Artifact Correction in Magnetic Resonance Temperature Imaging for Laser Interstitial Thermotherapy with Multi-echo Acquisitions
Ziyi Pan, Yuancheng Jiang, Wenbo Lv, Sisi Li, Meng Han, Yawei Kuang,, Hao Sun, Xiu Wang, Jianjun Bai, Wenbo Liu, Guangzhi Wang, and Hua Guo

TL;DR
This paper introduces a multi-echo MRI method with new correction algorithms to improve temperature measurement accuracy during laser interstitial thermotherapy, reducing artifacts and enhancing reliability in vivo.
Contribution
It develops a multi-echo acquisition and correction algorithms to address signal voids and artifacts caused by T2* shortening and CSF pulsation, improving thermometry precision.
Findings
Effective correction of temperature errors due to signal loss.
Enhanced thermometry accuracy with smoother hotspot boundaries.
Better agreement of ablation areas with post-treatment imaging.
Abstract
In MRI-guided laser interstitial thermotherapy (MRgLITT), a signal void sometimes appears at the heating center of the measured temperature map. In neurosurgical MRgLITT treatments, cerebrospinal fluid pulsation (CSF), which may lead to temperature artifacts, also needs to be carefully managed. We find that signal loss in MR magnitude images can be one distinct contributor to the temperature imaging signal void. Therefore, this study aims to investigate this finding and more importantly. Also, this study intends to improve measurement accuracy by correcting CSF-induced temperature errors and employing a more reliable phase unwrapping algorithm. A gradient echo sequence with certain TE values for temperature imaging is used to quantify T2* variations during MRgLITT and to investigate the development of signal voids throughout the treatment. Informed by these findings, a multi-echo GRE…
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Taxonomy
TopicsPhotoacoustic and Ultrasonic Imaging · Advanced MRI Techniques and Applications · Ultrasound and Hyperthermia Applications
