水/脂肪分离重建在MRI中用于身体定量敏感性制图。

IF 1.7 Q3 RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING
Hirohito Kan, Masahiro Nakashima, Takahiro Tsuchiya, Masato Yamada, Akio Hiwatashi
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引用次数: 0

摘要

本研究旨在探讨体质定量易感性图谱(QSM)中易感性低估的原因,并提出一种水/脂肪分离重建方法来解决这一问题。采用带/不带掩体的传统QSM进行了数值模拟。传统的身体掩蔽方法低估了所有区域的敏感性,而没有身体掩蔽的方法估计的值与地面真值相当。通过数值模拟和人体实验,比较了基于水/脂肪分离分别重建水和脂肪敏感性图的水/脂肪分离重建方法与基于身体掩蔽的传统QSM方法的差异。该方法仅在水组织中提高了敏感性估计。人体实验结果与数值模拟结果一致。由于缺乏体外相位信息,导致传统QSM的敏感性低估。所建立的方法只解决了在人体QSM中对水组织的敏感性低估问题。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Water/fat separate reconstruction for body quantitative susceptibility mapping in MRI.

This study aimed to investigate the cause of susceptibility underestimation in body quantitative susceptibility mapping (QSM) and propose a water/fat separate reconstruction to address this issue. A numerical simulation was conducted using conventional QSM with/without body masking. The conventional method with body masking underestimated the susceptibility across all regions, whereas the method without body masking estimated an equivalent value to the ground truth. Additional numerical simulations and human experiments were conducted to compare the water/fat separate reconstruction, which separately reconstructs water and fat susceptibility maps based on the water/fat separation, with conventional QSM with body masking. The proposed method improved susceptibility estimation specifically in only the water tissue. The results of the human experiments were consistent with those of the numerical simulations. The lack of phase information outside the body contributed to susceptibility underestimation in conventional QSM. The developed method addressed susceptibility underestimation only in water tissue in body QSM.

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来源期刊
Radiological Physics and Technology
Radiological Physics and Technology RADIOLOGY, NUCLEAR MEDICINE & MEDICAL IMAGING-
CiteScore
3.00
自引率
12.50%
发文量
40
期刊介绍: The purpose of the journal Radiological Physics and Technology is to provide a forum for sharing new knowledge related to research and development in radiological science and technology, including medical physics and radiological technology in diagnostic radiology, nuclear medicine, and radiation therapy among many other radiological disciplines, as well as to contribute to progress and improvement in medical practice and patient health care.
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