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Designing probabilistic state estimators for autonomous robot control

Thorsten Schmitt, Michael Beetz

Year
2004
Citations
2

Abstract

This paper sketches and discusses design options for complex probabilistic state estimators and investigates their interactions and their impact on performance. We consider, as an example, the estimation of game states in autonomous robot soccer. We show that many factors other than the choice of algorithms determine the performance of the estimation systems. We propose empirical investigations and learning as necessary tools for the development of successful state estimation systems.

Keywords

EstimatorProbabilistic logicComputer scienceEstimationRobotState (computer science)Mobile robotArtificial intelligenceControl (management)Machine learning

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