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Evaluating Distributed Word Representations For Predicting Missing Words In Sentences, Saniya Saifee
Evaluating Distributed Word Representations For Predicting Missing Words In Sentences, Saniya Saifee
Dissertations and Theses
In recent years, the distributed representation of words in vector space or word embeddings have become very popular as they have shown significant improvements in many statistical natural language processing (NLP) tasks as compared to traditional language models like Ngram. In this thesis, we explored various state-of-the-art methods like Latent Semantic Analysis, word2vec, and GloVe to learn the distributed representation of words. Their performance was compared based on the accuracy achieved when tasked with selecting the right missing word in the sentence, given five possible options. For this NLP task we trained each of these methods using a training corpus …