Book Details

Environment Learning for Indoor Mobile Robots

Publication year: 2006

: 978-3-540-32848-3

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This monograph covers theoretical aspects of simultaneous localization and map building for mobile robots, such as estimation stability, nonlinear models for the propagation of uncertainties, temporal landmark compatibility, as well as issues pertaining the coupling of control and SLAM. One of the most relevant topics covered in this monograph is the theoretical formalism of partial observability in SLAM. The authors show that the typical approach to SLAM using a Kalman filter results in marginal filter stability, making the final reconstruction estimates dependant on the initial vehicle estimates. However, by anchoring the map to a fixed landmark in the scene, they are able to attain full observability in SLAM, with reduced covariance estimates.


: Engineering, Mobile Robotics, SLAM, Simultaneous Localization and Mapping, Stochastic State Estimation, learning, mobile robot, robot, robotics, robotics research