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Extreme multi-label learning: A large scale classification approach in machine learning

机译:极端多标签学习:机器学习中的大规模分类方法

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摘要

In digital world, the amount of data is growing exponentially in day to day life. It is difficult to analyze and extract knowledge from large amount of data with millions of categories in Big Data environment. Therefore, it is challenging problem to develop model that classify large volume of documents available on Internet. However, Multi-Label Classification approach is used to classify data with multiple categories or labels but it is inefficient way to deal with millions of categories. Hence Extreme Multi-Label Classification approach is used to overcome this limitation by selecting subset of labels for the new instance from millions of labels. Recently Extreme Multi-Label Classification has attracted research attention in different application areas like document categorization in Wikipedia, people identification in social networking, gene prediction in bio-informatics etc. Extreme Multi-Label Classification is also opened up new challenge to reformulate existing machine learning problems like ranking, tagging and recommendation. This survey paper focuses on approaches and reviewing current research challenges on extreme Multi Label Classification. Also discussed state-of-the-art algorithms to handle extreme Multi-Label Classification Problem.
机译:在数字世界中,数据的数量在日常生活中呈指数级增长。很难从大量数据中分析和提取来自大量数据的知识,大数据环境中的数百万个类别。因此,开发在互联网上提供大量文档的模型是挑战的问题。但是,多标签分类方法用于对具有多个类别或标签的数据进行分类,但衡量数百万类别的效率低效。因此,极端的多标签分类方法用于通过从数百万标签中选择新实例的标签子集来克服此限制。最近极端的多标签分类吸引了不同应用领域的研究注意,如文档分类,如维基百科,人们在社交网络中识别,生物信息学的基因预测等。极端的多标签分类也开辟了新的挑战,重新制定了现有机器学习等级,标记和推荐等问题。本调查纸上侧重于近期多标签分类的现行研究挑战。还讨论了最先进的算法来处理极端的多标签分类问题。

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