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Most Influential KDD 2005 Paper · 2026-03 edition

Determining An Author's Native Language By Mining A Text For Errors

Moshe Koppel; Jonathan Schler; Kfir Zigdon

Venue
ACM SIGKDD Conference (KDD) 2005
Recognition
Most Influential KDD 2005 Paper (Rank No. 15)
Edition
2026-03
Impact factor
5
Certificate ID
f353547765f78f76

Abstract

In this paper, we show that stylistic text features can be exploited to determine an anonymous author's native language with high accuracy. Specifically, we first use automatic tools to ascertain frequencies of various stylistic idiosyncrasies in a text. These frequencies then serve as features for support vector machines that learn to classify texts according to author native language.

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