check points in the area to be laid out based on the layout value distribution map of each target area, so that the layout of the artillery check points is no longer uniform, but selectively arranged based on the target influencing factors. Since this method incorporates the target influencing factors and their corresponding weights, the determined layout position of the artillery check points is more suitable for artillery check point layout and better meets construction needs.
[0125] An embodiment of the present application also provides a non-volatile readable storage medium, which stores at least one program, and the at least one program is loaded and executed by a processor to implement the method for determining the location of artillery checkpoints as included in any embodiment of the method for determining the location of artillery checkpoints provided in the embodiments of the present application.
[0126] In this application, the terms "first" and "second" are used for descriptive purposes only and should not be understood as indicating or implying relative importance. The term "plurality" refers to two or more than two, unless expressly limited otherwise.
[0127] Those skilled in the art will readily appreciate other embodiments of the present invention after considering the specification and practicing the present invention disclosed herein. This application is intended to cover any variations, uses, or adaptations of the present invention that follow the general principles of the present invention and include common knowledge or customary techniques in the art not disclosed herein. The description and examples are to be considered as exemplary only.
[0128] It should be understood that the present application is not limited to the exact structures described above and shown in the drawings, and that various modifications and changes may be made without departing from the scope thereof. The scope of the present application is limited only by the appended claims.
Claims
1. A method for determining the layout position of gun inspection points, characterized in that: The method comprises: Divide the area to be deployed to obtain at least one target area, wherein the area to be deployed corresponds to multiple target influencing factors; For each target area, obtaining the area occupied by each target influencing factor and the weight value of each target influencing factor, and obtaining a layout value distribution map based on the area occupied by each target influencing factor and the weight value of each target influencing factor; Based on the layout value distribution map of each target area, the layout positions of the shot inspection points in the area to be deployed are determined.
2. The method for determining the layout position of the gun inspection point according to claim 1, characterized in that: The step of obtaining the area occupied by each target influencing factor and the weight value of each target influencing factor includes: According to the value of each target influencing factor, determine the area occupied by each target influencing factor; Obtain the corresponding relationship between influencing factors and weight values; The weight value corresponding to each target influencing factor is searched in the correspondence between the influencing factors and the weight values to obtain the weight value of each target influencing factor.
3. The method for determining the layout position of the gun inspection point according to claim 1 or 2, characterized in that: The obtaining of a layout value distribution map based on the area occupied by each target influencing factor and the weight value of each target influencing factor includes: Dividing the target area based on the area occupied by each target influencing factor to obtain multiple target sub-areas; The layout value distribution map is obtained based on the multiple target sub-areas and the weight value of each target influencing factor.
4. The method for determining the layout position of the gun inspection point according to claim 3, characterized in that: The obtaining of the layout value distribution map based on the multiple target sub-areas and the weight value of each target influencing factor includes: Obtain the area of each target sub-region and the weight ratio of each target influencing factor; Determining a layout value for each target sub-area based on the weight value of each target influencing factor, the area of each target sub-area, and the weight ratio of each target influencing factor; The layout value of each target sub-region is assigned to the target sub-region accordingly to determine the layout value distribution map.
5. The method for determining the layout position of the gun inspection point according to claim 4, characterized in that: The layout value of the target sub-area is obtained according to the following formula: f m = aS m A i + bS m B j + … + nS m N k (i, j, …, k ≤ 5), when A i , B j , …, N k are all ≠ 0; f m =0, when A i ,B j ,…,N k Any weight value in = 0; Among them, f m A is the layout value of the target sub-area; i ,B j ,…,N k is the weight value of each target influencing factor; a, b, ..., n are the weight proportions of each target influencing factor, where a + b + ... + n = 1; S m is the area of the target sub-region.
6. The method for determining the placement of gun inspection points according to claim 4, wherein: The determining of the placement positions of the gun inspection points in the to-be-placed area based on the placement value distribution map of each target area includes: In the case where the number of target areas is greater than the number of gun check points to be deployed, the maximum values of the target sub-areas in the target area's deployment value distribution map are arranged in descending order, and a plurality of target areas having the same number as the gun check points to be deployed are determined, and based on the deployment value distribution maps corresponding to the plurality of target areas, the deployment positions of the gun check points in the plurality of target areas are determined as the deployment positions of the gun check points in the area to be deployed; When the number of target areas is less than or equal to the number of shot inspection points to be deployed, the deployment positions of the shot inspection points in the target areas are determined as the deployment positions of the shot inspection points in the deployment areas based on the deployment value distribution map of each target area.
7. The method for determining the placement of gun inspection points according to claim 1, wherein: The dividing the area to be deployed to obtain at least one target area includes: Obtaining the azimuth of the area to be deployed; The area to be deployed is divided along the azimuth angle to obtain the at least one target area.
8. The method for determining the placement of gun inspection points according to claim 1, wherein: The target influencing factors include multiple slope levels and multiple noise levels, wherein the multiple slope levels include a first-level slope with a slope value less than or equal to 10°, a second-level slope with a slope value greater than 10° and less than or equal to 20°, a third-level slope with a slope value greater than 20° and less than or equal to 30°, a fourth-level slope with a slope value greater than 30° and less than or equal to 40°, and a fifth-level slope with a slope value greater than 40°; the multiple noise levels include a first-level noise with a noise value less than or equal to 10μV, a second-level noise with a noise value greater than 10μV and less than or equal to 40μV, and a third-level noise with a noise value greater than 40μV.
9. A device for determining the location of gun inspection points, characterized in that: The device comprises: A first obtaining module is configured to divide the area to be deployed into at least one target area, wherein the area to be deployed corresponds to a plurality of target influencing factors; The second obtaining module is used to obtain, for each target area, the area occupied by each target influencing factor and the weight value of each target influencing factor, and obtain a layout value distribution map based on the area occupied by each target influencing factor and the weight value of each target influencing factor; The determination module is used to determine the layout position of the gun inspection point in the area to be deployed based on the layout value distribution map of each target area.
10. A non-volatile readable storage medium, characterized in that: The non-volatile readable storage medium stores at least one program, and the at least one program is loaded and executed by the processor to implement the method for determining the layout position of the gun inspection point according to any one of claims 1 to 8.
Citation Information
Patent Citations
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