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Fuzzy C-Means Clustering With Local Information and Kernel Metric for Image Segmentation

Published: 01 February 2013 Publication History

Abstract

In this paper, we present an improved fuzzy C-means (FCM) algorithm for image segmentation by introducing a tradeoff weighted fuzzy factor and a kernel metric. The tradeoff weighted fuzzy factor depends on the space distance of all neighboring pixels and their gray-level difference simultaneously. By using this factor, the new algorithm can accurately estimate the damping extent of neighboring pixels. In order to further enhance its robustness to noise and outliers, we introduce a kernel distance measure to its objective function. The new algorithm adaptively determines the kernel parameter by using a fast bandwidth selection rule based on the distance variance of all data points in the collection. Furthermore, the tradeoff weighted fuzzy factor and the kernel distance measure are both parameter free. Experimental results on synthetic and real images show that the new algorithm is effective and efficient, and is relatively independent of this type of noise.

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  • (2024)Segmentation of 3D Anatomically Diffused Tissues in Magnetic Resonance Images Through Edge-Preserving Constrained Center-Free Fuzzy $C$-MeansIEEE Transactions on Fuzzy Systems10.1109/TFUZZ.2024.337350932:6(3444-3457)Online publication date: 8-Mar-2024
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cover image IEEE Transactions on Image Processing
IEEE Transactions on Image Processing  Volume 22, Issue 2
February 2013
411 pages

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IEEE Press

Publication History

Published: 01 February 2013

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Cited By

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  • (2024)Robust contrastive multi-view kernel clusteringProceedings of the Thirty-Third International Joint Conference on Artificial Intelligence10.24963/ijcai.2024/546(4938-4945)Online publication date: 3-Aug-2024
  • (2024)Mahalanobis-Kernel Distance-Based Suppressed Possibilistic C-Means Clustering Algorithm for Imbalanced Image SegmentationIEEE Transactions on Fuzzy Systems10.1109/TFUZZ.2024.340549732:8(4595-4609)Online publication date: 1-Aug-2024
  • (2024)Segmentation of 3D Anatomically Diffused Tissues in Magnetic Resonance Images Through Edge-Preserving Constrained Center-Free Fuzzy $C$-MeansIEEE Transactions on Fuzzy Systems10.1109/TFUZZ.2024.337350932:6(3444-3457)Online publication date: 8-Mar-2024
  • (2024)Noise-Estimation-Dominated Fuzzy Segmentation Strategy for Accurate Implantation of Implantable Cardioverter DefibrillatorsIEEE Transactions on Fuzzy Systems10.1109/TFUZZ.2024.336497032:9(4902-4911)Online publication date: 1-Sep-2024
  • (2024)Joint learning framework of superpixel generation and fuzzy sparse subspace clustering for color image segmentationSignal Processing10.1016/j.sigpro.2024.109515222:COnline publication date: 1-Sep-2024
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  • (2024)Adaptive sparse regularized fuzzy clustering noise image segmentation algorithm based on complementary spatial informationExpert Systems with Applications: An International Journal10.1016/j.eswa.2024.124943256:COnline publication date: 5-Dec-2024
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