arXiv:2507.10240cs.HCcs.AI2025-07被引 6

用可视化分析提升AI透明度,增强医疗等关键场景的信任

Visual Analytics for Explainable and Trustworthy Artificial Intelligence

  • 结合AI与交互图表,让用户参与模型优化
  • 支持数据处理到模型对比的全阶段任务
  • 适合医疗、金融等领域需高可信AI的从业者

社会日益依赖智能系统解决复杂问题,从电影推荐到医院患者诊断。随着诊断准确率和效率的提升,人工智能有望每年减少约4500亿欧元的经济损失并避免大量误诊死亡。然而,其广泛应用受制于缺乏透明性——许多系统如“黑箱”,不揭示决策过程,阻碍专家信任。视觉分析(VA)通过将AI模型与交互式可视化结合,提供解决方案:用户可借助领域知识改进模型,弥合人与AI理解鸿沟。本文定义并分类了视觉分析在典型AI流程各阶段促进信任的机制,提出创新可视化设计空间,并回顾此前开发的VA仪表板,支持数据处理、特征工程、超参数调优、模型理解、调试、优化及比较等关键任务。

原文摘要 · Abstract (English)

Our society increasingly depends on intelligent systems to solve complex problems, ranging from recommender systems suggesting the next movie to watch to AI models assisting in medical diagnoses for hospitalized patients. With the iterative improvement of diagnostic accuracy and efficiency, AI holds significant potential to mitigate medical misdiagnoses by preventing numerous deaths and reducing an economic burden of approximately 450 EUR billion annually. However, a key obstacle to AI adoption lies in the lack of transparency: many automated systems function as "black boxes," providing predictions without revealing the underlying processes. This opacity can hinder experts' ability to trust and rely on AI systems. Visual analytics (VA) provides a compelling solution by combining AI models with interactive visualizations. These specialized charts and graphs empower users to incorporate their domain expertise to refine and improve the models, bridging the gap between AI and human understanding. In this work, we define, categorize, and explore how VA solutions can foster trust across the stages of a typical AI pipeline. We propose a design space for innovative visualizations and present an overview of our previously developed VA dashboards, which support critical tasks within the various pipeline stages, including data processing, feature engineering, hyperparameter tuning, understanding, debugging, refining, and comparing models.

可解释AI可视化分析信任建立医疗AI

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