Obtaining Repetitive Actions for Genetic Programming with Multiple Trees

نویسندگان

  • Takashi Ito
  • Kenichi Takahashi
  • Michimasa Inaba
چکیده

This paper proposes a method to improve genetic programming with multiple trees (GPCN). An individual in GPCN comprises multiple trees, and each tree has a number P that indicates the number of repetitive actions based on the tree. In previous work, a method for updating the number P has been proposed to obtain P suitable to the tree in evolution. However, in the method efficiency becomes worse as the range of P becomes wider. In order to solve the problem, in this study, two methods are proposed: inheriting the number P of a tree from an excellent individual and using mutation for preventing the number P from being into a local optimum. Additionally, a method to eliminate trees consisting of a single terminal node is proposed. © 2015 The Authors. Published by Elsevier B.V. Peer-review under responsibility of KES International.

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تاریخ انتشار 2016