SYSTEMS AND METHODS FOR A 3D MODEL FOR VISUALIZATION OF LANDSCAPE DESIGN
The following relates generally to light detection and ranging (LIDAR) and artificial intelligence (AI). In some embodiments, a system: receives LIDAR data generated from a LIDAR camera; measures a plurality of dimensions of a landscape based upon processor analysis of the LIDAR data; builds a 3D model of the landscape based upon the measured plurality of dimensions, the 3D model including: (i) a structure, and (ii) a vegetation; and displays a representation of the 3D model.
1 . A computer-implemented method for visualization of landscape design, the computer-implemented method comprising, via one or more processors, sensors, servers, and/or transceivers:
receiving light detection and ranging (LIDAR) data generated from a LIDAR camera;
measuring a plurality of dimensions of a landscape based upon processor analysis of the LIDAR data;
building a 3D model of the landscape based upon the measured plurality of dimensions;
determining dimensional data of boundaries of the landscape based upon: (i) preexisting property data from a database, and (ii) the LIDAR data;
overlaying the dimensional data of the boundaries onto the 3D model of the landscape; and
displaying a representation of the 3D model of the landscape including the overlayed dimensional data of the boundaries.
2 . The computer-implemented method of claim 1 , wherein the 3D model further includes a pathway.
3 . The computer-implemented method of claim 1 , further comprising, via the one or more processors, transceivers, sensors, and/or servers:
receiving drone data;
wherein the 3D model of the landscape is built further based upon the received drone data.
4 . The computer-implemented method of claim 1 , further comprising, via the one or more processors, transceivers, sensors, and/or servers:
receiving global positioning system (GPS) data;
wherein the 3D model of the landscape is built further based upon the received GPS data.
5 . The computer-implemented method of claim 1 , wherein the displayed representation of the 3D model includes a 2D image of the landscape, and the 2D image includes the dimensional data of the boundaries including a length and width of the landscape.
6 . The computer-implemented method of claim 1 , wherein:
the LIDAR camera is positioned on a ground; and
the method further comprises, via the one or more processors, transceivers, sensors, and/or servers, receiving drone data from a drone, the drone data comprising: (i) radio detection and ranging (RADAR) data gathered by the drone, and (ii) photographic camera data gathered by the drone;
wherein the 3D model of the landscape is further built based upon the received drone data.
7 . The computer-implemented method of claim 1 , wherein the dimensional data of the boundaries of the landscape includes a length and a width.
8 . A computer system configured for visualization of landscape design, the computer system comprising one or more processors configured to:
receive light detection and ranging (LIDAR) data generated from a LIDAR camera;
measure a plurality of dimensions of a landscape based upon processor analysis of the LIDAR data;
build a 3D model of the landscape based upon the measured plurality of dimensions;
determine dimensional data of boundaries of the landscape based upon: (i) preexisting property data from a database, and (ii) the LIDAR data;
overlay the dimensional data of the boundaries onto the 3D model of the landscape; and
display a representation of the 3D model of the landscape including the overlayed dimensional data of the boundaries.
9 . The computer system of claim 8 , wherein the 3D model further includes a pathway.
10 . The computer system of claim 8 , the one or more processors further configured to:
receive drone data; and
build the 3D model of the landscape further based upon the received drone data.
11 . The computer system of claim 8 , wherein the dimensional data of the boundaries of the landscape includes a length and a width.
12 . The computer system of claim 8 , the one or more processors further configured to:
receive global positioning system (GPS) data; and
build the 3D model of the landscape is further based upon the received GPS data.
13 . The computer system of claim 8 , wherein the displayed representation of the 3D model includes a 2D image of the landscape.
14 . A computer system configured for visualization of landscape design, comprising:
one or more processors; and
a non-transitory computer readable medium coupled to the one or more processors and storing executable instructions that, when executed by the one or more processors, cause the computer system to:
receive light detection and ranging (LIDAR) data generated from a LIDAR camera;
measure a plurality of dimensions of a landscape based upon processor analysis of the LIDAR data;
build a 3D model of the landscape based upon the measured plurality of dimensions;
determine dimensional data of boundaries of the landscape based upon: (i) preexisting property data from a database, and (ii) the LIDAR data;
overlay the dimensional data of the boundaries onto the 3D model of the landscape; and
display a representation of the 3D model of the landscape including the overlayed dimensional data of the boundaries.
15 . The computer system of claim 14 , wherein the 3D model further includes a pathway.
16 . The computer system of claim 14 , wherein the executable instructions, when executed, further cause the computer system to:
receive drone data; and
build the 3D model of the landscape further based upon the received drone data.
17 . The computer system of claim 14 , wherein the dimensional data of the boundaries of the landscape includes a length and a width.
18 . The computer system of claim 15 , wherein the executable instructions, when executed, further cause the computer system to:
receive, from a photographic camera, color data and pixel data; and
build the 3D model of the landscape further based upon the color data and pixel data.
19 . The computer system of claim 14 , wherein the executable instructions, when executed, further cause the computer system to:
receive global positioning system (GPS) data; and
build the 3D model of the landscape is further based upon the received GPS data.
20 . The computer system of claim 14 , wherein the displayed representation of the 3D model includes a 2D image of the landscape, and the 2D image includes the dimensional data of the boundaries including a length and width of the landscape.