IEEE Trans Med Imaging. 2017 Apr;36(4):904-916. doi: 10.1109/TMI.2016.2627221. Epub 2017 Feb 20.
Proton resonance frequency shift-based magnetic resonance thermometry is a currently used technique for monitoring temperature during targeted thermal therapies. However, in order to provide temperature updates with very short latency times, fast MR acquisition schemes are usually employed, which in turn might lead to noisy temperature measurements. This will, in general, have a direct impact on therapy control and endpoint detection. In this paper, we address this problem through an improved non-local filtering technique applied on the temperature images. Compared with previous non-local filtering methods, the proposed approach considers not only spatial information but also exploits temporal redundancies. The method is fully automatic and designed to improve the precision of the temperature measurements while at the same time maintaining output accuracy. In addition, the implementation was optimized in order to ensure real-time availability of the temperature measurements while having a minimal impact on latency. The method was validated in three complementary experiments: a simulation, an ex-vivo and an in-vivo study. Compared to the original non-local means filter and two other previously employed temperature filtering methods, the proposed approach shows considerable improvement in both accuracy and precision of the filtered data. Together with the low computational demands of the numerical scheme, the proposed filtering technique shows great potential for improving temperature measurements during real-time MR thermometry dedicated to targeted thermal therapies.
基于质子共振频率位移的磁共振测温是一种用于监测靶向热疗过程中温度的当前技术。然而,为了提供具有非常短潜伏期的温度更新,通常采用快速磁共振采集方案,这反过来可能导致温度测量噪声较大。这通常会直接影响治疗控制和终点检测。在本文中,我们通过应用于温度图像的改进的非局部滤波技术来解决这个问题。与以前的非局部滤波方法相比,所提出的方法不仅考虑了空间信息,还利用了时间冗余。该方法是全自动的,旨在提高温度测量的精度,同时保持输出精度。此外,为了确保温度测量的实时可用性,同时对潜伏期的影响最小,对实现进行了优化。该方法在三个互补的实验中得到了验证:模拟实验、离体实验和体内实验。与原始的非局部均值滤波器和另外两种之前使用的温度滤波方法相比,所提出的方法在滤波数据的准确性和精度方面都有了显著的提高。结合数值方案的低计算需求,所提出的滤波技术在用于靶向热疗的实时磁共振测温中提高温度测量方面具有很大的潜力。