DesignQuizzer: A Community-Powered Conversational Agent for Learning Visual Design
October 18, 2023 Β· Declared Dead Β· π Proc. ACM Hum. Comput. Interact.
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Authors
Zhenhui Peng, Qiaoyi Chen, Zhiyu Shen, Xiaojuan Ma, Antti Oulasvirta
arXiv ID
2310.12019
Category
cs.HC: Human-Computer Interaction
Citations
12
Venue
Proc. ACM Hum. Comput. Interact.
Last Checked
4 months ago
Abstract
Online design communities, where members exchange free-form views on others' designs, offer a space for beginners to learn visual design. However, the content of these communities is often unorganized for learners, containing many redundancies and irrelevant comments. In this paper, we propose a computational approach for leveraging online design communities to run a conversational agent that assists informal learning of visual elements (e.g., color and space). Our method extracts critiques, suggestions, and rationales on visual elements from comments. We present DesignQuizzer, which asks questions about visual design in UI examples and provides structured comment summaries. Two user studies demonstrate the engagement and usefulness of DesignQuizzer compared with the baseline (reading reddit.com/r/UI_design). We also showcase how effectively novices can apply what they learn with DesignQuizzer in a design critique task and a visual design task. We discuss how to use our approach with other communities and offer design considerations for community-powered learning support tools.
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