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Under the hood of statistical learning: A statistical MMN reflects the magnitude of transitional probabilities in auditory sequences

机译:在统计学习的背景下:统计MMN反映了听觉序列中过渡概率的大小

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摘要

Within the framework of statistical learning, many behavioural studies investigated the processing of unpredicted events. However, surprisingly few neurophysiological studies are available on this topic, and no statistical learning experiment has investigated electroencephalographic (EEG) correlates of processing events with different transition probabilities. We carried out an EEG study with a novel variant of the established statistical learning paradigm. Timbres were presented in isochronous sequences of triplets. The first two sounds of all triplets were equiprobable, while the third sound occurred with either low (10%), intermediate (30%), or high (60%) probability. Thus, the occurrence probability of the third item of each triplet (given the first two items) was varied. Compared to high-probability triplet endings, endings with low and intermediate probability elicited an early anterior negativity that had an onset around 100 ms and was maximal at around 180 ms. This effect was larger for events with low than for events with intermediate probability. Our results reveal that, when predictions are based on statistical learning, events that do not match a prediction evoke an early anterior negativity, with the amplitude of this mismatch response being inversely related to the probability of such events. Thus, we report a statistical mismatch negativity (sMMN) that reflects statistical learning of transitional probability distributions that go beyond auditory sensory memory capabilities.
机译:在统计学习的框架内,许多行为研究调查了意外事件的处理。然而,令人惊讶的是,很少有关于该主题的神经生理学研究,并且没有统计学习实验研究过具有不同转变概率的脑电图(EEG)与加工事件的相关性。我们对脑电图进行了研究,并建立了一种新的统计学习范式。音色以三连音的等时顺序显示。所有三连音的前两个声音都是等概率的,而第三个声音的发生概率低(10%),中度(30%)或高(60%)。因此,每个三联体的第三个项目(给定前两个项目)的出现概率是变化的。与高概率三重态词尾相比,具有低和中等概率的词尾引起较早的负性,其起病时间约为100µms,最大约为180µms。对于低事件,此影响要大于中等概率事件。我们的结果表明,当预测基于统计学习时,与预测不匹配的事件会引起早期的前负性,这种失配响应的幅度与此类事件的发生率成反比。因此,我们报告了统计失配否定性(sMMN),它反映了超越听觉感觉记忆能力的过渡概率分布的统计学习。

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