首页> 外文期刊>American Journal of Neuroradiology >Whole-brain Functional MR Imaging Activation from a Finger-tapping Task Examined with Independent Component Analysis
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Whole-brain Functional MR Imaging Activation from a Finger-tapping Task Examined with Independent Component Analysis

机译:全脑功能MR成像激活与独立成分分析一起检查的敲击任务

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BACKGROUND AND PURPOSE: Independent component analysis (ICA), unlike other methods for processing functional MR (fMR) imaging data, requires no a priori assumptions about the hemodynamic response to the task. The purpose of this study was to analyze the temporal characteristics and the spatial mapping of the independent components identified by ICA when the subject performs a finger-tapping task. METHODS: Ten healthy subjects performed variations of the finger-tapping task conventionally used to map the sensorimotor cortex. The scan data were processed with ICA, and the temporal configuration of the components and their spatial localizations were studied. The locations with activation were tabulated and compared with locations known to be involved in the organization of motor functions in the brain. RESULTS: Components were identified that correlated to varying degrees with the conventional boxcar reference function. One or more of these components mapped to the sensorimotor cortex, supplementary motor area (SMA), putamen, and thalamus. By means of ICA components, sensorimotor cortex, supplementary motor area, and superior cerebellar activation were identified bilaterally in 100% of the subjects; thalamus activation was contralateral to the active hand in 80%; and putamen activation was contralateral to the active hand in 60%. CONCLUSION: ICA processing of multislice fMR imaging data acquired during finger tapping identifies the sensorimotor cortex, SMA, cerebellar, putamen, and thalamic activation. ICA appears to be a method that provides information on both the temporal and spatial characteristics of activation. Multiple task-related components can be identified by ICA, and specific activation maps can be derived from each separate component.
机译:背景与目的:独立成分分析(ICA)与其他处理功能性MR(fMR)成像数据的方法不同,它不需要关于血流动力学的先验假设。 / sup>响应任务。本研究的目的是分析 ICA识别出的 独立组件的时间特征和空间映射,当受试者执行 手指操作时, 方法:十名健康受试者进行了通常用于映射感觉运动皮层的指尖敲击 任务。 扫描数据用ICA处理,研究了组件的时间构型 及其空间定位。 将激活的位置制成表格,与已知与大脑运动 的功能组织有关的 位置进行了比较。 结果:确定了与变化的相关的组件具有常规Boxcar参考功能的度数。这些成分中的一个 或更多映射到感觉运动皮层,补充运动区域(SMA),壳壳和丘脑。通过ICA成分的 在100%的受试者中双侧确定了感觉运动皮层,辅助运动 区域和上小脑激活。丘脑的激活与活动手的对侧 占80%;结论:60%的活跃手对角质膜活化是对侧的。 结论:ICA加工的多层fMR成像数据 在手指敲击过程中识别出感觉运动皮质,SMA, 小脑,壳聚糖和丘脑激活。 ICA 似乎是一种提供有关激活的时间特征和 空间特征的信息的方法。 ICA可以识别多个与任务相关的 组件,并且可以从每个单独的组件派生特定的激活 映射。

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  • 来源
    《American Journal of Neuroradiology》 |2000年第9期|1629-1635|共7页
  • 作者单位

    From the Departments of Radiology (C.H.M., V.M.H.) and Medical Physics (D.C., M.Q., M.E.M.), University of Wisconsin, Madison, WI.;

    From the Departments of Radiology (C.H.M., V.M.H.) and Medical Physics (D.C., M.Q., M.E.M.), University of Wisconsin, Madison, WI.;

    From the Departments of Radiology (C.H.M., V.M.H.) and Medical Physics (D.C., M.Q., M.E.M.), University of Wisconsin, Madison, WI.;

    From the Departments of Radiology (C.H.M., V.M.H.) and Medical Physics (D.C., M.Q., M.E.M.), University of Wisconsin, Madison, WI.;

    From the Departments of Radiology (C.H.M., V.M.H.) and Medical Physics (D.C., M.Q., M.E.M.), University of Wisconsin, Madison, WI.;

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  • 入库时间 2022-08-17 23:25:11

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