Functional MRI activation signal detection using the periodicity transform

A. V. Deshmukh, V. Shivhare, R. S. Parihar, Vikram M. Gadre, D. P. Patkar, S. Shah, S. Pungavkar
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引用次数: 3

Abstract

A key challenge in functional magnetic resonance imaging (fMRI) is the detection of activation areas in the brain. We introduce a new method of fMRI signal detection, using an approach termed the periodicity transform. the technique is based on temporal data analysis. A search for periodicity is carried out in the fMRI time series data. The method is applicable to block design experiments. In the block paradigm, the stimulus period is known and it is possible to use this information for searching periodicities in the time series data. We present the results for the periodicity detection in the time series of the simulated phantom as well as clinical fMRI data from the finger tapping experiment. No assumptions have been made about the amplitude and frequency of the activation signal. The algorithm extracts arbitrary harmonics at the periodicity defined by the stimulus function.
基于周期性变换的功能性MRI激活信号检测
功能磁共振成像(fMRI)的一个关键挑战是检测大脑中的激活区域。我们介绍了一种新的功能磁共振成像信号检测方法,使用一种称为周期性变换的方法。该技术基于时间数据分析。对fMRI时间序列数据进行周期性搜索。该方法适用于块体设计实验。在块范式中,刺激周期是已知的,并且可以使用该信息来搜索时间序列数据中的周期性。我们给出了模拟幻影时间序列的周期性检测结果以及手指敲击实验的临床fMRI数据。没有对激活信号的幅度和频率作出任何假设。该算法以激励函数定义的周期提取任意谐波。
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