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Gaojie Lin

Researcher at Beijing Institute of Technology

Publications -  4
Citations -  960

Gaojie Lin is an academic researcher from Beijing Institute of Technology. The author has contributed to research in topics: Feature learning & Deep learning. The author has an hindex of 2, co-authored 4 publications receiving 310 citations.

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Deep Learning for Person Re-identification: A Survey and Outlook

TL;DR: A powerful AGW baseline is designed, achieving state-of-the-art or at least comparable performance on twelve datasets for four different Re-ID tasks, and a new evaluation metric (mINP) is introduced, indicating the cost for finding all the correct matches, which provides an additional criteria to evaluate the Re- ID system for real applications.
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Deep Learning for Person Re-identification: A Survey and Outlook.

TL;DR: Zhang et al. as mentioned in this paper conducted a comprehensive overview with in-depth analysis for closed-world person Re-ID from three different perspectives, including deep feature representation learning, deep metric learning and ranking optimization.
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Person Re-Identification by Context-aware Part Attention and Multi-Head Collaborative Learning

TL;DR: A novel multi-level Context-aware Part Attention (CPA) model to learn discriminative and robust local part features, which achieves much better or at least comparable performance compared to the state-of-the-art on four video re-ID datasets.
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Video person re-identification with global statistic pooling and self-attention distillation

TL;DR: A novel Global Statistic Pooling network (GSPnet) is proposed which takes full advantage of the second-order information for enhancing modeling capability, and a multi-level self-attention distillation training scheme, which squeezes the knowledge learned in the deeper portion of the networks into the shallow ones.