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Variation in the Standard Deviation of the Lure Rating Distribution: Implications for Estimates of Recollection Probability

机译:诱饵等级分布的标准偏差的变化:对回忆概率估计的含义

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摘要

In word recognition semantic priming of test words increased the false-alarm rate and the mean of confidence ratings to lures. Such priming also increased the standard deviation of confidence ratings to lures and the slope of the z-ROC function, suggesting that the priming increased the standard deviation of the lure evidence distribution. The Unequal Variance Signal Detection (UVSD) model interpreted the priming as increasing the standard deviation of the lure evidence distribution. Without additional parameters the Dual Process Signal Detection (DPSD) model could only accommodate the results by fitting the data for related and unrelated primes separately, interpreting the priming, implausibly, as decreasing the probability of target recollection (DPSD). With an additional parameter, for the probability of false (lure) recollection the model could fit the data for related and unrelated primes together, interpreting the priming as increasing the probability of false recollection. These results suggest that DPSD estimates of target recollection probability will decrease with increases in the lure confidence/evidence standard deviation unless a parameter is included for false recollection. Unfortunately the size of a given lure confidence/evidence standard deviation relative to other possible lure confidence/evidence standard deviations is often unspecified by context. Hence the model often has no way of estimating false recollection probability and thereby correcting its estimates of target recollection probability.
机译:在单词识别中,测试单词的语义启动增加了误报率和置信度均值以引诱。这种启动还增加了诱饵置信度的标准偏差和z-ROC函数的斜率,这表明启动增加了诱饵证据分布的标准偏差。不等方差信号检测(UVSD)模型解释了引发是由于增加了诱饵证据分布的标准偏差。如果没有其他参数,双重过程信号检测(DPSD)模型只能通过分别拟合相关和不相关素数的数据来适应结果,难以解释地将引发解释为降低目标回收(DPSD)的可能性。使用附加参数,对于错误(诱饵)回收的可能性,模型可以将相关素数和不相关素数的数据拟合在一起,将素数解释为增加了错误回收的概率。这些结果表明,除非包括用于虚假收集的参数,否则目标诱捕概率的DPSD估计值将随着诱惑置信度/证据标准偏差的增加而降低。不幸的是,给定诱饵置信度/证据标准偏差相对于其他可能的诱饵置信度/证据标准偏差的大小通常无法通过上下文确定。因此,该模型通常无法估算错误的回收概率,从而无法校正其对目标回收概率的估算。

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