measure(ment),23-3-H05-1095,bq on the maximization of <term> translation accuracy </term> , as measured with the <term> NIST
measure(ment),21-4-P01-1004,bq methods </term> in terms of <term> retrieval accuracy </term> , but much faster . We also provide
measure(ment),4-5-P03-1051,bq improve the <term> segmentation </term><term> accuracy </term> , we use an <term> unsupervised algorithm
measure(ment),21-4-H92-1017,bq </term> to improving <term> OCR </term><term> accuracy </term> . We describe a <term> generative probabilistic
language understanding </term> and have a high accuracy but little robustness and flexibility .
measure(ment),17-4-P03-1031,bq progresses , the <term> discourse understanding accuracy </term> can be improved . This paper proposes
measure(ment),11-4-P03-1058,bq <term> SENSEVAL-2 nouns </term> , the <term> accuracy </term> difference between the two approaches
measure(ment),3-5-P03-1033,bq obtained reasonable <term> classification accuracy </term> for all dimensions . <term> Dialogue
measure(ment),7-3-H01-1070,bq algorithm </term> reported more than 99 % <term> accuracy </term> in both <term> language identification
measure(ment),18-7-A94-1007,bq system </term> , and provided about 75 % <term> accuracy </term> in the practical <term> translation
measure(ment),9-2-C04-1116,bq proposes a new methodology to improve the <term> accuracy </term> of a <term> term aggregation system
measure(ment),7-5-I05-2021,bq experiments showing the <term> WSD </term><term> accuracy </term> of current typical <term> SMT models
measure(ment),5-5-C04-1116,bq . Our proposed method improves the <term> accuracy </term> of our <term> term aggregation system
measure(ment),5-4-I05-2021,bq Surprisingly however , the <term> WSD </term><term> accuracy </term> of <term> SMT models </term> has never
measure(ment),1-4-N03-1001,bq classifier </term> . The <term> classification accuracy </term> of the <term> method </term> is evaluated
measure(ment),10-6-P03-1051,bq </term> achieves around 97 % <term> exact match accuracy </term> on a <term> test corpus </term> containing
measure(ment),12-2-N03-1033,bq <term> tagger </term> gives a 97.24 % <term> accuracy </term> on the <term> Penn Treebank WSJ </term>
measure(ment),7-5-I05-5003,bq improvement in <term> paraphrase classification accuracy </term> over all of the other <term> models
measure(ment),17-4-C04-1112,bq achieve a significant increase in <term> accuracy </term> over the <term> wordform model </term>
measure(ment),13-3-C92-1055,bq adjusting the parameters to maximize the <term> accuracy rate </term> directly . To make the proposed
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