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METHODS, SYSTEMS AND PROCESSOR-READABLE MEDIA FOR SIMULTANEOUS SENTIMENT ANALYSIS AND TOPIC CLASSIFICATION WITH MULTIPLE LABELS
METHODS, SYSTEMS AND PROCESSOR-READABLE MEDIA FOR SIMULTANEOUS SENTIMENT ANALYSIS AND TOPIC CLASSIFICATION WITH MULTIPLE LABELS
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机译:多个标签同时进行情感分析和主题分类的方法,系统和过程可读媒体
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摘要
Methods, systems and processor-readable media for simultaneous sentiment analysis and topic classification with multiple labels. A sentiment and topic associated with a post can be classified at similar time and a result can be incorporated to predict a feature so that a label of two (or more) tasks can promote and reinforce each other iteratively. A feature extraction and selection can be performed on the tasks and a multi-task multi-label classification model can be trained for each task with maximum entropy utilizing multiple labels to ascertain information derived from an extra label and to manage class ambiguities. Each task has a separate classification model with different predicting features and they can be trained collectively which allows flexibility in model construction. The multi-task multi-label classification model produces a probabilistic result and the classes can be ranked by the probabilistic result and the post can be classified with the multi-label.
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