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首页> 外文期刊>Journal of magnetic resonance imaging: JMRI >Variation correction algorithm: Analysis of phase suppression and thermal profile fidelity for proton resonance frequency magnetic resonance thermometry at 0.2 T.
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Variation correction algorithm: Analysis of phase suppression and thermal profile fidelity for proton resonance frequency magnetic resonance thermometry at 0.2 T.

机译:变化校正算法:质子共振频率磁共振测温在0.2 T时的相位抑制和热分布保真度分析。

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摘要

PURPOSE: To develop and analyze the performance of the variation correction algorithm (VCA), a phase correction technique that mitigates the contribution of background phase variations by combining accurate alignment of echoes, K-space-based phase correction (as opposed to spatial polynomials), and extraction of alias-free phase difference images. MATERIALS AND METHODS: A series of echo-shifted gradient-recalled echo (GRE) images was processed with K-space alignment and phase corrected with increasing sizes of M x M masks of central K-space coefficients. The extent of background phase variation suppression due to magnet field drift was assessed. Further, a simulated thermal profile was superimposed on the same data in a related experiment. Residual errors in reconstructed simulated thermal profiles were quantitatively characterized to estimate algorithm performance. RESULTS: Using a 3 x 3 K-space mask, the VCA was able to 1) maintain the typical mean backround error in a 35 x 35 pixel region of interest (ROI) at -0.1 degrees C; and 2) reconstruct, relative to the applied thermal profile, a phase-corrected profile that typically contains a 1.7 degrees C underestimation of peak temperature difference and a mean error along the 60 degrees C line of -0.8 degrees C. CONCLUSION: The results suggest that thermal profiles can be accurately reconstructed at 0.2 T using the VCA, even in the presence of over 1 ppm spatially and temporally dependent field drift over a 1-hour time frame. J. Magn. Reson. Imaging 2003;17:227-240.
机译:目的:开发和分析变异校正算法(VCA)的性能,这是一种通过结合回波的精确对准,基于K空间的相位校正(与空间多项式相对)来减轻背景相位变化的影响的相位校正技术,并提取无混叠相位差图像。材料与方法:用K空间对齐对一系列回波移位的梯度回波(GRE)图像进行处理,并通过增加中心K空间系数的M x M掩模的大小来进行相位校正。评估了由于磁场漂移导致的背景相位变化抑制的程度。此外,在相关实验中,将模拟的热曲线叠加在相同的数据上。对重建的模拟热剖面中的残留误差进行定量表征,以估计算法性能。结果:使用3 x 3 K空间掩模,VCA能够1)在-0.1摄氏度的35 x 35像素感兴趣区域(ROI)中维持典型的平均背景误差;和2)相对于所施加的热曲线重构相位校正的曲线,该曲线通常包含1.7°C的峰值温度差低估和沿-0.8°C的60°C线的平均误差。结论:结果表明通过使用VCA,即使在1小时的时间范围内存在超过1 ppm的空间和时间相关的场漂移,也可以使用VCA在0.2 T的温度下准确地重建热剖面。 J.Magn。雷森成像2003; 17:227-240。

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