Wisdom of Crowds cluster ensemble

May 13, 2016 ยท Declared Dead ยท ๐Ÿ› Intelligent Data Analysis

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Authors Hosein Alizadeh, Muhammad Yousefnezhad, Behrouz Minaei Bidgoli arXiv ID 1605.04074 Category stat.ML: Machine Learning (Stat) Cross-listed cs.AI, cs.SI Citations 32 Venue Intelligent Data Analysis Last Checked 6 months ago
Abstract
The Wisdom of Crowds is a phenomenon described in social science that suggests four criteria applicable to groups of people. It is claimed that, if these criteria are satisfied, then the aggregate decisions made by a group will often be better than those of its individual members. Inspired by this concept, we present a novel feedback framework for the cluster ensemble problem, which we call Wisdom of Crowds Cluster Ensemble (WOCCE). Although many conventional cluster ensemble methods focusing on diversity have recently been proposed, WOCCE analyzes the conditions necessary for a crowd to exhibit this collective wisdom. These include decentralization criteria for generating primary results, independence criteria for the base algorithms, and diversity criteria for the ensemble members. We suggest appropriate procedures for evaluating these measures, and propose a new measure to assess the diversity. We evaluate the performance of WOCCE against some other traditional base algorithms as well as state-of-the-art ensemble methods. The results demonstrate the efficiency of WOCCE's aggregate decision-making compared to other algorithms.
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