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Dense-View GEIs Set: View Space Covering for Gait Recognition based on Dense-View GAN

机译:致密视图Geis集:基于致密视图GaN的步态识别查看空间

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摘要

Gait recognition has proven to be effective for long-distance human recognition. But view variance of gait features would change human appearance greatly and reduce its performance. Most existing gait datasets usually collect data with a dozen different angles, or even more few. Limited view angles would prevent learning better view invariant feature. It can further improve robustness of gait recognition if we collect data with various angles at 1° interval. But it is time consuming and labor consuming to collect this kind of dataset. In this paper, we, therefore, introduce a Dense-View GEIs Set (DV-GEIs) to deal with the challenge of limited view angles. This set can cover the whole view space, view angle from 0° to 180° with 1° interval. In addition, Dense-View GAN (DV-GAN) is proposed to synthesize this dense view set. DV-GAN consists of Generator, Discriminator and Monitor, where Monitor is designed to preserve human identification and view information. The proposed method is evaluated on the CASIA-B and OU-ISIR dataset. The experimental results show that DV-GEIs synthesized by DV-GAN is an effective way to learn better view invariant feature. We believe the idea of dense view generated samples will further improve the development of gait recognition.
机译:步态认可已被证明对长途人类承认有效。但是,看法步态特征的变化会大大改变人类外观并降低其性能。大多数现有步态数据集通常收集具有十几个不同角度的数据,甚至更少。有限的视角会阻止学习更好的观看不变功能。如果我们以1°间隔收集各种角度的数据,可以进一步提高步态识别的鲁棒性。但收集这种数据集是耗时和劳动力的耗时。在本文中,我们引入了密集的Geis Set(DV-Geis)来处理有限视角的挑战。该组可以覆盖整个视图空间,观察角度从0°到180°,间隔为1°。此外,提出了密集的视图GaN(DV-GaN)以合成这种密集的视图集。 DV-GaN由发电机,鉴别器和监视器组成,其中监视器旨在保留人类识别和查看信息。所提出的方法是在CASIA-B和OU-ISIR数据集上进行评估。实验结果表明,DV-GaN合成的DV-Geis是学习更好观看不变功能的有效方法。我们相信浓密的观点的想法产生的样本将进一步提高步态表达的发展。

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