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Generalizing Person Re-Identification by Camera-Aware Invariance Learning and Cross-Domain Mixup

机译:通过相机感知的不变性学习和跨域混合来重新识别人员重新识别

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Despite the impressive performance under the single-domain setup, current fully-supervised models for person re-identification (re-ID) degrade significantly when deployed to an unseen domain. According to the characteristics of cross-domain re-ID, such degradation is mainly attributed to the dramatic variation within the target domain and the severe shift between the source and target domain. To achieve a model that generalizes well to the target domain, it is desirable to take both issues into account. In terms of the former issue, one of the most suc­cessful solutions is to enforce consistency between nearest-neighbors in the embedding space. However, we find that the search of neighbors is highly biased due to the discrepancy across cameras. To this end, we improve the vanilla neighborhood invariance approach by imposing the constraint in a camera-aware manner. As for the latter issue, we propose a novel cross-domain mixup scheme. It alleviates the abrupt transfer by introducing the interpolation between the two domains as a transition state. Extensive experiments on three public benchmarks demonstrate the superiority of our method. Without any auxiliary data or models, it outperforms existing state-of-the-arts by a large margin.
机译:尽管在单域设置下具有令人印象深刻的性能,但在部署到看不见的域时,目前用于人员重新识别(RE-ID)的完全监督模型将显着降低。根据跨域RE-ID的特征,这种劣化主要归因于目标结构域内的显着变化和源区之间的严重偏移。为了实现概括到目标域的模型,希望考虑两个问题。就前一个问题而言,最成功的解决方案之一是在嵌入空间中的最近邻居之间强制执行一致性。然而,我们发现由于相机的差异,邻居的搜索高度偏见。为此,我们通过以相机感知方式施加约束来改善vanilla邻里不变性方法。至于后一种问题,我们提出了一种新型跨域混合方案。它通过将两个域之间的插值作为转变状态引入突然的转移来减轻突然的转移。在三个公共基准测试中的广泛实验证明了我们方法的优越性。没有任何辅助数据或模型,它以大边缘优于现有的最先进。

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