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A Bayesian Approach to Diffusion Models of Decision-Making and Response Time

机译:决策与响应时间扩散模型的贝叶斯方法

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We present a computational Bayesian approach for Wiener diffusion models, which are prominent accounts of response time distributions in decision-making. We first develop a general closed-form analytic approximation to the response time distributions for one-dimensional diffusion processes, and derive the required Wiener diffusion as a special case. We use this result to undertake Bayesian modeling of benchmark data, using posterior sampling to draw inferences about the interesting psychological parameters. With the aid of the benchmark data, we show the Bayesian account has several advantages, including dealing naturally with the parameter variation needed to account for some key features of the data, and providing quantitative measures to guide decisions about model construction.
机译:我们为维纳扩散模型提供了一种计算贝叶斯方法,这是决策中响应时间分布的突出帐户。我们首先将一般的闭合形式分析近似为一维扩散过程的响应时间分布,并导出所需的维纳扩散作为特殊情况。我们使用此结果来承接基准数据的贝叶斯建模,使用后面采样来吸引有关有趣的心理参数的推断。借助基准数据,我们展示了贝叶斯账户有几个优点,包括自然地处理参数变化,以考虑数据的某些关键特征,并提供有关模型建设的决策的定量措施。

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