Mineral element information visualization method, device, computer equipment and medium
By acquiring spacecraft optical remote sensing images to construct subatomic three-dimensional holograms, the problem of limited mineral exploration depth is solved, and efficient mineral exploration and mining are achieved.
Patent Information
- Application Number
- CN202410725467.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-05
- Publication Date
- 2025-09-16
- Estimated Expiration
- 2044-06-05
AI Technical Summary
The existing technology has limited depth and low effectiveness in mineral exploration, which is limited to the near-surface horizon of the earth, and the probability of discovering mineral deposits does not exceed 30-35%.
By acquiring optical remote sensing images collected by spacecraft, a subatomic three-dimensional hologram of the targeted elements in the target area is constructed, the geographical distribution information is determined based on the resonance point data, and is visualized on an electronic map.
It has improved the exploration depth and accuracy, reduced the exploration time, improved the efficiency of mineral extraction, and reduced the exploration cost.
Smart Images

Figure CN118710829B_ABST
Abstract
Description
Technical Field
[0001] The embodiments of the present disclosure relate to the field of information visualization technology, and in particular, to an information visualization method, apparatus, computer equipment, and medium applicable to a mineral element. Background Art
[0002] In the study of the collection of natural resources on Earth, aerospace researchers usually use multi-area remote sensing based on electromagnetic radiation to study landscape features and local electrical, magnetic and thermal anomalies to achieve mineral extraction. It is assumed that there is a connection between landscape indicators and deep structures, anomalies of electric currents and electromechanical effects in rocks and sediments during deformation, magnetic anomalies and highly dispersed ferromagnetic systems, surface temperature gradients, such as hydrocarbon fluids above the continental shelf and closed offshore shelves.
[0003] As shown by the long-term practice of geological and geophysical exploration, the existing technology realizes mineral extraction through the physical interaction technology between elementary particles. Since the possibility of discovering mineral deposits does not exceed 30-35%, the exploration depth is limited to the near-surface horizon of the earth, making its effectiveness still very low. Summary of the Invention
[0004] The embodiments described herein provide a method, apparatus, computer device, and medium for visualizing information of mineral elements, which overcome the above-mentioned problems.
[0005] In a first aspect, according to the present disclosure, a method for visualizing information of mineral elements is provided, comprising:
[0006] Acquiring an optical remote sensing image of a target area collected by a spacecraft, wherein the target area contains a plurality of mineral elements;
[0007] constructing a subatomic three-dimensional hologram corresponding to a pre-selected target element in the target area based on the optical remote sensing image, wherein the target element is a mineral element contained in the target area, and the subatomic three-dimensional hologram corresponding to the target element includes: resonance point data of the subatomic field corresponding to the target element;
[0008] Determining geographical distribution information corresponding to the targeted element based on the resonance point data of the targeted element corresponding to the subatomic field;
[0009] The geographical distribution information corresponding to the targeting element is marked on an electronic map to visualize the geographical distribution information of the targeting element.
[0010] In a second aspect, according to the present disclosure, a device for visualizing information of mineral elements is provided, comprising:
[0011] An acquisition module, configured to acquire an optical remote sensing image of a target area collected by a spacecraft, wherein the target area contains a plurality of mineral elements;
[0012] a construction module, configured to construct, based on the optical remote sensing image, a subatomic three-dimensional hologram corresponding to a preselected target element within the target area, wherein the target element is a mineral element contained within the target area, and the subatomic three-dimensional hologram corresponding to the target element includes resonance point data corresponding to a subatomic field of the target element;
[0013] a determination module, configured to determine geographical distribution information corresponding to the targeted element based on the resonance point data of the targeted element corresponding to the subatomic field;
[0014] The marking module is used to mark the geographical distribution information corresponding to the targeting element in the electronic map to visualize the geographical distribution information of the targeting element.
[0015] In a third aspect, a computer device is provided, including a memory and a processor, wherein a computer program is stored in the memory, and when the processor executes the computer program, the steps of the method for visualizing information of mineral elements in any of the above embodiments are implemented.
[0016] In a fourth aspect, a computer-readable storage medium is provided, on which a computer program is stored. When the computer program is executed by a processor, the steps of the method for visualizing information of mineral elements in any of the above embodiments are implemented.
[0017] The method for visualizing mineral element information provided in the embodiment of the present application obtains an optical remote sensing image of a target area collected by a spacecraft, wherein the target area contains multiple mineral elements; based on the optical remote sensing image, a subatomic three-dimensional hologram corresponding to a pre-selected target element in the target area is constructed, wherein the target element is a mineral element contained in the target area, and the subatomic three-dimensional hologram corresponding to the target element includes: resonance point data corresponding to the subatomic field of the target element; based on the resonance point data corresponding to the subatomic field of the target element, the geographical distribution information corresponding to the target element is determined; the geographical distribution information corresponding to the target element is marked on an electronic map to visualize the geographical distribution information of the target element. In this way, by visualizing the subatomic field of the target element, the exploration depth and accuracy can be greatly improved, the exploration time can be effectively reduced, and the efficiency of mineral mining can be improved.
[0018] The above description is only an overview of the technical solutions of the embodiments of the present application. In order to more clearly understand the technical means of the embodiments of the present application, they can be implemented in accordance with the contents of the specification. In order to make the above and other purposes, features and advantages of the embodiments of the present application more obvious and easy to understand, the specific implementation methods of the present application are listed below. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] In order to more clearly illustrate the technical solutions of the embodiments of the present disclosure, the drawings of the embodiments will be briefly described below. It should be noted that the drawings described below only relate to some embodiments of the present disclosure and are not intended to limit the present disclosure.
[0020] Figure 1 It is a flow chart of a method for visualizing information of mineral elements provided by the present disclosure.
[0021] Figure 2 This is a schematic structural diagram of a mineral element information visualization device provided by the present disclosure.
[0022] Figure 3 It is a structural diagram of a computer device provided by the present disclosure.
[0023] It should be noted that the elements in the drawings are schematic and not drawn to scale. DETAILED DESCRIPTION
[0024] In order to make the purpose, technical solutions and advantages of the embodiments of the present disclosure more clear, the technical solutions of the embodiments of the present disclosure will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the described embodiments are part of the embodiments of the present disclosure, not all of the embodiments. Based on the described embodiments of the present disclosure, all other embodiments obtained by those skilled in the art without creative work also fall within the scope of protection of the present disclosure.
[0025] Unless otherwise defined, all terms (including technical and scientific terms) used herein have the same meaning as commonly understood by one of ordinary skill in the art to which the present disclosure belongs. It will be further understood that terms such as those defined in commonly used dictionaries should be interpreted as having a meaning consistent with their meaning in the context of the specification and the relevant art, and will not be interpreted in an idealized or overly formal manner unless otherwise explicitly defined herein. As used herein, a statement that two or more parts are "connected" or "coupled" together shall mean that the parts are joined together either directly or through one or more intermediate components.
[0026] References to "embodiments" herein mean that a particular feature, structure, or characteristic described in connection with the embodiments may be included in at least one embodiment of the present application. The appearance of the phrase "embodiment" in various places in the specification does not necessarily refer to the same embodiment, nor does it necessarily refer to independent or alternative embodiments that are mutually exclusive of other embodiments. It is understood, both explicitly and implicitly, by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0027] The term "and / or" in this document simply describes an association between related objects, indicating that three possible relationships exist. For example, "A and / or B" can mean: A exists, A and B exist simultaneously, and B exists. Additionally, the character " / " in this document generally indicates that the related objects are in an "or" relationship. Terms such as "first" and "second" are used solely to distinguish one component (or portion of a component) from another component (or portion of a component).
[0028] In the description of this application, unless otherwise specified, "plurality" means more than two (including two), and similarly, "multiple groups" means more than two (including two).
[0029] In order to enable those skilled in the art to better understand the solution of the present application, the technical solution in the embodiments of the present application will be clearly and completely described below in conjunction with the accompanying drawings.
[0030] Figure 1 This is a flow chart of a method for visualizing information of mineral elements provided by an embodiment of the present disclosure, such as Figure 1 As shown in FIG, the specific process of the mineral element information visualization method includes:
[0031] S110: Acquire an optical remote sensing image of the target area collected by the spacecraft.
[0032] The target area contains a variety of mineral elements, such as gold, silver, copper or other mineral trace elements.
[0033] The target area is an area to be mined for mineral extraction. The target area can be scanned by spacecraft such as aircraft or satellites to obtain an optical remote sensing image of the target area.
[0034] In addition, after the spacecraft collects the optical remote sensing image of the target area, it can send the optical remote sensing image to the ground flight control center, so that the ground flight control center can scale or convert the optical remote sensing image to map the optical remote sensing image on the display carrier.
[0035] S120. Construct a subatomic three-dimensional hologram corresponding to a pre-selected target element in the target area based on the optical remote sensing image.
[0036] The targeted element is a mineral element, such as gold, contained within the target area. The subatomic 3D hologram corresponding to the targeted element includes resonance point data corresponding to the subatomic field of the targeted element. The resonance point data may be the 3D coordinates of a location that resonates with the targeted element.
[0037] Subatomic 3D holograms effectively demonstrate the ability of a correlation model of intensity waves to reconstruct the wave field and all its parameters, including amplitude, phase, spectral composition, polarization state, or the temporal variation of a particular parameter. The amplitude distribution carries information about the reflectivity of the mineral deposit's cross-section, while the phase distribution carries information about the remoteness of different points (regions) in the field of view from the observation plane.
[0038] The carriers of the ultraweak subatomic field are leptons and their lighter variants: subatomic particles and axions. There are six known leptons: electrons, muons, tau leptons and three uncharged neutrinos. In addition, there are six antileptons.
[0039] The mass spectrum of subatomic particles is quite broad. Subatomic particles are characterized by the small mass of a class of elementary particles. All media and living organisms are filled with subatomic particles, which are parts of atoms and their nuclei, located around electrons.
[0040] The main theoretical assumption of the ML (subatomic) field is that non-relativistic light particles are excited by exposure to a magnetic field or porous structure. As a result, they acquire a short-range weak charge that can interact with the weak charges of electrons or nuclei. In the excited state, the cross section of the subatomic interaction with electrons increases.
[0041] The specific medium that constitutes this whole is a lepton gas, which can be in a polarized state, that is, when the subatomic particles have weak dipoles, they are spatially separated or their weak dipoles have a dominant direction. The polarization of the lepton gas must have a wave-like motion pattern. At the same time, with the help of electric dipoles, forced excitation and non-relativistic subatomic emission are possible.
[0042] Since the cross section of subatomic-electron interactions is not significant, polarized lepton gas (ML gas) in matter can induce a small voltage, which can be measured by a specific indicator.
[0043] The spatial distribution of the intrinsic ML field strength in a mineral is characterized by a spectrum of spatial frequencies with varying degrees of detail. Many different vibration modes are considered to be associated with various types of waves: decaying, radiating, clustering, bunching, etc.
[0044] Under certain conditions, it is possible to "record" the complete spectrum of radiation from the mineral field's intrinsic ML radiation on a suitable carrier. Significantly, this "recording" occurs naturally during the exposure process. Aircraft and cameras equipped with film are energized by exposure to ML radiation from all sources within the instrument's descent radius during orbital flight. However, the radiation intensity of these fields is insufficient to ionize the photoemulsion material.
[0045] In the first stage of "recording" before exposure, the three-dimensional spatial structure of the mineral deposit, including the subatomic wave fields generated and the wave fields generated by their interaction, were modeled in terms of amplitude, phase, polarization, and frequency. The three-dimensional holographic model shows the interaction pattern of the wave fields in the space above the field area: the isolated subatomic fields and the mineral's inherent subatomic fields transform into each other one by one, forming standing waves. The spatial photographic model of the standing waves recorded in the optical emulsion is presented as a three-dimensional hologram, which can reproduce the wave fields that formed it at different frequencies.
[0046] During the second "recording" phase of the exposure, the standing waves formed in the first phase are transformed into traveling intensity waves. This is due to the interaction of waves of different frequencies when imaging the area of a site from an aircraft platform moving relative to the Earth's surface. The scheme for forming and reconstructing this dynamic image of the intensity waves of a hologram is called Doppler. In addition to all other parameters of the wave field, a Doppler hologram also reproduces the frequency shift of the mineral's subatomic waves relative to the hologram frequency. Subatomic Doppler holograms demonstrate the ability to predict the future position of an object. In the coordinate system relative to the aircraft, the intensity waves become stationary waves relative to the area, and the Doppler hologram becomes a regular, static wave.
[0047] In the third stage, after the exposure is completed, a static subatomic three-dimensional hologram is stored in the emulsion when pointing to a coordinate system related to the plane, and a low-intensity ("phantom") standing wave is stored near the film during the exposure. The low-intensity standing wave is maintained due to the intrinsic interference of the ML field and the intrinsic "memory" of the emulsion during the exposure process. In addition, the "phantom" must show the spatial microscopic distribution of the ML radiation intensity of the mineral and be coordinated on the largest scale, corresponding to their true volume confinement in the interior (deep).
[0048] In some embodiments, constructing a subatomic three-dimensional hologram corresponding to a pre-selected targeted element in a target area based on an optical remote sensing image includes:
[0049] Based on the optical remote sensing image, the subatomic three-dimensional hologram corresponding to all the mineral elements contained in the target area is reconstructed; based on the subatomic three-dimensional hologram corresponding to all the mineral elements contained in the target area, the resonance information of the targeted element is extracted to obtain the subatomic three-dimensional hologram corresponding to the pre-selected targeted element in the target area.
[0050] Resonance information extraction is used to describe the extraction operation of resonance discrete points that have a resonance relationship with the target element in the subatomic field.
[0051] The subatomic 3D hologram corresponding to all mineral elements contained in the target area reconstructed from optical remote sensing images includes the amplitude-phase distribution information of the intensity and polarization state of the MLF field of the target element itself. Among them, the MLF field is the main source of the ML field.
[0052] In some embodiments, based on the subatomic three-dimensional holograms corresponding to all mineral elements contained in the target area, resonance information of the target element is extracted to obtain the subatomic three-dimensional hologram corresponding to the pre-selected target element in the target area, including:
[0053] A pre-selected target element in the target area is obtained; using the subatomic wave of the target element as a search condition, a resonant discrete point having a resonant relationship with the subatomic wave of the target element is searched from the subatomic three-dimensional hologram corresponding to all mineral elements contained in the target area; based on the resonant discrete points having a resonant relationship with the subatomic wave of the target element, a subatomic three-dimensional hologram corresponding to the target element is constructed.
[0054] Among them, the most favorable condition for achieving subatomic resonance is to expose the hologram to subatomic radiation at the relevant resonant frequency. Therefore, subatomic resonance is essentially realized as the influence of the hologram selectively absorbing the subatomic wave field and the inversion of the resonance signal.
[0055] During subatomic resonance, a static subatomic three-dimensional hologram (i.e., a subatomic three-dimensional hologram corresponding to all mineral elements contained in the target area) is used to restore the ML wave of the target element as a narrow-band subatomic filter to obtain the subatomic three-dimensional hologram corresponding to the target element.
[0056] In this embodiment, the selective high-frequency radiation of the MLF field of the transceiver antenna is utilized to reconstruct a subatomic three-dimensional hologram using a discrete point scanning method, providing conditions for ML resonance at many actual point regions within the subatomic three-dimensional hologram. As part of the ML generator, the transceiver antenna performs detection in the form of a probe, which means allowing the selective high-frequency ML field to illuminate a point region of the subatomic three-dimensional hologram. Furthermore, the subatomic resonance response signal is recorded and reproduced visually, i.e., the subatomic waves of the minerals in the designated region are inverted. In the process of reproducing the ML waves of the mineral itself (the targeted element), the subatomic three-dimensional hologram is reconstructed. The subatomic perturbation axis of the transceiver antenna is perpendicular to the MAX plane. The selective radiation frequency of the MLF field of the transceiver antenna is selected to correspond to the resonant frequency radiation pattern of the mineral's MLF field. This pattern can be achieved through the resonant frequency of a specific geophysical object and simulation methods.
[0057] S130 : Determine geographical distribution information corresponding to the targeted element based on the resonance point data of the targeted element corresponding to the subatomic field.
[0058] The geographical distribution information corresponding to the targeted element may be used to describe the element content analysis value or element density analysis value of the targeted element at the corresponding position.
[0059] In some embodiments, the resonance point data corresponding to the subatomic field of the targeted element includes: a plurality of resonance discrete points having a resonance relationship with the subatomic wave of the targeted element.
[0060] Based on the resonance point data of the targeted element corresponding to the subatomic field, the geographical distribution information corresponding to the targeted element is determined, including:
[0061] Contour connection processing is performed on multiple resonance discrete points that have a resonance relationship with the subatomic wave of the target element to obtain intensity distribution data corresponding to each resonance discrete point; based on the intensity distribution data corresponding to each resonance discrete point, the geographical distribution information corresponding to the target element is determined.
[0062] Among them, after contour line connection processing is performed on multiple resonant discrete points that have a resonance relationship with the subatomic wave of the target element, the connected contour lines have different color labels, and different color level values can identify the intensity distribution data of a resonant discrete point. The intensity distribution data can be an element content analysis value or an element density analysis value.
[0063] The registration of the subatomic resonance response signal can be automatically performed in the measurement circuit, and is obtained by scanning the subatomic three-dimensional hologram at discrete points by the transmitting and receiving antennas.
[0064] S140: Marking the geographical distribution information corresponding to the targeted element on the electronic map to visualize the geographical distribution information of the targeted element.
[0065] Among them, electronic maps can be used to express the geographical location information of expected minerals within the study area (i.e., target area).
[0066] In some embodiments, marking the geographical distribution information corresponding to the targeted elements on an electronic map includes:
[0067] Based on the position mapping relationship between the targeting element and the target area and the position mapping relationship between the target area and the electronic map, the display position of the targeting element in the electronic map is determined; based on the display position of the targeting element in the electronic map, the geographical distribution information corresponding to the targeting element is visually marked.
[0068] Wherein, at the display position of the targeting element corresponding to the electronic map, the geographical distribution information corresponding to the targeting element is marked, so as to facilitate the visual display of the geographical distribution information corresponding to the targeting element.
[0069] In this embodiment, an optical remote sensing image of a target area captured by a spacecraft is acquired, and the target area contains multiple mineral elements. Based on the optical remote sensing image, a subatomic three-dimensional hologram corresponding to a pre-selected target element in the target area is constructed. The target element is a mineral element contained in the target area. The subatomic three-dimensional hologram corresponding to the target element includes: resonance point data corresponding to the subatomic field of the target element; based on the resonance point data corresponding to the subatomic field of the target element, the geographical distribution information corresponding to the target element is determined; and the geographical distribution information corresponding to the target element is marked on an electronic map to visualize the geographical distribution information of the target element. In this way, by visualizing the subatomic field of the target element, the exploration depth and accuracy can be greatly improved, the exploration time can be effectively reduced, and the mining efficiency of the deposit can be improved.
[0070] In some embodiments, the method of this embodiment may further include:
[0071] Obtain geographical distribution information corresponding to the targeted elements in each area included in the electronic map; based on the geographical distribution information corresponding to the targeted elements in each area included in the electronic map, sort the targeted elements contained in each area included in the electronic map by detection recommendation index; update the detection recommendation index sorting results of the targeted elements in the corresponding areas to the display positions corresponding to the targeted elements in the electronic map.
[0072] Among them, the detection recommendation index ranking results can effectively reflect the mining effectiveness of the targeted elements in the corresponding area. By updating the detection recommendation index ranking results of the targeted elements in the corresponding area in the electronic map, the mining situation of the corresponding area can be intuitively understood during mineral mining, which is convenient for early prediction of mineral exploration results.
[0073] In some embodiments, the method of this embodiment may further include:
[0074] A request for visual display of information of a targeted element in an electronic map is received; in response to the request for visual display of information of the targeted element in the electronic map, geographical distribution information corresponding to the targeted element is displayed at an associated position of the targeted element corresponding to a display position in the electronic map.
[0075] The associated position of the target element corresponding to the display position in the electronic map may be a pre-set linkage position corresponding to the display position.
[0076] The correspondence between display locations and associated locations can be one-to-one, one-to-many, or many-to-one. For example, a target element corresponding to a display location in an electronic map can be linked to a fixed associated location, or a target element corresponding to a display location in an electronic map can be linked to a variable associated location, or a target element corresponding to multiple display locations in an electronic map can be linked to a fixed associated location.
[0077] Since there are many locations of geographical distribution information corresponding to the target elements marked in the electronic map, by setting the information query request method, it is convenient for the demand personnel to quickly search for the required information from the electronic map through the request method.
[0078] This embodiment can improve the efficiency of geophysical exploration of mineral deposits on the Earth's surface (land) and continental shelf using aircraft, namely, increasing the probability of discovering mineral deposits; ensuring that the geophysical exploration depth reaches the radius of the Earth; significantly reducing geophysical exploration time, especially in the regional and exploration stages, and thereby increasing the speed of mineral development and commissioning; reducing the economic cost of geophysical exploration, and thereby reducing the exploration cost per unit of mineral reserves, as well as reducing labor costs per unit of explored mineral reserves.
[0079] Figure 2 This is a schematic structural diagram of a mineral element information visualization device provided in this embodiment. The mineral element information visualization device may include: an acquisition module 210, a construction module 220, a determination module 230 and a marking module 240.
[0080] The acquisition module 210 is used to acquire an optical remote sensing image of a target area collected by a spacecraft, where the target area contains multiple mineral elements.
[0081] Construction module 220 is used to construct a subatomic three-dimensional hologram corresponding to a pre-selected target element in the target area based on the optical remote sensing image. The target element is a mineral element contained in the target area. The subatomic three-dimensional hologram corresponding to the target element includes: resonance point data of the target element corresponding to the subatomic field.
[0082] The determination module 230 is configured to determine geographical distribution information corresponding to the target element based on the resonance point data of the target element corresponding to the subatomic field.
[0083] The marking module 240 is configured to mark the geographical distribution information corresponding to the target element in the electronic map, so as to visually display the geographical distribution information of the target element.
[0084] In this embodiment, optionally, the construction module 220 includes: a reconstruction unit and an extraction unit.
[0085] The reconstruction unit is used to reconstruct the subatomic three-dimensional hologram corresponding to all mineral elements contained in the target area based on the optical remote sensing image.
[0086] The extraction unit is used to extract resonance information of the target element based on the subatomic three-dimensional holograms corresponding to all mineral elements contained in the target area, and obtain the subatomic three-dimensional hologram corresponding to the pre-selected target element in the target area.
[0087] Resonance information extraction is used to describe the extraction operation of resonance discrete points that have a resonance relationship with the target element in the subatomic field.
[0088] In this embodiment, the extraction unit is optionally configured to:
[0089] A pre-selected target element in the target area is obtained; using the subatomic wave of the target element as a search condition, a resonant discrete point having a resonant relationship with the subatomic wave of the target element is searched from the subatomic three-dimensional hologram corresponding to all mineral elements contained in the target area; based on the resonant discrete points having a resonant relationship with the subatomic wave of the target element, a subatomic three-dimensional hologram corresponding to the target element is constructed.
[0090] In this embodiment, optionally, the resonance point data of the target element corresponding to the subatomic field includes: a plurality of resonance discrete points having a resonance relationship with the subatomic wave of the target element.
[0091] The determination module 230 is specifically configured to:
[0092] Contour connection processing is performed on multiple resonance discrete points that have a resonance relationship with the subatomic wave of the target element to obtain intensity distribution data corresponding to each resonance discrete point; based on the intensity distribution data corresponding to each resonance discrete point, the geographical distribution information corresponding to the target element is determined.
[0093] In this embodiment, optionally, the marking module 240 is specifically configured to:
[0094] Based on the position mapping relationship between the targeting element and the target area and the position mapping relationship between the target area and the electronic map, the display position of the targeting element in the electronic map is determined; based on the display position of the targeting element in the electronic map, the geographical distribution information corresponding to the targeting element is visually marked.
[0095] In this embodiment, optionally, it further includes: a sorting module and an updating module.
[0096] The acquisition module 210 is further configured to acquire geographical distribution information corresponding to the targeted elements in each area included in the electronic map.
[0097] A sorting module, configured to sort the detection recommendation index of the targeted elements contained in each area included in the electronic map based on the geographical distribution information corresponding to the targeted elements contained in each area included in the electronic map;
[0098] The updating module is used to update the detection recommendation index ranking result of the target element in the corresponding area to the display position of the target element in the electronic map.
[0099] In this embodiment, optionally, it further includes: a receiving module and a display module.
[0100] The receiving module is used to receive a request for visual display of information of a targeted element in an electronic map.
[0101] The display module is used to respond to a request for visual display of information of a target element in an electronic map, and to display geographical distribution information corresponding to the target element at a location associated with the display location of the target element in the electronic map.
[0102] The mineral element information visualization device provided in the present disclosure can execute the above method embodiments. Its specific implementation principles and technical effects can be found in the above method embodiments, and the present disclosure will not repeat them here.
[0103] The present application also provides a computer device. Figure 3 , Figure 3 This is a basic structural block diagram of the computer device in this embodiment.
[0104] The computer device includes a memory 310 and a processor 320 that are interconnected and communicate with each other via a system bus. It should be noted that the figure only shows a computer device with a memory 310 and a processor 320, but it should be understood that it is not required to implement all the components shown, and more or fewer components can be implemented instead. Among them, those skilled in the art can understand that the computer device here is a device that can automatically perform numerical calculations and / or information processing according to pre-set or stored instructions, and its hardware includes but is not limited to a microprocessor, an application specific integrated circuit (ASIC), a field-programmable gate array (FPGA), a digital signal processor (DSP), an embedded device, etc.
[0105] Computer devices can be desktop computers, laptops, PDAs, cloud servers, etc. Computer devices can interact with users through keyboards, mice, remote controls, touchpads, or voice-activated devices.
[0106] The memory 310 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 (such as 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 storage, magnetic disk, optical disk, etc. The RAM may include static RAM or dynamic RAM. In some embodiments, the memory 310 may be an internal storage unit of a computer device, such as a hard disk or memory of the computer device. In other embodiments, the memory 310 may also be an external storage device of the computer device, such as a plug-in hard disk, a Smart Media Card (SMC), a Secure Digital (SD) card, or a Flash Card equipped on the computer device. Of course, the memory 310 may also include both the internal storage unit of the computer device and its external storage device. In this embodiment, the memory 310 is generally used to store the operating system and various application software installed on the computer device, such as the program code of the above-mentioned method. In addition, the memory 310 may also be used to temporarily store various types of data that have been output or are about to be output.
[0107] The processor 320 is generally used to perform the overall operation of the computer device. In this embodiment, the memory 310 is used to store program code or instructions, which include computer operating instructions. The processor 320 is used to execute the program code or instructions stored in the memory 310 or process data, such as the program code for running the above method.
[0108] In this document, a bus can be an Industry Standard Architecture (ISA) bus, a Peripheral Component Interconnect (PCI) bus, or an Extended Industry Standard Architecture (EISA) bus. This bus system can be divided into address buses, data buses, and control buses. For ease of illustration, the figure uses only one thick line, but this does not mean that there is only one bus or only one type of bus.
[0109] Another embodiment of the present application further provides a computer-readable medium, which may be a computer-readable signal medium or a computer-readable medium. A processor in a computer reads the 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 a device that implements the functional actions specified in each block or combination of blocks in the block diagram.
[0110] Computer-readable media include but are not limited to electronic, magnetic, optical, electromagnetic, infrared memory or semiconductor systems, devices or apparatuses, or any appropriate combination of the foregoing, the memory is used to store program codes or instructions, the program codes include computer operating instructions, and the processor is used to execute the program codes or instructions of the above-mentioned methods stored in the memory.
[0111] The definitions of memory and processor can be found in the description of the aforementioned computer device embodiment and will not be repeated here.
[0112] In the several embodiments provided in this application, it should be understood that the disclosed systems, devices and methods can be implemented in other ways. For example, the device embodiments described above are merely schematic. For example, the division of modules or units is only a logical function division. In actual implementation, there may be other division methods, such as multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the mutual coupling or direct coupling or communication connection shown or discussed can be through some interfaces, indirect coupling or communication connection of devices or units, which can be electrical, mechanical or other forms.
[0113] Each functional unit or module in each embodiment of the present application may be integrated into a processing unit, or each unit may exist physically separately, or two or more units may be integrated into a single unit. The above-mentioned integrated units may be implemented in the form of hardware or software functional units.
[0114] If the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of the present application is essentially 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, and the computer software product is stored in a storage medium, including a number of instructions for enabling a computer device (which can be a personal computer, server, or network device, etc.) or a processor (processor) to execute all or part of the steps of the various embodiments of the present application. The aforementioned storage medium includes: U disk, mobile hard disk, read-only memory (ROM), random access memory (RAM), disk or optical disk, and other media that can store program code.
[0115] In the claims, any reference signs placed between brackets shall not be construed as limiting the claims. The word "comprising" described in the present 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. The present application can be implemented with the aid of hardware comprising several different elements and with the aid of a suitably programmed computer. In a unit claim that lists several means, several units of these means may be embodied by the same hardware item. The use of first, second, and third etc. does not indicate any order and these words may be interpreted as names. The steps in the above embodiments should not be understood as limiting the order of execution unless otherwise specified.
[0116] The above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them. Although the present application has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. A method for visualizing information of mineral elements, characterized in that: include: Acquiring an optical remote sensing image of a target area collected by a spacecraft, wherein the target area contains a plurality of mineral elements; constructing a subatomic three-dimensional hologram corresponding to a pre-selected target element in the target area based on the optical remote sensing image, wherein the target element is a mineral element contained in the target area, and the subatomic three-dimensional hologram corresponding to the target element includes: resonance point data of the subatomic field corresponding to the target element; Determining geographical distribution information corresponding to the targeted element based on the resonance point data of the targeted element corresponding to the subatomic field; Marking the geographical distribution information corresponding to the targeting element on an electronic map to visualize the geographical distribution information of the targeting element; Wherein, constructing a subatomic three-dimensional hologram corresponding to a pre-selected targeted element in the target area based on the optical remote sensing image includes: reconstructing a subatomic three-dimensional hologram corresponding to all mineral elements contained in the target area based on the optical remote sensing image; Extracting resonance information of the target element based on the subatomic three-dimensional holograms corresponding to all mineral elements contained in the target area to obtain a subatomic three-dimensional hologram corresponding to the pre-selected target element in the target area; The resonance information extraction is used to describe the extraction operation of the resonance discrete points that have a resonance relationship with the target element in the subatomic field.
2. The method according to claim 1, characterized in that The step of extracting resonance information of the target element based on the subatomic three-dimensional holograms corresponding to all mineral elements contained in the target area to obtain the subatomic three-dimensional hologram corresponding to the pre-selected target element in the target area includes: obtaining the preselected targeting element in the target area; Using the subatomic wave of the target element as a search condition, searching for a resonant discrete point having a resonant relationship with the subatomic wave of the target element from the subatomic three-dimensional hologram corresponding to all mineral elements contained in the target area; Based on the resonant discrete points having a resonant relationship with the subatomic wave of the targeting element, a subatomic three-dimensional hologram corresponding to the targeting element is constructed.
3. The method according to claim 2, characterized in that The resonance point data of the target element corresponding to the subatomic field includes: a plurality of resonance discrete points having a resonance relationship with the subatomic wave of the target element; The determining of geographical distribution information corresponding to the targeted element based on the resonance point data corresponding to the subatomic field of the targeted element includes: Performing contour connection processing on a plurality of resonance discrete points having a resonance relationship with the subatomic wave of the target element to obtain intensity distribution data corresponding to each of the resonance discrete points; Based on the intensity distribution data corresponding to each of the resonance discrete points, the geographical distribution information corresponding to the targeting element is determined.
4. The method according to claim 1, wherein The step of marking the geographical distribution information corresponding to the targeted element on an electronic map includes: determining a display position of the targeting element in the electronic map corresponding to the targeting element based on a mapping relationship between the targeting element and the position within the target area and a mapping relationship between the target area and the position within the electronic map; Based on the display position of the targeting element corresponding to the electronic map, the geographical distribution information corresponding to the targeting element is visually marked.
5. The method according to claim 1, characterized in that Also includes: Acquire geographical distribution information corresponding to the targeted element in each area included in the electronic map; sorting the target elements contained in each area included in the electronic map by detection recommendation index based on geographical distribution information corresponding to the target elements contained in each area included in the electronic map; The detection recommendation index ranking result of the target element in the corresponding area is updated to the display position of the target element corresponding to the electronic map.
6. The method according to claim 1, characterized in that Also includes: receiving a request for visual display of information of the target element in the electronic map; In response to the information visualization display request for the target element in the electronic map, the geographical distribution information corresponding to the target element is displayed at the associated position of the target element corresponding to the display position in the electronic map.
7. A device for visualizing information of mineral elements, characterized in that: include: An acquisition module, configured to acquire an optical remote sensing image of a target area collected by a spacecraft, wherein the target area contains a plurality of mineral elements; a construction module, configured to construct, based on the optical remote sensing image, a subatomic three-dimensional hologram corresponding to a preselected target element within the target area, wherein the target element is a mineral element contained within the target area, and the subatomic three-dimensional hologram corresponding to the target element includes resonance point data corresponding to a subatomic field of the target element; a determination module, configured to determine geographical distribution information corresponding to the targeted element based on the resonance point data of the targeted element corresponding to the subatomic field; a marking module, configured to mark the geographical distribution information corresponding to the targeting element on an electronic map, so as to visually display the geographical distribution information of the targeting element; Wherein, the construction module includes: a reconstruction unit and an extraction unit; The reconstruction unit is configured to reconstruct a subatomic three-dimensional hologram corresponding to all mineral elements contained in the target area based on the optical remote sensing image; The extraction unit is configured to extract resonance information of the target element based on the subatomic three-dimensional holograms corresponding to all mineral elements contained in the target area, and obtain the subatomic three-dimensional hologram corresponding to the pre-selected target element in the target area; The resonance information extraction is used to describe the extraction operation of the resonance discrete points that have a resonance relationship with the target element in the subatomic field.
8. A computer device, characterized in that: The method comprises a memory and a processor, wherein a computer program is stored in the memory, and when the processor executes the computer program, the method for visualizing information of mineral elements as claimed in any one of claims 1 to 6 is implemented.
9. A computer-readable storage medium having a computer program stored thereon, characterized in that: When the computer program is executed by a processor, the method for visualizing information of mineral elements as claimed in any one of claims 1 to 6 is implemented.
Citation Information
Patent Citations
Mineral resource exploration digital terrain model generation method
CN117876623A