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Robotic ecology: Tracking small dynamic animals with an autonomous aerial vehicle

Oliver M. Cliff, Debra L. Saunders, Robert Fitch

Year
2018
Citations
79

Abstract

) within their winter range. The system combines a miniaturized sensor with newly developed estimation algorithms to yield unambiguous bearing- and range-based measurements with associated measures of uncertainty. We incorporated these measurements into Bayesian data fusion and information-based planning algorithms to control the position of the robot as it collected data. We report estimated positions that lie within about 50 meters of the true positions of the birds on average, which are sufficiently accurate for recapture or observation. Further, in comparison with experienced human trackers from locations where the signal was detectable, the robot produced a correct estimate as fast or faster than the human. These results provide validation of robotic systems for wildlife radio telemetry and suggest a way for widespread use as human-assistive or autonomous devices.

Keywords

Tracking (education)EcologyComputer scienceArtificial intelligenceBiologyPsychology

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