نتایج جستجو برای: convex data clustering

تعداد نتایج: 2515355  

Journal: :Pattern Recognition Letters 2014
René Vidal Paolo Favaro

We consider the problem of fitting a union of subspaces to a collection of data points drawn from one or more subspaces and corrupted by noise and/or gross errors. We pose this problem as a non-convex optimization problem, where the goal is to decompose the corrupted data matrix as the sum of a clean and self-expressive dictionary plus a matrix of noise and/or gross errors. By self-expressive w...

In current study, a particle swarm clustering method is suggested for clustering triangular fuzzy data. This clustering method can find fuzzy cluster centers in the proposed method, where fuzzy cluster centers contain more points from the corresponding cluster, the higher clustering accuracy. Also, triangular fuzzy numbers are utilized to demonstrate uncertain data. To compare triangular fuzzy ...

Journal: :APTIKOM Journal on Computer Science and Information Technologies 2018

Journal: :Journal of Japan Society for Fuzzy Theory and Intelligent Informatics 2005

Journal: :Southeast Europe Journal of Soft Computing 2013

Journal: :Science China Information Sciences 2012

In this paper, a new method is proposed for solving the data clustering problem using Cat Swarm Optimization (CSO) algorithm based on chaotic behavior. The problem of data clustering is an important section in the field of the data mining, which has always been noted by researchers and experts in data mining for its numerous applications in solving real-world problems. The CSO algorithm is one ...

Journal: :CoRR 2013
Hao Cheng Xinhua Zhang Dale Schuurmans

Although many convex relaxations of clustering have been proposed in the past decade, current formulations remain restricted to spherical Gaussian or discriminative models and are susceptible to imbalanced clusters. To address these shortcomings, we propose a new class of convex relaxations that can be flexibly applied to more general forms of Bregman divergence clustering. By basing these new ...

2014
Maxwell D. Collins Ji Liu Jia Xu Lopamudra Mukherjee Vikas Singh

This paper focuses on efficient algorithms for single and multi-view spectral clustering with a convex regularization term for very large scale image datasets. In computer vision applications, multiple views denote distinct image-derived feature representations that inform the clustering. Separately, the regularization encodes high level advice such as tags or user interaction in identifying si...

Journal: :Electronics and Communications 2012

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