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Visual Gesture Recognition of Fingers Based on Hypothesis Tracking

机译:基于假设跟踪的手指视觉手势识别

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The analysis of the physiological mechanism of the hand fingers and sampling the hand model with constraints helps to reduce the number of parameters required to describe individual postures. 2D image sequences are then considered informative enough to describe the positions and shape of fingers. Following the Bayes Rule, a hypotheses projection from the ROI extracted from the image sequences to the feature points was proposed to locate the shape and orientation of each finger to show which and how the fingers should move.
机译:用约束对手手指的生理机制分析,用约束对手模型进行采样有助于减少描述单个姿势所需的参数数量。然后将2D图像序列被认为是足以描述手指的位置和形状。在贝叶斯规则之后,提出了从从图像序列提取到特征点的ROI的假设投影,以定位每个手指的形状和方向,以显示哪个以及手指如何移动。

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