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Multi-view large population gait dataset and its performance evaluation for cross-view gait recognition

机译:多视图大型人群步态数据集及其对跨视图步态识别的性能评估

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Abstract This paper describes the world’s largest gait database with wide view variation, the “OU-ISIR gait database, multi-view large population dataset (OU-MVLP)”, and its application to a statistically reliable performance evaluation of vision-based cross-view gait recognition. Specifically, we construct a gait dataset that includes 10,307 subjects (5114 males and 5193 females) from 14 view angles ranging 0° ?90°, 180° ?270°. In addition, we evaluate various approaches to gait recognition which are robust against view angles. By using our dataset, we can fully exploit a state-of-the-art method requiring a large number of training samples, e.g., CNN-based cross-view gait recognition method, and we validate effectiveness of such a family of the methods.
机译:摘要本文介绍了世界上最大的,具有宽视角变化的步态数据库,“ OU-ISIR步态数据库,多视角大人群数据集(OU-MVLP)”,并将其应用于基于视觉的跨人群统计可靠的性能评估查看步态识别。具体而言,我们构建了一个步态数据集,其中包括14个视角(从0°到90°,180°到270°)的10,307名受试者(5114名男性和5193名女性)。此外,我们评估了各种针对步态识别的方法,这些方法可抵抗视角。通过使用我们的数据集,我们可以充分利用需要大量训练样本的最新方法,例如基于CNN的交叉视图步态识别方法,并验证这种方法系列的有效性。

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