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Active Clustering Ensemble With Self-Paced Learning

delete2024-09-01
delete20
PRE
AI
周
周芃 (Peng Zhou)
B
Bicheng Sun
Xinwang Liu 封面图
Xinwang Liu (Xinwang Liu)
杜亮 封面图
杜亮 (Liang Du)
X
Xuejun Li *
DOI:10.1109/TNNLS.2023.3252586delete
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摘要

摘要

En 中文
A clustering ensemble provides an elegant framework to learn a consensus result from multiple prespecified clustering partitions. Though conventional clustering ensemble methods achieve promising performance in various applications, we observe that they may usually be misled by some unreliable instances due to the absence of labels. To tackle this issue, we propose a novel active clustering ensemble method, which selects the uncertain or unreliable data for querying the annotations in the process of the ensemble. To fulfill this idea, we seamlessly integrate the active clustering ensemble method into a self-paced learning framework, leading to a novel self-paced active clustering ensemble (SPACE) method. The proposed SPACE can jointly select unreliable data to label via automatically evaluating their difficulty and applying easy data to ensemble the clusterings. In this way, these two tasks can be boosted by each other, with the aim to achieve better clustering performance. The experimental results on benchmark datasets demonstrate the significant effectiveness of our method. The codes of this article are released in http://Doctor-Nobody.github.io/codes/space.zip.
Keyword:
Active learning
clustering ensemble
self-paced learning

期刊

IEEE Transactions on Neural Networks and Learning Systems 封面图
IEEE Transactions on Neural Networks and Learning Systems
IF:
8.9
论文数:
7.6K
被引数:
7.2W

机构

I
institute of software, cas
学者数:
446
论文数: 388
被引数: 0
N
national university of defense technology - china
学者数:
1.8W
论文数: 1.4W
被引数: 9
A
anhui university
学者数:
1.9W
论文数: 1.2W
被引数: 24
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引用论文

引用论文

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