使用深度学习的下一个单词预测:一个比较研究

Milind Soam, Sanjeev Thakur
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引用次数: 7

摘要

深度学习是机器学习的一个子类,它模仿人类大脑的功能,即人脑处理和创造模式的方式,以做出选择。它基本上是一种人工智能功能,拥有能够学习无形无监督数据的网络。接下来的单词预测是在由文本组成的数据集上执行的。下一个词预测是自然语言处理的一个应用。它也被称为语言建模。基本上,它是预测句子中下一个单词的过程。它有许多我们大多数人使用的应用程序,如自动更正,主要用于电子邮件/消息;它也在微软word或谷歌搜索中使用,根据我们的搜索历史或我们对全球的搜索来预测下一个单词。在这项工作中,我们研究了NLP,不同的深度学习技术,如LSTM, BiLSTM,并进行了比较研究。我们在BiLSTM和LSTM中得到了满意的结果[1],BiLSTM和LSTM的准确率分别为66.1%和58.27%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Next Word Prediction Using Deep Learning: A Comparative Study
Deep learning is a subclass of machine learning, it mimics the functionality of the humanbrain the way it processes and creates pattern in the facts for choice making. It is basically an AI function that has networks capable of learning unsupervised data that is shapeless. The succeeding word forecast is performed on dataset consisting of texts. Next Word Prediction is an application of NLP (Natural LanguageProcessing). It is also known as Language Modelling. Basically it is the process of predicting the next word in a sentence. It has many applications which are usedby most of us such as auto-correct which is mostly usedin Emails / Messages; it has also it’s usage in MS Wordor google search where forecasts the next word based on our search history or the search we did for globe. In this work we have studied NLP, different deep learning techniques such as LSTM, BiLSTM and performed a comparative study. We found satisfactory results in BiLSTM and LSTM [1]The accuracy received using BiLSTM and LSTM are: 66.1% and 58.27% respectively.
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