Unmanned Aerial Localization and Orientation
Certain embodiments of the disclosure can include systems and methods for robotic localization and orientation. The systems and methods can include identification of a landmark, such as a landing pad, by a sensor of an unmanned vehicle. The systems and methods can include acquiring coordinates of the landmark; and determining a self-position, by the unmanned vehicle, based on the coordinates of the landmark. The systems and methods can also include determining the position of an object based on the coordinates and the self-position.
1 . A method for controlling and orienting an unmanned aerial vehicle, the method comprising:
identifying a map element within range of a sensor of the unmanned aerial vehicle;
acquiring coordinates of the map element;
determining a position of the unmanned aerial vehicle relative to the coordinates of the map element; and
determining a location of an object within the range of the sensor, based at least in part on the coordinates and the position.
2 . The method as recited in claim 1 , wherein acquiring the coordinates comprises acquiring data from at least one of a remote database or another unmanned aerial vehicle.
3 . The method as recited in claim 2 , wherein the unmanned aerial vehicle acquires the data substantially contemporaneously with determination by the other unmanned aerial vehicle.
4 . The method as recited in claim 1 , wherein the sensor comprises at least one of an optical camera, LiDAR detection, and RFID detection.
5 . The method as recited in claim 1 , wherein the map element comprises at least one landing pad.
6 . The method as recited in claim 1 , further comprising actuating at least one motor to affect a position and velocity of the unmanned aerial vehicle.
7 . The method as recited in claim 1 , further comprising generating an inspection map of a course utilized by the unmanned aerial vehicle.
8 . The method as recited in claim 7 , further comprising ensuring a level of accuracy of the inspection map based at least in part on sensor error and locations of map elements.
9 . The method as recited in claim 7 , further comprising communicating, by the unmanned aerial vehicle, data about the course to a remote location.
10 . The method as recited in claim 7 , further comprising generating a global map based on at least one inspection map.
11 . A system for autonomous aerial localization, the system comprising:
at least one sensor;
at least one microprocessor; and
at least one memory storing computer-readable instructions, the at least one microprocessor operable to access the at least one memory and execute the computer-readable instructions to:
identify a map element within range of the at least one sensor;
acquire coordinates of the map element;
determine a self-position relative to the coordinates of the map element; and
determine a location of an object, based at least in part on the coordinates and the position.
12 . The system as recited in claim 11 , wherein the coordinates are acquired from at least one of a remote database or another unmanned aerial vehicle.
13 . The system as recited in claim 12 , wherein the coordinates are acquired substantially contemporaneously by the unmanned aerial vehicle and the other unmanned aerial vehicle.
14 . The system as recited in claim 11 , wherein the sensor comprises at least one of an optical camera, LiDAR detection, and RFID detection.
15 . The system as recited in claim 11 , wherein the map element comprises at least one landing pad.
16 . The system as recited in claim 15 , wherein the map elements comprises at least two landing pads, the at least two landing pads detectable by the at least one sensor based on a planned trajectory.
17 . The system as recited in claim 11 , wherein the computer-readable instructions are further operable to actuate at least one motor to affect a position and velocity of the unmanned aerial vehicle.
18 . The system as recited in claim 11 , wherein the computer-readable instructions are further operable to generate an inspection map of a course utilized by the unmanned aerial vehicle.
19 . The system as recited in claim 18 , wherein the computer-readable instructions are further operable to communicate, by the unmanned aerial vehicle, data about the course to a remote location.
20 . The system as recited in claim 18 , wherein the computer-readable instructions are further operable to generate a global map based on at least one inspection map.