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首页> 外文期刊>Cognitive Science >Learning To Attend: A Connectionist Model Of Situated Language Comprehension
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Learning To Attend: A Connectionist Model Of Situated Language Comprehension

机译:学习参加:情境语言理解的连接主义模型

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摘要

Evidence from numerous studies using the visual world paradigm has revealed both that spoken language can rapidly guide attention in a related visual scene and that scene information can immediately influence comprehension processes. These findings motivated the coordinated interplay account (Knoeferle & Crocker, 2006) of situated comprehension, which claims that utterance-mediated attention crucially underlies this closely coordinated interaction of language and scene processing. We present a recurrent sigma-pi neural network that models the rapid use of scene information, exploiting an utterance-mediated attentional mechanism that directly instantiates the CIA. The model is shown to achieve high levels of performance (both with and without scene contexts), while also exhibiting hallmark behaviors of situated comprehension, such as incremental processing, anticipation of appropriate role fillers, as well as the immediate use, and priority, of depicted event information through the coordinated use of utterance-mediated attention to the scene.
机译:使用视觉世界范式进行的大量研究表明,口语可以迅速引导相关视觉场景中的注意力,场景信息可以立即影响理解过程。这些发现激发了情境理解的协调相互作用(Knoeferle&Crocker,2006),该论断认为话语介导的注意力是语言和场景处理紧密协调相互作用的基础。我们提出了一种循环sigma-pi神经网络,该模型对场景信息的快速使用进行建模,并利用直接实例化CIA的话语介导的注意力机制。该模型表现出较高的性能水平(无论是否具有场景上下文),同时还表现出了位置理解的标志性行为,例如增量处理,预期适当角色填充以及即时使用和优先级。通过协调使用话语介导的对场景的关注来描绘事件信息。

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