Reliable and Cost-Effective Pos-Tagging

Yu-Fang Tsai, Keh-Jiann Chen · 2004

In order to achieve fast and high quality Part-of-speech (PoS) tagging, algorithms should be high accuracy and require less manually proofreading. To evaluate a tagging system, we proposed a new criterion of reliability, which is a kind of cost-effective criterion, instead of the conventional criterion of accuracy. The most cost-effective tagging algorithm is judged according to amount of manual editing and achieved final accuracy. The reliability of a tagging algorithm is defined to be the estimated best accuracy of the tagging under a fixed amount of proofreading. We compared the tagging accuracies and reliabilities among different tagging algorithms, such as Markov bi-gram model, Bayesian classifier, and context-rule classifier. According to our experiments, for the best cost-effective tagging algorithm, in average, 20 % of samples of ambivalence words need to be rechecked to achieve an estimated final accuracy of 99%. The tradeoffs between amount of proofreading and final accuracy for different algorithms are also compared. It concludes that an algorithm with highest accuracy may not always be the most reliable algorithm. 1

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