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Color recommendation system combining design concepts with interactive customers preference modeling from context changes

机译:颜色推荐系统将设计概念与根据上下文变化的交互式客户偏好建模相结合

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Colors play an important role for customers in making decisions on what they like or dislike. Frequently, customers are overloaded by color combinations to consider and they may not have the time or knowledge to personally evaluate all these combinations in a product design. This paper proposes a color recommendation system which includes design concepts as rules constraining the interactive search made by genetic algorithms to follow customer preferences. As the search space is very large and it changes with contextual information, proposed system combines graph coloring techniques with artificial neural networks to keep color restrictions during system evolution and model the fitness function provided by customers. In order to illustrate an application of proposed system, building images are used as example. After including conceptual coloring rules for building images in the system by two different methods, a questionnaire study was used to verify which approach suggested better images according to customer preferences. Experiments demonstrate that only if contextual information is included in the learning process system predictions keep close to customer's evaluation.
机译:在客户决定自己喜欢或不喜欢的东西时,颜色起着重要的作用。通常,客户会因过多的颜色组合而无法考虑,他们可能没有时间或知识亲自评估产品设计中的所有这些组合。本文提出了一种颜色推荐系统,该系统以设计概念为规则,以约束遗传算法进行的交互式搜索以遵循客户的偏好。由于搜索空间很大,并且随上下文信息而变化,因此建议的系统将图着色技术与人工神经网络相结合,以在系统演化过程中保持颜色限制,并为客户提供的适应度函数建模。为了说明所提出的系统的应用,以建筑物图像为例。在通过两种不同的方法为系统中的图像添加概念上的着色规则后,通过问卷调查来验证哪种方法可以根据客户的喜好建议使用更好的图像。实验表明,只有在学习过程中包含上下文信息时,系统预测才能与客户的评估保持接近。

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