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Scenery-Based Fashion Recommendation with Cross-Domain Geneartive Adverserial Networks

机译:跨域生成对抗网络的基于场景的时尚推荐

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To build an effective fashion recommendation system is a still challenging issue due to its high complexity. Previous research works generally have focused on how to provide fashion items visually similar to the user's current fashion taste. However, a scenery (natural landscape) around users is also an important affective factor in recommending fashions. This paper presents a novel system to recommend fashion designs that fit target sceneries. To address this, the exemplar photos regarding the target landscape are first collected from the database. Afterwards, a cross-domain generative adversarial network (GAN) is applied to generate fashion designs from the sceneries. The experimental results demonstrate the feasibility of the proposed system and imply further research directions.
机译:由于其复杂性高,建立有效的时尚推荐系统仍然是一个具有挑战性的问题。先前的研究工作通常集中在如何提供视觉上类似于用户当前时尚品味的时尚产品。但是,用户周围的风景(自然风景)也是推荐时尚的重要情感因素。本文提出了一种新颖的系统来推荐适合目标场景的时装设计。为了解决这个问题,首先从数据库中收集有关目标景观的示例照片。之后,应用跨域生成对抗网络(GAN)从风景中生成时装设计。实验结果证明了该系统的可行性,并提出了进一步的研究方向。

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