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TOWARDS A COMPETITIVE LEARNING MODEL OF MIRROR EFFECTS IN YES/NO RECOGNITION MEMORY TESTS

机译:建立有/无识别记忆力测试中的镜子效应竞争性学习模型

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Manipulations of encoding strength and stimulus class can lead to a simultaneous increase in hits and decrease in false alarms for a given condition in a yeso recognition memory test. Based on signal detection theory, the strength-based 'mirror effect' is thought to involve a shift in response criterion/threshold (Type I), whereas the stimulus class effect derives from a specific ordering of the memory strength signals for presented items (Type II). We implemented both suggested mechanisms in a simple, competitive feed-forward neural network model with a learning rule related to Bayesian inference. In a single-process approach to recognition, the underlying decision axis as well as the response criteria/thresholds were derived from network activation. Initial results replicated findings in the literature and are a first step towards a more neurally explicit model of mirror effects in recognition memory tests.
机译:在是/否识别记忆测试中,对于给定条件,操纵编码强度和刺激类别可能会导致命中率的同时增加和虚假警报的减少。基于信号检测理论,基于强度的“镜像效应”被认为涉及响应标准/阈值的变化(类型I),而刺激类别效应则是由呈现项目的记忆强度信号的特定顺序得出的(类型II)。我们在一个简单的竞争性前馈神经网络模型中实现了这两种建议的机制,并具有与贝叶斯推理有关的学习规则。在单过程识别方法中,基础决策轴以及响应标准/阈值是从网络激活中得出的。最初的结果重复了文献中的发现,并且是朝着识别记忆测试中更神经明确的镜像效应模型迈出的第一步。

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