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Data mining for health: staking out the ethical territory of digital phenotyping

机译:促进健康的数据挖掘:超越数字表型的伦理范围

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摘要

Digital phenotyping uses smartphone and wearable signals to measure cognition, mood, and behavior. This promising new approach has been developed as an objective, passive assessment tool for the diagnosis and treatment of mental illness. Digital phenotyping is currently used with informed consent in research studies but is expected to expand to broader uses in healthcare and direct-to-consumer applications. Digital phenotyping could involve the collection of massive amounts of individual data and potential creation of new categories of health and risk assessment data. Because existing ethical and regulatory frameworks for the provision of mental healthcare do not clearly apply to digital phenotyping, it is critical to consider its possible ethical, legal, and social implications. This paper addresses four major areas where guidelines and best practices will be helpful: transparency, informed consent, privacy, and accountability. It will be important to consider these issues early in the development of this new approach so that its promise is not limited by harmful effects or unintended consequences.
机译:数字表型使用智能手机和可穿戴信号来衡量认知,情绪和行为。已经开发出这种有前途的新方法,作为诊断和治疗精神疾病的客观,被动评估工具。数字表型目前已在研究研究中获得知情同意的情况下使用,但有望扩展到医疗保健和直接面向消费者的应用中。数字表型可能涉及收集大量的个人数据,并可能创建新类别的健康和风险评估数据。由于提供精神保健的现有道德和监管框架并未明确适用于数字表型,因此考虑其可能的道德,法律和社会影响至关重要。本文针对指导原则和最佳实践将在四个主要领域提供帮助:透明度,知情同意,隐私权和问责制。在开发这种新方法时,必须尽早考虑这些问题,以确保其承诺不受有害影响或意外后果的限制。

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