Investigating Machine Learning Methods for Language and Dialect Identification of Cuneiform Texts

September 22, 2020 ยท Declared Dead ยท ๐Ÿ› Proceedings of the Sixth Workshop on

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Authors Ehsan Doostmohammadi, Minoo Nassajian arXiv ID 2009.10794 Category cs.CL: Computation & Language Citations 7 Venue Proceedings of the Sixth Workshop on Last Checked 5 months ago
Abstract
Identification of the languages written using cuneiform symbols is a difficult task due to the lack of resources and the problem of tokenization. The Cuneiform Language Identification task in VarDial 2019 addresses the problem of identifying seven languages and dialects written in cuneiform; Sumerian and six dialects of Akkadian language: Old Babylonian, Middle Babylonian Peripheral, Standard Babylonian, Neo-Babylonian, Late Babylonian, and Neo-Assyrian. This paper describes the approaches taken by SharifCL team to this problem in VarDial 2019. The best result belongs to an ensemble of Support Vector Machines and a naive Bayes classifier, both working on character-level features, with macro-averaged F1-score of 72.10%.
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