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Insights into decision making using choice probability

机译:利用选择概率洞察决策

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摘要

A long-standing question in systems neuroscience is how the activity of single neurons gives rise to our perceptions and actions. Critical insights into this question occurred in the last part of the 20th century when scientists began linking modulations of neuronal activity directly to perceptual behavior. A significant conceptual advance was the application of signal detection theory to both neuronal activity and behavior, providing a quantitative assessment of the relationship between brain and behavior. One metric that emerged from these efforts was choice probability (CP), which provides information about how well an ideal observer can predict the choice an animal makes from a neuron's discharge rate distribution. In this review, we describe where CP has been studied, locational trends in the values found, and why CP values are typically so low. We discuss its dependence on correlated activity among neurons of a population, assess whether it arises from feedforward or feedback mechanisms, and investigate what CP tells us about how many neurons are required for a decision and how they are pooled to do so.
机译:系统神经科学中一个长期存在的问题是单个神经元的活动如何引起我们的感知和动作。对这个问题的批判性见解发生在20世纪后期,当时科学家开始将神经元活动的调节直接与知觉行为联系起来。信号检测理论在神经元活动和行为中的应用是一项重要的概念进步,可定量评估大脑与行为之间的关系。这些努力中出现的一个度量标准是选择概率(CP),它提供了有关理想观察者从神经元放电速率分布预测动物所做选择的能力的信息。在这篇综述中,我们描述了研究CP的地方,发现值的位置趋势以及为什么CP值通常这么低。我们讨论了它对种群神经元之间相关活动的依赖性,评估它是否来自前馈或反馈机制,并研究CP告诉我们决策需要多少神经元以及如何将它们合并在一起。

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