bokomslag Multistrategy Learning
Data & IT

Multistrategy Learning

Ryszard S Michalski

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  • 155 sidor
  • 2012
Most machine learning research has been concerned with the development of systems that implememnt one type of inference within a single representational paradigm. Such systems, which can be called monostrategy learning systems, include those for empirical induction of decision trees or rules, explanation-based generalization, neural net learning from examples, genetic algorithm-based learning, and others. Monostrategy learning systems can be very effective and useful if learning problems to which they are applied are sufficiently narrowly defined. Many real-world applications, however, pose learning problems that go beyond the capability of monostrategy learning methods. In view of this, recent years have witnessed a growing interest in developing multistrategy systems, which integrate two or more inference types and/or paradigms within one learning system. Such multistrategy systems take advantage of the complementarity of different inference types or representational mechanisms. Therefore, they have a potential to be more versatile and more powerful than monostrategy systems. On the other hand, due to their greater complexity, their development is significantly more difficult and represents a new great challenge to the machine learning community. Multistrategy Learning contains contributions characteristic of the current research in this area.
  • Författare: Ryszard S Michalski
  • Format: Pocket/Paperback
  • ISBN: 9781461364054
  • Språk: Engelska
  • Antal sidor: 155
  • Utgivningsdatum: 2012-10-08
  • Förlag: Springer-Verlag New York Inc.