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Research on hybrid collaborative filtering recommender system based on spark

机译:基于Spark的混合协同过滤推荐系统研究

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Based on the study of the recommender engine and big data process platform, a hybrid collaborative filtering recommender method is proposed to solve the drawbacks of the current recommender algorithm in practical engineering application. Dimensionality reduction and clustering are adopted to overcome the limitations of collaborative filtering such as sparsity of data. Apache Spark is used to realize an efficient parallel implementation. With the increase of data, the scalability of recommender scheme can be solved by expanding Spark cluster nodes. The advantages of the proposed method have been proven in the practical application of the teaching information resource service platform of a university.
机译:在对推荐引擎和大数据处理平台进行研究的基础上,提出了一种混合协同过滤推荐方法,以解决当前推荐算法在实际工程应用中的弊端。采用降维和聚类来克服协作过滤的局限性,例如数据稀疏性。 Apache Spark用于实现高效的并行实现。随着数据的增加,推荐方案的可扩展性可以通过扩展Sp​​ark集群节点来解决。该方法的优点已经在大学教学信息资源服务平台的实际应用中得到了证明。

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