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Sequential Sampling Models in Cognitive Neuroscience: Advantages Applications and Extensions

机译:认知神经科学中的顺序采样模型:优势应用和扩展

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摘要

Sequential sampling models assume that people make speeded decisions by gradually accumulating noisy information until a threshold of evidence is reached. In cognitive science, one such model—the diffusion decision model—is now regularly used to decompose task performance into underlying processes such as the quality of information processing, response caution, and a priori bias. In the cognitive neurosciences, the diffusion decision model has recently been adopted as a quantitative tool to study the neural basis of decision making under time pressure. We present a selective overview of several recent applications and extensions of the diffusion decision model in the cognitive neurosciences.
机译:顺序抽样模型假定人们通过逐渐累积嘈杂的信息直到达到证据阈值来做出快速决策。在认知科学中,现在经常使用这种模型(扩散决策模型)将任务绩效分解为基础过程,例如信息处理的质量,响应谨慎和先验偏差。在认知神经科学中,最近将扩散决策模型作为一种定量工具来研究在时间压力下决策的神经基础。我们对认知神经科学中的扩散决策模型的几个最新应用和扩展进行了选择性概述。

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