首页> 外文会议>European Conference on Computer Vision(ECCV 2006) pt.3; 20060507-13; Graz(AT) >Gait Recognition Using a View Transformation Model in the Frequency Domain
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Gait Recognition Using a View Transformation Model in the Frequency Domain

机译:在频域中使用视图变换模型进行步态识别

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Gait analyses have recently gained attention as methods of identification of individuals at a distance from a camera. However, appearance changes due to view direction changes cause difficulties for gait recognition systems. Here, we propose a method of gait recognition from various view directions using frequency-domain features and a view transformation model. We first construct a spatio-temporal silhouette volume of a walking person and then extract frequency-domain features of the volume by Fourier analysis based on gait periodicity. Next, our view transformation model is obtained with a training set of multiple persons from multiple view directions. In a recognition phase, the model transforms gallery features into the same view direction as that of an input feature, and so the features match each other. Experiments involving gait recognition from 24 view directions demonstrate the effectiveness of the proposed method.
机译:步态分析作为一种识别与相机相距较远的个体的方法,近来已引起关注。然而,由于视角方向改变而引起的外观改变给步态识别系统带来困难。在这里,我们提出一种使用频域特征和视图转换模型从各种视图方向进行步态识别的方法。我们首先构造一个步行者的时空轮廓体积,然后通过基于步态周期性的傅立叶分析提取该体积的频域特征。接下来,使用来自多个视角方向的多人训练集获得我们的视角转换模型。在识别阶段,模型将画廊要素转换为与输入要素相同的视图方向,因此要素相互匹配。涉及从24个视角观察步态的实验证明了该方法的有效性。

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