在可穿戴数据分析中探索可解释性的应用:系统文献综述
Yasmin Abdelaal1, Michaël Aupetit2, Abdelkader Baggag2
1College of Science and Engineering, Hamad Bin Khalifa University, Doha, Qatar.
Journal of medical Internet research
|December 24, 2024
概括
可解释的人工智能 (XAI) 对透明的可穿戴健康技术至关重要. 虽然手腕设备很常见,但使其数据易于理解需要进一步开发,特别是涉及用户反.
科学领域:
- 医疗信息学 医疗信息学
- 人工智能的人工智能
- 可穿戴技术可穿戴技术
背景情况:
- 可穿戴技术越来越多地用于医疗保健.
- 可穿戴设备中复杂的AI模型会产生"黑子"问题,阻碍信任.
- 可解释AI (XAI) 通过增加模型透明度提供了一个解决方案.
研究的目的:
- 审查有关可穿戴设备中的可解释性的文献.
- 探索XAI如何增强数据和模型的可解释性.
- 识别可穿戴设备和XAI的交叉点上的可能性.
主要方法:
- 在 ACM,IEEE,PubMed,Springer,JMIR,Nature,Scopus (2018-2022) 中进行了搜索.
- 包括关于可穿戴设备,传感器,手机,XAI,ML,DL和量化自我数据的研究.
- 分析了25篇同行评审的论文.
主要成果:
- 腕式可穿戴设备 (例如Fitbit) 在医疗保健中很常见.
- 这些设备数据的解释性需要更多的关注.
- 后期方法,特别是沙普利的附加解释,是突出的,经常可视化.
结论:
- 在可穿戴医疗技术中,XAI集成是克服"黑子"模式的关键.
- 提高数据可解释性和用户参与度至关重要.
- 为了在医疗保健可穿戴设备中实现透明和值得信赖的AI,需要进一步的研究.
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