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Utilizing Popularity Characteristics for Product Recommendation

机译:利用流行特征推荐产品

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摘要

This paper presents a novel approach to automated product recommendation based on the popularity characteristics of products. Popularity plays a significant role in the consumer purchasing process but has not been given much attention in recommendation research. A three-dimensional model of popularity is used to develop popularity classes of products. These are joined with the MovieLens dataset to create a hybrid movie recommendation system that combines genre and popularity information. As compared with collaborative filtering, the hybrid system shows positive results under the conditions of data sparsity and cold-starting. Many interesting issues for further research are suggested.
机译:本文提出了一种基于产品受欢迎程度的自动推荐产品的新颖方法。人气在消费者购买过程中起着重要作用,但在推荐研究中并未给予太多关注。流行度的三维模型用于开发产品的流行度类别。这些与MovieLens数据集一起创建了一个混合电影推荐系统,该系统结合了类型和受欢迎程度信息。与协作过滤相比,混合系统在数据稀疏和冷启动条件下显示出了积极的结果。建议了许多有趣的问题,需要进一步研究。

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