Bingo: a customizable framework for symbolic regression with genetic programming.

Annual Conference on Genetic and Evolutionary Computation (GECCO)(2022)

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摘要
In this paper, we introduce Bingo, a flexible and customizable yet performant Python framework for symbolic regression with genetic programming. Bingo maintains a modular code structure for simple abstraction and easily swappable components. Fitness functions, selection methods, and constant optimization methods allow for easy problem-specific customization. Bingo also maintains several features for increased efficiency such as parallelism, equation simplification, and a C++ backend. We compare Bingo's performance to other genetic programming for symbolic regression (GPSR) methods to show that it is both competitive and flexible.
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关键词
genetic programming, symbolic regression, genetic programming for symbolic regression
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