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Deep Learning and Machine Learning-Based Model for Conversational Sentiment Classification
Authors:Sami Ullah  Muhammad Ramzan Talib  Toqir A Rana  Muhammad Kashif Hanif  Muhammad Awais
Affiliation:1.Department of Computer Science, Government College University Faisalabad, 38000, Pakistan2 Department of Computer Science and IT, The University of Lahore, 54590, Pakistan3 School of Computer Sciences, Universiti Sains Malaysia (USM), 11800, Penang, Malaysia4 Department of Software Engineering, Government College University Faisalabad, 38000, Pakistan
Abstract:In the current era of the internet, people use online media for conversation, discussion, chatting, and other similar purposes. Analysis of such material where more than one person is involved has a spate challenge as compared to other text analysis tasks. There are several approaches to identify users’ emotions from the conversational text for the English language, however regional or low resource languages have been neglected. The Urdu language is one of them and despite being used by millions of users across the globe, with the best of our knowledge there exists no work on dialogue analysis in the Urdu language. Therefore, in this paper, we have proposed a model which utilizes deep learning and machine learning approaches for the classification of users’ emotions from the text. To accomplish this task, we have first created a dataset for the Urdu language with the help of existing English language datasets for dialogue analysis. After that, we have preprocessed the data and selected dialogues with common emotions. Once the dataset is prepared, we have used different deep learning and machine learning techniques for the classification of emotion. We have tuned the algorithms according to the Urdu language datasets. The experimental evaluation has shown encouraging results with 67% accuracy for the Urdu dialogue datasets, more than 10, 000 dialogues are classified into five emotions i.e., joy, fear, anger, sadness, and neutral. We believe that this is the first effort for emotion detection from the conversational text in the Urdu language domain.
Keywords:Dialogue analysis  conversational opinion mining  sentimentanalysis  sentiment analysis in Urdu language  deep learning  machine learning
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