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A Two-Phase Visualization System for Continuous Human-AI Collaboration in Sequelae Analysis and Modeling (2407.14769v1)
Published 20 Jul 2024 in cs.HC
Abstract: In healthcare, AI techniques are widely used for tasks like risk assessment and anomaly detection. Despite AI's potential as a valuable assistant, its role in complex medical data analysis often oversimplifies human-AI collaboration dynamics. To address this, we collaborated with a local hospital, engaging six physicians and one data scientist in a formative study. From this collaboration, we propose a framework integrating two-phase interactive visualization systems: one for Human-Led, AI-Assisted Retrospective Analysis and another for AI-Mediated, Human-Reviewed Iterative Modeling. This framework aims to enhance understanding and discussion around effective human-AI collaboration in healthcare.
- Yang Ouyang (10 papers)
- Chenyang Zhang (25 papers)
- He Wang (294 papers)
- Tianle Ma (6 papers)
- Chang Jiang (15 papers)
- Yuheng Yan (1 paper)
- Zuoqin Yan (1 paper)
- Xiaojuan Ma (74 papers)
- Chuhan Shi (12 papers)
- Quan Li (66 papers)