High-speed structured light scanning system and 3D gestural point cloud recognition

CISS(2013)

引用 5|浏览25
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摘要
In computer-vision-based human computer interaction (HCI), higher-quality signal leads to better system performance. In this paper, we develop a real-time high-resolution 3D object scanning system based on structured light illumination (SLI). Our system fuses depth information with RGB texture to reconstruct high-resolution 3D point cloud. The point cloud preserves accurate surface geometry of the object (e.g., finger postures of hands, facial expressions, etc). Respectively, for a 640 × 480 video stream, our system can generate phase and texture video at 1500 frames per second (fps) and produce full 3D point clouds at 300 fps. For gesture recognition, we propose to combine the module of robust face recognition with the module of 3D point cloud classification. Moreover, rather than extracting sophisticated features, we leverage the accurate reconstruction and classify each point cloud by directly matching the whole 3D surface geometry with the templates of different classes. The proposed recognition system is robust to the scaling, translation, rotation and texture of objects. Finally, utilizing the system, we contribute to the research community two large-scale high-resolution 3D point cloud databases, i.e., SLI 3D Hand Gesture Database and SLI 3D Face Database. The proposed point cloud recognition approach achieves recognition rates up to 98.0% over the gesture database and 88.2% over the face database in our pilot study.
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关键词
template matching,object translation,benchmarks,multi-modal,robust face recognition,image matching,sli 3d face database,3d surface geometry,face recognition,human computer interaction,sli 3d hand gesture database,large-scale high-resolution 3d point cloud database,3d point cloud classification,rgb texture,object scaling,object texture,structured light illumination,image resolution,real-time high-resolution 3d object scanning system,system performance,structured light,higher-quality signal,high-speed structured light scanning system,image reconstruction,facial expression,3d gestural point cloud recognition,high-resolution 3d point cloud reconstruction,feature extraction,image classification,texture video,video stream,hci,computer-vision-based human computer interaction,computer vision,depth information,finger posture,video streaming,solid modelling,gesture recognition,image texture,recognition rate,geometry,object rotation,shape,face,databases,multi modal,robustness
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