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Fuzzy Cluster-Aware Contrastive Clustering for Time Series

About

The rapid growth of unlabeled time series data, driven by the Internet of Things (IoT), poses significant challenges in uncovering underlying patterns. Traditional unsupervised clustering methods often fail to capture the complex nature of time series data. Recent deep learning-based clustering approaches, while effective, struggle with insufficient representation learning and the integration of clustering objectives. To address these issues, we propose a fuzzy cluster-aware contrastive clustering framework (FCACC) that jointly optimizes representation learning and clustering. Our approach introduces a novel three-view data augmentation strategy to enhance feature extraction by leveraging various characteristics of time series data. Additionally, we propose a cluster-aware hard negative sample generation mechanism that dynamically constructs high-quality negative samples using clustering structure information, thereby improving the model's discriminative ability. By leveraging fuzzy clustering, FCACC dynamically generates cluster structures to guide the contrastive learning process, resulting in more accurate clustering. Extensive experiments on 40 benchmark datasets show that FCACC outperforms the selected baseline methods (eight in total), providing an effective solution for unsupervised time series learning.

Congyu Wang, Mingjing Du, Xiang Jiang, Yongquan Dong• 2025

Related benchmarks

TaskDatasetResultRank
Time Series ClusteringCAR
Rand Index0.8408
10
Univariate Time Series ClusteringACSF1
F1 Score20.18
6
Univariate Time Series ClusteringAllGestureWiimoteZ
F1 Score13.95
6
Univariate Time Series ClusteringCricketZ
F1 Score7.46
6
Univariate Time Series ClusteringDistalPhalanx
F1 Score38.24
6
Univariate Time Series ClusteringElectricDevices
F1 Score15.43
6
Univariate Time Series ClusteringSyntheticControl
F1 Score7.38
6
Univariate Time Series ClusteringAllGestureWiimoteX
F1 Score0.0546
6
Univariate Time Series ClusteringCrop
F1 Score2.28
6
Univariate Time Series ClusteringECG200
F1 Score38.5
6
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