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用于在MRI数据采集期间改进实时心电图伪影校正的噪声消除信号处理方法和计算机系统。

Noise cancellation signal processing method and computer system for improved real-time electrocardiogram artifact correction during MRI data acquisition.

作者信息

Odille Freddy, Pasquier Cédric, Abächerli Roger, Vuissoz Pierre-André, Zientara Gary P, Felblinger Jacques

机构信息

INSERM, ERI13, F-54000 Nancy, France.

出版信息

IEEE Trans Biomed Eng. 2007 Apr;54(4):630-40. doi: 10.1109/TBME.2006.889174.

Abstract

A system was developed for real-time electrocardiogram (ECG) analysis and artifact correction during magnetic resonance (MR) scanning, to improve patient monitoring and triggering of MR data acquisitions. Based on the assumption that artifact production by magnetic field gradient switching represents a linear time invariant process, a noise cancellation (NC) method is applied to ECG artifact linear prediction. This linear prediction is performed using a digital finite impulse response (FIR) matrix, that is computed employing ECG and gradient waveforms recorded during a training scan. The FIR filters are used during further scanning to predict artifacts by convolution of the gradient waveforms. Subtracting the artifacts from the raw ECG signal produces the correction with minimal delay. Validation of the system was performed both off-line, using prerecorded signals, and under actual examination conditions. The method is implemented using a specially designed Signal Analyzer and Event Controller (SAEC) computer and electronics. Real-time operation was demonstrated at 1 kHz with a delay of only 1 ms introduced by the processing. The system opens the possibility of automatic monitoring algorithms for electrophysiological signals in the MR environment.

摘要

开发了一种用于磁共振(MR)扫描期间实时心电图(ECG)分析和伪影校正的系统,以改善患者监测和MR数据采集的触发。基于磁场梯度切换产生的伪影代表线性时不变过程这一假设,将噪声消除(NC)方法应用于ECG伪影线性预测。这种线性预测使用数字有限脉冲响应(FIR)矩阵进行,该矩阵是通过在训练扫描期间记录的ECG和梯度波形计算得出的。在进一步扫描期间使用FIR滤波器通过梯度波形的卷积来预测伪影。从原始ECG信号中减去伪影可产生延迟最小的校正。该系统的验证在离线状态下使用预先记录的信号进行,也在实际检查条件下进行。该方法使用专门设计的信号分析仪和事件控制器(SAEC)计算机及电子设备来实现。在1 kHz频率下展示了实时操作,处理引入的延迟仅为1 ms。该系统开启了在MR环境中对电生理信号进行自动监测算法的可能性。

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