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A Review: Abstractive Text Summarization Techniques using NLP

机译:综述:使用NLP的抽象文本摘要技术

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Today's world is getting flooded with an increasing amount of articles and links to choose from. As this data grows, the importance of semantic density does as well. How can one say the most important things in the shortest amount of time? Having a generated summary lets one decide whether they want to deep dive further or not. Conversion of lengthy texts into short and meaningful sentences is the main idea behind text summarization. To achieve this, various algorithms are present. Machine Learning models are trained, first to understand the given document and then create a summary of it. These models achieve this task either by extracting important words out of the document or by creating human-like sentences to form the summary.
机译:今天的世界正在充斥着越来越多的文章和链接来选择。随着这种数据的增长,语义密度的重要性也是如此。如何在最短的时间内说出最重要的事情?具有生成的摘要让人决定是否要进一步深入潜水。将冗长的文本转换为简短而有意义的句子是文本摘要背后的主要观点。为实现这一点,存在各种算法。机器学习模型培训,首先要理解给定的文档,然后创建它的摘要。这些模型通过从文档中提取重要单词或通过创建人类句子来形成摘要来实现此任务。

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