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Digital Reconstruction Of Ancient Buildings And Monuments

Abstract: DIGITAL RECONSTRUCTION OF ANCIENT BUILDINGS AND MONUMENTS Abstract The present invention relates to a system for the digital reconstruction of ancient buildings or monuments may be included in some embodiments of the present disclosure. This system may include a data collection module for the purpose of acquiring data related to the ancient buildings or monuments in question, such as images, measurements, and historical records. A reconstruction module that is able to analyse the obtained data and produce three-dimensional (3D) digital representations of the historical structures or monuments may also be included in embodiments. A visualisation module that may show the three-dimensional digital models in an environment that allows for interaction may also be included in embodiments.

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Notices, Deadlines & Correspondence

Patent Information

Application #
Filing Date
13 April 2023
Publication Number
22/2023
Publication Type
INA
Invention Field
COMPUTER SCIENCE
Status
Email
Parent Application

Applicants

BANASTHALI VIDYAPITH
BANASTHALI VIDYAPITH, P.O. BANASTHALI, BANASTHALI, RAJASTHAN, INDIA, 304022 JAIPUR

Inventors

1. DR. PREETI SHARMA
BANASTHALI VIDYAPITH, P.O. BANASTHALI, BANASTHALI, RAJASTHAN, INDIA, 304022 JAIPUR
2. DR. SHILPI GUPTA
BANASTHALI VIDYAPITH, P.O. BANASTHALI, BANASTHALI, RAJASTHAN, INDIA, 304022 JAIPUR

Claims

1. A system for digital reconstruction of ancient buildings or monuments, comprising: a data collection module for acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records; a reconstruction module configured to process the acquired data and generate three-dimensional (3D) digital models of the ancient buildings or monuments; and a visualization module for displaying the 3D digital models in an interactive environment.

2. The system of claim 1, wherein said data collection module utilizes a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation.

3. The system of claim 1, wherein said reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.

4. The system of claim 1, wherein said visualization module provides an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application.

5. The system of claim 1, further comprising an annotation module, enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments.

6. A method for digital reconstruction of ancient buildings or monuments, comprising: acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records, through a data collection module; processing the acquired data and generating three-dimensional (3D) digital models of the ancient buildings or monuments using a reconstruction module; and displaying the 3D digital models in an interactive environment through a visualization module.

7. The method of claim 6, further comprising utilizing a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation.

8. The method of claim 6, wherein said reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.

9. The method of claim 6, further comprising providing an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application.

10. The method of claim 6, further comprising enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments through an annotation module. DIGITAL RECONSTRUCTION OF ANCIENT BUILDINGS AND MONUMENTS Abstract The present invention relates to a system for the digital reconstruction of ancient buildings or monuments may be included in some embodiments of the present disclosure. This system may include a data collection module for the purpose of acquiring data related to the ancient buildings or monuments in question, such as images, measurements, and historical records. A reconstruction module that is able to analyse the obtained data and produce three-dimensional (3D) digital representations of the historical structures or monuments may also be included in embodiments. A visualisation module that may show the three-dimensional digital models in an environment that allows for interaction may also be included in embodiments. , Claims:Claims :

1. A system for digital reconstruction of ancient buildings or monuments, comprising: a data collection module for acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records; a reconstruction module configured to process the acquired data and generate three-dimensional (3D) digital models of the ancient buildings or monuments; and a visualization module for displaying the 3D digital models in an interactive environment.

2. The system of claim 1, wherein said data collection module utilizes a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation.

3. The system of claim 1, wherein said reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.

4. The system of claim 1, wherein said visualization module provides an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application.

5. The system of claim 1, further comprising an annotation module, enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments.

6. A method for digital reconstruction of ancient buildings or monuments, comprising: acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records, through a data collection module; processing the acquired data and generating three-dimensional (3D) digital models of the ancient buildings or monuments using a reconstruction module; and displaying the 3D digital models in an interactive environment through a visualization module.

7. The method of claim 6, further comprising utilizing a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation.

8. The method of claim 6, wherein said reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.

9. The method of claim 6, further comprising providing an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application.

10. The method of claim 6, further comprising enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments through an annotation module.

Specification

Description:DIGITAL RECONSTRUCTION OF ANCIENT BUILDINGS AND MONUMENTS
Field of the Invention
[0001] The present invention relates generally to the use of advanced digital technologies such as 3D scanning, photogrammetry, and computer graphics to create accurate and detailed digital models of archaeological sites and artifacts. More particularly, the system and method for utilizing market research tools to improve strategic thinking and opportunity identification.
Background
[0002] The background description includes information that may be useful in understanding the present invention. It is not an admission that any of the information provided herein is prior art or relevant to the presently claimed invention, or that any publication specifically or implicitly referenced is prior art.
[0003] Digital reconstruction of ancient buildings and monuments is a relatively new field that has emerged at the intersection of archaeology, computer science, and digital humanities. The use of digital technologies to document and analyze archaeological sites and artifacts is not new, but the development of advanced software and hardware has opened up new possibilities for creating accurate and detailed digital models.
[0004] The digital reconstruction process typically involves a combination of 3D scanning, photogrammetry, and computer graphics. 3D scanning uses laser or light-based technology to capture detailed measurements of a physical object or structure, while photogrammetry involves taking multiple photographs of an object or structure from different angles and using specialized software to create a 3D model. Computer graphics techniques such as texturing and lighting can then be applied to create a realistic representation of the original structure or monument. Following are exemplary patent documents related to digital mapping.
[0005] WO2020156273A1 (By: NANJING FORESTRY UNIVERSITY, SHANGHAI ACADEMY OF LANDSCAPE ARCH SCIENCE & PLANNING) The present invention discloses a method for digital surveying and mapping and three-dimensional visualization in garden space. The method comprises the following steps: S1, data acquisition: using a three-dimensional laser scanner to acquire holographic data of a research object for surveying and mapping and holographic data of a control marker thereof; and performing close shot and multi-view photogrammetry at the same time to acquire holographic data of the research object for surveying and mapping and holographic data of a control marker thereof; S2, building a point cloud model based on three-dimensional laser scanning: after noise removal, coordinate matching, sampling dilution and redundancy reduction, building a space point cloud model of the research object for surveying and mapping based on three-dimensional laser scanning; S3, building a three-dimensional model based on close shot and multi-view images: obtaining, after splicing, a point cloud data model according to reality colors to complete the building of a three-dimensional model based on close shot and multi-view images; S4, multi-source data fusion and model generation: implementing data fusion on multi-source three-dimensional model; and S5, generation of two-dimensional picture of holographic data based on three-dimensional laser scanning. Following are exemplary patent documents of this domain.
[0006] CN106600690B (By: XIAMEN UNIVERSITY OF TECHNOLOGY) The invention discloses a complex building three-dimensional modeling method based on point cloud data. The method includes the following steps: step one, scanning a building by laser and obtaining complete laser point cloud data of the surface of the building; step two, constructing a two-dimensional line map of the building; and step three, reconstructing a three-dimensional entity model. The modeling method avoids restrictions of a conventional modeling method, and can construct a building three-dimensional model in a quick, accurate and highly efficient manner.
[0007] ES2327999B1 (By: ARCHIDAB URBAN MEDIA) Procedure, computer program and file to generate images that reproduce a real three-dimensional environment. Procedure for obtaining, from a three-dimensional environment of reality, such as an architectural building, a data file to generate images that reproduce said environment in two-dimensional or three-dimensional form, particularly applicable for the registration of architectural environments. In essence the procedure comprises the operations of debugging the point clouds obtained from the operation of exploring the reality environment; to relate the clouds of refined points to each other and generate a final point cloud; to visualize the final point cloud to eliminate, correct and/or manually grant values that represent physical properties of the points, generating a final point cloud corrected; and to optimize the final point cloud. It also discloses a computer program or a program package that automates the operations that characterize the method according to the invention, generating a data file.
[0008] One of the key advantages of digital reconstruction is the ability to create accurate and detailed models that can be used to study and analyze ancient buildings and monuments in ways that were not possible before. For example, researchers can use these models to explore the original construction techniques, materials, and design features of a building or monument. They can also use them to simulate how the structure would have looked and functioned in its original context.
[0009] Digital reconstruction has also become an important tool for preserving and conserving cultural heritage. By creating detailed digital models of ancient buildings and monuments, researchers and preservationists can develop strategies for protecting these structures from damage or destruction caused by natural disasters, human activities, or other threats.
[00010] Even though, the existing mechanisms for digital reconstruction have contributed significantly, several drawbacks (such as lack of accuracy, etc.). Thus, a further development in this area of technology is required.

Summary
[00011] The present invention relates generally to the use of advanced digital technologies such as 3D scanning, photogrammetry, and computer graphics to create accurate and detailed digital models of archaeological sites and artifacts. More particularly, the system and method for utilizing market research tools to improve strategic thinking and opportunity identification.
[00012] The following presents a simplified summary of various aspects of this disclosure in order to provide a basic understanding of such aspects. This summary is not an extensive overview of all contemplated aspects, and is intended to neither identify key or critical elements nor delineate the scope of such aspects. Its purpose is to present some concepts of this disclosure in a simplified form as a prelude to the more detailed description that is presented later.
[00013] The following paragraphs provide additional support for the claims of the subject application.
[00014] Embodiments of the present disclosure may include a system for digital reconstruction of ancient buildings or monuments, including a data collection module for acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records. Embodiments may also include a reconstruction module configured to process the acquired data and generate three-dimensional (3D) digital models of the ancient buildings or monuments. Embodiments may also include a visualization module for displaying the 3D digital models in an interactive environment.
[00015] In some embodiments, a data collection module utilizes a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation. In some embodiments, the reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.
[00016] In some embodiments, the visualization module provides an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application. In some embodiments, the system may include an annotation module, enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments.
[00017] Embodiments of the present disclosure may also include a method for digital reconstruction of ancient buildings or monuments, including acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records, through a data collection module. Embodiments may also include processing the acquired data and generating three-dimensional (3D) digital models of the ancient buildings or monuments using a reconstruction module. Embodiments may also include displaying the 3D digital models in an interactive environment through a visualization module.
[00018] In some embodiments, the method may include utilizing a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation. In some embodiments, the reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.
[00019] In some embodiments, the method may include providing an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application. In some embodiments, the method may include enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments through an annotation module.

Brief Description of the Drawings
[00020] The features and advantages of the present disclosure would be more clearly understood from the following description taken in conjunction with the accompanying drawings in which:
[00021] FIG. 1 is a block diagram illustrating a systemfor digital reconstruction of ancient buildings or monuments, according to some embodiments of the present disclosure.
[00022] FIG. 2 is a flowchart illustrating a method for digital reconstruction of ancient buildings or monuments, according to some embodiments of the present disclosure.
Detailed Description
[00023] In the following detailed description of the invention, reference is made to the accompanying drawings that form a part hereof, and in which is shown, by way of illustration, specific embodiments in which the invention may be practiced. In the drawings, like numerals describe substantially similar components throughout the several views. These embodiments are described in sufficient detail to claim those skilled in the art to practice the invention. Other embodiments may be utilized and structural, logical, and electrical changes may be made without departing from the scope of the present invention. The following detailed description is, therefore, not to be taken in a limiting sense, and the scope of the present invention is defined only by the appended claims and equivalents thereof.
[00024] The use of the terms “a” and “an” and “the” and “at least one” and similar referents in the context of describing the invention (especially in the context of the following claims) are to be construed to cover both the singular and the plural, unless otherwise indicated herein or clearly contradicted by context. The use of the term “at least one” followed by a list of one or more items (for example, “at least one of A and B”) is to be construed to mean one item selected from the listed items (A or B) or any combination of two or more of the listed items (A and B), unless otherwise indicated herein or clearly contradicted by context. The terms “comprising,” “having,” “including,” and “containing” are to be construed as open-ended terms (i.e., meaning “including, but not limited to,”) unless otherwise noted. Recitation of ranges of values herein are merely intended to serve as a shorthand method of referring individually to each separate value falling within the range, unless otherwise indicated herein, and each separate value is incorporated into the specification as if it were individually recited herein. All methods described herein can be performed in any suitable order unless otherwise indicated herein or otherwise clearly contradicted by context. The use of any and all examples, or exemplary language (e.g., “such as”) provided herein, is intended merely to better illuminate the invention and does not pose a limitation on the scope of the invention unless otherwise claimed. No language in the specification should be construed as indicating any non-claimed element as essential to the practice of the invention.
[00025] The present invention relates generally to the use of advanced digital technologies such as 3D scanning, photogrammetry, and computer graphics to create accurate and detailed digital models of archaeological sites and artifacts. More particularly, the system and method for utilizing market research tools to improve strategic thinking and opportunity identification.
[00026] The image that is given in figure 1 is a block diagram that illustrates a system 100 (for digital reconstruction of ancient buildings or monuments) in line with specific implementations of the present disclosure. The system 100 may, in some implementations, include a data collection module 110 for acquiring data related to ancient buildings or monuments, a reconstruction module 120 configured to process the acquired data and generate three-dimensional (3D) digital models of the ancient buildings or monuments, and a visualisation module 130 for displaying the 3D digital models in an interactive environment. There is a possibility that the data collection module 110 will include images 112, measurements 114, and historical records 116 as part of the information it gathers.
[00027] The data gathering module 110 of certain implementations may make simultaneous use of a variety of data sources, which is one possible configuration for this module. This includes things like photogrammetry, laser scanning, satellite imaging, and historical records, but it's not restricted to just those things. The reconstruction module 120 may, in certain implementations, make use of algorithms, such as computer vision, machine learning, or artificial intelligence strategies, in order to generate accurate and detailed 3D digital representations of the old structures or monuments. This can be accomplished by using computer vision, machine learning, or artificial intelligence strategies.
[00028] In some implementations, the visualisation module 130 may be responsible for providing a user with an interactive environment that gives them the ability to navigate, explore, and make changes to the 3D digital models in real time. The consumers may get into this environment by using either a web-based application or a native mobile application on their mobile devices. In certain implementations, the system 100 may additionally contain an annotation module as an integral component of the architecture. By the usage of this module, users are afforded the opportunity to annotate 3D digital models of historical buildings or monuments with descriptions, comments, and other forms of information that provide context.
[00029] Figure 2, which is a flowchart that displays some of the embodiments of the current disclosure, presents a method for digital reconstruction of ancient buildings or monuments. This technique is presented in the figure. The approach may, in some implementations, comprise, at step 210, acquiring data associated to the ancient structures or monuments by means of a data collection module. This step may be included in some but not all implementations. This information might include things like images, measurements, or historical papers, to name a few examples. In some implementations of the approach, step 220 of the technique may include the processing of the obtained data and the construction of three-dimensional (3D) digital models of the historical structures or monuments using a reconstruction module. This step may be included in some implementations of the approach. In the 230th step of the operation, there is a choice that may be made between two different options one displays the three-dimensional digital models in an interactive environment using a visualisation module, and the other does not.
[00030] One of the steps that may be taken throughout the process, depending on the specific implementation of the method, is to use data from many sources all at once. This category includes a wide variety of different items, including historical documentation, photogrammetry, laser scanning, and satellite photos, to name just a few examples. In some implementations, the reconstruction module may employ techniques such as computer vision, machine learning, or artificial intelligence strategies in order to generate accurate and detailed 3D digital models of the historic buildings or monuments.
[00031] The method may, in certain implementations, include the provision of an interactive environment that, by way of a web-based application or a native mobile application, enables users to traverse, explore, and modify the 3D digital models in real time. This may be included in certain implementations of the method. Annotations, descriptions, and other types of contextual information may be added by users to 3D digital models of historic buildings or monuments by using a module that is referred to as an annotation module in specific implementations of the method.
[00032] A system for the digital reconstruction of ancient buildings or monuments may be included in some embodiments of the present disclosure. This system may include a data collection module for the purpose of acquiring data related to the ancient buildings or monuments in question, such as images, measurements, and historical records. A reconstruction module that is able to analyse the obtained data and produce three-dimensional (3D) digital representations of the historical structures or monuments may also be included in embodiments. A visualisation module that may show the three-dimensional digital models in an environment that allows for interaction may also be included in embodiments.
[00033] In certain implementations, the data collecting module makes use of a variety of data sources, including but not limited to satellite photography, laser scanning, photogrammetry, and historical documentation. The reconstruction module in certain implementations makes use of technologies like computer vision, machine learning, or artificial intelligence approaches in order to generate precise and detailed 3D digital representations of the old structures or monuments.
[00034] A web-based application or a native mobile application may be used in some implementations of the visualisation module to create an interactive environment that enables users to browse, examine, and edit 3D digital models in real time. An annotation module may be included in the system in some embodiments. This module gives users the ability to annotate 3D digital models of historical structures or monuments with descriptions, additional contextual information, or comments of their own choosing.
[00035] A method for the digital reconstruction of ancient buildings or monuments may also be included in some embodiments of the present disclosure. This method may involve using a data collection module to acquire data related to the ancient buildings or monuments, such as images, measurements, and historical records, in order to carry out the digital reconstruction. Processing the obtained data and producing three-dimensional (3D) digital models of the historic structures or monuments using a reconstruction module are both possible embodiments. Embodiments may additionally comprise the following. Displaying the three-dimensional digital models in an interactive setting with the help of a visualisation module is another potential aspect of embodiments.
[00036] In some implementations of the approach, one of the steps may include using many sources of data at the same time. These sources of data may include, but are not limited to, satellite images, laser scanning, photogrammetry, and historical documentation. The reconstruction module in certain implementations makes use of technologies like computer vision, machine learning, or artificial intelligence approaches in order to generate precise and detailed 3D digital representations of the old structures or monuments.
[00037] The technique may, in certain implementations, comprise the provision of an interactive environment that, by way of a web-based application or a native mobile application, enables users to traverse, explore, and alter the 3D digital models in real time. Annotations, descriptions, and other types of contextual information may be able to be added to 3D digital models of historical structures or monuments by users if the technique includes an annotation module
[00038] The system and method for digital reconstruction of ancient buildings or monuments described in the above patent application consists of three main modules: a data collection module, a reconstruction module, and a visualization module.
[00039] The data collection module is responsible for gathering all relevant data related to the ancient buildings or monuments, including images, measurements, and historical records. This module utilizes a variety of data sources, such as satellite imagery, laser scanning, photogrammetry, and historical documentation, to ensure the accuracy and completeness of the acquired data.
[00040] The reconstruction module is responsible for processing the acquired data and generating accurate and detailed three-dimensional (3D) digital models of the ancient buildings or monuments. This module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create the 3D digital models. The algorithms help in identifying and interpreting the acquired data, such as images, measurements, and historical records, to create accurate models of the ancient buildings or monuments.
[00041] The visualization module is responsible for displaying the 3D digital models of the ancient buildings or monuments in an interactive environment. This module provides an interactive environment that allows users to navigate, explore, and manipulate the 3D digital models in real-time, using a web-based application or a native mobile application. The interactive environment provides users with the ability to explore the 3D models in a virtual environment, allowing them to get a better understanding of the structure and its surrounding environment.
[00042] Additionally, the system also includes an annotation module that enables users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments. This feature allows users to add more information and context to the 3D models, such as historical information or other interesting facts.
[00043] The method for digital reconstruction of ancient buildings or monuments involves three steps: data acquisition, processing, and visualization. The method begins with acquiring all relevant data related to the ancient buildings or monuments using the data collection module. Next, the acquired data is processed using the reconstruction module to generate accurate and detailed 3D digital models of the ancient buildings or monuments. Finally, the 3D digital models are displayed in an interactive environment using the visualization module. The method also includes the use of an annotation module that enables users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments.
[00044] Example embodiments herein have been described above with reference to block diagrams and flowchart illustrations of methods and apparatuses. It will be understood that each block of the block diagrams and flowchart illustrations, and combinations of blocks in the block diagrams and flowchart illustrations, respectively, can be implemented by various means including hardware, software, firmware, and a combination thereof. For example, in one embodiment, each block of the block diagrams and flowchart illustrations, and combinations of blocks in the block diagrams and flowchart illustrations can be implemented by computer program instructions. These computer program instructions may be loaded onto a general purpose computer, special purpose computer, or other programmable data processing apparatus to produce a machine, such that the instructions which execute on the computer or other programmable data processing apparatus create means for implementing the functions specified in the flowchart block or blocks.
[00045] Throughout the present disclosure, the term ‘processing means’ or ‘microprocessor’ or ‘processor’ or ‘processors’ includes, but is not limited to, a general purpose processor (such as, for example, a complex instruction set computing (CISC) microprocessor, a reduced instruction set computing (RISC) microprocessor, a very long instruction word (VLIW) microprocessor, a microprocessor implementing other types of instruction sets, or a microprocessor implementing a combination of types of instruction sets) or a specialized processor (such as, for example, an application specific integrated circuit (ASIC), a field programmable gate array (FPGA), a digital signal processor (DSP), or a network processor).
[00046] The term “non-transitory storage device” or “storage” or “memory,” as used herein relates to a random access memory, read only memory and variants thereof, in which a computer can store data or software for any duration.
[00047] Operations in accordance with a variety of aspects of the disclosure is described above would not have to be performed in the precise order described. Rather, various steps can be handled in reverse order or simultaneously or not at all.
[00048] While several implementations have been described and illustrated herein, a variety of other means and/or structures for performing the function and/or obtaining the results and/or one or more of the advantages described herein may be utilized, and each of such variations and/or modifications is deemed to be within the scope of the implementations described herein. More generally, all parameters, dimensions, materials, and configurations described herein are meant to be exemplary and that the actual parameters, dimensions, materials, and/or configurations will depend upon the specific application or applications for which the teachings is/are used. Those skilled in the art will recognize, or be able to ascertain using no more than routine experimentation, many equivalents to the specific implementations described herein. It is, therefore, to be understood that the foregoing implementations are presented by way of example only and that, within the scope of the appended claims and equivalents thereto, implementations may be practiced otherwise than as specifically described and claimed. Implementations of the present disclosure are directed to each individual feature, system, article, material, kit, and/or method described herein. In addition, any combination of two or more such features, systems, articles, materials, kits, and/or methods, if such features, systems, articles, materials, kits, and/or methods are not mutually inconsistent, is included within the scope of the present disclosure.

Claims
I/We Claim:
1. A system for digital reconstruction of ancient buildings or monuments, comprising: a data collection module for acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records; a reconstruction module configured to process the acquired data and generate three-dimensional (3D) digital models of the ancient buildings or monuments; and a visualization module for displaying the 3D digital models in an interactive environment.

2. The system of claim 1, wherein said data collection module utilizes a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation.

3. The system of claim 1, wherein said reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.

4. The system of claim 1, wherein said visualization module provides an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application.

5. The system of claim 1, further comprising an annotation module, enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments.

6. A method for digital reconstruction of ancient buildings or monuments, comprising: acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records, through a data collection module; processing the acquired data and generating three-dimensional (3D) digital models of the ancient buildings or monuments using a reconstruction module; and displaying the 3D digital models in an interactive environment through a visualization module.

7. The method of claim 6, further comprising utilizing a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation.

8. The method of claim 6, wherein said reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.

9. The method of claim 6, further comprising providing an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application.

10. The method of claim 6, further comprising enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments through an annotation module.

DIGITAL RECONSTRUCTION OF ANCIENT BUILDINGS AND MONUMENTS
Abstract
The present invention relates to a system for the digital reconstruction of ancient buildings or monuments may be included in some embodiments of the present disclosure. This system may include a data collection module for the purpose of acquiring data related to the ancient buildings or monuments in question, such as images, measurements, and historical records. A reconstruction module that is able to analyse the obtained data and produce three-dimensional (3D) digital representations of the historical structures or monuments may also be included in embodiments. A visualisation module that may show the three-dimensional digital models in an environment that allows for interaction may also be included in embodiments. , Claims:Claims
I/We Claim:
1. A system for digital reconstruction of ancient buildings or monuments, comprising: a data collection module for acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records; a reconstruction module configured to process the acquired data and generate three-dimensional (3D) digital models of the ancient buildings or monuments; and a visualization module for displaying the 3D digital models in an interactive environment.

2. The system of claim 1, wherein said data collection module utilizes a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation.

3. The system of claim 1, wherein said reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.

4. The system of claim 1, wherein said visualization module provides an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application.

5. The system of claim 1, further comprising an annotation module, enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments.

6. A method for digital reconstruction of ancient buildings or monuments, comprising: acquiring data related to the ancient buildings or monuments, including images, measurements, and historical records, through a data collection module; processing the acquired data and generating three-dimensional (3D) digital models of the ancient buildings or monuments using a reconstruction module; and displaying the 3D digital models in an interactive environment through a visualization module.

7. The method of claim 6, further comprising utilizing a combination of data sources, including but not limited to, satellite imagery, laser scanning, photogrammetry, and historical documentation.

8. The method of claim 6, wherein said reconstruction module employs algorithms, such as computer vision, machine learning, or artificial intelligence techniques, to create accurate and detailed 3D digital models of the ancient buildings or monuments.

9. The method of claim 6, further comprising providing an interactive environment allowing users to navigate, explore, and manipulate the 3D digital models in real-time, via a web-based application or a native mobile application.

10. The method of claim 6, further comprising enabling users to add annotations, descriptions, or other contextual information to the 3D digital models of the ancient buildings or monuments through an annotation module.

Documents

Application Documents

# Name Date
1 202311027490-REQUEST FOR EARLY PUBLICATION(FORM-9) [13-04-2023(online)].pdf 2023-04-13
2 202311027490-POWER OF AUTHORITY [13-04-2023(online)].pdf 2023-04-13
3 202311027490-OTHERS [13-04-2023(online)].pdf 2023-04-13
4 202311027490-FORM-9 [13-04-2023(online)].pdf 2023-04-13
5 202311027490-FORM FOR SMALL ENTITY(FORM-28) [13-04-2023(online)].pdf 2023-04-13
6 202311027490-FORM 1 [13-04-2023(online)].pdf 2023-04-13
7 202311027490-EVIDENCE FOR REGISTRATION UNDER SSI(FORM-28) [13-04-2023(online)].pdf 2023-04-13
8 202311027490-EDUCATIONAL INSTITUTION(S) [13-04-2023(online)].pdf 2023-04-13
9 202311027490-DRAWINGS [13-04-2023(online)].pdf 2023-04-13
10 202311027490-DECLARATION OF INVENTORSHIP (FORM 5) [13-04-2023(online)].pdf 2023-04-13
11 202311027490-COMPLETE SPECIFICATION [13-04-2023(online)].pdf 2023-04-13