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Context-Aware Asset Search for Graphic Design

机译:用于图形设计的上下文相关资产搜索

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Graphic design tools provide powerful controls for expert-level design creation, but the options can often be overwhelming for novices. This paper proposes Context-Aware Asset Search tools that take the current state of the user's design into account, thereby providing search and selections that are compatible with the current design and better fit the user's needs. In particular, we focus on image search and color selection, two tasks that are central to design. We learn a model for compatibility of images and colors within a design, using crowdsourced data. We then use the learned model to rank image search results or color suggestions during design. We found counterintuitive behavior using conventional training with pairwise comparisons for image search, where models with and without compatibility performed similarly. We describe a data collection procedure that alleviates this problem. We show that our method outperforms baseline approaches in quantitative evaluation, and we also evaluate a prototype interactive design tool.
机译:图形设计工具为专家级的设计创建提供了强大的控件,但是对于新手来说,这些选项通常不胜枚举。本文提出了一种上下文感知资产搜索工具,该工具考虑了用户设计的当前状态,从而提供了与当前设计兼容并更好地满足用户需求的搜索和选择。尤其是,我们专注于图像搜索和颜色选择这两个对设计至关重要的任务。我们使用众包数据学习一个模型,以实现设计中图像和颜色的兼容性。然后,我们使用学习的模型在设计过程中对图像搜索结果或颜色建议进行排名。我们使用常规训练和成对比较进行图像搜索发现了违反直觉的行为,其中具有和不具有兼容性的模型的执行方式相似。我们描述了一种减轻此问题的数据收集程序。我们表明,在定量评估中,我们的方法优于基线方法,并且还评估了原型交互式设计工具。

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