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Case-Based Reasoning as a Prediction Strategy for Hybrid Recommender Systems

机译:基于案例的推理作为混合推荐系统的预测策略

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Hybrid recommender systems are capable of providing better recommendations than non-hybrid ones. Our approach to hybrid recommenders is the use of prediction strategies that determine which prediction technique(s) should be used at the moment an actual prediction is required. In this paper, we determine whether case-based reasoning can provide more accurate prediction strategies than rule-based predictions strategies created manually by experts. Experiments show that case-based reasoning can indeed be used to create prediction strategies; it can even increase the accuracy of the recommender in systems where the accuracy of the used prediction techniques is highly spread.
机译:混合推荐系统能够提供比非混合动力系统更好的建议。我们对混合推荐人的方法是使用预测策略,确定需要在需要实际预测的情况下使用哪种预测技术。在本文中,我们确定基于案例的推理是否可以提供比专家手动创建的基于规则的预测策略更准确的预测策略。实验表明,基于案例的推理确实可以用于创造预测策略;它甚至可以提高所使用的预测技术的准确性高度差异的系统中推荐人的准确性。

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