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Person Transfer GAN to Bridge Domain Gap for Person Re-identification

机译:人员转移甘桥弥合人的域间隙重新识别

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Although the performance of person Re-Identification (ReID) has been significantly boosted, many challenging issues in real scenarios have not been fully investigated, e.g., the complex scenes and lighting variations, viewpoint and pose changes, and the large number of identities in a camera network. To facilitate the research towards conquering those issues, this paper contributes a new dataset called MSMT171 with many important features, e.g., 1) the raw videos are taken by an 15-camera network deployed in both indoor and outdoor scenes, 2) the videos cover a long period of time and present complex lighting variations, and 3) it contains currently the largest number of annotated identities, i.e., 4,101 identities and 126,441 bounding boxes. We also observe that, domain gap commonly exists between datasets, which essentially causes severe performance drop when training and testing on different datasets. This results in that available training data cannot be effectively leveraged for new testing domains. To relieve the expensive costs of annotating new training samples, we propose a Person Transfer Generative Adversarial Network (PTGAN) to bridge the domain gap. Comprehensive experiments show that the domain gap could be substantially narrowed-down by the PTGAN.
机译:虽然人的表现重新识别(Reid)已经大大提升,但许多在实际情况下的具有挑战性的问题尚未完全调查,例如复杂的场景和照明变化,观点和姿势变化,以及A中的大量身份相机网络。为了促进征服这些问题的研究,本文贡献了一个名为MSMT171的新数据集,其中许多重要功能,例如1)原始视频由一个在室内和室外场景中部署的15相机网络,2)视频封面很长一段时间和目前复杂的照明变化,3)它包含目前最多的注释身份数量,即4,101个标识和126,441边界盒。我们还观察到,在数据集之间通常存在域间隙,基本上在不同数据集上进行培训和测试时基本上会导致严重的性能下降。这导致可用的培训数据无法有效地利用新的测试域。为了减轻注释新培训样本的昂贵成本,我们提出了一个人转移生成的对抗网络(PTGAN)来弥合域间隙。综合实验表明,域间隙可以通过PTGAN基本缩小。

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