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Real Time Hand Based Robot Control Using 2D/3D Images

机译:基于2D / 3D图像的实时基于手的机器人控制

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In the interaction between man and machine, an efficient, natural and intuitive commanding system plays a key role. Vision based techniques are usually used to provide such a system. This paper presents a new solution using 2D/3D images for real time hand detection, tracking and classification which is used as an interface for sending the commands to an industrial robot. 2D/3D images, including low resolution range data and high resolution color information, are provided by a novel monocular hybrid vision system, called MultiCam, at video frame rates. After region extraction and applying some preprocessing techniques, the range data are segmented using an unsupervised clustering approach. The segmented range image is then mapped to the corresponding 2D color image. Due to the monocular setup of the vision system, mapping 3D range data to the 2D color information is trivial and does not need any complicated calibration and registration techniques. Consequently, the segmentation of 2D color image becomes simple and fast. Haar-like features are then extracted from the segmented color image and used as the input features for an AdaBoost classifier to find the region of the hand in the image and track it in each frame. The hand region found by AdaBoost is improved through postprocessing techniques and finally the hand posture (palm and fist) is classified based on a very fast heuristic method. The proposed approach has shown promising results in real time application, even under challenging variant lighting conditions which was demonstrated at the Hannover fair in 2008.
机译:在人机交互中,高效,自然,直观的指挥系统起着关键作用。基于视觉的技术通常用于提供这样的系统。本文提出了一种使用2D / 3D图像进行实时手部检测,跟踪和分类的新解决方案,该解决方案用作将命令发送到工业机器人的接口。 2D / 3D图像(包括低分辨率范围数据和高分辨率颜色信息)由称为MultiCam的新型单眼混合视觉系统以视频帧速率提供。在提取区域并应用一些预处理技术之后,使用无监督聚类方法对距离数据进行分割。然后将分割后的范围图像映射到相应的2D彩色图像。由于视觉系统的单眼设置,将3D范围数据映射到2D颜色信息非常简单,不需要任何复杂的校准和配准技术。因此,二维彩色图像的分割变得简单而快速。然后从分割的彩色图像中提取类似Haar的特征,并将其用作AdaBoost分类器的输入特征,以在图像中找到手的区域并在每一帧中对其进行跟踪。 AdaBoost发现的手部区域通过后处理技术进行了改进,最后基于非常快速的启发式方法对手部姿势(手掌和拳头)进行了分类。即使在具有挑战性的多种照明条件下,所提出的方法在实时应用中也显示出令人鼓舞的结果,这在2008年汉诺威博览会上得到了证明。

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