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Multi-Directional Multi-Label Learning

delete2021-10-01
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吴丹阳 cover
吴丹阳 (Danyang Wu)
S
Shenfei Pei
聂飞平 (Feiping Nie)
R
Rong Wang *
X
Xuelong Li
DOI:10.1016/j.sigpro.2021.108143delete
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Abstract

Abstract

En 中文
In multi-label learning, the key problem is to capture the relationships between multiple labels, including proximities and unconformities. In this paper, we consider the relationships among multiple labels from multi-directions, including utilizing discriminative classifier, proposing a general hierarchical constraint and proximity correlation, meanwhile combining low-rank constraint, to infer a novel Multi-Directional Multi-Label learning (MDML) model. To optimize the problems involved in to the proposed models, we develop an iterative algorithms based on the alternating direction method of multipliers (ADMM) algorithm. In the simulations, the experimental results on 4 popular benchmark datasets demonstrate the superiorities of MDML model. (c) 2021 Elsevier B.V. All rights reserved.
Keywords:
Multi-Label Learning
Image Processing
Low-Rank Learning
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Journal

Signal Processing cover
Signal Processing
IF:
3.6
Papers:
9.9K
Citations:
1.7W

Organization

N
Northwestern Polytechnical University
Scholars:
4.6W
Papers: 3.7W
Citations: 5.3W
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