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Keyword Extraction Based on word Synonyms Using WORD2VEC

机译:基于单词同义词的WORD2VEC关键词提取

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Nowadays, the data revealed by the online individuals are increasing exponentially. The raw information that increasing data holds, transformed into meaningful outputs using machine learning and deep learning methods. Generally, supervised learning methods are used for information extraction and classification. Supervised learning is based on the training set that classification algorithms are trained. In the proposed approach, keyword extraction solution is proposed to classify text data more convenient. The developed solution is based on the Word2Vec algorithm, which works by taking into consideration the semantic meaning of the words unlike general approaches that based on word frequency. A new approach, word embedding algorithm named “Word2Vec”, works by calculating the word weights, semantic relationship, and the final weights of vectors. The obtained keywords are trained with Naive Bayes and Decision Trees methods and the performance of the proposed method is shown by classification example.
机译:如今,在线个人披露的数据呈指数级增长。使用机器学习和深度学习方法,不断增加的数据所拥有的原始信息将转化为有意义的输出。通常,监督学习方法用于信息提取和分类。监督学习基于训练分类算法的训练集。在提出的方法中,提出了关键词提取解决方案,以更方便地对文本数据进行分类。所开发的解决方案基于Word2Vec算法,该算法通过考虑单词的语义含义来工作,这与基于单词频率的一般方法不同。一种新的方法,称为“ Word2Vec”的词嵌入算法,通过计算词的权重,语义关系和向量的最终权重来工作。使用朴素贝叶斯和决策树方法训练获得的关键字,并通过分类示例显示所提出的方法的性能。

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