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The physics and mathematics of MRI /

Magnetic Resonance Imaging is a very important clinical imaging tool. It combines different fields of physics and engineering in a uniquely complex way. MRI is also surprisingly versatile, 'pulse sequences' can be designed to yield many different types of contrast. This versatility is uniq...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Autores principales: Ansorge, Richard (Autor), Graves, Martin J. (Autor)
Formato: Electrónico eBook
Idioma:Inglés
Publicado: San Rafael [California] (40 Oak Drive, San Rafael, CA, 94903, USA) : Morgan & Claypool Publishers, [2016]
Colección:IOP (Series). Release 3.
IOP concise physics.
Temas:
Acceso en línea:Texto completo

MARC

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020 |a 9781681740683  |q ebook 
020 |a 9781681741963  |q mobi 
020 |z 9781681740041  |q print 
024 7 |a 10.1088/978-1-6817-4068-3  |2 doi 
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100 1 |a Ansorge, Richard,  |e author. 
245 1 4 |a The physics and mathematics of MRI /  |c Richard Ansorge, Martin Graves. 
246 3 |a Physics and mathematics of magnetic resonance imaging. 
264 1 |a San Rafael [California] (40 Oak Drive, San Rafael, CA, 94903, USA) :  |b Morgan & Claypool Publishers,  |c [2016] 
264 2 |a Bristol [England] (Temple Circus, Temple Way, Bristol BS1 6HG, UK) :  |b IOP Publishing,  |c [2016] 
300 |a 1 online resource (various pagings) :  |b illustrations (chiefly color). 
336 |a text  |2 rdacontent 
337 |a electronic  |2 isbdmedia 
338 |a online resource  |2 rdacarrier 
490 1 |a [IOP release 3] 
490 1 |a IOP concise physics,  |x 2053-2571 
500 |a "Version: 20161001"--Title page version. 
500 |a "A Morgan & Claypool publication as part of IOP Concise Physics"--Title page verso. 
504 |a Includes bibliographical references. 
505 0 |a Preface -- Introduction -- 1. The basics -- 1.1. A brief history of MRI -- 1.2. Proton spin -- 1.3. The Bloch equations -- 1.4. Signal generation -- 1.5. Spatial encoding using magnetic field gradients -- 1.6. Spatial image formation 
505 8 |a 2. Magnetic field generation -- 2.1. Designing the main magnet -- 2.2. Designing gradient coils -- 2.3. Practical issues 
505 8 |a 3. Radio frequency transmission and reception -- 3.1. Basic RF pulses -- 3.2. The birdcage coil -- 3.3. The transmit-receive chain -- 3.4. Surface coils -- 3.5. Parallel imaging -- 3.6. Compressed sensing -- 3.7. RF pulses -- 3.8. Multinuclear MRI 
505 8 |a 4. Pulse sequences and images -- 4.1. Image contrast -- 4.2. Pulse sequence overview -- 4.4. Readout trajectories -- 4.5. Magnetic resonance spectrocopy (MRS) -- 4.6. k-space sampling in MRI -- 4.7. Image reconstruction -- 4.8. Conclusion 
505 8 |a 5. Applications -- 5.1. Introduction -- 5.2. Anatomical imaging -- 5.3. Chemical shift -- 5.4. Blood flow -- 5.5. Diffusion-weighted imaging -- 5.6. Diffusion tensor imaging -- 5.7. Chemical exchange -- 5.8. Functional MRI (fMRI) -- 5.9. Cerebral perfusion -- 5.10. Dynamic contrast enhanced (DCE)-MRI -- 5.11. Multinuclear MRI -- 5.12. Chemical shift artefact 
505 8 |a 6. Conclusion -- Appendices -- A. Essential quantum mechanics -- B. Solutions of Laplace's equation in spherical polar coordinates -- C. The Birdcage coil -- D. Fourier transforms -- E. Multiple echoes. 
520 3 |a Magnetic Resonance Imaging is a very important clinical imaging tool. It combines different fields of physics and engineering in a uniquely complex way. MRI is also surprisingly versatile, 'pulse sequences' can be designed to yield many different types of contrast. This versatility is unique to MRI. This short book gives both an in depth account of the methods used for the operation and construction of modern MRI systems and also the principles of sequence design and many examples of applications. An important additional feature of this book is the detailed discussion of the mathematical principles used in building optimal MRI systems and for sequence design. The mathematical discussion is very suitable for undergraduates attending medical physics courses. It is also more complete than usually found in alternative books for physical scientists or more clinically orientated works. 
521 |a Suitable for undergraduates attending medical physics courses. 
530 |a Also available in print. 
538 |a Mode of access: World Wide Web. 
538 |a System requirements: Adobe Acrobat Reader. 
545 |a Richard Ansorge is a senior lecturer in the Department of Physics at Cambridge University. His current interests include hardware and software development for various medical imaging modalities, especially PET and MRI. This work is done in close collaboration with the Wolfson Brain Imaging Centre. One particular current project is the development of a novel combined PET-MR system for pre-clinical research. Other projects involve MR sequence development and post-processing algorithms for MR and PET. 
588 |a Title from PDF title page (viewed on November 2, 2016). 
650 0 |a Magnetic resonance imaging. 
650 0 |a Magnetic resonance imaging  |x Mathematics. 
650 0 |a Medical physics. 
650 1 2 |a Magnetic Resonance Imaging. 
650 1 2 |a Mathematical Concepts. 
650 1 2 |a Physical Phenomena. 
650 7 |a Biophysics.  |2 bicssc 
650 7 |a Biomedical Engineering.  |2 bicssc 
650 7 |a Applied Physics.  |2 bicssc 
650 7 |a SCIENCE / Life Sciences / Biophysics.  |2 bisacsh 
650 7 |a TECHNOLOGY & ENGINEERING / Biomedical.  |2 bisacsh 
700 1 |a Graves, Martin J.,  |e author. 
710 2 |a Morgan & Claypool Publishers,  |e publisher. 
710 2 |a Institute of Physics (Great Britain),  |e publisher. 
776 0 8 |i Print version:  |z 9781681740041 
830 0 |a IOP (Series).  |p Release 3. 
830 0 |a IOP concise physics. 
856 4 0 |u https://iopscience.uam.elogim.com/book/978-1-6817-4068-3  |z Texto completo