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Text Summarization: An Essential Study

机译:文本摘要:基本研究

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摘要

The proliferation of data from diverse sources makes humans insufficient in utilizing the knowledge properly at some instance. To quickly have an overview of abundant information, Text Summarization (TS) comes into play. TS will effectively extract the candidate sentences from the source and represent the saliency of whole knowledge. Over the decades Text Summarization techniques have been transformed by the usage of linguistics to advanced machine learning models, this study explores summarization approaches along with their recent state-of-art models in single and multi-document summarization. This survey is intended to make an extensive study from features representation to sentence selection and summary generation using machine learning, recent graph and evolutionary based methods. The overall investigation will help the researchers to effectively handle large quantities of data in building effective Natural Language Processing applications. Eventually, this study draws popular abstractive mechanisms and observations that would be helpful for the intended research.
机译:来自不同来源的数据的扩散使人类在某些情况下正确利用知识。为了快速概述丰富的信息,文本摘要(TS)发挥作用。 TS将有效地从源中提取候选句子并代表整个知识的显着性。在几十年上,文本摘要技术已经通过语言学的使用转变为先进的机器学习模型,探讨了他们最近的单一和多文件摘要的摘要方法以及他们最近的最先进模型。本调查旨在使用机器学习,最近的图形和进化的方法进行广泛的研究和概要生成的功能。整体调查将帮助研究人员在建立有效的自然语言处理应用中有效处理大量数据。最终,本研究提出了流行的抽象机制和观察,这对预期的研究有所帮助。

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