CVJun 2

Demo2Tutorial: From Human Experience to Multimodal Software Tutorials

arXiv:2606.0395141.0h-index: 21Has Code
Predicted impact top 6% in CV · last 90 daysOriginality Incremental advance
AI Analysis

This work addresses the challenge of converting raw human-computer interaction data into reusable tutorials for both human education and autonomous agent training.

Demo2Tutorial transforms screen recordings and interaction logs into structured multimodal tutorials, outperforming human-authored tutorials and baseline methods in both human learning (faster task completion) and GUI agent planning (improved generalization).

Human experience in digital environments offers a vast, underexplored resource of authentic, untrimmed interactions that contain rich procedural knowledge. We introduce Demo2Tutorial, a framework that transforms this experience captured via screen recordings and interaction logs into structured, multimodal software tutorials for teaching both humans and agents. Demo2Tutorial first collects human experience via a dedicated recorder, then parses raw experience using a multimodal Action Parser to reconstruct perception, action, and intent. A Step Planner then abstracts these steps into hierarchical task graphs representing goals and steps. Finally, a Tutorial Composer transforms the parsed experience into structured, reusable image-text instructions. We evaluate the tutorial generation quality on a new benchmark derived from official software documentation. We further demonstrate that this distilled representation benefits (i) human learning, by automatically generating multimodal tutorials, and (ii) agent learning, by improving downstream GUI-agent planning and generalization. Experiments show Demo2Tutorial produces high-quality tutorials that surpass human-authored ones and significantly outperform baseline methods, while enabling both faster human task completion and improved GUI agent planning, demonstrating that structured tutorials distilled from human experience can serve as effective knowledge representations for advancing both human learning and agent capabilities. Code and data will be available at https://github.com/showlab/Demo2Tutorial.

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