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    Named entity recognition using framenet

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    Abstract,Acknowledgement.pdf (270.0Kb)
    Introduction.pdf (234.2Kb)
    Literature Review.pdf (260Kb)
    Methodology.pdf (360.4Kb)
    Results and Discussion.pdf (180.3Kb)
    Conclusion and Recommendation.pdf (101.3Kb)
    Refference and Appendics.pdf (194.8Kb)
    Date
    2015-06
    Author
    Roshidi, Yaakub
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    Abstract
    This project presents the classification of unknown words in English using Jaccard similarity based on the distributional of similar words. Information from FrameNet, a lexical database is utilized to determine the class of unknown words. The importance of unknown words classification is to recognize the meaning of unknown words in Natural Processing Language (NPL) systems. First, a program is designed to extract the words from a sequences of sentences which taken from news articles. Next, a program is designed a measure of Jaccard similarity with C programming language to compare words similarity between the words around unknown word which extracted from Document Understanding Conference (DUC) data and the words around the example sentences from FrameNet lexical database using Jaccard coefficient. The similarity measures the occurrence of words around the unknown word with all example sentences from FrameNet. Finally, the performance of this proposed similarity measurement method is evaluated by measuring the precision, recall, and f-measure of the unknown word identification. Furthermore, the test results presented the advantage and disadvantages of the proposed similarity measurement method that applied to classify the English unknown word based on the distributional of similar words.
    URI
    http://dspace.unimap.edu.my:80/xmlui/handle/123456789/42029
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