Exploiting Deep Learning for Persian Sentiment Analysis
August 15, 2018 ยท Declared Dead ยท ๐ International Conference on Advances in Brain Inspired Cognitive Systems
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Authors
Kia Dashtipour, Mandar Gogate, Ahsan Adeel, Cosimo Ieracitano, Hadi Larijani, Amir Hussain
arXiv ID
1808.05077
Category
cs.CL: Computation & Language
Citations
56
Venue
International Conference on Advances in Brain Inspired Cognitive Systems
Last Checked
4 months ago
Abstract
The rise of social media is enabling people to freely express their opinions about products and services. The aim of sentiment analysis is to automatically determine subject's sentiment (e.g., positive, negative, or neutral) towards a particular aspect such as topic, product, movie, news etc. Deep learning has recently emerged as a powerful machine learning technique to tackle a growing demand of accurate sentiment analysis. However, limited work has been conducted to apply deep learning algorithms to languages other than English, such as Persian. In this work, two deep learning models (deep autoencoders and deep convolutional neural networks (CNNs)) are developed and applied to a novel Persian movie reviews dataset. The proposed deep learning models are analyzed and compared with the state-of-the-art shallow multilayer perceptron (MLP) based machine learning model. Simulation results demonstrate the enhanced performance of deep learning over state-of-the-art MLP.
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