Papers › A context sensitive real-time Spell Checker with language adaptability

A context sensitive real-time Spell Checker with language adaptability

23 Oct 2019arXiv:1910.11242archive 2025-07-28

Prabhakar Gupta

We present a novel language adaptable spell checking system which detects spelling errors and suggests context sensitive corrections in real-time. We show that our system can be extended to new languages with minimal language-specific processing. Available literature majorly discusses spell checkers for English but there are no publicly available systems which can be extended to work for other languages out of the box. Most of the systems do not work in real-time. We explain the process of generating a language's word dictionary and n-gram probability dictionaries using Wikipedia-articles data and manually curated video subtitles. We present the results of generating a list of suggestions for a misspelled word. We also propose three approaches to create noisy channel datasets of real-world typographic errors. We compare our system with industry-accepted spell checker tools for 11 languages. Finally, we show the performance of our system on synthetic datasets for 24 languages.

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wolfgarbe/symspell officialmentioned in papermentioned on GitHub report
gosom/context-spell-correct mentioned on GitHub report

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