对纵向和时间序列健康数据的合成数据生成方法
Marko Miletic1, Murat Sariyar1
1Bern University of Applied Sciences, Switzerland.
Studies in health technology and informatics
|July 1, 2025
概括
本综述确定了14种合成健康数据生成方法,重点关注纵向和时间序列数据. 它指导未来的合成数据生成 (SDG) 模型的开发和选择.
科学领域:
- 医疗信息学 医疗信息学
- 数据科学数据科学数据科学
- 生物统计学 生物统计学
背景情况:
- 综合数据生成 (SDG) 是对结构化健康数据的认可.
- 纵向和时间序列健康数据带来了独特的世代挑战.
- 有效的SDG对于保护隐私的健康数据分析至关重要.
研究的目的:
- 对长度和时间序列健康数据的SDG方法进行快速文献审查.
- 在这个领域识别和分类突出的SDG技术.
- 为这些方法的实用性,忠实性和隐私提供初步见解.
主要方法:
- 在PubMed和swisscovery数据库中进行系统搜索.
- 对338件被检索的物品进行分析.
- 确定了14种可持续发展目标方法的分类.
主要成果:
- 确定了14种用于纵向和时间序列健康数据的突出SDG方法.
- 方法包括生成对抗网络 (GAN),扩散模型,变量自编码器 (VAE),基于变压器的模型和贝叶斯方法.
- 收集了对实用性,忠诚度和隐私影响的初步见解.
结论:
- 该审查为复杂的健康数据提供了对当前SDG方法的基本理解.
- 它作为研究人员在选择适当的SDG模型时的指南.
- 需要进一步的研究来完善方法,并解决合成健康数据生成中的隐私问题.
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