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4 months ago

A Discriminatively Learned CNN Embedding for Person Re-identification

Zhedong Zheng; Liang Zheng; Yi Yang

A Discriminatively Learned CNN Embedding for Person Re-identification

Abstract

We revisit two popular convolutional neural networks (CNN) in person re-identification (re-ID), i.e, verification and classification models. The two models have their respective advantages and limitations due to different loss functions. In this paper, we shed light on how to combine the two models to learn more discriminative pedestrian descriptors. Specifically, we propose a new siamese network that simultaneously computes identification loss and verification loss. Given a pair of training images, the network predicts the identities of the two images and whether they belong to the same identity. Our network learns a discriminative embedding and a similarity measurement at the same time, thus making full usage of the annotations. Albeit simple, the learned embedding improves the state-of-the-art performance on two public person re-ID benchmarks. Further, we show our architecture can also be applied in image retrieval.

Code Repositories

layumi/Person-reID-verification
pytorch
Mentioned in GitHub
LDVC124/2016_person_re-ID
Mentioned in GitHub
layumi/2016_person_re-ID
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
image-retrieval-on-oxford5kIdentification+Verification
mAP: 76.4
person-re-identification-on-cuhk03DLCE
MAP: 86.4
Rank-1: 83.4
person-re-identification-on-dukemtmc-reidDLCE
Rank-1: 68.9
mAP: 49.3
person-re-identification-on-market-1501DLCE
Rank-1: 79.51
mAP: 59.87
person-re-identification-on-market-1501-500kDLCE
MAP: 45.24
Rank-1: 68.26
person-re-identification-on-msmt17DLCE
Rank-1: 60.48
mAP: 31.58

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A Discriminatively Learned CNN Embedding for Person Re-identification | Papers | HyperAI