IP Library Granted Patent US 12,332,660
Granted Patent B2
US 12,332,660 · App. 16/691,197 · Granted Jun 17, 2025

Navigating unmanned aircraft using pitch

Inventors: Frank D. Giuffrida (Honeoye Falls, NY); Matthew Finn (Burnsville, MN); Glenn Wallace (Redmond, WA)
Assignee: Eagle View Technologies, Inc.
G05D1/101G05D1/0088G05D1/0094H04N7/185B64U2101/30B64U2201/10
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Quick Facts
Patent No.
US 12,332,660
App. No.
16/691,197
Granted
Jun 17, 2025
Kind
B2
Abstract

Methods and systems for navigating unmanned aircraft to capture images a consistent distance from a surface of a structure, such as a roof, are disclosed, including a system comprising a computer system having one or more processors and one or more non-transitory computer readable medium, the processor(s) executing instructions to cause the one or more processors to: generate unmanned aircraft information including flight path information for capturing images of a roof section having a plane, the flight path information configured to direct an unmanned aircraft to fly a flight path based at least in part on a pitch of the roof section and information from one or more sensor indicative of a location of the roof section, the flight path configured to include waypoints at which the unmanned aircraft captures images at a consistent distance from the plane of the roof section.

Claims (45)

1. A system, comprising:

one or more computer processors; and

one or more non-transitory computer readable medium storing computer executable code that when executed by the one or more computer processors cause the one or more computer processors to:

receive a first sensor reading from one or more sensors on an unmanned aircraft at a first position indicative of a first distance between the unmanned aircraft and a roof of a structure;

receive a second sensor reading from the one or more sensors on the unmanned aircraft at the first position indicative of a second distance between the unmanned aircraft and the roof of the structure, wherein a second line along the second distance of the second sensor reading is at a known angle from a first line along the first distance of the first sensor reading;

determine a pitch of the roof using the first distance, the second distance, and the known angle;

determine a desired resolution for oblique images to be captured by a camera on the unmanned aircraft, the camera having camera parameters including focal length;

determine a swath width based on at least the desired resolution of the oblique images to be captured by the camera and a camera sensor size, the swath width indicative of a width of a portion of the structure for the camera to capture in each of the oblique images in a single pass of the structure by the unmanned aircraft;

determine a lateral offset and a vertical offset of the camera on the unmanned aircraft from the structure that achieves the desired resolution of the oblique images to be captured by the camera based on the camera parameters and the swath width;

move the unmanned aircraft into a predetermined range of image-capture distances based on the determined lateral offset and the determined vertical offset from the structure that achieves the desired resolution of oblique images captured by the camera;

orientate the camera on the unmanned aircraft to capture a field of view of the roof at a desired oblique angle in relation to a plane of the roof, based on the pitch of the roof;

determine a flight path for the unmanned aircraft about the structure at the predetermined range of image-capture distances and determine locations in the flight path from which to capture one or more oblique images of the roof of the structure with the camera, based on a size of a sensor of the camera, the desired resolution of the oblique images captured by the camera, and a desired overlap of the oblique images; and

capture, with the camera on the unmanned aircraft, the one or more oblique images of the roof of the structure, the one or more oblique images having the desired resolution.

2. The system of claim 1 , wherein the one or more sensors comprises two or more sensors.

3. The system of claim 1 , wherein the computer executable code that when executed by the one or more computer processors further causes the one or more computer processors to:

determine, utilizing one or more of the first sensor and the second sensor on the unmanned aircraft, one or more third distances between the unmanned aircraft and a surface of the structure; and

adjust navigation of the unmanned aircraft to maintain a consistent distance between the unmanned aircraft and the surface of the structure during navigation of a flight path of the unmanned aircraft based on the one or more third distances and the determined pitch of the surface of the structure.

4. The system of claim 1 , wherein the desired oblique angle is an angle of forty degrees to fifty degrees in relation to the plane of the roof.

5. The system of claim 1 , wherein the computer executable code that when executed by the one or more computer processors further causes the one or more computer processors to:

reduce the swath width by a buffer distance.

6. A method, comprising:

receiving, by a computer processor, a first sensor reading from one or more sensors on an unmanned aircraft at a first position indicative of a first distance between the unmanned aircraft and a roof of a structure;

receiving, by the computer processor, a second sensor reading from the one or more sensors on the unmanned aircraft at the first position indicative of a second distance between the unmanned aircraft and the roof of the structure, wherein a second line along the second sensor reading is at a known angle from a first line along the first distance of the first sensor reading; and

determining, with the computer processor, a pitch of the roof using the first distance, the second distance, and the known angle;

determine a desired resolution for one or more oblique images to be captured by one or more cameras on the unmanned aircraft, the camera having camera parameters including focal length;

determining a swath width based on at least a desired resolution of the one or more oblique images to be captured by the one or more cameras and a sensor size of the one or more cameras, the swath width indicative of a width of a portion of the structure for the one or more cameras to capture in each of the one or more oblique images in a single pass of the structure by the unmanned aircraft;

determining a lateral offset and a vertical offset of the camera on the unmanned aircraft from the structure that achieves the desired resolution of the oblique images to be captured by the one or more cameras based on the camera parameters and the swath width;

moving the unmanned aircraft into a predetermined range of image-capture distances based on the determined lateral offset and the determined vertical offset from the structure that achieves the desired resolution of oblique images captured by the one or more cameras;

orientating one or more cameras on the unmanned aircraft to capture a field of view of the roof at a desired oblique angle in relation to a plane of the roof, based on the pitch of the roof;

determining a flight path for the unmanned aircraft about the structure at the predetermined range of image-capture distances and determine locations in the flight path from which to capture one or more oblique images of the roof of the structure with the one or more cameras, based on a size of a sensor of the one or more cameras, the desired resolution of the oblique images captured by the one or more cameras, and a desired overlap of the oblique images; and

capturing, with the one or more cameras on the unmanned aircraft, the one or more oblique images of the roof of the structure, the one or more oblique images having the desired resolution.

7. A system, comprising:

one or more computer processors; and

one or more non-transitory computer readable medium storing computer executable code that when executed by the one or more computer processors cause the one or more computer processors to:

receive a first sensor reading from one or more sensors on an unmanned aircraft at a first position indicative of a first distance between the unmanned aircraft and a roof of a structure;

receive a second sensor reading from the one or more sensors on the unmanned aircraft at the first position indicative of a second distance between the unmanned aircraft and the roof of the structure, wherein a second line along the second distance of the second sensor reading is at a known angle from a first line along the first distance of the first sensor reading;

determine a pitch of the roof using the first distance, the second distance, and the known angle;

determine a desired resolution for oblique images to be captured by a camera on the unmanned aircraft, the camera having camera parameters including focal length;

determine a swath width based on at least the desired resolution of the oblique images to be captured by the camera and a camera sensor size, the swath width indicative of a width of a portion of the structure for the camera to capture in each of the oblique images in a single pass of the structure by the unmanned aircraft;

determine a lateral offset and a vertical offset of the camera on the unmanned aircraft from the structure that achieves the desired resolution of the oblique images to be captured by the camera based on the camera parameters and the swath width;

move the unmanned aircraft into a predetermined range of image-capture distances based on the determined lateral offset and the determined vertical offset from the structure that achieves the desired resolution of oblique images captured by the camera;

orientate the camera on the unmanned aircraft to capture a field of view of the roof at a desired oblique angle in relation to a plane of the roof, based on the pitch of the roof;

capture, with the camera on the unmanned aircraft, one or more oblique images of the roof of the structure, the one or more oblique images having the desired resolution; and

determine a plurality of target capture points based at least on the desired resolution multiplied by a number of pixels in a horizontal orientation of a sensor of the camera, the plurality of target capture points indicative of points along a flight path of the unmanned aircraft at which the camera captures the one or more oblique images of the roof of the structure.

8. The system of claim 7 , wherein determining the plurality of target capture points is further based on a percentage of desired overlap between two or more of the one or more oblique images.

Assignments (5)
RELEASE OF FIRST LIEN SECURITY INTEREST IN PATENTS Recorded Apr 9, 2025
From: MORGAN STANLEY SENIOR FUNDING, INC.
To: PICTOMETRY INTERNATIONAL CORP.; EAGLE VIEW TECHNOLOGIES, INC.; OMNIEARTH, INC.
Reel/Frame 070786/0022 →
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 →
FIRST LIEN PATENT SECURITY AGREEMENT SUPPLEMENT Recorded Feb 3, 2025
From: EAGLE VIEW TECHNOLOGIES, INC.; OMNIEARTH, INC.; PICTOMETRY INTERNATIONAL CORP.
To: MORGAN STANLEY SENIOR FUNDING, INC. AS COLLATERAL AGENT
Reel/Frame 070096/0485 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 20, 2020
From: GIUFFRIDA, FRANK D.; FINN, MATTHEW; WALLACE, GLENN
To: EAGLE VIEW TECHNOLOGIES, INC.
Reel/Frame 054114/0197 →
FIRST LIEN SECURITY AGREEMENT SUPPLEMENT Recorded May 5, 2020
From: EAGLE VIEW TECHNOLOGIES, INC.
To: MORGAN STANLEY SENIOR FUNDING, INC., AS COLLATERAL AGENT
Reel/Frame 052578/0939 →
Continuity (2)
Provisional Application 62770570 · Nov 21, 2018
Related Publication 20200159252A1 · May 21, 2020
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