Jiawei Li
Hong Kong Baptist University
11 Papers
Jiawei Li is an academic researcher from Hong Kong Baptist University. The author has contributed to research in topics: Discriminative model & Computer science. The author has an hindex of 8, co-authored 9 publications.
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Papers
Multi-Adversarial Discriminative Deep Domain Generalization for Face Presentation Attack Detection
Rui Shao,Xiangyuan Lan,Jiawei Li,Pong C. Yuen +3 more
- 15 Jun 2019
TL;DR: This work proposes to learn a generalized feature space via a novel multi-adversarial discriminative deep domain generalization framework under a dual-force triplet-mining constraint, which ensures that the learned feature space is discriminating and shared by multiple source domains, and thus more generalized to new face presentation attacks.
•Proceedings Article
Hierarchical Discriminative Learning for Visible Thermal Person Re-Identification
Mang Ye,Xiangyuan Lan,Jiawei Li,Pong C. Yuen +3 more
- 27 Apr 2018
TL;DR: An improved two-stream CNN network is presented to learn the multimodality sharable feature representations and identity loss and contrastive loss are integrated to enhance the discriminability and modality-invariance with partially shared layer parameters.
Dynamic Label Graph Matching for Unsupervised Video Re-identification
Mang Ye,Andy J. Ma,Liang Zheng,Jiawei Li,Pong C. Yuen +4 more
- 01 Oct 2017
TL;DR: In this paper, a dynamic graph matching (DGM) method is proposed to construct a graph for samples in each camera, and then graph matching scheme is introduced for cross-camera labeling association.
Semi-supervised Region Metric Learning for Person Re-identification
TL;DR: A novel semi-supervised region metric learning method to improve person re-identification performance under imbalanced unlabeled data is proposed, which proposes to estimate positive neighbors by label propagation with cross person score distribution alignment.
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Self-Supervised Point Cloud Learning in Few-Shot Scenario by Point Up-Sampling and Mutual Information Neural Estimation
Jiawei Li,Yunan Huang,Yunqi Lei +2 more
- 22 Apr 2022
TL;DR: This work proposes a new self-supervised pretext task in few-shot learning scenario to further alleviate the data scarcity problem and introduces a Mutual Information Estimation and Maximization task to increase the distinguishability of the learned representation.
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