Publication | Closed Access
Using Boosted Features for the Detection of People in 2D Range Data
377
Citations
18
References
2007
Year
Location TrackingEngineeringFeature DetectionBiometricsLocalizationImage AnalysisData SciencePattern RecognitionObject TrackingRobot LearningRange DataMachine VisionAutomatic Target RecognitionObject DetectionRange Imaging3D Object RecognitionComputer VisionDimensional Range ScansEye TrackingBoosted FeaturesLaser Range Data
This paper addresses the problem of detecting people in two dimensional range scans. Previous approaches have mostly used pre-defined features for the detection and tracking of people. We propose an approach that utilizes a supervised learning technique to create a classifier that facilitates the detection of people. In particular, our approach applies AdaBoost to train a strong classifier from simple features of groups of neighboring beams corresponding to legs in range data. Experimental results carried out with laser range data illustrate the robustness of our approach even in cluttered office environments
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