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Learning Phone Embeddings for Word Segmentation of Child-Directed Speech

机译:面向儿童的语音分词的学习电话嵌入

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摘要

This paper presents a novel model that learns and exploits embeddings of phone ngrams for word segmentation in child language acquisition. Embedding-based models are evaluated on a phonemi-cally transcribed corpus of child-directed speech, in comparison with their symbolic counterparts using the common learning framework and features. Results show that learning embeddings significantly improves performance. We make use of extensive visualization to understand what the model has learned. We show that the learned embeddings are informative for both word segmentation and phonology in general.
机译:本文提出了一种新颖的模型,该模型学习和利用电话ngram的嵌入进行儿童语言习得中的分词。基于嵌入的模型在面向儿童的语音的语音转录语料库上进行评估,并与使用通用学习框架和功能的符号对应模型进行比较。结果表明,学习嵌入可以显着提高性能。我们利用广泛的可视化来了解模型学到了什么。我们表明,学习到的嵌入对于分词和语音通常都是有益的。

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