基于混合社会网络和多目标免疫优化的个性化Web服务推荐方法

Huashan Cao
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引用次数: 5

摘要

为了缓解web服务推荐中的冷启动问题和数据稀疏问题,满足用户的个性化需求,本文提出了一种基于混合社交网络和多目标免疫优化的个性化web服务推荐方法。网络中加入了服务提供商的元素,可以提供更真实的信息,有助于缓解冷启动问题。然后,根据提出的服务推荐框架,在不调整权重系数的情况下,采用多目标免疫优化融合多个属性,为用户提供个性化的web服务。在真实数据集上进行了实验,结果表明,该方法具有较高的准确率和较低的召回率,有助于改进个性化推荐。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Personalized Web Service Recommendation Method Based on Hybrid Social Network and Multi-Objective Immune Optimization
To alleviate the cold-start problem and data sparsity in web service recommendation and meet the personalized needs of users, this paper proposes a personalized web service recommendation method based on a hybrid social network and multi-objective immune optimization. The network adds the element of the service provider, which can provide more real information and help alleviate the cold-start problem. Then, according to the proposed service recommendation framework, multi-objective immune optimization is used to fuse multiple attributes and provide personalized web services for users without adjusting any weight coefficients. Experiments were conducted on real data sets, and the results show that the proposed method has high accuracy and a low recall rate, which is helpful to improving personalized recommendation.
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