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An Online Mapping Algorithm for Teams of Mobile Robots

Sebastian Thrun

Year
2000
Citations
66

Abstract

We propose a new probabilistic algorithm for online mapping of unknown environments with teams of robots. At the core of the algorithm is a technique that combines fast maximum likelihood map growing with a Monte Carlo localizer that uses particle representations. The combination of both yields an online algorithm that can cope with large odometric errors typically found when mapping an environment with cycles. The algorithm can be implemented distributedly on multiple robot platforms, enabling a team of robots to cooperatively generate a single map of their environment. Finally, an extension is described for acquiring three-dimensional maps, which capture the structure and visual appearance of indoor environments in 3D.

Keywords

RobotComputer scienceProbabilistic logicMobile robotExtension (predicate logic)Core (optical fiber)Online algorithmSimultaneous localization and mappingArtificial intelligenceAlgorithm

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