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Feature Engineering based Approach for Prediction of Movie Ratings

机译:基于特征工程的电影收视率预测方法

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The buying behavior of the consumer is grown nowadays through recommender systems. Though it recommends, still there are limitations to give a recommendation to the users. In order to address data sparsity and scalability, a hybrid approach is developed for the effective recommendation in this paper. It combines the feature engineering attributes and collaborative filtering for prediction. The proposed system implemented using supervised learning algorithms. The results empirically proved that the mean absolute error of prediction was reduced. This approach shows very promising results.
机译:如今,消费者的购买行为通过推荐系统得到了发展。尽管它建议,但仍然存在向用户推荐的限制。为了解决数据稀疏性和可伸缩性,本文针对有效建议开发了一种混合方法。它结合了特征工程属性和协作过滤以进行预测。拟议的系统使用监督学习算法实现。结果经验证明,预测的平均绝对误差降低了。这种方法显示出非常有希望的结果。

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