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Big data from small data: data-sharing in the ‘long tail’ of neuroscience

机译:小数据中的大数据:神经科学的长尾巴中的数据共享

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摘要

The launch of the US BRAIN and European Human Brain Projects coincides with growing international efforts toward transparency and increased access to publicly funded research in the neurosciences. The need for data-sharing standards and neuroinformatics infrastructure is more pressing than ever. However, ‘big science’ efforts are not the only drivers of data-sharing needs, as neuroscientists across the full spectrum of research grapple with the overwhelming volume of data being generated daily and a scientific environment that is increasingly focused on collaboration. In this commentary, we consider the issue of sharing of the richly diverse and heterogeneous small data sets produced by individual neuroscientists, so-called long-tail data. We consider the utility of these data, the diversity of repositories and options available for sharing such data, and emerging best practices. We provide use cases in which aggregating and mining diverse long-tail data convert numerous small data sources into big data for improved knowledge about neuroscience-related disorders.
机译:美国“大脑”计划和“欧洲人脑计划”的启动与国际社会为提高透明度而做出的努力不断增加,同时也增加了获得神经科学领域公共资助研究的机会。对数据共享标准和神经信息学基础设施的需求比以往任何时候都更为紧迫。但是,“大科学”的努力并不是唯一的数据共享需求驱动力,因为整个研究领域的神经科学家都在努力应对每天生成的大量数据以及日益关注于协作的科学环境。在这篇评论中,我们考虑了共享由单个神经科学家产生的丰富多样且异类的小型数据集的问题,即所谓的长尾数据。我们考虑了这些数据的实用性,可用于共享此类数据的存储库和选项的多样性以及新兴的最佳实践。我们提供了一些用例,在这些用例中,汇总和挖掘各种长尾数据会将大量小数据源转换为大数据,以提高对神经科学相关疾病的认识。

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