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Changes of Problem Representation

Changes of Problem Representation Theory and Experiments

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Studies in Fuzziness and Soft Computing

Changes of Problem Representation

Theory and Experiments

Eugene Fink

Computers / Artificial Intelligence / General

The purpose of our research is to enhance the efficiency of AI problem solvers by automating representation changes. We have developed a system that improves the description of input problems and selects an appropriate search algorithm for each given problem. Motivation. Researchers have accumulated much evidence on the impor­ tance of appropriate representations for the efficiency of AI systems. The same problem may be easy or difficult, depending on the way we describe it and on the search algorithm we use. Previous work on the automatic im­ provement of problem descriptions has mostly been limited to the design of individual learning algorithms. The user has traditionally been responsible for the choice of algorithms appropriate for a given problem. We present a system that integrates multiple description-changing and problem-solving algorithms. The purpose of the reported work is to formalize the concept of representation and to confirm the following hypothesis: An effective representation-changing system can be built from three parts: • a library of problem-solving algorithms; • a library of algorithms that improve problem descriptions; • a control module that selects algorithms for each given problem.

Publication Date: 21 October 2010
Publisher: Physica-Verlag HD
Imprint: Physica
ISBN-13: 9783790825183
Format: Paperback softback
Page Count: 358

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