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Localization of mobile robots using incremental local maps

René Iser, Arthur Martens, Friedrich M. Wahl

Year
2010
Citations
7

Abstract

This paper presents an algorithm for the global localization of mobile robots. The general idea is to build a local map incrementally which is matched to a global map in each localization step. The matching algorithm is a very time and memory efficient enhancement of the common Random Sample Consensus (RANSAC). It is executed a fixed number of iterations computing a set of hypotheses of the current robot pose. This paper describes how to handle the resulting hypotheses, i.e. a method is introduced deciding when the robot is localized reliably enough. The algorithm has been implemented and its characteristics are evaluated and discussed in an experimental section.

Keywords

RANSACMobile robotRobotComputer scienceMatching (statistics)Set (abstract data type)Artificial intelligenceSample (material)Computer visionGlobal Map

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