Generative Transformers for Design Concept Generation

Author:

Zhu Qihao1,Luo Jianxi2

Affiliation:

1. 8 Somapah Rd, Singapore 487372 Singapore, Singapore 487372 Singapore

2. 8 Somapah Rd Singapore 487372 Singapore

Abstract

Abstract Generating novel and useful concepts is essential during the early design stage to explore a large variety of design opportunities, which usually requires advanced design thinking ability and a wide range of knowledge from designers. Growing works on computer-aided tools have explored the retrieval of knowledge and heuristics from design data. However, they only provide stimuli to inspire designers from limited aspects. This study explores the recent advance of the natural language generation (NLG) technique in the artificial intelligence (AI) field to automate the early-stage design concept generation. Specifically, a novel approach utilizing the generative pre-trained transformer (GPT) is proposed to leverage the knowledge and reasoning from textual data and transform them into new concepts in understandable language. Three concept generation tasks are defined to leverage different knowledge and reasoning: domain knowledge synthesis, problem-driven synthesis, and analogy-driven synthesis. The experiments with both human and data-driven evaluation show good performance in generating novel and useful concepts.

Publisher

ASME International

Subject

Industrial and Manufacturing Engineering,Computer Graphics and Computer-Aided Design,Computer Science Applications,Software

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Toward Artificial Empathy for Human-Centered Design;Journal of Mechanical Design;2023-12-18

2. Multi-Modal Machine Learning in Engineering Design: A Review and Future Directions;Journal of Computing and Information Science in Engineering;2023-11-24

3. Designing the future of the fourth industrial revolution;Journal of Engineering Design;2023-10-03

4. Improving news headline text generation quality through frequent POS-Tag patterns analysis;Engineering Applications of Artificial Intelligence;2023-10

5. Supporting decision making in design creativity through requirements identification and evaluation;International Journal of Design Creativity and Innovation;2023-03-20

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