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From high- to one-dimensional dynamics of decision making: testing simplifications in attractor models

机译:从决策的高到一维动力学:吸引人模型中的简化

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Computational models introduce simplifications that need to be understood and validated. For attractor models of decision making, the main simplification is the high-level representation of different sub-processes of the complex decision system in one dynamic description of the overall process dynamics. This simplification implies that the overall process dynamics of the decision system are independent from specific values handled in different sub-processes. Here, we test the validity of this simplification empirically by investigating choice perseveration in a nonverbal, value-based decision task. Specifically, we tested whether choice perseveration occurred irrespectively of the attribute dimension as suggested by a simulation of the computational model. We find evidence supporting the validity of the simplification. We conclude that the simplification might capture mechanistic aspects of decision-making processes, and that the summation of the overall process dynamics of decision systems into one single variable is a valid approach in computational modeling. Supplement materials such as empirical data, analysis scripts, and the computational model are publicly available at the Open Science Framework (osf.io/7fb5q).
机译:计算模型引入需要理解和验证的简化。对于决策的吸引力模型,主要简化是在整个过程动态的一个动态描述中复杂决策系统的不同子过程的高级表示。这种简化意味着决策系统的整体过程动态独立于不同子进程中处理的特定值。在这里,我们通过调查非语言基于价值的决定任务的选择持久性来测试本简化的有效性。具体地,我们测试了是否与通过计算模型的模拟建议的属性维度来测试是否发生了选择持久性。我们发现证据证明了支持简化的有效性。我们得出结论,简化可能捕捉决策过程的机制方面,并且决策系统的整体过程动态的总和在一个单个变量中的总和是计算建模中的有效方法。补充材料如经验数据,分析脚本和计算模型在开放式科学框架(OSF.IO/7FB5Q)上公开可用。

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