A nonlocal maximum likelihood estimation method for enhancing magnetic resonance phase maps

被引:0
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作者
P. V. Sudeep
P. Palanisamy
Chandrasekharan Kesavadas
Jan Sijbers
Arnold J. den Dekker
Jeny Rajan
机构
[1] National Institute of Technology - Tiruchirappalli,Department of Electronics and Communication Engineering
[2] National Institute of Technology Karnataka,Department of Electronics and Communication Engineering
[3] Sree Chitra Tirunal Institute for Medical Sciences and Technology,Department of Imaging Sciences and Intervention Radiology
[4] University of Antwerp,iMinds Vision Lab, Department of Physics
[5] Delft University of Technology,Delft Center for Systems and Control
[6] National Institute of Technology Karnataka,Department of Computer Science and Engineering
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关键词
Denoising; Magnetic resonance image; Maximum likelihood estimation; Noise; Phase map;
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学科分类号
摘要
A phase map can be obtained from the real and imaginary components of a complex valued magnetic resonance (MR) image. Many applications, such as MR phase velocity mapping and susceptibility mapping, make use of the information contained in the MR phase maps. Unfortunately, noise in the complex MR signal affects the measurement of parameters related to phase (e.g, the phase velocity). In this paper, we propose a nonlocal maximum likelihood (NLML) estimation method for enhancing phase maps. The proposed method estimates the true underlying phase map from a noisy MR phase map. Experiments on both simulated and real data sets indicate that the proposed NLML method has a better performance in terms of qualitative and quantitative evaluations when compared to state-of-the-art methods.
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页码:913 / 920
页数:7
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