Invariant EKF Design for Scan Matching-aided Localization

March 04, 2015 Β· Declared Dead Β· πŸ› IEEE Transactions on Control Systems Technology

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Authors Martin Barczyk, Silvère Bonnabel, Jean-Emmanuel Deschaud, François Goulette arXiv ID 1503.01407 Category eess.SY: Systems & Control (EE) Cross-listed cs.RO Citations 52 Venue IEEE Transactions on Control Systems Technology Last Checked 6 months ago
Abstract
Localization in indoor environments is a technique which estimates the robot's pose by fusing data from onboard motion sensors with readings of the environment, in our case obtained by scan matching point clouds captured by a low-cost Kinect depth camera. We develop both an Invariant Extended Kalman Filter (IEKF)-based and a Multiplicative Extended Kalman Filter (MEKF)-based solution to this problem. The two designs are successfully validated in experiments and demonstrate the advantage of the IEKF design.
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