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Review of short-text classification

机译:审查短文分类

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Purpose - Rapid developments in social networks and their usage in everyday life have caused an explosion in the amount of short electronic documents. Thus, the need to classify this type of document based on their content has a significant implication in many applications. The need to classify these documents in relevant classes according to their text contents should be interested in many practical reasons. Short-text classification is an essential step in many applications, such as spam filtering, sentiment analysis, Twitter personalization, customer review and many other applications related to social networks. Reviews on short text and its application are limited. Thus, this paper aims to discuss the characteristics of short text, its challenges and difficulties in classification. The paper attempt to introduce all stages in principle classification, the technique used in each stage and the possible development trend in each stage. Design/methodology/approach - The paper as a review of the main aspect of short-text classification. The paper is structured based on the classification task stage. Findings - This paper discusses related issues and approaches to these problems. Further research could be conducted to address the challenges in short texts and avoid poor accuracy in classification. Problems in low performance can be solved by using optimized solutions, such as genetic algorithms that are powerful in enhancing the quality of selected features. Soft computing solution has a fuzzy logic that makes short-text problems a promising area of research. Originality/value - Using a powerful short-text classification method significantly affects many applications in terms of efficiency enhancement. Current solutions still have low performance, implying the need for improvement This paper discusses related issues and approaches to these problems.
机译:目的-社交网络的快速发展及其在日常生活中的使用已导致短电子文档数量激增。因此,在许多应用程序中需要根据其内容对此类文档进行分类。有必要根据许多实际原因将这些文档根据其文本内容分类为相关类别。短文本分类是许多应用程序中必不可少的步骤,例如垃圾邮件过滤,情感分析,Twitter个性化,客户评论以及许多其他与社交网络相关的应用程序。对短文本及其应用的评论是有限的。因此,本文旨在讨论短文本的特点,其挑战和分类困难。本文试图介绍原理分类的所有阶段,每个阶段使用的技术以及每个阶段可能的发展趋势。设计/方法论/方法-作为对短文本分类的主要方面的综述而撰写的论文。本文是基于分类任务阶段来构造的。调查结果-本文讨论了相关问题和解决这些问题的方法。可以进行进一步的研究以解决短文本中的挑战,并避免分类的准确性差。可以通过使用优化的解决方案来解决性能低下的问题,例如,遗传算法可以有效提高所选功能的质量。软计算解决方案具有模糊逻辑,使短文本问题成为有前途的研究领域。创意/价值-使用功能强大的短文本分类方法在提高效率方面会极大地影响许多应用程序。当前的解决方案仍然具有较低的性能,这意味着需要进行改进。本文讨论了相关问题和解决这些问题的方法。

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