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Responsible Data Governance of Neuroscience Big Data

机译:神经科学大数据的负责任数据治理

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摘要

Current discussions of the ethical aspects of big data are shaped by concerns regarding the social consequences of both the widespread adoption of machine learning and the ways in which biases in data can be replicated and perpetuated. We instead focus here on the ethical issues arising from the use of big data in international neuroscience collaborations. Neuroscience innovation relies upon neuroinformatics, large-scale data collection and analysis enabled by novel and emergent technologies. Each step of this work involves aspects of ethics, ranging from concerns for adherence to informed consent or animal protection principles and issues of data re-use at the stage of data collection, to data protection and privacy during data processing and analysis, and issues of attribution and intellectual property at the data-sharing and publication stages. Significant dilemmas and challenges with far-reaching implications are also inherent, including reconciling the ethical imperative for openness and validation with data protection compliance and considering future innovation trajectories or the potential for misuse of research results. Furthermore, these issues are subject to local interpretations within different ethical cultures applying diverse legal systems emphasising different aspects. Neuroscience big data require a concerted approach to research across boundaries, wherein ethical aspects are integrated within a transparent, dialogical data governance process. We address this by developing the concept of “responsible data governance,” applying the principles of Responsible Research and Innovation (RRI) to the challenges presented by the governance of neuroscience big data in the Human Brain Project (HBP).
机译:当前对大数据伦理方面的讨论是由人们对机器学习的广泛采用以及对数据偏见的复制和延续方式的社会后果的担忧所形成的。相反,我们在这里关注国际神经科学合作中使用大数据引起的伦理问题。神经科学的创新依赖于神经信息学,通过新兴技术实现的大规模数据收集和分析。这项工作的每个步骤都涉及道德方面,从遵守遵守问题到知情同意或动物保护原则以及在数据收集阶段的数据重用问题,到数据处理和分析期间的数据保护和隐私问题,以及数据共享和发布阶段的归因和知识产权。内在的重大难题和挑战也是固有的,包括将开放性和验证的道德要求与数据保护合规性相协调,并考虑未来的创新轨迹或滥用研究成果的可能性。此外,这些问题在适用各种伦理制度,强调不同方面的情况下,受到不同伦理文化中当地解释的制约。神经科学大数据需要跨界研究的协同方法,其中道德方面被整合在透明的对话数据治理过程中。我们通过开发“负责任的数据治理”的概念来解决此问题,将负责任的研究和创新(RRI)的原理应用于人脑计划(HBP)中神经科学大数据的治理所带来的挑战。

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