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Locally-optimal navigation in multiply-connected environments without geometric maps

Benjamín Tovar, Steven M. LaValle, R. Murrieta

发表年份
2004
引用次数
14

摘要

In this paper we present an algorithm to build a sensor-based, dynamic data structure useful for robot navigation in an unknown, multiply-connected planar environment. This data structure offers a robust framework for robot navigation, avoiding the need of a complete geometric map or explicit localization, by building a minimal representation based entirely on critical events in online sensor measurements made by the robot. There are two sensing requirements for the robot: it must detect when it is close to the walls, to perform wall-following reliably, and it must be able to detect discontinuities in depth information. It is also assumed that the robot is able to drop, detect and recover a marker. The navigation paths generated are optimal up to the homotopy class to which the paths belong, even though no distance information is measured.

关键词

Classification of discontinuitiesRobotMobile robot navigationComputer scienceMobile robotComputer visionArtificial intelligenceRepresentation (politics)PlanarGeometric primitive

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