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A Model of Language Processing as Hierarchic Sequential Prediction

机译:语言处理作为分层顺序预测的模型

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Computational models of memory are often expressed as hierarchic sequence models, but the hierarchies in these models are typically fairly shallow, reflecting the tendency for memories of superordinate sequence states to become increasingly conflated. This article describes a broad-coverage probabilistic sentence processing model that uses a variant of a left-corner parsing strategy to flatten sentence processing operations in parsing into a similarly shallow hierarchy of learned sequences. The main result of this article is that a broad-coverage model with constraints on hierarchy depth can process large newspaper corpora with the same accuracy as a state-of-the-art parser not defined in terms of sequential working memory operations.
机译:内存的计算模型通常表示为层次序列模型,但是这些模型中的层次通常很浅,反映出高级序列状态的内存变得越来越混杂的趋势。本文介绍了一种广泛使用的概率语句处理模型,该模型使用左拐角解析策略的一种变体来将句子处理操作解析为学习序列的类似浅层次结构。本文的主要结果是,在层次结构深度上受限制的广泛覆盖模型可以处理大型报纸语料库,其准确性与不按顺序工作存储操作定义的最新解析器相同。

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