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Zhun Zhong; Liang Zheng; Donglin Cao; Shaozi Li

Abstract
When considering person re-identification (re-ID) as a retrieval process, re-ranking is a critical step to improve its accuracy. Yet in the re-ID community, limited effort has been devoted to re-ranking, especially those fully automatic, unsupervised solutions. In this paper, we propose a k-reciprocal encoding method to re-rank the re-ID results. Our hypothesis is that if a gallery image is similar to the probe in the k-reciprocal nearest neighbors, it is more likely to be a true match. Specifically, given an image, a k-reciprocal feature is calculated by encoding its k-reciprocal nearest neighbors into a single vector, which is used for re-ranking under the Jaccard distance. The final distance is computed as the combination of the original distance and the Jaccard distance. Our re-ranking method does not require any human interaction or any labeled data, so it is applicable to large-scale datasets. Experiments on the large-scale Market-1501, CUHK03, MARS, and PRW datasets confirm the effectiveness of our method.
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| person-re-identification-on-cuhk03 | k-reciprocal 46 | MAP: 67.6 Rank-1: 61.6 |
| person-re-identification-on-cuhk03-detected | IDE-C+XQDA | MAP: 19.0 Rank-1: 21.1 |
| person-re-identification-on-cuhk03-detected | IDE-C | MAP: 14.2 Rank-1: 15.1 |
| person-re-identification-on-cuhk03-detected | IDE-R+XQDA | MAP: 28.2 Rank-1: 31.1 |
| person-re-identification-on-cuhk03-detected | IDE-R | MAP: 19.7 Rank-1: 21.3 |
| person-re-identification-on-cuhk03-labeled | IDE-C+XQDA | MAP: 20.0 Rank-1: 21.9 |
| person-re-identification-on-cuhk03-labeled | IDE-C | MAP: 14.9 Rank-1: 15.6 |
| person-re-identification-on-cuhk03-labeled | IDE-R+XQDA | MAP: 29.6 Rank-1: 32.0 |
| person-re-identification-on-cuhk03-labeled | IDE-R | MAP: 21.0 Rank-1: 22.2 |
| person-re-identification-on-market-1501 | Re-rank | Rank-1: 77.11 mAP: 63.63 |
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