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Decision Making: Neural Mechanisms and Innovative Methodology: A quantitative confidence signal detection model: 1. Fitting psychometric functions

机译:决策:神经机制和创新方法:定量置信信号检测模型:1.拟合心理测量功能

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摘要

Perceptual thresholds are commonly assayed in the laboratory and clinic. When precision and accuracy are required, thresholds are quantified by fitting a psychometric function to forced-choice data. The primary shortcoming of this approach is that it typically requires 100 trials or more to yield accurate (i.e., small bias) and precise (i.e., small variance) psychometric parameter estimates. We show that confidence probability judgments combined with a model of confidence can yield psychometric parameter estimates that are markedly more precise and/or markedly more efficient than conventional methods. Specifically, both human data and simulations show that including confidence probability judgments for just 20 trials can yield psychometric parameter estimates that match the precision of those obtained from 100 trials using conventional analyses. Such an efficiency advantage would be especially beneficial for tasks (e.g., taste, smell, and vestibular assays) that require more than a few seconds for each trial, but this potential benefit could accrue for many other tasks.
机译:感知阈值通常在实验室和临床中进行测定。当需要精度和准确性时,可通过将心理测量函数拟合到强制选择数据来量化阈值。这种方法的主要缺点是,通常需要进行100次或更多次试验才能得出准确的(即小偏差)和精确的(即小方差)心理测量参数估计值。我们显示,与置信度模型相结合的置信度概率判断可以产生比常规方法明显更精确和/或明显更有效的心理参数估计。具体来说,人类数据和模拟都表明,仅对20个试验进行置信概率判断,就可以得出与常规分析从100个试验中获得的精确度相匹配的心理参数估计。这样的效率优势对于每次试验都需要花费几秒钟以上时间的任务(例如,味道,气味和前庭测定)特别有益,但是这种潜在的优势可能会在许多其他任务中产生。

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