Machine Transliteration of Names in Arabic Text under Consideration for Other Conferences (specify)? None Machine Transliteration of Names in Arabic Text
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We present a transliteration algorithm based on sound and spelling mappings using nite state machines. The transliteration models can be trained on relatively small lists of names. We introduce a new spelling-based model that much more accurate than state-of-the-art phonetic-based models and can be trained on easier-to-obtain training data. We apply our transliteration algorithm to the transliteration of names from Arabic into English. We report on the accuracy of our algorithm based on exact-matching criterion and based on human-subjective evaluation. We also compare the accuracy of our system to the accuracy of human translators. Abstract We present a transliteration algorithm based on sound and spelling mappings using nite state machines. The transliter-ation models can be trained on relatively small lists of names. We introduce a new spelling-based model that much more accurate than state-of-the-art phonetic-based models and can be trained on easier-to-obtain training data. We apply our transliteration algorithm to the transliter-ation of names from Arabic into English. We report on the accuracy of our algorithm based on exact-matching criterion and based on human-subjective evaluation. We also compare the accuracy of our system to the accuracy of human translators.
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