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Genetic Programming Needs Better Benchmarks

机译:基因编程需要更好的基准

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摘要

Genetic programming (GP) is not a field noted for the rigor of its benchmarking. Some of its benchmark problems are popular purely through historical contingency, and they can be criticized as too easy or as providing misleading information concerning real-world performance, but they persist largely because of inertia and the lack of good alternatives. Even where the problems themselves are impeccable, comparisons between studies are made more difficult by the lack of standardization. We argue that the definition of standard benchmarks is an essential step in the maturation of the field. We make several contributions towards this goal. We motivate the development of a benchmark suite and define its goals; we survey existing practice; we enumerate many candidate benchmarks; we report progress on reference implementations; and we set out a concrete plan for gathering feedback from the GP community that would, if adopted, lead to a standard set of benchmarks.
机译:遗传程序设计(GP)并不是因为其基准测试的严格性而引起注意的领域。它的一些基准问题纯粹是出于历史偶然性而流行,可以被批评为过于简单或提供有关现实世界性能的误导性信息,但由于惯性和缺乏好的选择,它们仍然存在。即使问题本身无可挑剔,但由于缺乏标准化,研究之间的比较也变得更加困难。我们认为标准基准的定义是该领域成熟的必不可少的步骤。我们为此目标做出了一些贡献。我们鼓励开发基准套件并定义其目标;我们调查现有做法;我们列举了许多候选基准;我们报告参考实施的进度;我们制定了一项具体计划,以收集来自GP社区的反馈,如果采纳的话,将得出一套标准的基准。

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