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首页> 外文期刊>Language, cognition and neuroscience >Separate streams or probabilistic inference? What the N400 can tell us about the comprehension of events
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Separate streams or probabilistic inference? What the N400 can tell us about the comprehension of events

机译:流是分开的还是概率推论? N400可以告诉我们事件的理解

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Since the early 2000s, several event-related potential studies have challenged the assumption that we always use syntactic contextual information to influence semantic processing of incoming words, as reflected by the N400 component. One approach for explaining these findings is to posit distinct semantic and syntactic processing mechanisms, each with distinct time courses. While this approach can explain specific datasets, it cannot account for the wider body of findings. I propose an alternative explanation: a dynamic generative framework in which our goal is to infer the underlying event that best explains the set of inputs encountered at any given time. Within this framework, combinations of semantic and syntactic cues with varying reliabilities are used as evidence to weight probabilistic hypotheses about this event. I further argue that the computational principles of this framework can be extended to understand how we infer situation models during discourse comprehension, and intended messages during spoken communication.
机译:自2000年代初以来,一些与事件相关的潜在研究已经挑战了这样一个假设,即我们始终使用句法上下文信息来影响传入单词的语义处理,这一点已由N400组件反映出来。解释这些发现的一种方法是提出不同的语义和句法处理机制,每种机制都有不同的时程。尽管这种方法可以解释特定的数据集,但不能解释更广泛的发现。我提出了另一种解释:动态生成框架,其中我们的目标是推断潜在事件,该事件可以最好地解释在任何给定时间遇到的一组输入。在此框架内,具有不同可靠性的语义和句法线索的组合被用作权衡有关此事件的概率假设的证据。我进一步认为,可以扩展此框架的计算原理,以了解我们如何在话语理解过程中推断情境模型,以及在语音交流过程中预期的消息。

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