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首页> 外文期刊>Nature Communications >Learning auditory discriminations from observation is efficient but less robust than learning from experience
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Learning auditory discriminations from observation is efficient but less robust than learning from experience

机译:从观察中学习听觉歧视是有效的,但不如从经验中学习

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Social learning enables complex societies. However, it is largely unknown how insights obtained from observation compare with insights gained from trial-and-error, in particular in terms of their robustness. Here, we use aversive reinforcement to train “experimenter” zebra finches to discriminate between auditory stimuli in the presence of an “observer” finch. We show that experimenters are slow to successfully discriminate the stimuli, but immediately generalize their ability to a new set of similar stimuli. By contrast, observers subjected to the same task are able to discriminate the initial stimulus set, but require more time for successful generalization. Drawing on concepts from machine learning, we suggest that observer learning has evolved to rapidly absorb sensory statistics without pressure to minimize neural resources, whereas learning from experience is endowed with a form of regularization that enables robust inference.
机译:社会学习使复杂的社会成为可能。但是,从观察中获得的见解与从反复试验中获得的见解之间的比较,尤其是在鲁棒性方面,很大程度上是未知的。在这里,我们使用厌恶性强化来训练“实验者”斑马雀科动物,以区分存在“观察者”雀科的听觉刺激。我们表明,实验人员在成功地区分刺激方面很慢,但是会立即将其能力推广到一组新的相似刺激中。相比之下,承担相同任务的观察者能够区分初始刺激集,但需要更多时间才能成功进行概括。借鉴机器学习的概念,我们建议观察者学习已发展为可以迅速吸收感官统计数据,而没有压力以最小化神经资源,而从经验中学习则具有可进行可靠推理的正则化形式。

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