PersonaFlow: Designing LLM-Simulated Expert Perspectives for Enhanced Research Ideation
September 19, 2024 Β· Declared Dead Β· π Conference on Designing Interactive Systems
"No code URL or promise found in abstract"
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Authors
Yiren Liu, Pranav Sharma, Mehul Jitendra Oswal, Haijun Xia, Yun Huang
arXiv ID
2409.12538
Category
cs.HC: Human-Computer Interaction
Cross-listed
cs.AI
Citations
25
Venue
Conference on Designing Interactive Systems
Last Checked
4 months ago
Abstract
Generating interdisciplinary research ideas requires diverse domain expertise, but access to timely feedback is often limited by the availability of experts. In this paper, we introduce PersonaFlow, a novel system designed to provide multiple perspectives by using LLMs to simulate domain-specific experts. Our user studies showed that the new design 1) increased the perceived relevance and creativity of ideated research directions, and 2) promoted users' critical thinking activities (e.g., interpretation, analysis, evaluation, inference, and self-regulation), without increasing their perceived cognitive load. Moreover, users' ability to customize expert profiles significantly improved their sense of agency, which can potentially mitigate their over-reliance on AI. This work contributes to the design of intelligent systems that augment creativity and collaboration, and provides design implications of using customizable AI-simulated personas in domains within and beyond research ideation.
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