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Recommender system for sports articles based on Arabic opinions polarity detection with a hybrid approach RSS-SVM

机译:基于阿拉伯观点极性检测和混合方法的体育用品推荐系统RSS-SVM

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In this paper, an Arabic recommender system based on opinion analysis and polarity detection is proposed. Unfortunately, working with Arabic adds more difficulties than the other languages, because it implies the solving of different types of problems such as the diversity of dialects, Al hamza, the ambiguity, etc. These sorts of applications produce data with a large number of features, while the number of samples is limited. The large number of features compared to the number of samples causes over-training when proper measures are not taken. The aim of this work is to combine both the random sub space method and support vector machine classifier in order to avoid over fitting creating by the used of all features and beneficiate from proven SVM classifier performances. The main steps of this study are based primarily on articles collection, Statistical features extraction, opinions polarity detection and then generating the recommendations by the proposed hybrid approach. Experiments results based on 1000 comments collected from Algerian sports web sites are very encouraging.
机译:本文提出了一种基于观点分析和极性检测的阿拉伯语推荐系统。不幸的是,使用阿拉伯语比其他语言增加了更多的困难,因为这意味着要解决不同类型的问题,例如方言的多样性,Al hamza,歧义性等。这些类型的应用程序产生具有大量特征的数据,而样本数量有限。如果没有采取适当的措施,与样本数量相比,大量特征会导致过度训练。这项工作的目的是将随机子空间方法和支持向量机分类器结合起来,以避免使用所有功能产生过度拟合,并从经过验证的SVM分类器性能中受益。这项研究的主要步骤主要基于文章收集,统计特征提取,观点极性检测,然后通过提出的混合方法生成建议。基于从阿尔及利亚体育网站收集的1000条评论的实验结果非常令人鼓舞。

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