arXiv:2503.12353cs.CYcs.AI2025-03被引 3

用模拟数据训练AI,既合规又提升模型性能

Synthetic Data for Robust AI Model Development in Regulated Enterprises

  • 用仿真数据替代真实客户数据训练模型
  • 提升模型多样性并满足隐私法规要求
  • 适合金融、医疗等强监管行业应用

在当前商业环境中,企业需在伦理使用客户数据以驱动AI解决方案与遵守数据隐私及使用法规之间取得平衡。本文探讨合成数据作为解决这一困境的可能方案。合成数据是模仿真实数据的模拟数据。我们研究了金融、医疗等高度监管行业如何利用合成数据构建稳健的AI系统,同时保持合规性。研究表明,合成数据可使模型从更丰富的数据中学习,并通过使用合成数据而非客户原始信息来帮助组织符合数据隐私法律。文章通过案例分析展示其在金融与医疗领域的有效应用,同时讨论了使用合成数据面临的挑战及引发的伦理问题。研究发现,合成数据有望成为监管型行业中AI发展的关键转折点。其潜力的实现依赖于产业界、学术界与监管机构的协同合作。本文旨在推动关于在受监管企业中使用合成数据构建伦理、负责任且高效的AI系统的讨论。

原文摘要 · Abstract (English)

In today's business landscape, organizations need to find the right balance between using their customers' data ethically to power AI solutions and being compliant regarding data privacy and data usage regulations. In this paper, we discuss synthetic data as a possible solution to this dilemma. Synthetic data is simulated data that mimics the real data. We explore how organizations in heavily regulated industries, such as financial institutions or healthcare organizations, can leverage synthetic data to build robust AI solutions while staying compliant. We demonstrate that synthetic data offers two significant advantages by allowing AI models to learn from more diverse data and by helping organizations stay compliant against data privacy laws with the use of synthetic data instead of customer information. We discuss case studies to show how synthetic data can be effectively used in the finance and healthcare sector while discussing the challenges of using synthetic data and some ethical questions it raises. Our research finds that synthetic data could be a game-changer for AI in regulated industries. The potential can be realized when industry, academia, and regulators collaborate to build solutions. We aim to initiate discussions on the use of synthetic data to build ethical, responsible, and effective AI systems in regulated enterprise industries.

合成数据合规AI金融医疗

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