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Robust arbitrary-view gait recognition based on 3D partial similarity matching

机译:基于3D部分相似度匹配的鲁棒任意视图步态识别

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摘要

Existing view-invariant gait recognition methods encounter difficulties due to limited number of available gait views and varying conditions during training. This paper proposes gait partial similarity matching that assumes a 3-dimensional (3D) object shares common view surfaces in significantly different views. Detecting such surfaces aids the extraction of gait features from multiple views. 3D parametric body models are morphed by pose and shape deformation from a template model using 2-dimensional (2D) gait silhouette as observation. The gait pose is estimated by a level set energy cost function from silhouettes including incomplete ones. Body shape deformation is achieved via Laplacian deformation energy function associated with inpainting gait silhouettes. Partial gait silhouettes in different views are extracted by gait partial region of interest elements selection and re-projected onto 2D space to construct partial gait energy images. A synthetic database with destination views and multi-linear subspace classifier fused with majority voting are used to achieve arbitrary view gait recognition that is robust to varying conditions. Experimental results on CMU, CASIA B, TUM-IITKGP, AVAMVG and KY4D datasets show the efficacy of the propose method.
机译:由于可用的步态视野数量有限并且训练过程中条件变化,现有的视野不变步态识别方法会遇到困难。本文提出了一种步态局部相似度匹配方法,该方法假设3维(3D)对象在明显不同的视图中共享公共视图表面。检测此类表面有助于从多个视图提取步态特征。使用二维(2D)步态轮廓作为观察,通过模板模型的姿势和形状变形使3D参数化人体模型变形。步态姿势是由水平能量消耗函数根据包括不完整轮廓在内的轮廓估算的。人体形状变形是通过与步态轮廓修复相关的拉普拉斯变形能量函数实现的。通过选择步态部分关注区域元素来提取不同视图中的部分步态轮廓,然后将其重新投影到2D空间上以构建部分步态能量图像。具有目标视图和多投票权的多线性子空间分类器的合成数据库用于实现对各种条件都具有鲁棒性的任意视图步态识别。在CMU,CASIA B,TUM-IITKGP,AVAMVG和KY4D数据集上的实验结果证明了该方法的有效性。

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