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Affine-invariant modeling of shape-appearance images applied on sign language handshape classification

机译:应用于手语手形分类的形状外观图像的仿射不变建模

摘要

We propose a novel affine-invariant modeling of hand shapeappearance images, which offers a compact and descriptive representation of the hand configurations. Our approach combines: 1) A hybrid representation of both shape and appearance of the hand that models the handshapes without any landmark points. 2) Modeling of the shape-appearance images with a linear combination of variation images that is followed by an affine transformation, which accounts for modest pose variation. 3) Finally, an optimization based fitting process that results on the estimated variation image coefficients that are further employed as features. The proposed modeling is applied on handshapes from Sign Language video data after segmentation and tracking. It is evaluated on extensive experiments of handshape classification, which investigate the effect of the involved parameters and moreover provide a variety of comparisons to baseline approaches found in the literature. The results of at least 10.5% absolute improvement indicate the effectiveness of our approach in the handshape classification problem. © 2010 IEEE.
机译:我们提出了一种新颖的仿射不变的手形外观图像建模,它提供了手形的紧凑和描述性表示。我们的方法结合了以下内容:1)手的形状和外观的混合表示,可以模拟手形而没有任何界标点。 2)用变化图像的线性组合对形状外观图像进行建模,然后进行仿射变换,这说明了适度的姿势变化。 3)最后,基于优化的拟合过程会产生进一步用作特征的估计变化图像系数。在分割和跟踪之后,将拟议的建模应用于手语视频数据中的手形。它是在广泛的手形分类实验中进行评估的,该实验调查了所涉及参数的影响,并且提供了与文献中发现的基线方法的各种比较。至少有10.5%的绝对改善的结果表明我们的方法在手形分类问题中的有效性。 ©2010 IEEE。

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