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Novelty-Based Fitness: An Evaluation under the Santa Fe Trail

机译:基于新奇的健身:圣达菲步道下的评估

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摘要

We present an empirical analysis of the effects of incorporating novelty-based fitness (phenotypic behavioral diversity) into Genetic Programming with respect to training, test and generalization performance. Three novelty-based approaches are considered: novelty comparison against a finite archive of behavioral archetypes, novelty comparison against all previously seen behaviors, and a simple linear combination of the first method with a standard fitness measure. Performance is evaluated on the Santa Fe Trail, a well known GP benchmark selected for its deceptiveness and established generalization test procedures. Results are compared to a standard quality-based fitness function (count of food eaten). Ultimately, the quality style objective provided better overall performance, however, solutions identified under novelty based fitness functions generally provided much better test performance than their corresponding training performance. This is interpreted as representing a requirement for layered learning/ symbiosis when assuming novelty based fitness functions in order to more quickly achieve the integration of diverse behaviors into a single cohesive strategy.
机译:我们提出了将基于新颖性的适应性(表型行为多样性)纳入遗传规划的训练,测试和泛化性能的实证分析。考虑了三种基于新颖性的方法:针对行为原型的有限档案库的新颖性比较,针对所有先前看到的行为的新颖性比较,以及第一种方法与标准适应性度量的简单线性组合。在圣达菲步道(Santa Fe Trail)上对性能进行评估,圣达菲步道因其欺骗性和公认的通用测试程序而被选中。将结果与基于质量的标准适合度函数(食用食物的数量)进行比较。最终,质量风格目标提供了更好的总体性能,但是,在基于新颖性的适应度函数下确定的解决方案通常比其相应的训练性能提供更好的测试性能。当假定基于新颖性的适应度函数以便更快地实现将多种行为集成到单个内聚策略中时,这被解释为代表分层学习/共生的要求。

著录项

  • 来源
    《Genetic programming》|2010年|p.50-61|共12页
  • 会议地点 Istanbul(TR);Istanbul(TR);Istanbul(TR);Istanbul(TR);Istanbul(TR)
  • 作者单位

    Faculty of Computer Science, Dalhousie University, Halifax, NS, Canada;

    Faculty of Computer Science, Dalhousie University, Halifax, NS, Canada;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 程序设计、软件工程;
  • 关键词

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