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Nipype: A Flexible, Lightweight and Extensible Neuroimaging Data Processing Framework in Python

机译:Nipype:Python中灵活,轻便和可扩展的神经影像数据处理框架

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摘要

Current neuroimaging software offer users an incredible opportunity to analyze their data in different ways, with different underlying assumptions. Several sophisticated software packages (e.g., AFNI, BrainVoyager, FSL, FreeSurfer, Nipy, R, SPM) are used to process and analyze large and often diverse (highly multi-dimensional) data. However, this heterogeneous collection of specialized applications creates several issues that hinder replicable, efficient, and optimal use of neuroimaging analysis approaches: (1) No uniform access to neuroimaging analysis software and usage information; (2) No framework for comparative algorithm development and dissemination; (3) Personnel turnover in laboratories often limits methodological continuity and training new personnel takes time; (4) Neuroimaging software packages do not address computational efficiency; and (5) Methods sections in journal articles are inadequate for reproducing results. To address these issues, we present Nipype (Neuroimaging in Python: Pipelines and Interfaces; http://nipy.org/nipype), an open-source, community-developed, software package, and scriptable library. Nipype solves the issues by providing Interfaces to existing neuroimaging software with uniform usage semantics and by facilitating interaction between these packages using Workflows. Nipype provides an environment that encourages interactive exploration of algorithms, eases the design of Workflows within and between packages, allows rapid comparative development of algorithms and reduces the learning curve necessary to use different packages. Nipype supports both local and remote execution on multi-core machines and clusters, without additional scripting. Nipype is Berkeley Software Distribution licensed, allowing anyone unrestricted usage. An open, community-driven development philosophy allows the software to quickly adapt and address the varied needs of the evolving neuroimaging community, especially in the context of increasing demand for reproducible research.
机译:当前的神经影像软件为用户提供了难以置信的机会,可以以不同的方式,不同的基本假设来分析其数据。几个复杂的软件包(例如AFNI,BrainVoyager,FSL,FreeSurfer,Nipy,R,SPM)用于处理和分析大型且通常是多样化的(高度多维)数据。但是,这种专用应用程序的异构集合产生了几个问题,这些问题阻碍了神经影像分析方法的可复制,高效和最佳使用:(1)无法统一访问神经影像分析软件和使用信息; (2)没有用于比较算法开发和传播的框架; (3)实验室人员流动经常限制方法的连续性,培训新人员需要时间; (4)Neuroimaging软件包不能解决计算效率问题; (5)期刊文章中的“方法”部分不足以复制结果。为了解决这些问题,我们介绍了Nipype(Python中的神经影像:管道和接口; http://nipy.org/nipype),这是一个开源的,社区开发的软件包和可编写脚本的库。 Nipype通过使用统一的用法语义为现有的神经成像软件提供接口,以及通过使用工作流促进这些软件包之间的交互来解决该问题。 Nipype提供了一种鼓励交互式算法探索的环境,简化了程序包内部和程序包之间的工作流设计,允许快速比较算法的开发,并减少了使用不同程序包所需的学习曲线。 Nipype支持多核计算机和集群上的本地和远程执行,而无需其他脚本。 Nipype是Berkeley Software Distribution的许可,允许任何人不受限制地使用。开放的,社区驱动的开发理念使该软件可以快速适应并满足不断发展的神经影像社区的各种需求,尤其是在对可重复研究的需求不断增加的情况下。

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