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Towards a Generic Architecture for Recommenders Benchmarking

机译:迈向推荐基准的通用架构

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With current growth of internet sales and content consumption, more research efforts are focusing on developing recommendation and personalization algorithms as a solution for the choice overload problem. In this paper, we first enumerate several state-of-the-art recommendation algorithms in order to highlight their main ideas and methodologies. Then, we propose a generic architecture for recommender systems benchmarking. Using the proposed architecture, we implement and evaluate several variants of existing recommendation algorithms and compare their results to our unified recommendation model. The experiments are conducted on a real world dataset in order to assess the genericity of our recommendation model and its quality. At the end, we conclude with some ideas for further development and research.
机译:随着互联网销售和内容消费的当前增长,更多的研究工作侧重于开发推荐和个性化算法作为选择过载问题的解决方案。在本文中,我们首先枚举了几种最先进的推荐算法,以突出其主要思想和方法。然后,我们为推荐系统的基准提出了一种通用架构。使用所提出的架构,我们实施并评估现有推荐算法的多个变体,并将其结果与我们的统一推荐模型进行比较。实验是在真实世界数据集上进行的,以评估我们推荐模式的常见性及其质量。最后,我们与一些思想结束了进一步发展和研究。

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