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Cross-view gait recognition by fusion of multiple transformation consistency measures

机译:融合多种变换一致性度量的跨步态步态识别

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摘要

Gait is a promising modality for forensic science because it has discrimination ability even if the gait features are extracted from low-quality image sequences captured at a distance. However, in forensic cases the observation view is often different, leading to accuracy degradation. Therefore the authors propose a gait recognition algorithm that achieves high accuracy in cases where observation views are different. They used a view transformation technique, and generated multiple joint gait features by changing the source gait features. They formed a hypothesis that the multiple transformed features and original features should be similar to each other if the target subjects are the same. They calculated multiple scores that measured the consistency of the features, and a likelihood ratio from the scores. To evaluate the accuracy of the proposed method, they drew Tippett plots and empirical cross-entropy plots, together with cumulative match characteristic curves and receiver operator characteristic curves, and evaluated discrimination ability and calibration quality. The results showed that their proposed method achieves good results in terms of discrimination and calibration.
机译:步态是法医学的一种有前途的模式,因为它具有识别能力,即使步态特征是从远距离捕获的低质量图像序列中提取出来的。但是,在法医案例中,观察视图通常会有所不同,从而导致准确性下降。因此,作者提出了一种步态识别算法,该算法可在观察视图不同的情况下实现高精度。他们使用视图转换技术,并通过更改源步态特征来生成多个联合步态特征。他们提出了一个假设:如果目标对象相同,则多个转换后的特征和原始特征应该彼此相似。他们计算了多个分数来衡量特征的一致性,并从分数中得出似然比。为了评估该方法的准确性,他们绘制了Tippett图和经验交叉熵图,以及累积的匹配特征曲线和接收器操作者特征曲线,并评估了判别能力和校准质量。结果表明,他们提出的方法在鉴别和校准方面取得了良好的效果。

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