Publication | Closed Access
Supervised Learning of Places from Range Data using AdaBoost
221
Citations
30
References
2006
Year
Unknown Venue
Artificial IntelligenceEngineeringRobotic AgentField RoboticsIntelligent RoboticsCognitive RoboticsRange SearchingIntelligent SystemsLocalizationImage AnalysisSemantic InformationData SciencePattern RecognitionRobot LearningRange DataSupervised Learning AlgorithmMachine VisionComputer ScienceComputer VisionSpatial VerificationAutomationSemantic CategoriesRoboticsLocation Information
This paper addresses the problem of classifying places in the environment of a mobile robot into semantic categories. We believe that semantic information about the type of place improves the capabilities of a mobile robot in various domains including localization, path-planning, or human-robot interaction. Our approach uses AdaBoost, a supervised learning algorithm, to train a set of classifiers for place recognition based on laser range data. In this paper we describe how this approach can be applied to distinguish between rooms, corridors, doorways, and hallways. Experimental results obtained in simulation and with real robots demonstrate the effectiveness of our approach in various environments.
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