基于深度学习的波斯语情感分析

Mohammad Heydari, Mohsen Khazeni, Mohammad Ali Soltanshahi
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引用次数: 2

摘要

最近,深度学习技术在自然语言处理任务中的应用的兴趣大大增加。情感分析是自然语言处理中最困难的任务之一,尤其是在波斯语中。成千上万的网站、博客、社交网络,如Telegram、Instagram和Twitter,由世界各地的波斯语用户更新和修改,其中包含数百万上下文。为了从这些大量的原始数据中提取知识,深度学习技术变得越来越流行,但新模型遇到了许多挑战。本研究提出了一种基于深度学习的混合情感分析模型,并对Digikala在线零售商网站的顾客评论数据进行了分析。我们已经应用了基于各种深度学习网络和正则化技术的分类器。最后,通过混合的方法,我们在正、负、中性三个不同的班级中取得了F1分数78.3的最佳成绩。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deep Learning-based Sentiment Analysis in Persian Language
Recently, interests in the appliance of deep learning techniques in natural language processing tasks considerably increased. Sentiment analysis is one of the most difficult tasks in natural language processing, mostly in the Persian Language. Thousands of websites, blogs, social networks like Telegram, Instagram and Twitter update, and modify by Persian users around the world that contains millions of contexts. To extract knowledge of these huge amounts of raw data, Deep Learning techniques became increasingly popular but there is a number of challenges that the novel models encounter with them. In this research, a hybrid deep learning-based sentiment analysis model proposed and implemented on customer reviews data of Digikala Online Retailer website. We already applied the classifier based on various deep learning networks and regularization techniques. Finally, by utilizing a hybrid approach, we achieved the best performance of 78.3 of F1 score on three different classes: positive, negative, and neutral.
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