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Hand gesture recognition using a dedicated geometric descriptor

机译:手势识别使用专用的几何描述符

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A high proportion of hospital-acquired diseases are transmitted nowadays during surgery despite existing asepsis preservation measures. These are quite drastic, prohibiting surgeons from interacting directly with non-sterile equipment. Indirect control is presently achieved through an assistant or a nurse. Gesture-based Human-Computer Interfaces constitue a promising approach for giving direct control over such equipment to surgeons. This paper introduces a novel hand descriptor based on measurements extracted from hand contour convex and concave extrema. Using a 9750-picture database created especially for this purpose, it is compared with three state-of-the-art description methods, namely Hu moments, and both SIFT and HOG features. Effects of large amounts of hand rotation are also studied on each rotation axis independently. Obtained results give HOG features as best in recognizing hands from our database, closely followed by the proposed descriptor. Performance comparison when facing rotated hands shows our descriptor as the most robust to rotations, outperforming the other descriptors by a wide margin.
机译:尽管存在现有的ASEPSIS保存措施,但在手术中,现在在手术期间传播了高比例的医院获得的疾病。这些都是非常激烈的,禁止外科医生直接与非无菌设备进行互动。目前通过助理或护士实现间接控制。基于手势的人机界面构成了一个有希望的方法,可以直接控制这些设备到外科医生。本文介绍了一种基于手工轮廓凸面和凹形极值的测量的新型手描述符。使用特别为此目的创建的9750图像数据库,将其与三种最先进的描述方法进行比较,即Hu Sments,以及Sift和Hog功能。每个旋转轴独立地还研究了大量手旋转的影响。获得的结果为HOG功能提供了最佳识别来自我们的数据库的手,紧随其后的是所提出的描述符。面向旋转手时的性能比较显示我们的描述符作为最强大的旋转,通过宽边缘表现出其他描述符。

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