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Hierarchical Event Descriptors (HED): Semi-Structured Tagging for Real-World Events in Large-Scale EEG

机译:分层事件描述符(HED):大型EEG中真实事件的半结构化标记

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Real-world brain imaging by EEG requires accurate annotation of complex subject-environment interactions in event-rich tasks and paradigms. This paper describes the evolution of the Hierarchical Event Descriptor (HED) system for systematically describing both laboratory and real-world events. HED version 2, first described here, provides the semantic capability of describing a variety of subject and environmental states. HED descriptions can include stimulus presentation events on screen or in virtual worlds, experimental or spontaneous events occurring in the real world environment, and events experienced via one or multiple sensory modalities. Furthermore, HED 2 can distinguish between the mere presence of an object and its actual (or putative) perception by a subject. Although the HED framework has implicit ontological and linked data representations, the user-interface for HED annotation is more intuitive than traditional ontological annotation. We believe that hiding the formal representations allows for a more user-friendly interface, making consistent, detailed tagging of experimental, and real-world events possible for research users. HED is extensible while retaining the advantages of having an enforced common core vocabulary. We have developed a collection of tools to support HED tag assignment and validation; these are available at hedtags.org . A plug-in for EEGLAB ( sccn.ucsd.edu/eeglab ), CTAGGER, is also available to speed the process of tagging existing studies.
机译:通过EEG进行现实世界的大脑成像,需要在事件丰富的任务和范例中准确注释复杂的对象-环境交互作用。本文描述了分层事件描述符(HED)系统的演变,该系统用于系统描述实验室事件和现实事件。这里首先描述的HED版本2提供了描述各种主题和环境状态的语义功能。 HED描述可以包括屏幕上或虚拟世界中的刺激呈现事件,现实世界环境中发生的实验性或自发性事件以及通过一种或多种感觉方式经历的事件。此外,HED 2可以区分物体的存在与物体对物体的实际(或假定)感知。尽管HED框架具有隐式的本体论和链接的数据表示,但是用于HED注释的用户界面比传统的本体论注释更直观。我们相信,隐藏正式的表述可以提供一个更加用户友好的界面,从而使研究用户可以对实验和现实世界的事件进行一致,详细的标记。 HED是可扩展的,同时保留了具有强制通用核心词汇的优势。我们已经开发了一系列工具来支持HED标签分配和验证;这些可以在hedtags.org上找到。也可以使用EEGLAB的插件(sccn.ucsd.edu/eeglab)CTAGGER,以加快对现有研究进行标记的过程。

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