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Code-switched Language Models Using Dual RNNs and Same-Source Pretraining (1809.01962v1)

Published 6 Sep 2018 in cs.CL and cs.LG

Abstract: This work focuses on building LLMs (LMs) for code-switched text. We propose two techniques that significantly improve these LMs: 1) A novel recurrent neural network unit with dual components that focus on each language in the code-switched text separately 2) Pretraining the LM using synthetic text from a generative model estimated using the training data. We demonstrate the effectiveness of our proposed techniques by reporting perplexities on a Mandarin-English task and derive significant reductions in perplexity.

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