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A Context-aware Media Content Personalized Recommendation for Community Networks

机译:社区网络的个性化媒体内容个性化推荐

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As the advance of technologies, the smart phone makes the context-aware more easily. And context awareness is an important factor to be considered for content personalized recommendation. Most traditional recommendation systems only take the user preferences into account, which leads to low content prediction recommendation accuracy. In this paper, we conceive a context-aware media content personalized recommendation scheme for community networks, taking users' profiles, behaviors, network conditions and contextual information into account. We classify the context information with the naive Bayesian network. Specially, we design an efficient BP neural network training and predicting scheme for content rating. Good performances of the proposed scheme are verified through a series of experiments. Simulation results indicate that the proposed scheme achieves the improved accuracy of recommendation notably and as well a better user experience in contrast to traditional recommendations.
机译:作为技术的进步,智能手机使上下文感知更容易。背景知识是满足内容个性化推荐的重要因素。大多数传统推荐系统仅考虑用户偏好,这导致内容预测推荐准确性低。在本文中,我们构思了社区网络的背景感知媒体内容个性化推荐方案,考虑到用户的简档,行为,网络条件和上下文信息。我们将上下文信息与Naive Bayesian网络分类。特别是,我们设计了高效的BP神经网络培训和预测内容评级方案。通过一系列实验验证了所提出的方案的良好表现。仿真结果表明,该方案概述了建议的提高准确性,以及与传统建议相比的更好的用户体验。

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