Partial Label Learning via Label Influence Function
Xiuwen Gong, Dong Yuan, Wei Bao
摘要
To deal with ambiguities in partial label learning (PLL), state-of-the-art strategies implement disambiguations by identifying the ground-truth label directly from the candidate label set. However, these approaches usually take the label that incurs a minimal loss as the ground-truth label or use the weight to represent which label has a high likelihood to be the ground-truth label. Little work has been done to investigate from the perspective of how a candidate label changing a predictive model. In this paper, inspired by influence function, we develop a novel PLL framework called Partial Label Learning via Label Influence Function (PLL-IF). Moreover, we implement the framework with two specific representative models, an SVM model and a neural network model, which are called PLL-IF+SVM and PLL-IF+NN method respectively. Extensive experiments conducted on various datasets demonstrate the superiorities of the proposed methods in terms of prediction accuracy, which in turn validates the effectiveness of the proposed PLL-IF framework.
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引用它的顶会 Paper13
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它引用的顶会 Paper5
- Progressive Identification of True Labels for Partial-Label LearningJiaqi Lv, Miao Xu, Lei Feng, Gang Niu 等ICML 2020 · 被引用 220 次
- Provably Consistent Partial-Label LearningLei Feng, Jiaqi Lv, Bo Han, Miao Xu 等NeurIPS 2020 · 被引用 188 次
- Deep Discriminative CNN with Temporal Ensembling for Ambiguously-Labeled Image ClassificationYao Yao, Jiehui Deng, Xiuhua Chen, Chen Gong 等AAAI 2020 · 被引用 71 次
- Partial Label Learning with Batch Label CorrectionYan Yan, Yuhong GuoAAAI 2020 · 被引用 63 次
- Influence Functions in Deep Learning Are FragileSamyadeep Basu, Phillip Pope, Soheil FeiziICLR 2021 · 被引用 15 次
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