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Multi-label optimal margin distribution machine

delete2019-10-10
delete25
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Zhi-Hao Tan
P
Peng Hui Tan
Y
Yuan Jiang *
Zhi-Hua Zhou 封面图
Zhi-Hua Zhou (Zhi‐Hua Zhou)
DOI:10.1007/s10994-019-05837-8delete
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摘要

摘要

En 中文
Multi-label support vector machine (Rank-SVM) is a classic and effective algorithm for multi-label classification. The pivotal idea is to maximize the minimum margin of label pairs, which is extended from SVM. However, recent studies disclosed that maximizing the minimum margin does not necessarily lead to better generalization performance, and instead, it is more crucial to optimize the margin distribution. Inspired by this idea, in this paper, we first introduce margin distribution to multi-label learning and propose multi-label Optimal margin Distribution Machine (mlODM), which optimizes the margin mean and variance of all label pairs efficiently. Extensive experiments in multiple multi-label evaluation metrics illustrate that mlODM outperforms SVM-style multi-label methods. Moreover, empirical study presents the best margin distribution and verifies the fast convergence of our method.
Keyword:
Optimal margin distribution machine
Multi-label learning
Support vector machine
Margin theory
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Machine Learning 封面图
Machine Learning
IF:
2.9
论文数:
2.7K
被引数:
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nanjing university
学者数:
7.8W
论文数: 5.6W
被引数: 87
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