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首页> 外文期刊>Journal of experimental psychology. Learning, memory, and cognition >Recognition Memory zROC Slopes for Items With Correct Versus Incorrect Source Decisions Discriminate the Dual Process and Unequal Variance Signal Detection Models
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Recognition Memory zROC Slopes for Items With Correct Versus Incorrect Source Decisions Discriminate the Dual Process and Unequal Variance Signal Detection Models

机译:具有正确与错误源决策的项目的识别记忆zROC斜率可区分对偶过程和不等方差信号检测模型

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We tested the dual process and unequal variance signal detection models by jointly modeling recognition and source confidence ratings. The 2 approaches make unique predictions for the slope of the recognition memory zROC function for items with correct versus incorrect source decisions. The standard bivariate Gaussian version of the unequal variance model predicts little or no slope difference between the source-correct and source-incorrect functions. We also developed a "bounded" version of this model that did not permit below-chance source discrimination in any region of the evidence space. The bounded version predicts that the source-correct function should have a lower slope than the source-incorrect function. A bivariate version of the dual process signal detection model can predict slope differences in either direction, but it must predict a u-shaped source zROC function if the source-correct slope is lower than the source-incorrect slope. Across 4 experiments, results consistently showed that the recognition memory zROC function had a lower slope for items attributed to the correct source than items attributed to the incorrect source, and the source zROC function for words recognized with high confidence was linear. Only the bounded version of the unequal variance model successfully predicted the full pattern of results.
机译:我们通过联合建模识别和源置信等级来测试双重过程和不等方差信号检测模型。对于具有正确或错误源决策的项目,这两种方法对识别内存zROC函数的斜率做出了唯一的预测。不等方差模型的标准双变量高斯版本预测源校正函数和源校正函数之间的斜率差异很小或没有。我们还开发了此模型的“有界”版本,该版本不允许在证据空间的任何区域进行机会低于源的区分。有界版本预测源正确函数的斜率应比源错误函数的斜率低。双过程信号检测模型的双变量版本可以预测任一方向上的斜率差异,但是如果源正确的斜率低于源错误的斜率,则它必须预测u形源zROC函数。在4个实验中,结果一致表明,归因于正确来源的项目的识别记忆zROC函数的斜率比归因于不正确来源的项目的斜率低,并且高置信度识别的单词的来源zROC函数是线性的。只有不等方差模型的有界版本才能成功预测结果的完整模式。

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