Effects of Word Embeddings on Neural Network-based Pitch Accent Detection
May 14, 2018 ยท Declared Dead ยท ๐ Proceedings of the International Conference on Speech Prosody
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Authors
Sabrina Stehwien, Ngoc Thang Vu, Antje Schweitzer
arXiv ID
1805.05237
Category
cs.CL: Computation & Language
Citations
8
Venue
Proceedings of the International Conference on Speech Prosody
Last Checked
5 months ago
Abstract
Pitch accent detection often makes use of both acoustic and lexical features based on the fact that pitch accents tend to correlate with certain words. In this paper, we extend a pitch accent detector that involves a convolutional neural network to include word embeddings, which are state-of-the-art vector representations of words. We examine the effect these features have on within-corpus and cross-corpus experiments on three English datasets. The results show that while word embeddings can improve the performance in corpus-dependent experiments, they also have the potential to make generalization to unseen data more challenging.
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