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Transgenic Evolution for Classification Tasks with HERCL

机译:具有HERCL的分类任务的转基因演进

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摘要

We explore the evolution of programs for classification tasks, using the recently introduced Hierarchical Evolutionary Re-Combination Language (HERCL) which has been designed as an austere and general-purpose language, with a view toward modular evolutionary computation, combining elements from Linear GP with stack-based operations from FORTH. We show that evolved HERCL programs can successfully learn to perform a variety of benchmark classification tasks, and that performance is enhanced by the sharing of genetic material between tasks.
机译:我们探讨了分类任务的方案的演变,使用最近引入的分层进化重新组合语言(HERCL)被设计为AUSTERE和通用语言,以模块化进化计算,将元素与线性GP的组合相结合基于堆栈的操作。我们表明演进的Hercl程序可以成功学习执行各种基准分类任务,并且通过在任务之间共享遗传物质来增强性能。

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