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A Deep Network with Visual Text Composition Behavior

机译:具有可视文本撰写行为的深层网络

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摘要

While natural languages are compositional, how state-of-the-art neural models achieve compositionality is still unclear. We propose a deep network, which not only achieves competitive accuracy for text classification, but also exhibits compositional behavior. That is, while creating hierarchical representations of a piece of text, such as a sentence, the lower layers of the network distribute their layer-specific attention weights to individual words. In contrast, the higher layers compose meaningful phrases and clauses, whose lengths increase as the networks get deeper until fully composing the sentence.
机译:尽管自然语言是组成性语言,但目前尚不清楚如何使用最新的神经模型实现组成性。我们提出了一个深层网络,该网络不仅可以达到竞争性的文本分类精度,而且还可以表现出构图行为。也就是说,在创建文本(例如句子)的分层表示时,网络的较低层将其特定于层的注意力权重分配给各个单词。相反,较高的层组成了有意义的短语和从句,随着网络的不断深入,直到完全组成该句子为止,其长度会增加。

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