Facilitating Proactive and Reactive Guidance for Decision Making on the Web: A Design Probe with WebSeek
Yanwei Huang, Arpit Narechania
摘要
Web AI agents such as ChatGPT Agent and GenSpark are increasingly used for routine web-based tasks, yet they still rely on text-based input prompts, lack proactive detection of user intent, and offer no support for interactive data analysis and decision making. We present WebSeek, a mixed-initiative browser extension that enables users to discover and extract information from webpages to then flexibly build, transform, and refine tangible data artifacts–such as tables, lists, and visualizations–all within an interactive canvas. Within this environment, users can perform analysis–including data transformations such as joining tables or creating visualizations–while an in-built AI both proactively offers context-aware guidance and automation, and reactively responds to explicit user requests. An exploratory user study (N=15) with WebSeek as a probe reveals participants’ diverse analysis strategies, underscoring their desire for transparency and control during human-AI collaboration.
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它引用的顶会 Paper21
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- Lyra 2: Designing Interactive Visualizations by DemonstrationJonathan Zong, Dhiraj Barnwal, Rupayan Neogy, Arvind SatyanarayanIEEE VIS 2020 · 被引用 50 次
- Supporting Expressive and Faithful Pictorial Visualization Design with Visual Style TransferYang Shi, Pei Liu, Siji Chen, Mengdi Sun 等IEEE VIS 2022 · 被引用 40 次
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