A Justice-First Approach to Ambient Intelligence in Healthcare.

Jonathan Herington,Mildred K Cho
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Abstract

Ambient intelligence systems (AIS) are increasingly deployed to provide persistent, artificially intelligent, monitoring and documentation of healthcare. AIS pose many ethical issues, including risks to the privacy of third parties, pernicious biases in predictive analytics, and intractable conflicts between the interests of patients, family members and care providers. In this paper we argue that these risks cannot be effectively navigated by applying a traditional bioethical framework. The traditional bioethical framework focuses heavily on protecting the autonomy and interests of a patient within the context of a single decision. An AIS, on the other hand, occupies a physical space and thus implicates multiple stakeholders, with interests that may conflict, in a setting where individually opting out of the interaction may be impractical or infeasible. Hence, we argue that, like many questions arising in the context of public health ethics, they should be dealt with through a "justice-first" approach to ethical theorizing.
医疗保健领域环境智能的公正优先方法
环境智能系统(AIS)被越来越多地用于提供医疗保健的持续、人工智能监控和记录。AIS带来了许多伦理问题,包括对第三方隐私的风险、预测分析中的有害偏见,以及患者、家庭成员和护理提供者之间难以解决的利益冲突。在本文中,我们认为这些风险不能通过应用传统的生物伦理框架有效地导航。传统的生物伦理框架主要侧重于在单一决定的背景下保护患者的自主权和利益。另一方面,人工智能系统占据了一个物理空间,因此涉及多个利益相关者,他们的利益可能会发生冲突,在这种情况下,个人选择退出互动可能是不切实际或不可行的。因此,我们认为,就像在公共卫生伦理背景下出现的许多问题一样,它们应该通过“正义优先”的伦理理论化方法来处理。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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