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Creating Capsule Wardrobes from Fashion Images

机译:从时尚形象创建胶囊衣柜

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摘要

We propose to automatically create capsule wardrobes. Given an inventory of candidate garments and accessories, the algorithm must assemble a minimal set of items that provides maximal mix-and-match outfits. We pose the task as a subset selection problem. To permit efficient subset selection over the space of all outfit combinations, we develop submodular objective functions capturing the key ingredients of visual compatibility, versatility, and user-specific preference. Since adding garments to a capsule only expands its possible outfits, we devise an iterative approach to allow near-optimal submodular function maximization. Finally, we present an unsupervised approach to learn visual compatibility from 'in the wild' full body outfit photos; the compatibility metric translates well to cleaner catalog photos and improves over existing methods. Our results on thousands of pieces from popular fashion websites show that automatic capsule creation has potential to mimic skilled fashionistas in assembling flexible wardrobes, while being significantly more scalable.
机译:我们建议自动创建胶囊衣柜。给定候选服装和配饰的清单,该算法必须组装最少的一组物品,以提供最大的混搭服装。我们把任务摆成一个子集选择问题。为了在所有服装组合的空间上进行有效的子集选择,我们开发了子模块目标函数,该函数捕获了视觉兼容性,多功能性和用户特定偏好的关键要素。由于将服装添加到胶囊中只会扩展其可能的服装,因此我们设计了一种迭代方法以允许近乎最佳的次模函数最大化。最后,我们提出了一种无监督的方法来从“在野外”全身照片中学习视觉兼容性;兼容性度量标准可以很好地转换为更清晰的目录照片,并且可以对现有方法进行改进。我们从流行时尚网站上成千上万的作品中获得的结果表明,自动胶囊制作有潜力模仿熟练的时尚达人组装灵活的衣柜,同时具有更大的可扩展性。

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