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标准设定与再认记忆的动态变化。

Criterion setting and the dynamics of recognition memory.

机构信息

Department of Psychological and Brain Sciences, Indiana University, Bloomington, IN 47405, USA.

出版信息

Top Cogn Sci. 2012 Jan;4(1):135-50. doi: 10.1111/j.1756-8765.2011.01177.x.

Abstract

Models of recognition memory have traditionally struggled with the puzzle of criterion setting, a problem that is particularly acute in cases in which items for study and test are of widely varying types, with differing degrees of baseline familiarity and experience (e.g., words vs. random dot patterns). We present a dynamic model of the recognition process that addresses the criterion setting problem and produces joint predictions for choice and reaction time. In this model, recognition decisions are based not on the absolute value of familiarity, but on how familiarity changes over time as features are sampled from the test item. Decisions are the outcome of a race between two parallel accumulators: one that accumulates positive changes in familiarity (leading to an ''old'' decision) and another that accumulates negative changes (leading to a ''new'' decision). Simulations with this model make realistic predictions for recognition performance and latency regardless of the baseline familiarity of study and test items.

摘要

传统的识别记忆模型一直难以解决标准设定的难题,在研究和测试项目类型差异很大、基线熟悉度和经验程度不同的情况下,这个问题尤其突出(例如,单词与随机点模式)。我们提出了一种识别过程的动态模型,该模型解决了标准设定问题,并对选择和反应时间进行了联合预测。在这个模型中,识别决策不是基于熟悉度的绝对值,而是基于随着从测试项目中采样特征,熟悉度随时间的变化情况。决策是两个平行累加器之间竞争的结果:一个累加器累加熟悉度的正变化(导致“旧”决策),另一个累加器累加熟悉度的负变化(导致“新”决策)。该模型的模拟无论研究和测试项目的基线熟悉度如何,都能对识别性能和潜伏期做出现实的预测。

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