用于鲁棒现实世界文本分类的递归神经网络

Ali Mohammad Zareh Bidoki, Nasser Yazdani, Pedram Ghodsnia
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引用次数: 25

摘要

本文探讨了递归神经网络在现实世界基准语料库的鲁棒文本分类任务中的应用。有许多行之有效的方法用于文本分类,但它们未能从自然语言处理和人工智能等多学科的角度解决挑战。结果表明,这些递归神经网络可以成为web智能中使用的许多技术的可行补充,例如上下文敏感的电子邮件分类和网站索引。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recurrent Neural Networks for Robust Real-World Text Classification
This paper explores the application of recurrent neural networks for the task of robust text classification of a real-world benchmarking corpus. There are many well-established approaches which are used for text classification, but they fail to address the challenge from a more multi-disciplinary viewpoint such as natural language processing and artificial intelligence. The results demonstrate that these recurrent neural networks can be a viable addition to the many techniques used in web intelligence for tasks such as context sensitive email classification and web site indexing.
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