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Classifying Unstructured Text Using Structured Training Instances and an Ensemble of Classifiers
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作者 andreas lianos Yanyan Yang 《Journal of Intelligent Learning Systems and Applications》 2015年第2期58-73,共16页
Typical supervised classification techniques require training instances similar to the values that need to be classified. This research proposes a methodology that can utilize training instances found in a different f... Typical supervised classification techniques require training instances similar to the values that need to be classified. This research proposes a methodology that can utilize training instances found in a different format. The benefit of this approach is that it allows the use of traditional classification techniques, without the need to hand-tag training instances if the information exists in other data sources. The proposed approach is presented through a practical classification application. The evaluation results show that the approach is viable, and that the segmentation of classifiers can greatly improve accuracy. 展开更多
关键词 ENSEMBLE Classification DIVERSITY TRAINING Data
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