Subatomic field-based mineral resource exploration method, apparatus, device, and medium
By acquiring and processing subatomic radiation images, filtering, and coordinate transformation techniques, the problem of low accuracy in mineral resource exploration has been solved, enabling deeper and more accurate mineral resource location.
Patent Information
- Application Number
- CN202410725846.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-05
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2044-06-05
AI Technical Summary
The accuracy of existing mineral resource exploration is not high, making it difficult to accurately locate underground mineral resources.
By acquiring subatomic radiation images within a pre-defined mineral deposit area, filtering is performed to extract subatomic signals of the target material. Coordinate transformation is then performed to determine the location information of the medium mapping area, and based on this, the coordinates of the exploration point are determined for mineral exploration.
It improves the depth and accuracy of mineral resource exploration, enabling more precise location of underground mineral resources.
Smart Images

Figure CN118566995B_ABST
Abstract
Description
Technical Field
[0001] The embodiments of this disclosure relate to the field of mineral exploration technology, and more specifically, to a method, apparatus, equipment, and medium suitable for mineral resource exploration based on a subatomic field. Background Technology
[0002] With the advent of economic globalization and the rapid development of the national economy, the demand for mineral resources has become increasingly large, thus forcing the continuous change and improvement of mineral geological exploration and prospecting technologies.
[0003] In related technologies, mineral resource exploration is mainly based on infrared image search to locate mineral resource sediments. For example, infrared space photography can be used to continuously scan the research area, simultaneously scanning the Earth's surface and recording infrared signal radiation in the micrometer wavelength range. The received infrared signals are then processed to locate mineral resources.
[0004] However, the accuracy of mineral resource exploration is not high in the existing methods. Summary of the Invention
[0005] The embodiments described herein provide a method, apparatus, equipment, and medium for mineral resource exploration based on a subatomic field, overcoming the aforementioned problems.
[0006] Firstly, according to the content of this disclosure, a mineral resource exploration method based on a subatomic field is provided, including:
[0007] Obtain subatomic radiation images within a preset mineral deposit area, wherein the subatomic radiation images within the preset mineral deposit area include: image data containing only subatomic signals corresponding to all mineral resources included in the preset mineral deposit area;
[0008] The subatomic radiation image in the preset mineral deposit area is filtered to obtain the subatomic radiation image corresponding to the target material, wherein the target material is one of the mineral resources, and the subatomic radiation image corresponding to the target material includes: image data corresponding to the target material that only has subatomic signals;
[0009] The subatomic radiation image corresponding to the target material is transformed by coordinate transformation to obtain the position information of the medium mapping region corresponding to the target material. The position information of the medium mapping region corresponding to the target material includes the position coordinates of all mapping points within the medium mapping region corresponding to the target material.
[0010] Based on the location information of the medium mapping area corresponding to the target material, the coordinates of the exploration point corresponding to the target material are determined, so as to carry out mineral exploration of the target material based on the coordinates of the exploration point.
[0011] Secondly, according to the present disclosure, a mineral resource exploration device based on a subatomic field is provided, comprising:
[0012] The acquisition module is used to acquire subatomic radiation images within a preset mineral deposit area. The subatomic radiation images within the preset mineral deposit area include image data containing only subatomic signals corresponding to all mineral resources included in the preset mineral deposit area.
[0013] The processing module is used to filter the subatomic radiation image in the preset mineral deposit area to obtain the subatomic radiation image corresponding to the target material, wherein the target material is one of the mineral resources, and the subatomic radiation image corresponding to the target material includes: image data corresponding to the target material that only has subatomic signals;
[0014] The conversion module is used to perform coordinate transformation on the subatomic radiation image corresponding to the target material to obtain the position information of the medium mapping region corresponding to the target material. The position information of the medium mapping region corresponding to the target material includes the position coordinates of all mapping points within the medium mapping region corresponding to the target material.
[0015] The determination module is used to determine the coordinates of the exploration point corresponding to the target material based on the location information of the medium mapping area corresponding to the target material, so as to conduct mineral exploration of the target material based on the coordinates of the exploration point.
[0016] Thirdly, a computer device is provided, including a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement the steps of the mineral resource exploration method based on subatomic fields as described in any of the above embodiments.
[0017] Fourthly, a computer-readable storage medium is provided, on which a computer program is stored, and when executed by a processor, the computer program implements the steps of the mineral resource exploration method based on subatomic fields as described in any of the above embodiments.
[0018] The subatomic field-based mineral resource exploration method provided in this application acquires subatomic radiation images within a preset mineral deposit area. These images include image data containing only subatomic signals corresponding to all mineral resources within the preset deposit area. The subatomic radiation images within the preset deposit area are filtered to obtain subatomic radiation images corresponding to a target material, which is a mineral resource. The subatomic radiation images corresponding to the target material include image data containing only subatomic signals corresponding to the target material. Coordinate transformation is performed on the subatomic radiation images corresponding to the target material to obtain location information of the medium mapping area corresponding to the target material. This location information includes the coordinates of all mapping points within the medium mapping area. Based on the location information of the medium mapping area corresponding to the target material, the coordinates of exploration points corresponding to the target material are determined, and mineral exploration is conducted based on these coordinates. Thus, by scanning regional radiation images of the subatomic field, the occurrence of target materials deep within the Earth's surface is detected, thereby locating the mineral resources and effectively improving the exploration depth and accuracy of mineral resources.
[0019] The above description is merely an overview of the technical solutions of the embodiments of this application. In order to better understand the technical means of the embodiments of this application and to implement them in accordance with the contents of the specification, and to make the above and other objects, features and advantages of the embodiments of this application more obvious and understandable, specific implementation methods of this application are described below. Attached Figure Description
[0020] To more clearly illustrate the technical solutions of the embodiments of this disclosure, the accompanying drawings of the embodiments will be briefly described below. It should be understood that the drawings described below only relate to some embodiments of this disclosure and are not intended to limit this disclosure, wherein:
[0021] Figure 1 This is a flowchart illustrating a mineral resource exploration method based on a subatomic field, as disclosed in this publication.
[0022] Figure 2A This is a flowchart of a subatomic radiation pattern processing method provided in this disclosure.
[0023] Figure 2B This is a processing block diagram of another subatomic radiation map provided in this disclosure.
[0024] Figure 2C This is a schematic diagram of the structure of a camera device disclosed herein.
[0025] Figure 2D This is another processing block diagram of subatomic radiation patterns provided in this disclosure.
[0026] Figure 2EThis is a schematic diagram of the structure of a subatomic indicator provided in this disclosure.
[0027] Figure 3 This is a schematic diagram of a mineral resource exploration device based on a subatomic field, which is disclosed in this publication.
[0028] Figure 4 This is a schematic diagram of the structure of a computer device provided in this disclosure.
[0029] It should be noted that the elements in the attached diagram are schematic and not drawn to scale. Detailed Implementation
[0030] To make the objectives, technical solutions, and advantages of the embodiments of this disclosure clearer, the technical solutions of the embodiments of this disclosure will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some, not all, of the embodiments of this disclosure. All other embodiments obtained by those skilled in the art based on the described embodiments of this disclosure without creative effort are also within the scope of protection of this disclosure.
[0031] Unless otherwise defined, all terms used herein (including technical and scientific terms) shall have the same meaning as commonly understood by one of ordinary skill in the art to which this subject matter pertains. It will be further understood that terms such as those defined in commonly used dictionaries shall be interpreted as having the meaning consistent with their meaning in the context of the specification and in the relevant art, and shall not be interpreted in an idealized or overly formal form unless otherwise explicitly defined herein. As used herein, the statement of “connecting” or “coupling” two or more parts together shall mean that these parts are directly joined together or joined through one or more intermediate components.
[0032] The term "embodiment" as used herein means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of the phrase "embodiment" in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein can be combined with other embodiments.
[0033] In this document, the term "and / or" is merely a description of the relationship between related objects, indicating that three relationships can exist. For example, A and / or B can mean: A exists, A and B exist simultaneously, or B exists. Additionally, the character " / " generally indicates that the preceding and following related objects have an "or" relationship. Terms such as "first" and "second" are only used to distinguish one component (or part of a component) from another component (or another part of a component).
[0034] In the description of this application, unless otherwise stated, "multiple" means two or more (including two), and similarly, "multiple groups" means two or more (including two groups).
[0035] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings.
[0036] Figure 1 This is a schematic flowchart of a mineral resource exploration method based on a subatomic field provided in this disclosure embodiment, as shown below. Figure 1 As shown, the specific process of the mineral resource exploration method based on subatomic fields includes:
[0037] S110. Obtain subatomic radiation images within the preset ore deposit area.
[0038] The subatomic radiation image within the preset mineral deposit area includes image data of all mineral resources within the preset mineral deposit area that have only subatomic signals.
[0039] The preset mineral deposit area is a geological region for mineral exploration research. This area may include various mineral resources, such as oil, natural gas, rocks, and water. Correspondingly, the subatomic radiation image within the preset mineral deposit area includes fused data of image data containing only subatomic signals corresponding to various mineral resources.
[0040] In some embodiments, acquiring subatomic radiation images within a predetermined ore deposit area includes:
[0041] Acquire the full signal image captured by the first camera device; acquire the full electromagnetic signal image captured by the second camera device; based on the full signal image captured by the first camera device and the electromagnetic signal image captured by the second camera device, determine the subatomic radiation image within the preset ore deposit area.
[0042] The full signal image includes: image data with subatomic signals and image data with electromagnetic signals corresponding to all mineral resources within the preset deposit area.
[0043] The full electromagnetic signal image includes: image data containing only electromagnetic signals corresponding to all mineral resources within the preset deposit area.
[0044] The first camera device is an unfiltered camera device, capable of acquiring image data of all signals related to mineral resources. The second camera device is a filtered camera device; by filtering out subatomic signals, it acquires image data containing only electromagnetic signals.
[0045] Determining the subatomic radiation image within a preset ore deposit area based on the full-signal image acquired by the first camera device and the electromagnetic signal image acquired by the second camera device may include: deleting the image data corresponding to the electromagnetic signal image acquired by the second camera device from the full-signal image acquired by the first camera device to obtain the subatomic radiation image within the preset ore deposit area. This facilitates the efficient acquisition of image data containing only subatomic signals.
[0046] In other embodiments, acquiring subatomic radiation images within a predetermined ore deposit area includes:
[0047] Electromagnetic signal shielding is performed on the third camera device to reduce the amount of image data acquired by the film of the third camera device that contains electromagnetic signals; sub-electromagnetic signal images are acquired by the third camera device; electromagnetic signal removal is performed on the sub-electromagnetic signal images to obtain subatomic radiation images within a preset deposit area. The electromagnetic signal removal operation is used to describe the removal of image data containing electromagnetic signals from the sub-electromagnetic signal images.
[0048] The sub-electromagnetic signal image includes: image data of all mineral resources within the preset deposit area that have subatomic signals, and image data of electromagnetic signals with a data volume not exceeding a preset threshold. In other words, the sub-electromagnetic signal image includes: image data of all mineral resources within the preset deposit area that have subatomic signals, and image data of a small / micro-quantity of electromagnetic signals.
[0049] It is understandable that after electromagnetic signal shielding is performed on the third camera device, in order to avoid the image data acquired by the third camera device still containing electromagnetic signal image data, electromagnetic signal removal is performed on the sub-electromagnetic signal image acquired by the third camera device to effectively remove electromagnetic data from the image data.
[0050] Therefore, by improving the filtering of camera equipment, it is easier to filter and process image data of electromagnetic signals, and effectively obtain image data with subatomic signals.
[0051] S120. Filter the subatomic radiation image in the preset mineral deposit area to obtain the subatomic radiation image corresponding to the target material.
[0052] The target material is a mineral resource, such as petroleum. The subatomic radiation image corresponding to the target material includes image data containing only subatomic signals.
[0053] Different mineral resources correspond to different reflected waves. After obtaining the subatomic radiation image in the preset mineral deposit area, the reflected waves other than the reflected waves of the target material are filtered to obtain a subatomic radiation image containing only the target material.
[0054] S130. Perform coordinate transformation on the subatomic radiation image corresponding to the target material to obtain the position information of the medium mapping region corresponding to the target material.
[0055] The location information of the medium mapping region corresponding to the target material includes: the location coordinates (i.e., two-dimensional coordinates) of all mapping points within the medium mapping region corresponding to the target material.
[0056] The medium mapping area corresponding to the target substance is the display area in the target display medium (such as an electronic map) after the position information of the target substance is transformed using the target coordinate system of the target display medium. That is, the medium mapping area corresponding to the target substance consists of multiple mapping points in the target display medium.
[0057] In some embodiments, coordinate transformation is performed on the subatomic radiation image corresponding to the target material to obtain the position information of the medium mapping region corresponding to the target material, including:
[0058] Obtain the target coordinate system corresponding to the target display medium; based on the target coordinate system corresponding to the target display medium, perform coordinate transformation on the subatomic radiation image corresponding to the target material to display the position information of the medium mapping area corresponding to the target material in the target display medium.
[0059] The target display medium is the medium through which the target material is mapped, and the medium mapping area is the position area of the target material in the target display medium after coordinate transformation.
[0060] It should be noted that there may be multiple areas with target substances within the preset mining area. Correspondingly, there will also be multiple independent media mapping areas containing target substances of different sizes in the target display medium.
[0061] Therefore, by performing coordinate system transformation on the position information of the target substance, it can be displayed in the target display medium, which facilitates the visualization of the position information of the target substance.
[0062] S140. Based on the location information of the medium mapping area corresponding to the target material, determine the coordinates of the exploration point corresponding to the target material.
[0063] Specifically, by using the location information of the medium mapping area corresponding to the target material, the coordinates of the exploration point corresponding to the target material are determined, so as to carry out mineral exploration of the target material based on the exploration point coordinates.
[0064] In some embodiments, each mapping point within the medium mapping region corresponding to the target material corresponds to a material radiation intensity. The material mapping intensity corresponding to each mapping point can effectively reflect the content of the target material contained in the geology at that point.
[0065] Based on the location information of the medium mapping region corresponding to the target material, the coordinates of the exploration point corresponding to the target material are determined, including:
[0066] Determine the maximum material radiation intensity among all mapping points within the medium mapping area corresponding to the target material; based on the position coordinates of the corresponding mapping point within the medium mapping area corresponding to the maximum material radiation intensity, determine the coordinates of the exploration point corresponding to the target material.
[0067] Specifically, determining the exploration point coordinates corresponding to the target substance based on the location coordinates of the corresponding mapping point within the medium mapping area corresponding to the target substance at the maximum material radiation intensity can include: determining the location coordinates of the corresponding mapping point within the medium mapping area corresponding to the target substance at the location coordinates of ... at the location coordinates of the target substance at the location coordinates of the corresponding mapping point within the medium mapping area corresponding to the target substance at the location coordinates of the target substance at the location coordinates of the target substance at the location coordinates of the target substance at the location coordinates of the target substance at the location coordinates of the location coordinates of the target substance at the location coordinates of the location coordinates of the target substance at the location coordinates of the location coordinates of the location coordinates of the target substance at the location coordinates of the location coordinates of the location coordinates of the target substance at the location coordinates of the location coordinates of the location coordinates of the target substance at the location coordinates of the location coordinates of the location coordinates of the target substance at the location coordinates of the location coordinates of the location coordinates of the location coordinates of the target substance at the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the target substance at the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates of the location coordinates
[0068] The subatomic field-based mineral resource exploration method provided in this application acquires subatomic radiation images within a preset mineral deposit area. These images include image data containing only subatomic signals corresponding to all mineral resources within the preset deposit area. The subatomic radiation images within the preset deposit area are filtered to obtain subatomic radiation images corresponding to a target material, which is a mineral resource. The subatomic radiation images corresponding to the target material include image data containing only subatomic signals corresponding to the target material. Coordinate transformation is performed on the subatomic radiation images corresponding to the target material to obtain location information of the medium mapping area corresponding to the target material. This location information includes the coordinates of all mapping points within the medium mapping area. Based on the location information of the medium mapping area corresponding to the target material, the coordinates of exploration points corresponding to the target material are determined, and mineral exploration is conducted based on these coordinates. Thus, by scanning regional radiation images of the subatomic field, the occurrence of target materials deep within the Earth's surface is detected, thereby locating the mineral resources and effectively improving the exploration depth and accuracy of mineral resources.
[0069] In some embodiments, the number of media mapping regions corresponding to the target material is multiple.
[0070] The method in this embodiment also includes:
[0071] Obtain the maximum material radiation intensity of the target material corresponding to each medium mapping region; based on the maximum material radiation intensity of the target material corresponding to each medium mapping region, determine an exploration recommendation list for the target material corresponding to multiple medium mapping regions; send the exploration recommendation list for the target material corresponding to multiple medium mapping regions to the associated equipment.
[0072] The exploration recommendation list arranges the coordinates of exploration points corresponding to target materials within each mapped region in descending order of maximum material radiation intensity. For example, the exploration recommendation list could arrange the coordinates of exploration points corresponding to target materials within each mapped region in descending order of maximum material radiation intensity.
[0073] Therefore, by sending the exploration recommendation list corresponding to multiple media mapping areas of the target material to the associated equipment, the processing personnel can intuitively see the ranking of the target material content from the exploration recommendation list in order to formulate an exploration plan.
[0074] In some embodiments, the method of this embodiment further includes:
[0075] Receive exploration identification information sent by associated devices based on the exploration recommendation list; based on the display position of each medium mapping area in the target display medium, mark the exploration sequence identifier of the corresponding medium mapping area in the auxiliary display area of the corresponding display position.
[0076] The exploration identification information includes: the exploration sequence identifier for each medium mapping area.
[0077] For example, if the target material corresponds to three media mapping regions, region A, region B, and region C, and the exploration sequence identifier of region A is 2, the exploration sequence identifier of region B is 3, and the exploration sequence identifier of region C is 1, then it means that when exploring the target material, region C will be mined first, followed by region A, and finally region B.
[0078] The auxiliary display area for the display location can be the area near the display location in the target display medium (such as the upper left corner, lower right corner, etc.). Thus, by updating the exploration sequence identifier of the corresponding medium mapping area to the target display medium, it is convenient to visualize the mining of the exploration area of the target material.
[0079] This embodiment achieves location by measuring the inherent radiation of the desired geological object (target material).
[0080] like Figure 2AAs shown, cameras a1 and a2 are used to acquire image data. Electromagnetic information and subatomic information are received along the channel of camera a1, while only electromagnetic information is received along the channel of camera a2. Computer a3 is connected to cameras a1 and a2 respectively and is used to process the image data acquired by cameras a1 and a2. Monitor a4 is connected to computer a3.
[0081] Additionally, it includes a subatomic active generator a5. The subatomic active generator consists of a generating and receiving subatomic inductor, which are interlocked. Its operating principle is as follows: a reference signal with a frequency of 50-70kHz comes from a master adjustable oscillator, which is loaded onto a generating subatomic inductor. The subatomic signal from the secondary winding of the generating inductor is fed to the secondary winding of the receiving inductor through a conductive channel. The generator operates in a tunable subatomic resonance mode at the frequency of the object under study.
[0082] The inherent radiation of a geological object is exposed onto a film. In this case, a generator excites the spectrum of the object under study, amplifying the signal. The thin film reveals the energy radiation of the desired object that was previously invisible, as if its visualization had occurred. In further processing, the obtained data is combined with geological maps and the coordinates of the object under study.
[0083] like Figure 2B As shown, the indicator b2 of a selective voltmeter b1 with a bandwidth of 1MHz is mounted on a scanning device b3. A generator b6 and an antenna b7 are located approximately 30 cm from a screen camera b5, with the spatial image b4 situated within them. The generator b6 and antenna b7 excite the spatial image; 15-20 minutes after the spatial image is captured by the camera, a pulse occurs within a frequency range below the generator frequency.
[0084] like Figure 2C As shown, the engine hood c2 is mounted on the camera c1 via a special ring, allowing it to rotate freely on the lens. A curved spiral tube c3, containing a mixture of boric acid and epoxy resin, is wound clockwise around the engine hood, with the inner end of the spiral tube c3 connected to the beginning of the spiral tube c3.
[0085] To power the camera and film, a cone-shaped component, C4, with a diameter of 3-4 cm, was mounted on the back of the camera. This cone was made of a mixture of copper oxide and iron with epoxy resin. At the base of the cone, equal in size to the frame, was a curved tube composed of a mixture of boric acid and epoxy resin.
[0086] During shooting, the image was highlighted by a powerful halogen lamp to optimize exposure. Thin-film processing was performed using an X-ray developer. After processing, the film revealed the energy formation of the object, which was not recorded in ordinary photography. Thus, the energy field of the desired object was visualized.
[0087] like Figure 2D As shown, a scanning device d1, a subatomic indicator d2, and a spatial image d3 are installed in the screen camera. The signal from the subatomic indicator d2 is input to a preamplifier d4, and then input to a computer a3 via a matched amplifier d5 and an analog-to-digital converter d6 to obtain data in the form of histograms, spectra, graphic information, etc., of the desired geological object.
[0088] like Figure 2E As shown, the subatomic indicator d2 is a stainless steel cone containing a container e1 containing the material of the object under study and an antenna e2 in the form of a planar helical coil.
[0089] Figure 3 This embodiment provides a schematic diagram of a mineral resource exploration device based on a subatomic field. The mineral resource exploration device based on a subatomic field may include: an acquisition module 310, a processing module 320, a conversion module 330, and a determination module 340.
[0090] The acquisition module 310 is used to acquire subatomic radiation images within a preset mineral deposit area. The subatomic radiation images within the preset mineral deposit area include image data of all mineral resources within the preset mineral deposit area that have only subatomic signals.
[0091] The processing module 320 is used to filter the subatomic radiation image in the preset mineral deposit area to obtain the subatomic radiation image corresponding to the target material. The target material is a mineral resource. The subatomic radiation image corresponding to the target material includes image data with only subatomic signals corresponding to the target material.
[0092] The conversion module 330 is used to perform coordinate transformation on the subatomic radiation image corresponding to the target material to obtain the position information of the medium mapping region corresponding to the target material. The position information of the medium mapping region corresponding to the target material includes the position coordinates of all mapping points within the medium mapping region corresponding to the target material.
[0093] The determination module 340 is used to determine the coordinates of the exploration point corresponding to the target material based on the location information of the medium mapping area corresponding to the target material, so as to carry out mineral exploration of the target material based on the coordinates of the exploration point.
[0094] In this embodiment, optionally, the conversion module 330 is specifically used for:
[0095] Obtain the target coordinate system corresponding to the target display medium, which is the medium through which the target material is mapped; based on the target coordinate system corresponding to the target display medium, perform coordinate transformation on the subatomic radiation image corresponding to the target material to display the position information of the medium mapping area corresponding to the target material in the target display medium; wherein, the medium mapping area is the position area of the target material in the target display medium after the coordinate transformation.
[0096] In this embodiment, optionally, each mapping point within the medium mapping region corresponding to the target material corresponds to a material radiation intensity.
[0097] Module 340 is specifically used for:
[0098] Determine the maximum material radiation intensity among all mapping points within the medium mapping area corresponding to the target material; based on the position coordinates of the corresponding mapping point within the medium mapping area corresponding to the maximum material radiation intensity, determine the coordinates of the exploration point corresponding to the target material.
[0099] In this embodiment, optionally, the acquisition module 310 is specifically used for:
[0100] Acquire a full-signal image from a first camera device, which includes image data with subatomic signals and electromagnetic signals corresponding to all mineral resources within a preset deposit area; acquire a full electromagnetic signal image from a second camera device, which includes image data with only electromagnetic signals corresponding to all mineral resources within the preset deposit area; and determine the subatomic radiation image within the preset deposit area based on the full-signal image from the first camera device and the electromagnetic signal image from the second camera device.
[0101] In this embodiment, optionally, the acquisition module 310 is specifically used for:
[0102] Electromagnetic signal shielding is applied to the third camera device to reduce the amount of electromagnetic signal image data acquired by the film of the third camera device; sub-electromagnetic signal images are acquired by the third camera device, which include: image data with subatomic signals corresponding to all mineral resources included in the preset deposit area, and image data of electromagnetic signals with a data volume not exceeding a preset threshold; electromagnetic signal removal operation is performed on the sub-electromagnetic signal images to obtain subatomic radiation images within the preset deposit area, and the electromagnetic signal removal operation is used to describe the removal of image data with electromagnetic signals included in the sub-electromagnetic signal images.
[0103] In this embodiment, optionally, the number of media mapping regions corresponding to the target material can be multiple.
[0104] It also includes: a sending module.
[0105] The acquisition module 310 is also used to acquire the maximum material radiation intensity of the target material corresponding to each medium mapping region.
[0106] The determination module 340 is also used to determine an exploration recommendation list for multiple medium mapping regions based on the maximum material radiation intensity of the target material corresponding to each medium mapping region. The exploration recommendation list is arranged in order of the magnitude of the maximum material radiation intensity of each mapping region, with the coordinates of the exploration points corresponding to the target material in each medium mapping region arranged in order.
[0107] The sending module is used to send an exploration recommendation list of target materials corresponding to multiple medium mapping areas to associated equipment.
[0108] In this embodiment, optionally, a receiving module and a tagging module are also included.
[0109] The receiving module is used to receive exploration identification information sent by associated devices based on the exploration recommendation list. The exploration identification information includes: the exploration sequence identifier of each medium mapping area;
[0110] The marking module is used to mark the exploration sequence of each media mapping area in the auxiliary display area of the corresponding display position based on the display position of each media mapping area in the target display medium.
[0111] The mineral resource exploration device based on subatomic fields provided in this disclosure can execute the above-described method embodiments. For its specific implementation principle and technical effects, please refer to the above-described method embodiments, which will not be repeated here.
[0112] This application also provides a computer device. Please refer to the following for details. Figure 4 , Figure 4 This is a basic structural block diagram of the computer device in this embodiment.
[0113] The computer device includes a memory 410 and a processor 420 that are communicatively connected to each other via a system bus. It should be noted that only a computer device with memory 410 and processor 420 is shown in the figure; however, it should be understood that it is not required to implement all the components shown, and more or fewer components may be implemented alternatively. Those skilled in the art will understand that the computer device described herein is a device capable of automatically performing numerical calculations and / or information processing according to pre-set or stored instructions, and its hardware includes, but is not limited to, microprocessors, application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), digital signal processors (DSPs), embedded devices, etc.
[0114] Computer devices can include desktop computers, laptops, handheld computers, and cloud servers. These devices allow for human-computer interaction with users through keyboards, mice, remote controls, touchpads, or voice-activated devices.
[0115] The memory 410 includes at least one type of readable storage medium, including non-volatile memory or volatile memory, such as flash memory, hard disk, multimedia card, card-type memory (e.g., SD or DX memory), random access memory (RAM), read-only memory (ROM), erasable programmable read-only memory (EPROM), electrically erasable programmable read-only memory (EEPROM), programmable read-only memory (PROM), magnetic memory, magnetic disk, optical disk, etc. RAM may include static RAM or dynamic RAM. In some embodiments, the memory 410 may be an internal storage unit of a computer device, such as the hard disk or RAM of the computer device. In other embodiments, the memory 410 may also be an external storage device of the computer device, such as a plug-in hard drive, Smart Media Card (SMC), Secure Digital (SD) card, or FlashCard. Of course, the memory 410 may include both internal and external storage units of the computer device. In this embodiment, the memory 410 is typically used to store the operating system and various application software installed on the computer device, such as the program code of the methods described above. Furthermore, the memory 410 may also be used to temporarily store various types of data that have been output or will be output.
[0116] Processor 420 is typically used to perform overall operations of a computer device. In this embodiment, memory 410 is used to store program code or instructions, including computer operation instructions, and processor 420 is used to execute the program code or instructions stored in memory 410 or process data, such as program code that runs the methods described above.
[0117] In this article, the bus can be an Industry Standard Architecture (ISA) bus, a Peripheral Component Interconnect (PCI) bus, or an Extended Industry Standard Architecture (EISA) bus, etc. This bus system can be divided into address bus, data bus, control bus, etc. For ease of illustration, only one thick line is used to represent it in the diagram, but this does not mean that there is only one bus or one type of bus.
[0118] Another embodiment of this application also provides a computer-readable medium, which may be a computer-readable signal medium or a computer-readable medium. A processor in a computer reads computer-readable program code stored in the computer-readable medium, enabling the processor to execute the functional actions specified in each step or combination of steps in the above method; and to generate means for implementing the functional actions specified in each block or combination of blocks in the block diagram.
[0119] Computer-readable media include, but are not limited to, electronic, magnetic, optical, electromagnetic, infrared memory or semiconductor systems, devices or apparatuses, or any suitable combination thereof, wherein the memory is used to store program code or instructions, the program code including computer operation instructions, and the processor is used to execute the program code or instructions of the above-described methods stored in the memory.
[0120] The definitions of memory and processor can be found in the description of the foregoing computer device embodiments, and will not be repeated here.
[0121] In the several embodiments provided in this application, it should be understood that the disclosed systems, apparatuses, and methods can be implemented in other ways. For example, the apparatus embodiments described above are merely illustrative; for instance, the division of modules or units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between apparatuses or units may be electrical, mechanical, or other forms.
[0122] In the various embodiments of this application, the functional units or modules can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit.
[0123] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of the technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes several instructions to cause a computer device (which may be a personal computer, server, or network device, etc.) or processor to execute all or part of the steps of the methods of the various embodiments of this application. The aforementioned storage medium includes various media capable of storing program code, such as USB flash drives, portable hard drives, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical disks.
[0124] In the claims, any reference signs placed between parentheses should not be construed as limiting the claims. The word "comprising" as described in this application does not exclude the presence of elements or steps not listed in the claims. The word "a" or "an" preceding an element does not exclude the presence of a plurality of such elements. This application can be implemented by means of hardware comprising several different elements and by means of a suitably programmed computer. In the unit claims listing several means, several units of these means may be embodied by the same item of hardware. The use of "first," "second," and "third," etc., does not indicate any order and these words should be interpreted as names. Unless otherwise specified, the steps in the above embodiments should not be construed as limiting the order of execution.
[0125] The above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application.
Claims
1. A method of mineral resource exploration based on subatomic field, characterized in that, The method comprises the steps of: obtaining subatomic radiation images in a preset mineral deposit area, wherein the subatomic radiation images in the preset mineral deposit area include image data of only subatomic signals corresponding to all mineral resources included in the preset mineral deposit area, and the mineral resources include oil, natural gas, rock, and water; filtering the subatomic radiation images in the preset mineral deposit area to obtain subatomic radiation images corresponding to a target substance, wherein the target substance is one of the mineral resources, and the subatomic radiation images corresponding to the target substance include image data of only subatomic signals corresponding to the target substance; performing coordinate conversion on the subatomic radiation images corresponding to the target substance to obtain position information of a medium mapping area corresponding to the target substance, wherein the position information of the medium mapping area corresponding to the target substance includes position coordinates of all mapping points in the medium mapping area corresponding to the target substance, and the coordinate conversion on the subatomic radiation images corresponding to the target substance to obtain the position information of the medium mapping area corresponding to the target substance comprises the following steps: obtaining a target coordinate system corresponding to a target display medium, wherein the target display medium is a medium for displaying mapping points of the target substance; and performing coordinate conversion on the subatomic radiation images corresponding to the target substance based on the target coordinate system corresponding to the target display medium, so as to display the position information of the medium mapping area corresponding to the target substance in the target display medium; wherein the medium mapping area is a position area of the target substance in the target display medium after coordinate conversion; determining exploration point coordinates corresponding to the target substance based on the position information of the medium mapping area corresponding to the target substance, so as to perform mineral exploration on the target substance based on the exploration point coordinates.
2. The method of claim 1, wherein, Each mapping point in the medium mapping area corresponding to the target substance corresponds to a substance radiation intensity. The determination of the exploration point coordinates corresponding to the target substance based on the position information of the medium mapping area corresponding to the target substance comprises the following steps: determining a maximum substance radiation intensity among the substance radiation intensities corresponding to all mapping points in the medium mapping area corresponding to the target substance; and determining the exploration point coordinates corresponding to the target substance based on position coordinates of a corresponding mapping point of the maximum substance radiation intensity in the medium mapping area corresponding to the target substance.
3. The method of claim 1, wherein, The obtaining of the subatomic radiation images in the preset mineral deposit area comprises the following steps: obtaining a full-signal image collected by a first camera device, wherein the full-signal image includes image data of subatomic signals and image data of electromagnetic signals corresponding to all mineral resources included in the preset mineral deposit area; obtaining a full-electromagnetic signal image collected by a second camera device, wherein the full-electromagnetic signal image includes image data of only electromagnetic signals corresponding to all mineral resources included in the preset mineral deposit area; determining the subatomic radiation images in the preset mineral deposit area based on the full-signal image collected by the first camera device and the electromagnetic signal image collected by the second camera device.
4. The method of claim 1, wherein, The subatomic radiation image in the preset ore deposit area is acquired, and the subatomic radiation image in the preset ore deposit area includes: The third camera device is subjected to electromagnetic signal shielding processing to reduce the number of image data collected by the film of the third camera device; The subatomic electromagnetic signal image collected by the third camera device is acquired, and the subatomic electromagnetic signal image includes image data corresponding to all mineral resources in the preset ore deposit area and image data of electromagnetic signals with a data amount not exceeding a preset threshold; The subatomic electromagnetic signal image is subjected to electromagnetic signal removal operation to obtain the subatomic radiation image in the preset ore deposit area, and the electromagnetic signal removal operation is used to remove image data with electromagnetic signals in the subatomic electromagnetic signal image.
5. The method of claim 2, wherein, The number of medium mapping areas corresponding to the targeted substance is multiple; The method further includes: The maximum substance radiation intensity corresponding to each medium mapping area of the targeted substance is acquired; Based on the maximum substance radiation intensity corresponding to each medium mapping area of the targeted substance, a prospecting recommendation list of the targeted substance corresponding to multiple medium mapping areas is determined, and the prospecting recommendation list is arranged in order according to the size relationship of the maximum substance radiation intensity corresponding to each medium mapping area. The prospecting recommendation list of the targeted substance corresponding to multiple medium mapping areas is sent to an associated device.
6. The method of claim 5, wherein, Further including: Receiving exploration identification information sent by the associated device based on the exploration recommendation list, the exploration identification information including exploration order identification of each medium mapping area; Based on the display position of each medium mapping area in the target display medium, the exploration order identification of the corresponding medium mapping area is marked in the auxiliary display area of the corresponding display position.
7. A mineral resource exploration device based on subatomic field, characterized in that, Including: An acquisition module is configured to acquire a subatomic radiation image in a preset ore deposit area, and the subatomic radiation image in the preset ore deposit area includes image data with only subatomic signals corresponding to all mineral resources in the preset ore deposit area; the mineral resources include oil, natural gas, rock, and water; A processing module is configured to perform filtering processing on the subatomic radiation image in the preset ore deposit area to obtain a subatomic radiation image corresponding to a targeted substance, the targeted substance being one of the mineral resources, and the subatomic radiation image corresponding to the targeted substance including image data with only subatomic signals corresponding to the targeted substance; The conversion module is configured to perform coordinate conversion on the subatomic radiation image corresponding to the targeted matter to obtain position information of a medium mapping region corresponding to the targeted matter, and the position information of the medium mapping region corresponding to the targeted matter includes position coordinates of all mapping points in the medium mapping region corresponding to the targeted matter. The conversion module is specifically configured to: obtain a target coordinate system corresponding to a target display medium, the target display medium being a medium for displaying mapping points of the targeted matter; perform coordinate conversion on the subatomic radiation image corresponding to the targeted matter based on the target coordinate system corresponding to the target display medium, to display the position information of the medium mapping region corresponding to the targeted matter in the target display medium; and the medium mapping region is a position region of the targeted matter in the target display medium after coordinate conversion. The determination module is configured to determine an exploration point coordinate corresponding to the targeted matter based on the position information of the medium mapping region corresponding to the targeted matter, to perform mineral exploration on the targeted matter based on the exploration point coordinate.
8. A computer device, comprising: The computer program is executed by the processor to implement the method for mineral resource exploration based on a subatomic field according to any one of claims 1-6.
9. A computer readable storage medium having stored thereon a computer program, characterized in that, The computer program is executed by the processor to implement the method for mineral resource exploration based on a subatomic field according to any one of claims 1-6.
Citation Information
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Mineral resource exploration digital terrain model generation method
CN117876623A