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Multiple Kernel Fuzzy Clustering

Published: 01 February 2012 Publication History

Abstract

While fuzzy c-means is a popular soft-clustering method, its effectiveness is largely limited to spherical clusters. By applying kernel tricks, the kernel fuzzy c-means algorithm attempts to address this problem by mapping data with nonlinear relationships to appropriate feature spaces. Kernel combination, or selection, is crucial for effective kernel clustering. Unfortunately, for most applications, it is uneasy to find the right combination. We propose a multiple kernel fuzzy c-means (MKFC) algorithm that extends the fuzzy c-means algorithm with a multiple kernel-learning setting. By incorporating multiple kernels and automatically adjusting the kernel weights, MKFC is more immune to ineffective kernels and irrelevant features. This makes the choice of kernels less crucial. In addition, we show multiple kernel k-means to be a special case of MKFC. Experiments on both synthetic and real-world data demonstrate the effectiveness of the proposed MKFC algorithm.

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  • (2024)Purity-Preserving Kernel Tensor Low-Rank Learning for Robust Subspace ClusteringIEEE Transactions on Circuits and Systems for Video Technology10.1109/TCSVT.2023.329931834:3(1900-1913)Online publication date: 1-Mar-2024
  • (2024)Kernel correlation–dissimilarity for Multiple Kernel k-Means clusteringPattern Recognition10.1016/j.patcog.2024.110307150:COnline publication date: 1-Jun-2024
  • (2024)Bilevel fuzzy clustering via adaptive similarity graphs fusionInformation Sciences: an International Journal10.1016/j.ins.2024.120281662:COnline publication date: 1-Mar-2024
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      cover image IEEE Transactions on Fuzzy Systems
      IEEE Transactions on Fuzzy Systems  Volume 20, Issue 1
      February 2012
      201 pages

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      IEEE Press

      Publication History

      Published: 01 February 2012

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      View all
      • (2024)Purity-Preserving Kernel Tensor Low-Rank Learning for Robust Subspace ClusteringIEEE Transactions on Circuits and Systems for Video Technology10.1109/TCSVT.2023.329931834:3(1900-1913)Online publication date: 1-Mar-2024
      • (2024)Kernel correlation–dissimilarity for Multiple Kernel k-Means clusteringPattern Recognition10.1016/j.patcog.2024.110307150:COnline publication date: 1-Jun-2024
      • (2024)Bilevel fuzzy clustering via adaptive similarity graphs fusionInformation Sciences: an International Journal10.1016/j.ins.2024.120281662:COnline publication date: 1-Mar-2024
      • (2024)Trustworthy multi-view clustering via alternating generative adversarial representation learning and fusionInformation Fusion10.1016/j.inffus.2024.102323107:COnline publication date: 1-Jul-2024
      • (2024)Multiple kernel clustering with local kernel reconstruction and global heat diffusionInformation Fusion10.1016/j.inffus.2023.102219105:COnline publication date: 1-May-2024
      • (2024)Multiple kernel clustering with structure-preserving and block diagonal propertyMultimedia Tools and Applications10.1007/s11042-023-15610-883:3(6425-6445)Online publication date: 1-Jan-2024
      • (2023)Multiple Kernel Relative Entropy Fuzzy C-means Clustering AlgorithmProceedings of the 2023 6th International Conference on Artificial Intelligence and Pattern Recognition10.1145/3641584.3641777(1283-1289)Online publication date: 22-Sep-2023
      • (2023)Knowledge-Induced Multiple Kernel Fuzzy ClusteringIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2023.329862945:12(14838-14855)Online publication date: 1-Dec-2023
      • (2023)Contrastive Multi-View Kernel LearningIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2023.325321145:8(9552-9566)Online publication date: 1-Aug-2023
      • (2023)Hyperparameter-Free Localized Simple Multiple Kernel K-means With Global OptimumIEEE Transactions on Pattern Analysis and Machine Intelligence10.1109/TPAMI.2022.323363545:7(8566-8576)Online publication date: 1-Jul-2023
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