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Quantitative MR thermometry based on phase-drift correction PRF shift method at 0.35?T

机译:基于相漂移校正PRF位移法在0.35?T的定量MR测温

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Noninvasive magnetic resonance thermometry (MRT) at low-field using proton resonance frequency shift (PRFS) is a promising technique for monitoring ablation temperature, since?low-field MR scanners with open-configuration are more suitable for interventional procedures than closed systems. In this study, phase-drift correction PRFS with first-order polynomial fitting method was proposed to investigate the feasibility and accuracy of quantitative MR thermography during hyperthermia procedures in a 0.35?T open MR scanner. Unheated phantom and ex vivo porcine liver experiments were performed to evaluate the optimal polynomial order for phase-drift correction PRFS. The temperature estimation approach was tested in brain temperature experiments of three healthy volunteers at room temperature, and in ex vivo porcine liver microwave ablation experiments. The output power of the microwave generator was set at 40?W for 330?s. In the unheated experiments, the temperature root mean square error (RMSE) in the inner region of interest was calculated to assess the best-fitting order for polynomial fit. For ablation experiments, relative temperature difference profile measured by the phase-drift correction PRFS was compared with the temperature changes recorded by fiber optic temperature probe around the microwave ablation antenna within the target thermal region. The phase-drift correction PRFS using first-order polynomial fitting could achieve the smallest temperature RMSE in unheated phantom, ex vivo porcine liver and in vivo human brain experiments. In the ex vivo porcine liver microwave ablation procedure, the temperature error between MRT and fiber optic probe of all but six temperature points were less than 2?°C. Overall, the RMSE of all temperature points was 1.49?°C. Both in vivo and ex vivo experiments showed that MR thermometry based on the phase-drift correction PRFS with first-order polynomial fitting could be applied to monitor temperature changes during microwave ablation in a low-field open-configuration whole-body MR scanner.
机译:使用质子共振频移(PRFS)的低场无创磁共振测温(MRT)是一种有前途的监测消融温度的技术,因为与封闭系统相比,具有开放配置的低场MR扫描仪更适合介入手术。在这项研究中,提出了使用一阶多项式拟合方法进行相漂移校正PRFS的方法,以研究在0.35?T开放式MR扫描仪中进行高温程序时定量MR热成像的可行性和准确性。进行了未加热的体模和离体猪肝脏实验,以评估相移校正PRFS的最佳多项式顺序。在三名健康志愿者在室温下的脑温实验以及离体猪肝微波消融实验中测试了温度估算方法。微波发生器的输出功率设置为40?W,持续330?s。在未加热的实验中,计算了内部感兴趣区域的温度均方根误差(RMSE),以评估多项式拟合的最佳拟合顺序。对于消融实验,将通过相位漂移校正PRFS测量的相对温差曲线与目标温度区域内微波消融天线周围的光纤温度探测器记录的温度变化进行了比较。使用一阶多项式拟合进行的相移校正PRFS可以在未加热的体模,离体猪肝和体内人脑实验中获得最小的温度RMSE。在离体猪肝微波消融手术中,除六个温度点外,所有其他物质在MRT和光纤探头之间的温度误差均小于2℃。总体而言,所有温度点的均方根误差(RMSE)为1.49°C。体内和体外实验均表明,基于相位漂移校正PRFS和一阶多项式拟合的MR测温法可用于监测低场开放结构全身MR扫描仪在微波消融过程中的温度变化。

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