基于SVM融合pca处理的轮廓投影与骨骼模型特征的步态识别新技术

Dong Ming, Yanru Bai, Cong Zhang, B. Wan, Yong Hu, K. Luk
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引用次数: 6

摘要

步态是一种潜在的行为特征,许多相关研究表明它可以作为一种有用的生物特征进行识别。提出了一种基于支持向量机融合轮廓投影和骨骼模型特征的步态识别方法。在步态图像序列的关键帧中,采用主成分分析方法从背景中分割轮廓,降低轮廓投影维数,并建立骨架模型生成其他形状特征。通过支持向量机对组合特征进行融合,并基于后验概率在CASIA数据库上进行特征层和决策层的测试。实验结果证明了该算法的有效性和优越性。
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Novel gait recognition technique based on SVM fusion of PCA-processed contour projection and skeleton model features
Gait is a potential behavioral feature, and many allied studies have demonstrated that it can be served as a useful biometric feature for recognition. This paper described a novel gait recognition technique based on support vector machine fusion of contour projection and skeleton model features. A principal component analysis method was used to lower the dimension of contour projection after segmenting silhouettes from the background in the key frame of gait picture sequence and a skeleton model was built to produce other shape features. The combining features were fused by a support vector machine and tested on the CASIA database at the feature level and decision level based on posterior probability. Experimental results have demonstrated the effectiveness and advantages of the proposed algorithm.
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