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BERS: Bussiness-Related Emotion Recognition System in Urdu Language Using Machine Learning

机译:BERS:使用机器学习的乌尔都语语言中与业务相关的情绪识别系统

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Starting a business is an easy task but making it established and reliable is something challenging. Any business can grow if the customers are satisfied and this can be investigated through their emotions or reviews expressed about the goods and services. It gives rise to the development of emotion recognition system from business reviews using social computing paradigm. A sufficient work has already been performed in this direction using resource-rich languages like English. However, there is a need and a literature gap to develop such a system in Urdu, a resource-poor language, which is a national language of Pakistan and a widely spoken language in other countries like India and other parts of the world. This work aims at developing an Emotion detection System from online business reviews (tweets) in Urdu Language using supervised Machine Learning techniques. We applied different machine learning classifiers, such as Support Vector Classifier (SVC), Random Forest (RF), Naïve Bayes (NB) and K-Nearest Neighbors (KNN) to classify the tweets with respect to Urdu emotions. Results show that with respect to other classifiers, SVC achieved efficient results with an accuracy of 80.5% on smart phone dataset and 81.09% for sports dataset.
机译:创业是一件容易的事,但要使其建立和可靠则具有挑战性。如果客户满意,那么任何业务都可以发展,并且可以通过他们对商品和服务的情感或评论来进行调查。它使用社交计算范式从业务评论中引发了情感识别系统的发展。已经使用资源丰富的语言(例如英语)在此方向上进行了足够的工作。但是,需要用乌尔都语开发这种系统,这是一种资源贫乏的语言,这是巴基斯坦的一种民族语言,在印度和世界其他地区等其他国家也被广泛使用。这项工作旨在使用受监督的机器学习技术,根据乌尔都语在线业务评论(推文)开发一种情绪检测系统。我们应用了不同的机器学习分类器,例如支持向量分类器(SVC),随机森林(RF),朴素贝叶斯(NB)和K最近邻居(KNN)对有关乌尔都语情绪的推文进行分类。结果表明,相对于其他分类器,SVC获得了有效的结果,在智能手机数据集上的准确性为80.5%,在运动数据集上的准确性为81.09%。

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