A text classification model constructed by Latent Dirichlet Allocation and Deep Learning

Yu Liu, Zhengping Jin · 2015

In this paper, we proposed a mixed model of text classification constructed by latent dirichlet allocation and deep learning.The model present that a text will be represent as a vector computing by latent dirichlet allocation algorithm, and this vector is probabilistic vector of corresponding topic words space.Then we input these topic vectors into a deep learning framework for computing nonlinear relationship of each vector.Finally, we constructed a text classification system.The proposed model achieves a higher accuracy when compared with other current popular algorithms, such as SVM, KNN and TFIDF.

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