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A Robust Method Based on Static Hand Gesture Recognition for Human-Computer Interaction Under Complex Background

机译:复杂背景下基于静态手势识别的鲁棒人机交互方法

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An appearance-based approach needs usually a perfect segmentation. However, it is a difficult task especially under complex background. As a result, it limits the robustness for application. In this chapter, we design a new method for static hand gesture recognition in complex background for human-computer interface (HCI). In this method, we do not need perfect segmentation or hand tracking. The Hu invariant moment features are extracted from a binary image after simple segmentation and served as the input of our classifier, which is constructed beforehand based on support vector machines (SVM) algorithm. Furthermore, a Euclidean distance is calculated to combine with SVM model for avoiding the non-hand gestures. Tests on the testing dataset show the proposed method exhibits a recognition rate near 100%. Experimental results on a simple HCI system on real-time demonstrated the effectiveness, speediness and robustness of the system under cluttered background.
机译:基于外观的方法通常需要完美的分割。但是,这是一项困难的任务,尤其是在复杂的背景下。结果,它限制了应用程序的健壮性。在本章中,我们为人机界面(HCI)设计了一种在复杂背景下进行静态手势识别的新方法。在这种方法中,我们不需要完美的分割或手部追踪。简单分割后,从二值图像中提取Hu不变矩特征,并将其用作分类器的输入,该分类器是基于支持向量机(SVM)算法预先构建的。此外,计算出欧几里得距离以与SVM模型结合以避免非手势。在测试数据集上的测试表明,该方法的识别率接近100%。在简单的HCI系统上实时进行的实验结果证明了在杂乱背景下该系统的有效性,快速性和鲁棒性。

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