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Static and Dynamic Objects Analysis as a 3D Vector Field

Cansen Jiang, Danda Pani Paudel, Yohan Fougerolle, David Fofi, Cédric Demonceaux

Year
2017
Citations
7

Abstract

In the context of scene modelling, understanding, and landmark-based robot navigation, the knowledge of static scene parts and moving objects with their motion behaviours plays a vital role. We present a complete framework to detect and extract the moving objects to reconstruct a high quality static map. For a moving 3D camera setup, we propose a novel 3D Flow Field Analysis approach which accurately detects the moving objects using only 3D point cloud information. Further, we introduce a Sparse Flow Clustering approach to effectively and robustly group the motion flow vectors. Experiments show that the proposed Flow Field Analysis algorithm and Sparse Flow Clustering approach are highly effective for motion detection and segmentation, and yield high quality reconstructed static maps as well as rigidly moving objects of real-world scenarios.

Keywords

Computer visionComputer scienceArtificial intelligencePoint cloudCluster analysisLandmarkContext (archaeology)Optical flowSegmentationPoint (geometry)

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