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基于单试反应时间分解的决策中基于模型推断的评估。

Assessing model-based inferences in decision making with single-trial response time decomposition.

机构信息

LPC UMR 7290.

LNC UMR 7291.

出版信息

J Exp Psychol Gen. 2021 Aug;150(8):1528-1555. doi: 10.1037/xge0001010. Epub 2021 Mar 25.

Abstract

The latent psychological mechanisms involved in decision-making are often studied with quantitative models based on evidence accumulation processes. The most prolific example is arguably the drift-diffusion model (DDM). This framework has frequently shown good to very good quantitative fits, which has prompted its wide endorsement. However, fit quality alone does not establish the validity of a model's interpretation. Here, we formally assess the model's validity with a novel cross-validation approach based on the recording of muscular activities, which directly relate to the standard interpretation of various model parameters. Specifically, we recorded electromyographic activity along with response times (RTs), and used it to decompose every RT into 2 components: a premotor time (PMT) and motor time (MT). The latter interval, MT, can be directly linked to motor processes and hence to the nondecision parameter of DDM. In two canonical perceptual decision tasks, we manipulated stimulus strength, speed-accuracy trade-off, and response force and quantified their effects on PMT, MT, and RT. All 3 factors consistently affected MT. The DDM parameter for nondecision processes recovered the MT effects in most situations, with the exception of the fastest responses. The extent of the good fits and the scope of the mis-estimations that we observed allow drawing new limits of the interpretability of model parameters. (PsycInfo Database Record (c) 2021 APA, all rights reserved).

摘要

决策中涉及的潜在心理机制通常通过基于证据积累过程的定量模型进行研究。最有影响力的例子可以说是漂移扩散模型 (DDM)。该框架经常显示出良好到非常好的定量拟合度,这促使它得到了广泛的认可。然而,拟合质量本身并不能确定模型解释的有效性。在这里,我们使用一种新的基于肌肉活动记录的交叉验证方法来正式评估该模型的有效性,这种方法与各种模型参数的标准解释直接相关。具体来说,我们记录了肌电图活动以及反应时间 (RT),并将其用于将每个 RT 分解为 2 个分量:前运动时间 (PMT) 和运动时间 (MT)。后一个间隔 MT 可以直接与运动过程相关联,从而与 DDM 的非决策参数相关联。在两个典型的感知决策任务中,我们操纵了刺激强度、速度-准确性权衡以及响应力,并量化了它们对 PMT、MT 和 RT 的影响。这 3 个因素都一致地影响 MT。在大多数情况下,非决策过程的 DDM 参数都能很好地恢复 MT 效应,只有最快的反应除外。我们观察到的良好拟合程度和估计错误的范围,为模型参数的可解释性划定了新的界限。(PsycInfo 数据库记录 (c) 2021 APA,保留所有权利)。

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