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Improving annotation categorization performance through integrated social annotation computation

机译:通过集成的社交注释计算提高注释分类性能

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摘要

People can identify and organize their ideas and comments with respect to relevant concept topics through using annotation systems. Those annotation systems are obvious that only supports a simple and manual categorization approach. The manual approach is a difficult and time-consuming task for general annotators. Therefore, we propose a requirement annotation categorization which helps annotators to promote the manual annotation categorization effectiveness. Moreover, we propose an integrated social annotation computation which improves the performance of our annotation categori-zation. In summary, the proposed annotation categorization is verified through experiments using real users' data sets. We achieved the 83.11% average accuracy for the proposed annotation categorization with integrated social annotation computation. We also show that the proposed annotation categoriza-tion requires only 17-20% average processing time (in comparison with the manual approach) is efficient.
机译:人们可以通过使用批注系统来识别和组织有关相关概念主题的想法和评论。那些注释系统很明显,仅支持简单和手动的分类方法。对于一般注释者而言,手动方法是一项艰巨而耗时的任务。因此,我们提出了一种需求注释分类方法,它可以帮助注释者提高手工注释分类的有效性。此外,我们提出了一种集成的社会注释计算方法,可以提高注释分类的性能。总之,通过使用真实用户的数据集进行实验,验证了所提出的注释分类。通过集成的社交注释计算,我们为建议的注释分类实现了83.11%的平均准确度。我们还表明,提出的注释分类仅需要17-20%的平均处理时间(与手动方法相比)是有效的。

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