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绝对判断中的信息整合以及刺激噪声和标准噪声的识别。

Information integration and the identification of stimulus noise and criterial noise in absolute judgment.

作者信息

Nosofsky R M

出版信息

J Exp Psychol Hum Percept Perform. 1983 Apr;9(2):299-309. doi: 10.1037//0096-1523.9.2.299.

Abstract

Two main classes of theories have been proposed regarding range effects in unidimensional absolute-identification tasks. One class posits that as range is increased, criterial noise increases but stimulus noise remains constant. Another class posits increasing stimulus noise but constant criterial noise. In this study, an effort is made to help decide this issue. Multiple observations are used in several absolute-identification tasks of varying range. A stimulus integration model is proposed in which averaging takes place over stimulus internal representations, thereby reducing stimulus variance; on the other hand, it is assumed that criterial variance is unaffected by the number of observations. The model allows one to identify the relative amounts of stimulus noise and criterial noise inherent in observers' recognition judgments. The model yields good fits to data in several experiments, and it is concluded that both stimulus noise and criterial noise increase as range in the absolute-identification task is increased.

摘要

关于单维绝对识别任务中的范围效应,已经提出了两类主要理论。一类理论假定,随着范围的增加,标准噪声增加,但刺激噪声保持不变。另一类理论假定刺激噪声增加但标准噪声保持不变。在本研究中,我们努力帮助解决这个问题。在几个不同范围的绝对识别任务中使用了多个观测值。提出了一种刺激整合模型,其中对刺激的内部表征进行平均,从而降低刺激方差;另一方面,假定标准方差不受观测次数的影响。该模型使人们能够识别观察者识别判断中固有的刺激噪声和标准噪声的相对量。该模型对几个实验中的数据拟合良好,并且得出结论:随着绝对识别任务中范围的增加,刺激噪声和标准噪声都会增加。

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