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In search of isoglosses: continuous and discrete language embeddings in Slavic historical phonology

机译:寻找同义词:斯拉夫历史语音学中的连续和离散语言嵌入

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This paper investigates the ability of neural network architectures to effectively learn diachronic phonological generalizations in a multilingual setting. We employ models using three different types of language embedding (dense, sigmoid, and straight-through). We find that the Straight-Through model outperforms the other two in terms of accuracy, but the Sigmoid model's language embeddings show the strongest agreement with the traditional subgrouping of the Slavic languages. We find that the Straight-Through model has learned coherent, semi-interpretable information about sound change, and outline directions for future research.
机译:本文研究了神经网络体系结构在多语言环境中有效学习历时语音学概括的能力。我们采用的模型使用三种不同类型的语言嵌入(密集型,S型和直通型)。我们发现,直通模型在准确性方面优于其他两个模型,但是Sigmoid模型的语言嵌入与传统的斯拉夫语言分组表现出最强的一致性。我们发现,直通模型已经学到了有关声音变化的连贯,半可解释的信息,并勾勒了未来研究的方向。

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