000 02735cam a2200265 a 4500
008 120215s1999 nyua b 001 0 eng
010 _a99022880
020 _a0471351288 (paper : alk. paper)
020 _a9780471351283 (paper : alk. paper)
035 _a(Sirsi) u7981
040 _aEG-CaNU
_c EG-CaNU
_d EG-CaNU
042 _ancode
082 0 0 _a616.07548
_2 21
245 0 0 _aMagnetic resonance imaging :
_b physical principles and sequence design /
_c E. Mark Haacke ... [et al.].
260 _aNew York :
_b Wiley,
_c c1999.
300 _axxvii, 914 p. :
_b ill. ;
_c 29 cm.
504 _aIncludes bibliographical references and index.
505 _aMagnetic Resonance Imaging: A Preview -- Classical of a Single Nucleus to a Magnetic Field. -- Rotating Reference Frames and Resonance. -- Magnetization, Relaxation and the Bloch Equation. -- The Quantum Mechanical Basis of Precession and Excitation. -- The Quantum Mechanical Basis of Thermal Equilibrium and Longitudinal Relaxation. -- Signal Detection Concepts. -- Introductory Signal Acquisition Methods: Free Induction Decay, Spin Echoes, Inversion Recovery and Spectroscopy. -- One-Dimensional Fourier Imaging, k-Space and Gradient Echoes. -- Multi-Dimensional Fourier Imaging and Slice Excitation. -- The Continuous and Discrete Fourier Transforms. -- Sampling and Aliasing in Image Reconstruction. -- Filtering and Resolution in Fourier Transform Image Reconstruction. -- Projection Reconstruction of Images. -- Signal, Contrast and Noise. -- A Closer Look at Radiofrequency Pulses. -- Water/Fat Separation Techniques. -- Fast Imaging in the Steady State. -- Segmented k-Space and Echo Planar Imaging. -- Magnetic Field Inhomogeneity Effects and T2* Dephasing. -- Random Walks, Relaxation and Diffusion. -- Spin Density, T1 and T2 Quantification Methods in MR Imaging. -- Motion Artifacts and Flow Compensation. -- MR Angiography and Flow Quantification. -- Magnetic Properties of Tissues: Theory and Measurement. -- Sequence Design, Artifacts and Nomenclature. -- Introduction to MRI Coils and Magnets. -- Appendices. -- Index.
520 _aThis book provides a synoptic introduction to the key fundamental and operational principles of MRI for medical physicists, radiologists,biochemists, and students. It addresses basic NMR principles, basic imaging concepts, Fourier transform concepts and fundamental applications such as chemical shift imaging, rf pulse design, fast imaging, motion and flow, MR angiography, diffusion, sequence design, and coil concepts.
650 0 _aMagnetic resonance imaging.
_914410
650 0 _aNuclear magnetic resonance.
_9428
650 0 _aMagnetic Resonance Imaging
_914411
650 0 _aPhysics
_914412
596 _a1
999 _c6881
_d6881