Publication | Closed Access
Road detection using support vector machine based on online learning and evaluation
99
Citations
8
References
2010
Year
Unknown Venue
Automotive TrackingEngineeringMachine LearningFeature DetectionRoad DetectionOnline LearningAdvanced Driver-assistance SystemIntelligent SystemsSupport Vector MachineIntelligent Traffic ManagementImage AnalysisPattern RecognitionAutonomous VehiclesRoad Detection AlgorithmMachine VisionObject DetectionTraffic EngineeringAutonomous DrivingComputer VisionRoad Traffic Control
Road detection is an important problem with application to driver assistance systems and autonomous, self-guided vehicles. The focus of this paper is on the problem of feature extraction and classification for front-view road detection. Specifically, we propose using Support Vector Machines (SVM) for road detection and effective approach for self-supervised online learning. The proposed road detection algorithm is capable of automatically updating the training data for online training which reduces the possibility of misclassifying road and non-road classes and improves the adaptability of the road detection algorithm. The algorithm presented here can also be seen as a novel framework for self-supervised online learning in the application of classification-based road detection algorithm on intelligent vehicle.
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