着装顾问决策框架

Ching-I Cheng, D. Liu
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引用次数: 8

摘要

这个名为“穿衣顾问”的项目旨在提供一个作为个人着装顾问的系统,帮助普通用户在不同场合选择正确的服装。采用注意学习覆盖网络(ALCOVE)神经网络模型,将媒人训练为时尚编辑。此外,在预处理阶段采用图像处理技术,获取服装的基本数据,构建个人的数字衣橱。当用户在寻找特殊场合的服装时遇到困难时,用户可以做的是向系统做出服装风格的决定,让系统在数字衣柜中挑选一件衣服,然后媒人会找到几对匹配的衣服。最终,最相似、最匹配的服装在3D展示厅中展示。本文的重点是根据从时尚行业中提取的分类和匹配规则进行正确的服装决策
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Decision Making Framework for Dressing Consultant
The project, Dressing Consultant, aims to provide a system which functions as a personal wearing advisor to help general users choose a correct clothing for occasions. ALCOVE (attention learning covering network) neural network model is used to train the matchmaker as a fashion editor. In addition, image processing techniques are employed at pre-processing stage to obtain the essential data of garments and to build a digital wardrobe for individuals. On the occasions when user has trouble finding an outfit for a special event, what user could do is to make a decision of the style of apparel to the system and let the system go through piece of garments in the digital wardrobe, and the matchmaker will then find several matched pairs. Eventually, the most similarly suitable and matched garments pair is shown in 3D show room. This paper focuses on making decision of correct clothing according to those classifying and matching rules extracted from fashion industry
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