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Deviation from the matching law reflects an optimal strategy involving learning over multiple timescales

机译:偏离匹配法则反映了一种最佳策略涉及跨多个时间尺度的学习

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摘要

Behavior deviating from our normative expectations often appears irrational. For example, even though behavior following the so-called matching law can maximize reward in a stationary foraging task, actual behavior commonly deviates from matching. Such behavioral deviations are interpreted as a failure of the subject; however, here we instead suggest that they reflect an adaptive strategy, suitable for uncertain, non-stationary environments. To prove it, we analyzed the behavior of primates that perform a dynamic foraging task. In such nonstationary environment, learning on both fast and slow timescales is beneficial: fast learning allows the animal to react to sudden changes, at the price of large fluctuations (variance) in the estimates of task relevant variables. Slow learning reduces the fluctuations but costs a bias that causes systematic behavioral deviations. Our behavioral analysis shows that the animals solved this bias-variance tradeoff by combining learning on both fast and slow timescales, suggesting that learning on multiple timescales can be a biologically plausible mechanism for optimizing decisions under uncertainty.
机译:偏离我们的规范期望的行为常常显得不合理。例如,即使遵循所谓匹配法则的行为可以使固定的觅食任务中的报酬最大化,但实际行为通常会偏离匹配项。这种行为偏差被解释为受试者的失败。但是,在这里我们建议它们反映一种适应性策略,适用于不确定的非平稳环境。为了证明这一点,我们分析了执行动态觅食任务的灵长类动物的行为。在这种非平稳环境中,快速和慢速时间尺度的学习都是有益的:快速学习允许动物对突然的变化做出反应,以任务相关变量的估计中的大波动(方差)为代价。缓慢的学习减少了波动,但付出了导致系统性行为偏差的偏见。我们的行为分析表明,动物通过组合快速和慢速时标上的学习解决了这种偏差-方差折衷,这表明在多个时标上学习可以是在不确定性条件下优化决策的生物学上可行的机制。

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