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Fiber Bragg Grating Sensors for Performance Evaluation of Fast Magnetic Resonance Thermometry on Synthetic Phantom

机译:用于合成幻像的快速磁共振测温性能评价光纤布拉格光栅传感器

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摘要

The increasing recognition of minimally invasive thermal treatment of tumors motivate the development of accurate thermometry approaches for guaranteeing the therapeutic efficacy and safety. Magnetic Resonance Thermometry Imaging (MRTI) is nowadays considered the gold-standard in thermometry for tumor thermal therapy, and assessment of its performances is required for clinical applications. This study evaluates the accuracy of fast MRTI on a synthetic phantom, using dense ultra-short Fiber Bragg Grating (FBG) array, as a reference. Fast MRTI is achieved with a multi-slice gradient-echo echo-planar imaging (GRE-EPI) sequence, allowing monitoring the temperature increase induced with a 980 nm laser source. The temperature distributions measured with 1 mm-spatial resolution with both FBGs and MRTI were compared. The root mean squared error (RMSE) value obtained by comparing temperature profiles showed a maximum error of 1.2 °C. The Bland-Altman analysis revealed a mean of difference of 0.1 °C and limits of agreement 1.5/−1.3 °C. FBG sensors allowed to extensively assess the performances of the GRE-EPI sequence, in addition to the information on the MRTI precision estimated by considering the signal-to-noise ratio of the images (0.4 °C). Overall, the results obtained for the GRE-EPI fully satisfy the accuracy (~2 °C) required for proper temperature monitoring during thermal therapies.
机译:肿瘤微创热处理的越来越多的识别促进了用于保证治疗疗效和安全性的准确测温方法的发展。如今,磁共振测温成像(MRTI)认为肿瘤热疗的温度测量标准,并且对临床应用需要对其性能进行评估。本研究评估了使用致密的超短纤维布拉格光栅(FBG)阵列作为参考的致密超短纤维布拉格光栅(FBG)阵列对合成模型的快速MRTI的准确性。通过多切片梯度回波 - 平面成像(GRE-EPI)序列实现快速MRTI,允许监测用980nm激光源引起的温度增加。比较了用FBG和MRTI的1毫米空间分辨率测量的温度分布。通过比较温度分布获得的根平均平方误差(RMSE)值显示为1.2°C的最大误差。 Bland-Altman分析显示出0.1°C的差异和协议限制1.5 / -1.3°C。除了通过考虑图像的信噪比(0.4°C)的信噪比来广泛地评估GRE-EPI序列的性能的FBG传感器。总的来说,对GRE-EPI获得的结果完全满足了热疗法期间适当的温度监测所需的精度(〜2°C)。

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