The International Journal of Robotics Research · 1992 · 414 citations · 13 references
EngineeringField RoboticsIntelligent SystemsSuccessful Map BuildingDynamic Map BuildingLocalizationMappingMobile RobotData ScienceRobot LearningRobotics PerceptionAutomatic NavigationPath PlanningCartographyVehicle LocalizationComputer ScienceAutonomous NavigationComputer VisionOdometryAutonomous Map BuildingAutomationRobotics
Mobile robot navigation can be treated as a problem of tracking naturally occurring geometric features in the environment. This article presents an algorithm for autonomous map building and maintenance for a mobile robot. The algorithm represents each feature by a location estimate with a covariance matrix and a credibility score, and during each position update cycle it generates predicted measurements for each feature and compares them with actual sensor observations. Successful matches increase feature credibility, unpredicted observations initialize new features, and unobserved predictions decrease credibility, and experiments with real sonar data show the algorithm can build maps successfully.
This article presents an algorithm for autonomous map building and maintenance for a mobile robot. We believe that mobile robot navigation can be treated as a problem of tracking ge ometric features that occur naturally in the environment. We represent each feature in the map by a location estimate (the feature state vector) and two distinct measures of uncertainty: a covariance matrix to represent uncertainty in feature loca tion, and a credibility measure to represent our belief in the validity of the feature. During each position update cycle, pre dicted measurements are generated for each geometric feature in the map and compared with actual sensor observations. Suc cessful matches cause a feature's credibility to be increased. Unpredicted observations are used to initialize new geometric features, while unobserved predictions result in a geometric feature's credibility being decreased. We describe experimental results obtained with the algorithm that demonstrate successful map building using real sonar data.
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Pattern Classification and Scene Analysis
Michael Thompson, Richard O. Duda, Peter E. Hart · Leonardo · 1974 · 4.5K citations
High resolution maps from wide angle sonar
Hans Moravec, Alberto Elfes · 2005 · 1.8K citations