Department of Neuroscience, School of Medicine and Public Health, University of Wisconsin-Madison, Madison, United States.
Department of Surgery, Stanford University School of Medicine, Stanford, United States.
Elife. 2019 Feb 7;8:e40231. doi: 10.7554/eLife.40231.
Modern neuroscience research often requires the coordination of multiple processes such as stimulus generation, real-time experimental control, as well as behavioral and neural measurements. The technical demands required to simultaneously manage these processes with high temporal fidelity is a barrier that limits the number of labs performing such work. Here we present an open-source, network-based parallel processing framework that lowers this barrier. The Real-Time Experimental Control with Graphical User Interface (REC-GUI) framework offers multiple advantages: () a modular design that is agnostic to coding language(s) and operating system(s) to maximize experimental flexibility and minimize researcher effort, () simple interfacing to connect multiple measurement and recording devices, () high temporal fidelity by dividing task demands across CPUs, and () real-time control using a fully customizable and intuitive GUI. We present applications for human, non-human primate, and rodent studies which collectively demonstrate that the REC-GUI framework facilitates technically demanding, behavior-contingent neuroscience research.
This article has been through an editorial process in which the authors decide how to respond to the issues raised during peer review. The Reviewing Editor's assessment is that all the issues have been addressed (see decision letter).
现代神经科学研究通常需要协调多个过程,如刺激生成、实时实验控制以及行为和神经测量。同时以高时间精度管理这些过程所需的技术要求是限制执行此类工作的实验室数量的一个障碍。在这里,我们提出了一个开源的、基于网络的并行处理框架,降低了这一障碍。具有图形用户界面的实时实验控制(REC-GUI)框架具有多个优点:()一种模块化设计,对编程语言和操作系统是不可知的,以最大限度地提高实验灵活性并最小化研究人员的工作量,()通过将任务需求分配到 CPU 上来实现简单的接口连接多个测量和记录设备,()使用完全可定制和直观的图形用户界面实现实时控制。我们展示了适用于人类、非人类灵长类动物和啮齿动物研究的应用,这些应用共同证明了 REC-GUI 框架促进了技术要求高、行为相关的神经科学研究。
本文经过编辑过程,作者决定如何处理同行评审中提出的问题。审稿人的评估是所有问题都已得到解决(见评审意见)。