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题名

Benchmarks for Corruption Invariant Person Re-identification

作者
通讯作者Feng Zheng
共同第一作者Zhiqiang Wang; Feng Zheng
发表日期
2021-11-01
会议名称
35th Conference on Neural Information Processing Systems (NeurIPS 2021) Track on Datasets and Benchmarks
会议日期
2021
会议地点
Virtual-only Conference
摘要

When deploying person re-identification (ReID) model in safety-critical applications, it is pivotal to understanding the robustness of the model against a diverse array of image corruptions. However, current evaluations of person ReID only consider the performance on clean datasets and ignore images in various corrupted scenarios. In this work, we comprehensively establish six ReID benchmarks for learning corruption invariant representation. In the field of ReID, we are the first
to conduct an exhaustive study on corruption invariant learning in single- and cross-modality datasets, including Market-1501, CUHK03, MSMT17, RegDB, SYSU-MM01. After reproducing and examining the robustness performance of 21 recent ReID methods, we have some observations: 1) transformer-based models are more robust towards corrupted images, compared with CNN-based models,2) increasing the probability of random erasing (a commonly used augmentation method) hurts model corruption robustness, 3) cross-dataset generalization improves with corruption robustness increases. By analyzing the above observations, we propose a strong baseline on both single- and cross-modality ReID datasets which achieves improved robustness against diverse corruptions. Our codes are available on https://github.com/MinghuiChen43/CIL-ReID

关键词
学校署名
第一 ; 共同第一 ; 通讯
语种
英语
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成果类型会议论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/257544
专题工学院_计算机科学与工程系
作者单位
Department of Computer Science and Engineering Southern University of Science and Technology Shenzhen 518055, P.R. China
第一作者单位计算机科学与工程系
通讯作者单位计算机科学与工程系
第一作者的第一单位计算机科学与工程系
推荐引用方式
GB/T 7714
Minghui Chen,Zhiqiang Wang,Feng Zheng. Benchmarks for Corruption Invariant Person Re-identification[C],2021.
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NeurIPS_Camera_Ready(5547KB)----限制开放--
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