IP Library Patent Application 18047948
Patent Application
App. No. 18/047,948

SYSTEMS AND METHODS FOR AUTOMATED STRUCTURE MODELING FROM DIGITAL IMAGERY

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Quick Facts
Patent No.
US None
App. No.
18/047,948
Abstract

Methods and systems for automated structure modeling form digital imagery are disclosed, including a method comprising receiving target digital images depicting a target structure; automatically identifying target elements of the target structure in the target digital images using convolutional neural network semantic segmentation; automatically generating a heat map model depicting a likelihood of a location of the target elements of the target structure; automatically generating a two-dimensional model or a three-dimensional model of the target structure based on the heat map model without further utilizing the target digital images; and extracting information regarding the target elements from the two-dimensional or the three-dimensional model of the target structure.

Claims (30)

1 . A computer system storing computer readable instructions that, when executed by the computer system, cause the computer system to:

receive target digital images depicting a target structure;

automatically identify target elements of the target structure in the target digital images using convolutional neural network semantic segmentation;

automatically generate a heat map model depicting a likelihood of a location of the target elements of the target structure based on results of the convolutional neural network semantic segmentation;

automatically generate a two-dimensional model or a three-dimensional model of the target structure based on the heat map model without further utilizing the target digital images; and

extract information regarding the target elements from the two-dimensional model or the three-dimensional model of the target structure.

2 . The computer system of claim 1 , wherein the information regarding the target elements comprises one or more of: dimensions, areas, facets, feature characteristics, pitch, feature identification, feature type, element identification, element type, structural identification, and structural type.

3 . The computer system of claim 1 , wherein the target elements comprise one or more of a roof, a wall, a window, a door, or components thereof.

4 . The computer system of claim 1 , wherein generating the heat map model includes training the convolutional neural network utilizing one or more of: example digital images and associated known feature data.

5 . The computer system of claim 4 , wherein the known feature data comprises one or more of: feature identification, feature type, element identification, element type, structural identification, structural type, and other structural information, regarding example structures depicted in the example digital images.

6 . The computer system of claim 4 , wherein the known feature data comprises one or more of: identification of a line as a ridge, identification of a line as an eave, identification of a line as a valley, identification of an area as a roof, identification of an area as a facet of a roof, identification of an area as a wall, identification of a feature as a window, identification of a feature as a door, identification of a relationship of lines as a roof, identification of a relationship of lines as a footprint of an example structure, identification of the example structure, identification of material types, identification of a feature as a chimney, identification of driveways, identification of sidewalks, identification of swimming pools, and identification of antennas.

7 . The computer system of claim 1 , wherein automatically generating the two-dimensional model or the three-dimensional model of the target structure based on the heat map model without further utilizing the target digital images, includes recognizing shapes created by lines of the heat map model.

8 . The computer system of claim 1 , wherein automatically generating the two-dimensional model or the three-dimensional model of the target structure based on the heat map model without further utilizing the target digital images further comprises: clarifying and vectorizing lines of the heat map model from a raster image of the heat map model.

9 . The computer system of claim 1 , further comprising: mapping lines from a raster image of the heat map model to a new viewpoint angle.

10 . The computer system of claim 1 , wherein one or more of the target digital images have associated geolocation information, and further comprising: mapping the heat map model mapped in the two-dimensional model and/or the three-dimensional model to a set of geolocated points based on the associated geolocation information.

11 . The computer system of claim 1 , wherein one or more of the target digital images have associated geolocation information, and further comprising: mapping lines, points, or features of the heat map model to additional target digital images based on the associated geolocation information.

12 . The computer system of claim 1 , wherein extracting information regarding the target elements from the two-dimensional or the three-dimensional model of the target structure includes extracting pitch of a roof of the target structure.

13 . The computer system of claim 1 , wherein portions of the heat map model are overlayed on one or more of the target digital images and/or on additional digital images.

14 . A method, comprising:

receiving, with one or more computer processors, target digital images depicting a target structure;

automatically identifying, with the one or more computer processors, target elements of the target structure in the target digital images using one or more machine learning model;

automatically generating, with the one or more computer processors, a heat map model depicting a likelihood of a location of the target elements of the target structure based on results of the one or more machine learning model;

automatically generating, with the one or more computer processors, a two-dimensional model or a three-dimensional model of the target structure based on the heat map model without further utilizing the target digital images; and

extracting information regarding the target elements from the two-dimensional or the three-dimensional model of the target structure.

15 . The method of claim 14 , wherein the one or more machine learning model includes convolutional neural network semantic segmentation.

16 . The method of claim 14 , wherein the information regarding the target elements comprises one or more of: dimensions, areas, facets, feature characteristics, pitch, feature identification, feature type, element identification, element type, structural identification, and structural type.

17 . The method of claim 14 , wherein the target elements comprise one or more of a roof, a wall, a window, a door, or components thereof.

18 . The method of claim 14 , further comprising: mapping, with the one or more computer processors, lines from a raster image of the heat map model to a new viewpoint angle.

19 . The method of claim 14 , wherein one or more of the target digital images have associated geolocation information, and further comprising: mapping the heat map model mapped in the two-dimensional model and/or the three-dimensional model to a set of geolocated points based on the associated geolocation information.

20 . The method of claim 14 , wherein one or more of the target digital images have associated geolocation information, and further comprising: mapping lines, points, or features of the heat map model to additional target digital images based on the associated geolocation information.

Assignments (2)
FIRST LIEN SECURITY AGREEMENT Recorded Mar 28, 2025
From: EAGLE VIEW TECHNOLOGIES, INC.; PICTOMETRY INTERNATIONAL CORP.
To: MORGAN STANLEY SENIOR FUNDING, INC.
Reel/Frame 070671/0078 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 13, 2025
From: STRONG, SHADRIAN; TORRAS, ORIOL CAUDEVILLA; MURR, DAVID
To: PICTOMETRY INTERNATIONAL CORP.
Reel/Frame 070506/0164 →