Web-Supervised Network with Softly Update-Drop Training for Fine-Grained Visual Classification
Chuanyi Zhang, Yazhou Yao, Huafeng Liu, Guo-Sen Xie, Xiangbo Shu, Tianfei Zhou, Zheng Zhang, Fumin Shen, Zhenmin Tang
摘要
Labeling objects at the subordinate level typically requires expert knowledge, which is not always available from a random annotator. Accordingly, learning directly from web images for fine-grained visual classification (FGVC) has attracted broad attention. However, the existence of noise in web images is a huge obstacle for training robust deep neural networks. In this paper, we propose a novel approach to remove irrelevant samples from the real-world web images during training, and only utilize useful images for updating the networks. Thus, our network can alleviate the harmful effects caused by irrelevant noisy web images to achieve better performance. Extensive experiments on three commonly used fine-grained datasets demonstrate that our approach is much superior to state-of-the-art webly supervised methods. The data and source code of this work have been made anonymously available at: https://github.com/z337-408/WSNFGVC.
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引用它的顶会 Paper8
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- Webly Supervised Fine-Grained Recognition: Benchmark Datasets and An ApproachZeren Sun, Yazhou Yao, Xiu-Shen Wei, Yongshun Zhang 等ICCV 2021 · 被引用 69 次
- CRSSC: Salvage Reusable Samples from Noisy Data for Robust LearningZeren Sun, Xian-Sheng Hua, Yazhou Yao, Xiu-Shen Wei 等ACM MM 2020 · 被引用 57 次
- Weak-shot Fine-grained Classification via Similarity TransferJunjie Chen, Li Niu, Liu Liu, Liqing ZhangNeurIPS 2021 · 被引用 32 次
- Explanation-based Data Augmentation for Image ClassificationSandareka Wickramanayake, Wynne Hsu, Mong-Li LeeNeurIPS 2021 · 被引用 24 次
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