TinyverseGP: Towards a Modular Cross-domain Benchmarking Framework for Genetic Programming

Kalkreuth, Roman, de França, Fabricio Olivetti, Dierkes, Julian, Anastacio, Marie, Jankovic, Anja, Vasicek, Zdenek, Hoos, Holger

arXiv.org Artificial Intelligence 

Over the years, genetic programming (GP) has evolved, with many proposed variations, especially in how they represent a solution. Being essentially a program synthesis algorithm, it is capable of tackling multiple problem domains. Current benchmarking initiatives are fragmented, as the different representations are not compared with each other and their performance is not measured across the different domains. In this work, we propose a unified framework, dubbed TinyverseGP (inspired by tinyGP), which provides support to multiple representations and problem domains, including symbolic regression, logic synthesis and policy search.

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