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Machine Learning, Language Rules, and Statistical Strategies for Language Translation
Andrew Runge Computer Systems Lab
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Abstract Goal: Create an efficient, accurate Latin translator Methods:
Language Rules Machine Learning Statistical Translation Language: Python
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Introduction Language Translators Rule-based Strategies
Machine Learning N-grams Statistical Translation
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Background N-grams in Statistical Translation Generating theses
Word tagging Tagging for word class, case, etc. Machine Learning
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Figure 1: Tree of words sorted by sentence role from the
assorted works of Cicero generated by the methods of McMahon and Smith
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Discussion Dictionary creation Dictionary Keys and values
Initial work on Machine Learning Word Tagging
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Goals Second Quarter Tagging Initial Translation Third Quarter
Continued Translation Apply Statistical Strategies
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Figure 2: Demonstration of n-gram generation for determining
word order in a sentence. Generated by Chen et al.
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Results Current Results: Read from the dictionary
VERY BASIC TRANSLATIONS Ex: curro ab puella => run by girl
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