Multi-Objective Differential Evolution for Automatic Clustering with Application to Micro-Array Data Analysis

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Provided by: Jadavpur University
Topic: Big Data
Format: PDF
In this paper, the authors apply the Differential Evolution (DE) algorithm to the task of automatic fuzzy clustering in a Multi-objective Optimization (MO) framework. It compares the performances of two multi-objective variants of DE over the fuzzy clustering problem, where two conflicting fuzzy validity indices are simultaneously optimized. The resultant Pareto optimal set of solutions from each algorithm consists of a number of non-dominated solutions, from which the user can choose the most promising ones according to the problem specifications.
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