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A Device-Similarity-Based Recommendation System in Mobile Terminals

机译:移动终端中基于设备相似性的推荐系统

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摘要

Smart Mobile device are becoming popular platforms for information accessing, especially when coupled with recommendation system technologies. They are also treated as key tools for mobile users both for leisure and business applications. Recommendation techniques can increase the usability of mobile systems by providing more personalized and interested content. In this paper, a novel personalized recommender system is proposed, focusing on Mobile Terminal (MT) similarities, such as brands, versions and types of Operating Systems. These similarities play a key role in filtering original recommendation data sets at the preprocessing stage. By calculating and comparing the Mean Absolute Error (MAE) values through 5-fold cross validation of the Slope One algorithm with/without optimizing data sets by device-similarity, the overall effectiveness and accuracy of the recommendation results are at least 20% improved in our experiment.
机译:智能移动设备正成为流行的信息访问平台,尤其是与推荐系统技术结合使用时。它们也被视为休闲和商务应用中移动用户的关键工具。推荐技术可以通过提供更多个性化和感兴趣的内容来提高移动系统的可用性。本文提出了一种新颖的个性化推荐系统,重点关注移动终端(MT)的相似性,例如操作系统的品牌,版本和类型。这些相似之处在预处理阶段过滤原始推荐数据集时起着关键作用。通过对Slope One算法进行5倍交叉验证来计算和比较平均绝对误差(MAE)值,无论是否通过设备相似性优化数据集,推荐结果的整体有效性和准确性至少提高了20%我们的实验。

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