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首页> 外文期刊>Journal of experimental psychology. Learning, memory, and cognition >Discrete-State and Continuous Models of Recognition Memory: Testing Core Properties Under Minimal Assumptions
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Discrete-State and Continuous Models of Recognition Memory: Testing Core Properties Under Minimal Assumptions

机译:识别记忆的离散状态和连续模型:在最小假设下测试核心属性

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摘要

A classic discussion in the recognition-memory literature concerns the question of whether recognition judgments are better described by continuous or discrete processes. These two hypotheses are instantiated by the signal detection theory model (SDT) and the 2-high-threshold model, respectively. Their comparison has almost invariably relied on receiver operating characteristic data. A new model-comparison approach based on ranking judgments is proposed here. This approach has several advantages: It does not rely on particular distributional assumptions for the models, and it does not require costly experimental manipulations. These features permit the comparison of the models by means of simple pairedcomparison tests instead of goodness-of-fit results and complex model-selection methods that are predicated on many auxiliary assumptions. Empirical results from 2 experiments are consistent with a continuous memory process such as the one assumed by SDT.
机译:识别记忆文献中的经典讨论涉及以下问题:识别判断是通过连续过程还是离散过程来更好地描述。这两个假设分别由信号检测理论模型(SDT)和2高阈值模型实例化。他们的比较几乎总是依赖于接收机的工作特性数据。本文提出了一种基于等级判断的模型比较新方法。这种方法具有几个优点:它不依赖于模型的特定分布假设,并且不需要昂贵的实验操作。这些功能允许通过简单的配对比较测试而不是拟合优度结果和基于许多辅助假设的复杂模型选择方法来比较模型。来自2个实验的经验结果与连续存储过程(例如SDT假设的过程)一致。

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