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Performance metrics for an application-driven selection and optimization of psychophysical sampling procedures

机译:应用程序驱动的心理物理采样程序选择和优化的性能指标

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摘要

When estimating psychometric functions with sampling procedures, psychophysical assessments should be precise and accurate while being as efficient as possible to reduce assessment duration. The estimation performance of sampling procedures is commonly evaluated in computer simulations for single psychometric functions and reported using metrics as a function of number of trials. However, the estimation performance of a sampling procedure may vary for different psychometric functions. Therefore, the results of these type of evaluations may not be generalizable to a heterogeneous population of interest. In addition, the maximum number of trials is often imposed by time restrictions, especially in clinical applications, making trial-based metrics suboptimal. Hence, the benefit of these simulations to select and tune an ideal sampling procedure for a specific application is limited. We suggest to evaluate the estimation performance of sampling procedures in simulations covering the entire range of psychometric functions found in a population of interest, and propose a comprehensive set of performance metrics for a detailed analysis. To illustrate the information gained from these metrics in an application example, six sampling procedures were evaluated in a computer simulation based on prior knowledge on the population distribution and requirements from proprioceptive assessments. The metrics revealed limitations of the sampling procedures, such as inhomogeneous or systematically decreasing performance depending on the psychometric functions, which can inform the tuning process of a sampling procedure. More advanced metrics allowed directly comparing overall performances of different sampling procedures and select the best-suited sampling procedure for the example application. The proposed analysis metrics can be used for any sampling procedure and the estimation of any parameter of a psychometric function, independent of the shape of the psychometric function and of how such a parameter was estimated. This framework should help to accelerate the development process of psychophysical assessments.
机译:用抽样程序估算心理功能时,心理物理评估应准确,准确,同时尽可能有效地减少评估时间。通常在计算机模拟中评估单个心理测量功能的抽样程序的估计性能,并使用度量作为试验次数的函数进行报告。但是,采样过程的估计性能可能会因不同的心理功能而有所不同。因此,这些类型的评估结果可能无法推广到异类的目标人群。此外,最大的试验次数通常受时间限制,特别是在临床应用中,使基于试验的指标次优。因此,这些模拟为特定应用选择和调整理想采样程序的好处有限。我们建议在模拟中评估抽样程序的估计性能,该模拟涵盖在感兴趣的人群中发现的所有心理功能的范围,并提出一套全面的性能指标进行详细分析。为了在一个应用示例中说明从这些指标中获得的信息,在计算机模拟中根据人口分布的先验知识和本体感受评估的要求对六个采样程序进行了评估。这些度量标准揭示了采样过程的局限性,例如取决于心理测量函数的性能不均匀或系统降低,这些可以告知采样过程的调整过程。更高级的度量标准允许直接比较不同采样过程的整体性能,并为示例应用程序选择最适合的采样过程。所提出的分析度量可以用于任何采样程序以及对心理功能的任何参数的估计,而与心理功能的形状以及如何估计该参数无关。该框架应有助于加速心理物理评估的发展过程。

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