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Analysis of brain activation patterns using a 3‐D scale‐space primal sketch

机译:使用3D比例空间原始草图分析大脑激活模式

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摘要

A fundamental problem in brain imaging concerns how to define functional areas consisting of neurons that are activated together as populations. We propose that this issue can be ideally addressed by a computer vision tool referred to as the This concept has the attractive properties that it allows for automatic and simultaneous extraction of the spatial extent and the significance of regions with locally high activity. In addition, a hierarchical nested tree structure of activated regions and subregions is obtained. The subject in this article is to show how the scale‐space primal sketch can be used for automatic determination of the spatial extent and the significance of rCBF changes. Experiments show the result of applying this approach to functional PET data, including a preliminary comparison with two more traditional clustering techniques. Compared to previous approaches, the method overcomes the limitations of performing the analysis at a single scale or assuming specific models of the data. Hum. Brain Mapping 7:166–194. © 1999 Wiley‐Liss, Inc.
机译:脑成像的一个基本问题涉及如何定义功能区域,该功能区域由作为群体共同激活的神经元组成。我们建议,可以通过称为的计算机视觉工具来理想地解决此问题。此概念具有吸引人的属性,它允许自动并同时提取空间范围和局部高活动区域的重要性。另外,获得了激活区域和子区域的分层嵌套树结构。本文的主题是展示如何使用比例尺空间原始草图自动确定空间范围和rCBF变化的重要性。实验显示了将该方法应用于功能性PET数据的结果,包括与两种其他传统聚类技术的初步比较。与以前的方法相比,该方法克服了在单一规模上执行分析或假设数据的特定模型的局限性。哼。脑图7:166–194。 ©1999 Wiley‐Liss,Inc.

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