首页> 外文期刊>Magnetic resonance in medicine: official journal of the Society of Magnetic Resonance in Medicine >Temporally constrained reconstruction applied to MRI temperature data.
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Temporally constrained reconstruction applied to MRI temperature data.

机译:临时约束重建应用于MRI温度数据。

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摘要

The monitoring of thermal ablation procedures would benefit from an acceleration in the rate at which MRI temperature maps are acquired. Constrained reconstruction techniques have been shown to be capable of generating high quality images using only a fraction of the k-space data. Here, we present a temporally constrained reconstruction (TCR) algorithm applied to proton resonance frequency shift (PRF) data. The algorithm generates images from undersampled data by iteratively minimizing a cost function. The unique challenges of using an iterative constrained reconstruction technique to generate real-time images were addressed. For a set of eight heating experiments on ex vivo porcine tissue, a maximum reduction factor of 4 was achieved while keeping the root mean square error (RMSE) of the temperature below 0.5 degrees C. For a set of three heating experiments on in vivo canine muscle tissue, the maximum reduction factor achieved was 3 while keeping the temperature RMSE below 1.0 degrees C. At these reduction factors, the TCR algorithm underpredicted the thermal dose by an average of 6% for the ex vivo data and 28% for the in vivo data. Compared with sliding window and low resolution reconstructions, the RMSE of the TCR algorithm was significantly lower (P < 0.05 in all cases).
机译:热消融程序的监视将受益于MRI温度图的获取速度的加快。约束重建技术已被证明能够仅使用k空间数据的一小部分生成高质量图像。在这里,我们提出了应用于质子共振频移(PRF)数据的时间约束重建(TCR)算法。该算法通过迭代最小化成本函数,从欠采样数据生成图像。解决了使用迭代约束重建技术生成实时图像的独特挑战。对于在离体猪组织上进行的八次加热实验,在将温度的均方根误差(RMSE)保持在0.5摄氏度以下的同时,实现了最大降低系数4。肌肉组织,在将温度RMSE保持在1.0摄氏度以下的同时,实现的最大降低因子为3。在这些降低因子下,TCR算法将热剂量的离体数据平均低了6%,在体内平均低了28%数据。与滑动窗口和低分辨率重建相比,TCR算法的RMSE明显更低(在所有情况下,P <0.05)。

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