Context-aware Stand-alone Neural Spelling Correction

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Authors Xiangci Li, Hairong Liu, Liang Huang arXiv ID 2011.06642 Category cs.CL: Computation & Language Citations 9 Venue Findings Last Checked 5 months ago
Abstract
Existing natural language processing systems are vulnerable to noisy inputs resulting from misspellings. On the contrary, humans can easily infer the corresponding correct words from their misspellings and surrounding context. Inspired by this, we address the stand-alone spelling correction problem, which only corrects the spelling of each token without additional token insertion or deletion, by utilizing both spelling information and global context representations. We present a simple yet powerful solution that jointly detects and corrects misspellings as a sequence labeling task by fine-turning a pre-trained language model. Our solution outperforms the previous state-of-the-art result by 12.8% absolute F0.5 score.
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