Publication | Closed Access
Attention Based Coupled Framework for Road and Pothole Segmentation
21
Citations
29
References
2021
Year
Unknown Venue
Scene AnalysisEngineeringMachine LearningAdvanced Driver-assistance SystemPothole SegmentationImage ClassificationImage AnalysisData SciencePattern RecognitionEdge DetectionComputational GeometryMachine VisionObject DetectionNovel AttentionComputer ScienceMedical Image ComputingDeep LearningComputer VisionCoupled FrameworkRoad SegmentationImage Segmentation
In this paper, we propose a novel attention based coupled framework for road and pothole segmentation. In many developing countries as well as in rural areas, the drivable areas are neither well-defined, nor well-maintained. Under such circumstances, an Advance Driver Assistant System (ADAS) is needed to assess the drivable area and alert about the potholes ahead to ensure vehicle safety. Moreover, this information can also be used in structured environments for assessment and maintenance of road health. We demonstrate few-shot learning approach for pothole detection to leverage accuracy even with fewer training samples. We report the exhaustive experimental results for road segmentation on KITTI and IDD datasets. We also present pothole segmentation on IDD.
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