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On using distributional analysis techniques for determining the onset of the influence of experimental variables

机译:使用分布分析技术确定实验变量影响的发生

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Much of the investigation of eye movement control in visual cognition has focused on the influence of experimental variables on mean fixation durations. In this article, we explored the convergence between two distributional analysis techniques that were recently introduced in this domain. First, Staub, White, Drieghe, Hollway and Rayner, proposed fitting the ex-Gaussian distribution to individual participants' data in order to ascertain whether a variable has a rapid or a slow influence on fixation durations. Second, the divergence point analysis (DPA) procedure was introduced by Reingold, Reichle, Glaholt and Sheridan in order to determine more precisely the earliest discernible impact of a variable on the distribution of fixation durations by contrasting survival curves across two experimental conditions and determining the point at which the two curves begin to diverge. In this article, we introduced a new version of the DPA procedure which is based on ex-Gaussian fitting. We evaluated this procedure by re-analyzing data obtained in previous empirical investigations as well as by conducting a simulation study. We demonstrated that the new ex-Gaussian DPA technique produced estimates that were consistent with estimates produced by prior versions of DPA procedure, and in the present simulation, the ex-Gaussian DPA procedure produced somewhat more accurate individual participant divergence point estimates. Based on the present findings, we also suggest guidelines for best practices in the use of DPA techniques.
机译:视觉认知中眼睛运动控制的大部分调查都集中于实验变量对平均固定持续时间的影响。在本文中,我们探讨了在该域最近引入的两个分配分析技术之间的收敛性。首先,STAUB,WHITE,DRIEGHE,HOLLWAY和RAYNAR,提出将EX-GASSIAN分布拟合到各个参与者的数据中,以确定可变对固定持续时间的快速还是缓慢的影响。其次,通过Reingold,Reichle,Glahold和Sheridan引入了发散点分析(DPA)程序,以便通过对比两个实验条件的生存曲线对比固定曲线和确定来确定变量对固定持续时间分布的最早的可辨别影响。两条曲线开始分歧的点。在本文中,我们介绍了基于Ex-Gaussian拟合的DPA程序的新版本。我们通过重新分析先前经验研究中获得的数据以及进行模拟研究来评估该程序。我们证明,新的EX-Gaussian DPA技术产生了与先前版本的DPA程序产生的估计一致的估计,并且在目前的模拟中,EX-Gaussian DPA程序产生了一些更准确的个体参与者发散点估计。根据目前的调查结果,我们还建议使用DPA技术的最佳实践指导方针。

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