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首页> 外文期刊>Journal of magnetic resonance imaging: JMRI >k-space water-fat decomposition with T2* estimation and multifrequency fat spectrum modeling for ultrashort echo time imaging.
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k-space water-fat decomposition with T2* estimation and multifrequency fat spectrum modeling for ultrashort echo time imaging.

机译:具有T2 *估计的k空间水脂分解和多频脂肪谱建模,可实现超短回波时间成像。

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摘要

PURPOSE: To demonstrate the feasibility of combining a chemical shift-based water-fat separation method (IDEAL) with a 2D ultrashort echo time (UTE) sequence for imaging and quantification of the short T(2) tissues with robust fat suppression. MATERIALS AND METHODS: A 2D multislice UTE data acquisition scheme was combined with IDEAL processing, including T(2)* estimation, chemical shift artifacts correction, and multifrequency modeling of the fat spectrum to image short T(2) tissues such as the Achilles tendon and meniscus both in vitro and in vivo. The integration of an advanced field map estimation technique into this combined method, such as region growing (RG), is also investigated. RESULTS: The combination of IDEAL with UTE imaging is feasible and excellent water-fat separation can be achieved for the Achilles tendon and meniscus with simultaneous T(2)* estimation and chemical shift artifact correction. Multifrequency modeling of the fat spectrum yields more complete water-fat separation with more accurate correction for chemical shift artifacts. The RG scheme helps to avoid water-fat swapping. CONCLUSION: The combination of UTE data acquisition with IDEAL has potential applications in imaging and quantifying short T(2) tissues, eliminating the necessity for fat suppression pulses that may directly suppress the short T(2) signals.
机译:目的:证明结合基于化学位移的水脂分离方法(IDEAL)与二维超短回波时间(UTE)序列的可行性,以对具有强大脂肪抑制作用的短T(2)组织进行成像和定量。材料与方法:二维多层UTE数据采集方案与IDEAL处理相结合,包括T(2)*估计,化学位移伪影校正和脂肪频谱的多频建模,以成像短T(2)组织(如跟腱)和半月板在体外和体内。还研究了将先进的场图估计技术集成到这种组合方法中,例如区域生长(RG)。结果:IDEAL与UTE成像相结合是可行的,同时跟腱和半月板可以实现出色的水脂分离,同时进行T(2)*估计和化学位移伪影校正。脂肪频谱的多频建模可实现更完整的水脂分离,并对化学位移伪影进行更准确的校正。 RG方案有助于避免水脂交换。结论:UTE数据采集与IDEAL的结合在成像和量化短T(2)组织中具有潜在的应用,消除了可能直接抑制短T(2)信号的脂肪抑制脉冲的必要性。

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