An Error-Oriented Approach to Word Embedding Pre-Training

July 21, 2017 ยท Declared Dead ยท ๐Ÿ› BEA@EMNLP

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Authors Youmna Farag, Marek Rei, Ted Briscoe arXiv ID 1707.06841 Category cs.CL: Computation & Language Cross-listed cs.LG, cs.NE Citations 4 Venue BEA@EMNLP Last Checked 5 months ago
Abstract
We propose a novel word embedding pre-training approach that exploits writing errors in learners' scripts. We compare our method to previous models that tune the embeddings based on script scores and the discrimination between correct and corrupt word contexts in addition to the generic commonly-used embeddings pre-trained on large corpora. The comparison is achieved by using the aforementioned models to bootstrap a neural network that learns to predict a holistic score for scripts. Furthermore, we investigate augmenting our model with error corrections and monitor the impact on performance. Our results show that our error-oriented approach outperforms other comparable ones which is further demonstrated when training on more data. Additionally, extending the model with corrections provides further performance gains when data sparsity is an issue.
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