Multi-Objective Machine Learning

Paperback Published on: 22/11/2010
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Synopsis

Recently, increasing interest has been shown in applying the concept of Pareto-optimality to machine learning, particularly inspired by the successful developments in evolutionary multi-objective optimization. It has been shown that the multi-objective approach to machine learning is particularly successful to improve the performance of the traditional single objective machine learning methods, to generate highly diverse multiple Pareto-optimal models for constructing ensembles models and, and to achieve a desired trade-off between accuracy and interpretability of neural networks or fuzzy systems. This monograph presents a selected collection of research work on multi-objective approach to machine learning, including multi-objective feature selection, multi-objective model selection in training multi-layer perceptrons, radial-basis-function networks, support vector machines, decision trees, and intelligent systems.

Publisher information

  • Publisher: Springer Berlin Heidelberg
  • ISBN: 9783642067969
  • Number of pages: 660
  • Dimensions: 234 x 156 x 34 mm
  • Weight: 1021g
  • Languages: English