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Vision-Based Finger Detection Tracking and Event Identification Techniques for Multi-Touch Sensing and Display Systems

机译:用于多点触摸传感和显示系统的基于视觉的手指检测跟踪和事件识别技术

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摘要

This study presents efficient vision-based finger detection, tracking, and event identification techniques and a low-cost hardware framework for multi-touch sensing and display applications. The proposed approach uses a fast bright-blob segmentation process based on automatic multilevel histogram thresholding to extract the pixels of touch blobs obtained from scattered infrared lights captured by a video camera. The advantage of this automatic multilevel thresholding approach is its robustness and adaptability when dealing with various ambient lighting conditions and spurious infrared noises. To extract the connected components of these touch blobs, a connected-component analysis procedure is applied to the bright pixels acquired by the previous stage. After extracting the touch blobs from each of the captured image frames, a blob tracking and event recognition process analyzes the spatial and temporal information of these touch blobs from consecutive frames to determine the possible touch events and actions performed by users. This process also refines the detection results and corrects for errors and occlusions caused by noise and errors during the blob extraction process. The proposed blob tracking and touch event recognition process includes two phases. First, the phase of blob tracking associates the motion correspondence of blobs in succeeding frames by analyzing their spatial and temporal features. The touch event recognition process can identify meaningful touch events based on the motion information of touch blobs, such as finger moving, rotating, pressing, hovering, and clicking actions. Experimental results demonstrate that the proposed vision-based finger detection, tracking, and event identification system is feasible and effective for multi-touch sensing applications in various operational environments and conditions.
机译:这项研究提出了基于视觉的有效手指检测,跟踪和事件识别技术,以及针对多点触摸感应和显示应用的低成本硬件框架。所提出的方法使用基于自动多级直方图阈值化的快速明亮斑点分割过程来提取从摄像机捕获的散射红外光获得的触摸斑点的像素。这种自动多级阈值处理方法的优点是,在处理各种环境照明条件和杂散红外噪声时,其鲁棒性和适应性强。为了提取这些触摸斑点的连接分量,将连接分量分析过程应用于上一级获取的亮像素。从每个捕获的图像帧中提取触摸斑点后,斑点跟踪和事件识别过程将从连续帧中分析这些触摸斑点的时空信息,以确定用户可能执行的触摸事件和动作。此过程还完善了检测结果,并校正了斑点提取过程中由噪声和错误引起的错误和遮挡。所提出的斑点跟踪和触摸事件识别过程包括两个阶段。首先,斑点跟踪阶段通过分析其后继帧的空间和时间特征,将其关联起来。触摸事件识别过程可以基于触摸Blob的运动信息(例如手指移动,旋转,按下,悬停和单击动作)来识别有意义的触摸事件。实验结果表明,所提出的基于视觉的手指检测,跟踪和事件识别系统对于在各种操作环境和条件下的多点触摸感应应用是可行且有效的。

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