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A Naive Statistics Method for Electronic Program Guide Recommendation System

机译:电子节目指南推荐系统的朴素统计方法

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摘要

In this paper, we propose a naive statistics method for constructing a personalized recommendation system for the Electronic Program Guide (EPG). The idea is based on a primitive approach of N-gram to acquire nouns and compound nouns as prediction features, and then to combine the tf·idf weighting to predict user favorite programs. Our approach unified feedback process, system can incrementally update the vector of extracted features and their scores. It was proved that our system has good accuracy and dynamically adaptive capability.
机译:在本文中,我们提出了一种天真的统计方法,用于为电子节目指南(EPG)构建个性化的推荐系统。这个想法是基于N-gram的原始方法来获取名词和复合名词作为预测特征,然后结合tf·idf加权来预测用户喜欢的程序。我们的方法采用统一的反馈过程,系统可以逐步更新提取特征的向量及其分数。实践证明,该系统具有良好的精度和动态自适应能力。

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