A computational approach to detecting collocation errors in the writing of non-native speakers of English

Yoko Futagi, Paul Deane, Martin S. Chodorow, Joel Tetreault · Computer Assisted Language Learning · 2008

This paper describes the first prototype of an automated tool for detecting collocation errors in texts written by non-native speakers of English. Candidate strings are extracted by pattern matching over POS-tagged text. Since learner texts often contain spelling and morphological errors, the tool attempts to automatically correct them in order to reduce noise. For a measure of collocation strength, we use the rank-ratio statistic calculated over one billion words of native-speaker texts. Two human annotators evaluated the system's performance. We report the overall results, as well as detailed error analyses, and discuss possible improvements for the future.

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