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Gesture recognition with depth images — A simple approach

机译:带有深度图像的手势识别-一种简单的方法

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A novel approach for gesture recognition is developed in this paper based on template matching from motion depth image. The proposed method uses a single example of an action as a query to find similar matches from a good number of test samples. No prior knowledge about the actions, the foreground/background segmentation, or any motion estimation or tracking is required. A novel approach to separate different gestures from a single video is also introduced. The proposed method is based on the computation of space-time descriptors from the query video which measures the likeness of a gesture in a lexicon. The descriptor extraction method includes the standard deviation of the depth images of a gesture. Moreover, two dimensional discrete Fourier transform is employed to reduce the effect of camera shift. Classification is done based on correlation coefficient of the image templates and an intelligent classifier is proposed to ensure better recognition accuracy. Extensive experimentation is done on a vast and very complicated dataset to establish the effectiveness of employing the proposed method.
机译:本文基于运动深度图像的模板匹配,提出了一种新颖的手势识别方法。所提出的方法使用动作的单个示例作为查询,以从大量测试样本中找到相似的匹配项。不需要有关动作,前景/背景分割或任何运动估计或跟踪的先验知识。还介绍了一种从单个视频中分离不同手势的新颖方法。所提出的方法基于从查询视频中计算时空描述符,该时空描述符测量词典中手势的相似度。描述符提取方法包括手势的深度图像的标准偏差。此外,采用二维离散傅里叶变换来减少相机移位的影响。基于图像模板的相关系数进行分类,并提出智能分类器以确保更好的识别精度。在庞大而又非常复杂的数据集上进行了广泛的实验,以建立采用该方法的有效性。

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