Detecting Syntactic Features of Translated Chinese

April 23, 2018 ยท Declared Dead ยท ๐Ÿ› Proceedings of the Second Workshop on Stylistic Variation

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Authors Hai Hu, Wen Li, Sandra Kรผbler arXiv ID 1804.08756 Category cs.CL: Computation & Language Citations 10 Venue Proceedings of the Second Workshop on Stylistic Variation Last Checked 5 months ago
Abstract
We present a machine learning approach to distinguish texts translated to Chinese (by humans) from texts originally written in Chinese, with a focus on a wide range of syntactic features. Using Support Vector Machines (SVMs) as classifier on a genre-balanced corpus in translation studies of Chinese, we find that constituent parse trees and dependency triples as features without lexical information perform very well on the task, with an F-measure above 90%, close to the results of lexical n-gram features, without the risk of learning topic information rather than translation features. Thus, we claim syntactic features alone can accurately distinguish translated from original Chinese. Translated Chinese exhibits an increased use of determiners, subject position pronouns, NP + 'de' as NP modifiers, multiple NPs or VPs conjoined by a Chinese specific punctuation, among other structures. We also interpret the syntactic features with reference to previous translation studies in Chinese, particularly the usage of pronouns.
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