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The optimization of weights in weighted hybrid recommendation algorithm

机译:加权混合推荐算法权重的优化

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In the field of recommender systems, the performance of every single recommendation algorithm is limited and each has its own strengths and weaknesses, so more attentions are paid to the hybrid recommendation algorithms. There are various hybridization strategies, this paper is focused on the weighted hybridization. In the weighted hybridization, researchers are always stumped by a problem -how to optimize the weights of each algorithm. When the number of algorithms of the weighted hybridization is less then 3, then we can fine tune the weight through repeating experiment, but when the number is more then 3, it is hard to get the weights through the same method. And that is what is addressed by this paper.
机译:在推荐系统领域中,每个推荐算法的性能都是有限的,每个推荐算法都有自己的优势和缺点,因此对混合推荐算法支付了更多的注意。 本文有各种杂交策略,专注于加权杂交。 在加权杂交中,研究人员总是被问题所困扰 - 如何优化每种算法的权重。 当加权杂交的算法数量小于3时,我们可以通过重复实验微调重量,但是当数量越来越多,难以通过相同的方法获得权重。 这就是本文所解决的。

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