Crisscross boustrophedonic flight patterns for UAV scanning and imaging
An unmanned autonomous vehicle assessment and reporting system may implement a boustrophedonic flight pattern for capturing images of a structure to develop a three-dimensional model of the same. A crisscross boustrophedonic flight pattern may include two or more boustrophedonic flight patterns that are at angles relative to one another.
1. An unmanned autonomous vehicle (UAV) assessment system for scanning at least a portion of a structure, comprising:
at least one sensor to capture scan data of at least a portion of walls and a roof of a structure at multiple locations during an implemented flight pattern; and
a flight pattern control system to cause the UAV to navigate a crisscross boustrophedonic flight pattern relative to the structure during which the at least one sensor is used to capture the scan data, the crisscross boustrophedonic flight pattern comprising at least:
a first boustrophedonic flight pattern comprising a first set of passes over the structure at a first orientation to capture a first set of scan data, and
a second boustrophedonic flight pattern comprising a second set of passes over the structure at a second orientation to capture a second set of scan data that is combinable with the first set of scan data for rendering a model of the structure with at least a portion of the walls and roof of the structure, wherein the first orientation of the first set of passes of the first boustrophedonic flight pattern are at an angle relative to the second orientation of the second set of passes of the second boustrophedonic flight pattern.
2. The UAV assessment system of claim 1 , wherein the first orientation of the first set of passes of the first boustrophedonic flight pattern is at a substantially 90-degree angle relative to the second orientation of the second set of passes of the second boustrophedonic flight pattern.
3. The UAV assessment system of claim 1 , wherein the first orientation of the first set of passes is defined as a direction shared by at least a portion of each of a majority of the first set of passes, and wherein the second orientation of the second set of passes is defined as a direction shared by at least a portion of a majority of the second set of passes.
4. The UAV assessment system of claim 1 , wherein each pass of the first set of passes of the first boustrophedonic flight pattern is connected to a neighboring pass via a rounded pass-offset portion.
5. The UAV assessment system of claim 1 , wherein each pass of the first set of passes of the first boustrophedonic flight pattern is connected to a neighboring pass via a squared pass-offset portion.
6. The UAV assessment system of claim 1 , wherein each pass of the first set of passes of the first boustrophedonic flight pattern is connected to a neighboring pass via an angled pass-offset portion.
7. The UAV assessment system of claim 1 , wherein each of the first set of scan data and the second set of scan data comprises infrared images captured by an infrared light camera.
8. The UAV assessment system of claim 1 , wherein the at least one sensor comprises a camera to capture visible-light images.
9. An unmanned autonomous vehicle (UAV) assessment system for scanning a structure, comprising:
at least one sensor to capture scan data of at least a roof of a structure at multiple locations during an implemented flight pattern; and
a flight pattern control system to cause the UAV to navigate a crisscross boustrophedonic flight pattern relative to the entire structure during which the at least one sensor is used to capture the scan data, the crisscross boustrophedonic flight pattern comprising at least:
a first boustrophedonic flight pattern comprising a first set of passes over the structure at a first orientation to capture a first set of scan data sufficient for three-dimensional model rendering of at least the roof of the structure, and
a second boustrophedonic flight pattern comprising a second set of passes over the structure at a second orientation to capture a second set of scan data sufficient for three-dimensional model rendering of at least the roof of the structure,
wherein the first orientation of the first set of passes of the first boustrophedonic flight pattern is at an angle relative to the second orientation of the second set of passes of the second boustrophedonic flight pattern.
10. The system of claim 9 , wherein the first orientation of the first set of passes of the first boustrophedonic flight pattern is at an acute angle relative to the second orientation of the second set of passes of the second boustrophedonic flight pattern, such that the orientation of at least one set of passes is at a non-orthogonal angle relative to the exterior walls of the structure.
11. The system of claim 9 , wherein the first orientation of the first set of passes of the first boustrophedonic flight pattern is at a substantially 90-degree angle relative to the second orientation of the second set of passes of the second boustrophedonic flight pattern.
12. The system of claim 9 , wherein each of the first set of scan data and the second set of scan data comprises at least one of infrared images and visible light images.