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Hybrid Association Mining and Refinement for Affective Mapping in Emotional Design

机译:情感设计中情感映射的混合联想挖掘与提炼

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摘要

Emotional design entails a bidirectional affective mapping process between affective needs in the customer domain and design elements in the designer domain. To leverage both affective and engineering concerns, this paper proposes a hybrid association mining and refinement (AMR) system to support affective mapping decisions. Rough set and K optimal rule discovery techniques are applied to identify hidden relations underlying forward affective mapping. A rule refinement measure is formulated in terms of affective quality. Ordinal logistic regression (OLR) is derived to model backward affective mapping. Based on conjoint analysis, a weighted OLR model is developed as a benchmark of the initial OLR model for backward refinement. A case study of truck cab interior design is presented to demonstrate the feasibility and potential of the hybrid AMR system for decision support to forward and backward affective mapping.
机译:情感设计需要在客户领域的情感需求与设计者领域的设计元素之间进行双向情感映射。为了充分利用情感和工程方面的问题,本文提出了一种混合关联挖掘和细化(AMR)系统来支持情感映射决策。粗糙集和K最优规则发现技术被应用于识别正向情感映射背后的隐藏关系。根据情感质量制定规则完善措施。推导有序逻辑回归(OLR)以建模后向情感映射。基于联合分析,开发了加权OLR模型作为初始OLR模型的基准,以进行向后细化。提出了一个卡车驾驶室内部设计的案例研究,以证明混合AMR系统为向前和向后情感映射提供决策支持的可行性和潜力。

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