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Is Genetic Programming 'Human-Competitive'? The Case of Experimental Double Auction Markets

机译:基因编程是否具有“人类竞争力”?实验性双拍卖市场案例

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In this paper, the performance of human subjects is compared with genetic programming in trading. Within a kind of double auction market, we compare the learning performance between human subjects and autonomous agents whose trading behavior is driven by genetic programming (GP). To this end, a learning index based upon the optimal solution to a double auction market problem, characterized as integer programming, is developed, and criteria tailor-made for humans are proposed to evaluate the performance of both human subjects and software agents. It is found that GP robots generally fail to discover the best strategy, which is a two-stage procrastination strategy, but some human subjects are able to do so. An analysis from the point of view of cognitive psychology further shows that the minority who were able to find this best strategy tend to have higher working memory capacities than the majority who failed to do so. Therefore, even though GP can outperform most human subjects, it is not "human-competitive" from a higher standard.
机译:在本文中,将人类受试者的表现与遗传规划进行了比较。在一种双向拍卖市场中,我们比较了人类受试者和自主行为者之间的学习表现,这些行为者的交易行为由基因编程(GP)驱动。为此,开发了一种基于针对双重拍卖市场问题的最佳解决方案的学习指标,即整数规划,并提出了为人类量身定制的标准,以评估人类受试者和软件代理的性能。已经发现,GP机器人通常无法发现最佳策略,这是一个两阶段的拖延策略,但某些人类对象却能够做到。从认知心理学的角度进行的分析进一步表明,能够找到最佳策略的少数人比没有这样做的大多数人具有更高的工作记忆能力。因此,即使GP可以胜过大多数人类受试者,但从更高的标准来看,它也不是“人类竞争性的”。

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