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Layered learning for evolving goal scoring behaviour in soccer players

机译:用于足球运动员不断发展的进球得分行为的分层学习

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Layered learning allows decomposition of the stages of learning in a problem domain. We apply this technique to the evolution of goal scoring behavior in soccer players and show that layered learning is able to find solutions comparable to standard genetic programs more reliably. The solutions evolved with layers have a higher accuracy but do not make as many goal attempts. We compared three variations of layered learning and find that maintaining the population between layers as the encapsulated learnt layer is introduced to be the most computationally efficient. The quality of solutions found by layered learning did not exceed those of standard genetic programming in terms of goal scoring ability.
机译:分层学习可以分解问题域中的学习阶段。我们将此技术应用于足球运动员进球得分行为的演变,并表明分层学习能够更可靠地找到与标准遗传程序可比的解决方案。分层开发的解决方案具有更高的准确性,但没有进行太多的目标尝试。我们比较了分层学习的三种变体,发现在引入封装的学习层时,保持层之间的填充是计算效率最高的。就目标得分能力而言,分层学习发现的解决方案的质量没有超过标准遗传规划的质量。

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