Counterfactual Language Model Adaptation for Suggesting Phrases

October 04, 2017 ยท Declared Dead ยท ๐Ÿ› International Joint Conference on Natural Language Processing

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Authors Kenneth C. Arnold, Kai-Wei Chang, Adam T. Kalai arXiv ID 1710.01799 Category cs.CL: Computation & Language Citations 8 Venue International Joint Conference on Natural Language Processing Last Checked 5 months ago
Abstract
Mobile devices use language models to suggest words and phrases for use in text entry. Traditional language models are based on contextual word frequency in a static corpus of text. However, certain types of phrases, when offered to writers as suggestions, may be systematically chosen more often than their frequency would predict. In this paper, we propose the task of generating suggestions that writers accept, a related but distinct task to making accurate predictions. Although this task is fundamentally interactive, we propose a counterfactual setting that permits offline training and evaluation. We find that even a simple language model can capture text characteristics that improve acceptability.
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