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VP-Rec: A Hybrid Image Recommender Using Visual Perception Network

机译:VP-Rec:使用视觉感知网络的混合图像推荐器

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A requirement for a great user experience is to meet the exact needs for the usage of a recommender system. Such systems need user's historical preferences to reasonably perform, which might not be the case for a cold-start user. This paper presents VP-Rec, a hybrid image recommender system that addresses the new user cold-start problem. VP-Rec combines user visual perception and pairwise preferences as source of information to perform recommendations. First, we infer pairwise preferences from users ratings. Next, we build visual perception networks linking users according to their visual attention similarities. From these two inferred structures, we build consensual prediction models, so that when a new user enters the system, we capture his visual attention and choose the best model that fits him. The system has been tested on two image datasets, getting important improvements in terms of ranking quality (nDCG) when applied to new user cold-start scenario against state-of-art recommender systems.
机译:出色的用户体验的要求是满足使用推荐系统的确切需求。这样的系统需要用户的历史偏好来合理地执行,对于冷启动用户而言可能并非如此。本文介绍了VP-Rec,这是一种混合图像推荐系统,可以解决新用户的冷启动问题。 VP-Rec结合了用户的视觉感知和成对偏好作为信息源来执行推荐。首先,我们从用户评分中推论成对偏好。接下来,我们建立视觉感知网络,根据用户的视觉注意相似度将其链接起来。从这两个推断的结构中,我们建立了共识预测模型,以便当新用户进入系统时,我们可以吸引他的视觉注意力并选择最适合他的模型。该系统已经在两个图像数据集上进行了测试,在针对最新推荐系统应用于新用户冷启动场景时,在排名质量(nDCG)方面获得了重要的改进。

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