论文标题

通过知识距离指导数据驱动的设计构想

Guiding Data-Driven Design Ideation by Knowledge Distance

论文作者

Luo, Jianxi, Sarica, Serhad, Wood, Kristin

论文摘要

数据驱动的概念设计方法和工具旨在通过提供外部励志刺激来激发人类对新设计概念的意义。在先前的研究中,刺激在覆盖范围,粒度和检索指导方面受到限制。在这里,我们提出了一个基于知识的专家系统,该系统可以同时从工程和技术领域的所有领域提供跨语义,文档和现场级别的设计刺激,并遵循创造力理论,以指导根据知识距离的刺激进行检索和使用。该系统以专利分类系统中所有技术领域的网络的使用为中心,以根据技术领域之间的统计估计知识距离来存储和组织全球有关技术知识,概念和解决方案的累积数据。反过来,知识距离指导了基于网络的探索和励志刺激的检索,以通过类比和组合来产生新的设计思想的推断,以引起跨越范围的推论。通过两个案例研究,我们展示了使用该系统探索和检索多层次励志刺激的有效性,并为解决问题和开放式创新产生新的设计思想。这些案例研究还证明了计算机辅助的构想过程,该过程是数据驱动的,计算增强的,理论上扎根,视觉启发和快速的。

Data-driven conceptual design methods and tools aim to inspire human ideation for new design concepts by providing external inspirational stimuli. In prior studies, the stimuli have been limited in terms of coverage, granularity, and retrieval guidance. Here, we present a knowledge based expert system that provides design stimuli across the semantic, document and field levels simultaneously from all fields of engineering and technology and that follows creativity theories to guide the retrieval and use of stimuli according to the knowledge distance. The system is centered on the use of a network of all technology fields in the patent classification system, to store and organize the world's cumulative data on the technological knowledge, concepts, and solutions in the total patent database according to statistically estimated knowledge distance between technology fields. In turn, knowledge distance guides the network-based exploration and retrieval of inspirational stimuli for inferences across near and far fields to generate new design ideas by analogy and combination. With two case studies, we showcase the effectiveness of using the system to explore and retrieve multilevel inspirational stimuli and generate new design ideas for both problem solving and open ended innovation. These case studies also demonstrate the computer aided ideation process, which is data-driven, computationally augmented, theoretically grounded, visually inspiring, and rapid.

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