IP Library Granted Patent US 12664787
Granted Patent B2
US 12664787 · App. 19/026,781 · Granted Jun 23, 2026

System and methods for integrated online environmental impact assessment, monitoring and visualization

Inventor: Kin Man Wong (Hong Kong, HK)
G06V20/52G06T19/20G06V20/176G06T2219/2004
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Quick Facts
Patent No.
US 12664787
App. No.
19/026,781
Granted
Jun 23, 2026
Kind
B2
Abstract

A method and a system for online integrated environmental monitoring, assessment, and impact visualization of projects are disclosed. The method includes receiving project site data representing the geographical boundary of a project in a virtual environment and collecting real-world environmental data from fixed and mobile monitoring devices. Model data, modeling parameters, and digital ground data associated with the project are retrieved and unified through a unified connector interface to form a unified input data. The unified input data is processed through one or more impact modeling entities to assess environmental impacts, including air quality, noise, water quality, and ecological effects. Visualizations of the environmental impact determined are transmitted to an environmental assessment planner interface for display. The method and the system provide for real-time integration, efficient impact modeling, and multi-dimensional visualization, enabling stakeholders to evaluate and monitor environmental effects with enhanced precision and accessibility in a seamless digital environment.

Claims (56)

1 . A method for online integrated environmental monitoring, assessment, and impact visualization of projects, comprising:

receiving, by a processor, project site data representing a geographical boundary of a project in a virtual environment;

collecting, by the processor, real-world environmental data from one or more data sources comprising at least one fixed monitoring device and at least one mobile monitoring device, the real-world environmental data comprising parameter values associated with any one or a combination of: air quality, noise levels, water quality, or ecological data;

retrieving, by the processor, model data and corresponding modeling parameters associated with the project, and digital ground data associated with the geographical boundary of the project;

providing, by the processor, a unified connector interface for providing access to unified input data comprising any one or a combination of: the project site data, the real-world environmental data, the model data, the modeling parameters, and the digital ground data;

processing, by the processor, the unified input data through one or more impact modeling entities to determine environmental impact of the project;

generating, by the processor, one or more visualizations for the environmental impact determined by the one or more impact modeling entities; and

transmitting, by the processor, the one or more visualizations to an environmental assessment planner interface for display;

wherein for generating the one or more visualizations, the method comprises:

positioning, by the processor, a three-dimensional (3D) model of the project on the geographical boundary in the virtual environment;

overlaying, by the processor, the digital ground data over the geographical boundary of the project in the virtual environment; and

transmitting, by the processor, the virtual environment to the environmental assessment planner interface for display, wherein the environmental assessment planner interface allows for construction and manipulation of the 3D model.

2 . The method of claim 1 , wherein the project site data is provided by at least one stakeholder through the environmental assessment planner interface.

3 . The method of claim 1 , wherein the unified connector interface is configured to ingest data from the one or more data sources, transform data for impact assessment using the one or more impact modeling entities, and/or deliver data to the environmental assessment planner interface, in real-time.

4 . The method of claim 1 , wherein the environmental impact determined by the one or more impact modeling entities comprises at least one of: air quality impact, noise impact, water quality impact, or ecological impact.

5 . The method of claim 1 , wherein the one or more impact modeling entities are any one or a combination of: a statistical model, a mathematical model, a machine learning model, and an expert system.

6 . The method of claim 1 , wherein each of the one or more impact modeling entities is configured to determine the environmental impact based on the unified data input, and the environmental impact determined by other impact modeling entities.

7 . The method of claim 1 , wherein the one or more visualizations are generated for at least one of the environmental impact based on inputs received from the environmental assessment planner interface.

8 . The method of claim 1 , wherein the one or more visualizations are generated in formats conducing for representation in any one or a combination of: a web-browser interface, a mobile phone, a desktop computer interface, or a virtual reality, augmented reality, or mixed reality interface, for modeling, assessment, and monitoring of the environmental impact.

9 . The method of claim 1 , further comprising:

freezing, by the processor, the project and storing data associated with the environmental impact and the one or more visualizations of the project in a data storage; and/or

re-activating, by the processor, the project by retrieving the data stored in the data storage.

10 . The method of claim 1 , wherein the project site data comprises any one or a combination of: terrain data, road data, houses data, and ground types data.

11 . The method of claim 1 , wherein the at least one fixed monitoring device is any one or a combination of: noise sensors, air sensors, water sensors, temperature sensors, pressure sensors, mounted on any of lamp-posts, roof-tops, and/or immovable structures fixed on ground.

12 . The method of claim 1 , wherein the at least one mobile monitoring device is any one or a combination of: drones, action cameras, mobile phones, and 360 cameras.

13 . The method of claim 1 , wherein the project is any one or a combination of: infrastructural projects, industrial projects, mining projects, energy projects, water management projects, and waste management projects.

14 . The method of claim 1 , wherein the digital ground data has one or more data layers comprising any one or a combination of: roads, geography, topology, land uses, boundaries, hydrology, elevation, and image background.

15 . The method of claim 1 , further comprising screening the project for environmental impact assessment requirements based on the project site data.

16 . The method of claim 1 , further comprising determining, by the processor, the model data, and the modeling parameters during scoping of the project, and wherein the model data and the modeling parameters are indicative of data associated with structures proposed to be built in the project that have potential to affect the environment.

17 . The method of claim 1 , further comprising generating, by the processor, one or more measures to mitigate the environmental impact determined by the one or more impact modeling entities.

18 . A system for online integrated environmental monitoring, assessment, and impact visualization, comprising:

a processor; and

a memory operatively coupled to the processor, wherein the memory comprises one or more processor executable instructions configured to cause the processor to:

receive project site data representing a geographical boundary of a project in a virtual environment;

collect real-world environmental data from one or more data sources comprising at least one fixed monitoring device and at least one mobile monitoring device, the real-world environmental data comprising parameter values associated with any one or a combination of: air quality, noise levels, water quality, or ecological impact;

retrieve model data and corresponding modeling parameters associated with the project, with digital ground data associated with the geographical boundary of the project;

provide a unified connector interface for accessing unified input data comprising any one or a combination of: the project site data and the real-world environmental data, the model data, the modeling parameters, and the digital ground data;

process the unified input data through one or more impact modeling entities to determine environmental impact of the project;

generate one or more visualizations for the environmental impact determined by the one or more impact modeling entities; and

transmit the one or more visualizations to an environmental assessment planner interface for display;

wherein for the generated one or more visualizations, the processor to:

position a three-dimensional (3D) model of the project on the geographical boundary in the virtual environment;

overlay the digital ground data over the geographical boundary of the project in the virtual environment; and

transmit the virtual environment to the environmental assessment planner interface for display, wherein the environmental assessment planner interface allows for construction and manipulation of the 3D model.

19 . A non-transitory computer-readable medium storing instructions for online integrated environmental monitoring, assessment, and impact visualization, the instructions, when executed by a processor, configure the processor to perform functions, including functions to:

receive project site data representing a geographical boundary of a project in a virtual environment;

collect real-world environmental data from one or more data sources comprising at least one fixed monitoring device and at least one mobile monitoring device, the real-world environmental data comprising parameter values associated with any one or a combination of: air quality, noise levels, water quality, or ecological impact;

retrieve model data and corresponding modeling parameters associated with the project, with digital ground data associated with the geographical boundary of the project;

provide a unified connector interface for accessing unified input data comprising any one or a combination of: the project site data and the real-world environmental data, the model data, the modeling parameters, and the digital ground data;

process the unified input data through one or more impact modeling entities to determine environmental impact of the project;

generate one or more visualizations for the environmental impact determined by the one or more impact modeling entities; and

transmit the one or more visualizations to an environmental assessment planner interface for display;

wherein for the generated one or more visualizations, the processor to:

position a three-dimensional (3D) model of the project on the geographical boundary in the virtual environment;

overlay the digital ground data over the geographical boundary of the project in the virtual environment; and

transmit the virtual environment to the environmental assessment planner interface for display, wherein the environmental assessment planner interface allows for construction and manipulation of the 3D model.