Santiago Aja-Fernández Gonzalo Vegas-Sánchez-Ferrero Aja-Fernández Statistical Analysis of Noise in MRI

Statistical Analysis of Noise in MRI

von Santiago Aja-Fernández Gonzalo Vegas-Sánchez-Ferrero

Modeling, Filtering and Estimation

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Beschreibung

This unique text/reference presents a comprehensive review of methods for modeling signal and noise in magnetic resonance imaging (MRI), providing a systematic study, classifying and comparing the numerous and varied estimation and filtering techniques drawn from more than ten years of research in this area.

Topics and features:

This practically-focused work serves as a reference manual for researchers dealing with signal processing in MRI acquisitions, and is also suitable as a textbook for postgraduate students in engineering with an interest in medical image processing.

Dr. Santiago Aja-Fernández is an Associate Professor at the School of Telecommunications of the University of Valladolid, Spain. His other publications include the Springer title Tensors in Image Processing and Computer Vision. Dr. Gonzalo Vegas-Sánchez-Ferrero is a Research Fellow at Brigham and Women’s Hospital, and in the Applied Chest Imaging Laboratory of Harvard Medical School, Boston, MA, USA.


This unique text presents a comprehensive review of methods for modeling signal and noise in magnetic resonance imaging (MRI), providing a systematic study, classifying and comparing the numerous and varied estimation and filtering techniques. Features: provides a complete framework for the modeling and analysis of noise in MRI, considering different modalities and acquisition techniques; describes noise and signal estimation for MRI from a statistical signal processing perspective; surveys the different methods to remove noise in MRI acquisitions from a practical point of view; reviews different techniques for estimating noise from MRI data in single- and multiple-coil systems for fully sampled acquisitions; examines the issue of noise estimation when accelerated acquisitions are considered, and parallel imaging methods are used to reconstruct the signal; includes appendices covering probability density functions, combinations of random variables used to derive estimators, and usefulMRI datasets.
Provides comprehensive coverage of the field within a single, unified framework Presents a unique overview of the various techniques for noise estimation, explaining which method is best applied for different scanners and types of data Includes practical solutions for noise problems that can be directly implemented in MRI-related software

Autor*in

Santiago Aja-Fernández

Themen in »Statistical Analysis of Noise in MRI«

MRI Noise Modeling Signal Processing Parallel Imaging Estimation

Stimmen zu »Statistical Analysis of Noise in MRI«

“The book is presented in a simple and lucid manner, starting with the basics of MRI noise and its analysis with simple models, progressing to an analysis using complex models and the noise issues in multi-coil and parallel acquisition schemes. Overall the book is self-contained to help the beginners … .” (Pramod Kumar Pisharady, IAPR Newsletter , Vol. 40 (2), 2018)
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Details

ISBN: 9783319399331
Verlag: Springer International Publishing
Erscheinung: 27.07.2016

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