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    Data-Driven Part-of-Speech Tagging of Kiswahili

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    Date
    2006
    Author
    De Pauw, G
    de Schryver, Gilles-Maurice
    Wagacha, PW
    Type
    Article
    Language
    en
    Metadata
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    Abstract
    In this paper we present experiments with data-driven part-of-speech taggers trained and evaluated on the annotated Helsinki Corpus of Swahili. Using four of the current state-of-the-art data-driven taggers, TnT, MBT, SVMTool and MXPOST, we observe the latter as being the most accurate tagger for the Kiswahili dataset.We further improve on the performance of the individual taggers by combining them into a committee of taggers. We observe that the more naive combination methods, like the novel plural voting approach, outperform more elaborate schemes like cascaded classifiers and weighted voting. This paper is the first publication to present experiments on data-driven part-of-speech tagging for Kiswahili and Bantu languages in general.
    URI
    http://link.springer.com/chapter/10.1007/11846406_25
    http://erepository.uonbi.ac.ke:8080/xmlui/handle/123456789/37322
    Citation
    Lecture Notes in Computer Science Volume 4188, 2006, pp 197-204
    Publisher
    School of computing and informatics University of Nairobi
    Collections
    • Faculty of Science & Technology (FST) [4284]

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