000 | 05284nam a2201093 i 4500 | ||
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001 | 5264284 | ||
003 | IEEE | ||
005 | 20220712205647.0 | ||
006 | m o d | ||
007 | cr |n||||||||| | ||
008 | 151221s1999 njua ob 001 eng d | ||
020 |
_a9780470545652 _qelectronic |
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020 |
_z9780780347236 _qprint |
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020 |
_z0470545658 _qelectronic |
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024 | 7 |
_a10.1109/9780470545652 _2doi |
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035 | _a(CaBNVSL)mat05264284 | ||
035 | _a(IDAMS)0b000064810c41e6 | ||
040 |
_aCaBNVSL _beng _erda _cCaBNVSL _dCaBNVSL |
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050 | 4 |
_aRC78.7.N83 _bL36 2000eb |
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082 | 0 | 4 |
_a616.07/548 _222 |
100 | 1 |
_aLiang, Zhi-Pei, _d1961- _926832 |
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245 | 1 | 0 |
_aPrinciples of magnetic resonance imaging : _ba signal processing perspective / _cZhi-Pei Liang, Paul C. Lauterbur. |
264 | 1 |
_aBellingham, Wash. : _bSPIE Optical Engineering Press, _cc2000. |
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264 | 2 |
_a[Piscataqay, New Jersey] : _bIEEE Xplore, _c[1999] |
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300 |
_a1 PDF (xv, 416 pages) : _billustrations. |
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336 |
_atext _2rdacontent |
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337 |
_aelectronic _2isbdmedia |
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338 |
_aonline resource _2rdacarrier |
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490 | 1 |
_aIEEE press series on biomedical engineering ; _v4 |
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500 | _a"IEEE Engineering in Medicine and Biology Society, sponsor." | ||
504 | _aIncludes bibliographical references (391-407) and index. | ||
505 | 0 | _aPreface. Acknowledgments. Introduction. Mathematical Fundamentals. Signal Generation and Detection. Signal Characteristics. Signal Localization. Image Reconstruction. Image Contrast. Image Resolution, Noise, and Artifacts. Fast-Scan Imaging. Constrained Reconstruction. Appendix A: Mathematical Formulas. Appendix B: Glossary. Appendix C: Abbreviations. Appendix D: Mathematical Symbols. Appendix E: Physical Constants. Bibliography. Index. About the Authors. | |
506 | 1 | _aRestricted to subscribers or individual electronic text purchasers. | |
520 | _aIn 1971 Dr. Paul C. Lauterbur pioneered spatial information encoding principles that made image formation possible by using magnetic resonance signals. Now Lauterbur, "father of the MRI", and Dr. Zhi-Pei Liang have co-authored the first engineering textbook on magnetic resonance imaging. This long-awaited, definitive text will help undergraduate and graduate students of biomedical engineering, biomedical imaging scientists, radiologists, and electrical engineers gain an in-depth understanding of MRI principles. The authors use a signal processing approach to describe the fundamentals of magnetic resonance imaging. You will find a clear and rigorous discussion of these carefully selected essential topics: . Mathematical fundamentals. Signal generation and detection principles. Signal characteristics. Signal localization principles. Image reconstruction techniques. Image contrast mechanisms. Image resolution, noise, and artifacts. Fast-scan imaging. Constrained reconstruction Complete with a comprehensive set of examples and homework problems, Principles of Magnetic Resonance Imaging is the must-read book to improve your knowledge of this revolutionary technique. | ||
530 | _aAlso available in print. | ||
538 | _aMode of access: World Wide Web | ||
588 | _aDescription based on PDF viewed 12/21/2015. | ||
650 | 0 |
_aMagnetic resonance imaging _vCongresses. _926833 |
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650 | 0 |
_aNuclear magnetic resonance _vCongresses. _926834 |
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650 | 0 |
_aSignal processing _vCongresses. _926610 |
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655 | 0 |
_aElectronic books. _93294 |
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695 | _aAtomic measurements | ||
695 | _aBibliographies | ||
695 | _aBiographies | ||
695 | _aBooks | ||
695 | _aComputed tomography | ||
695 | _aConvolution | ||
695 | _aData acquisition | ||
695 | _aDensity functional theory | ||
695 | _aEncoding | ||
695 | _aEquations | ||
695 | _aField-flow fractionation | ||
695 | _aFingers | ||
695 | _aFourier transforms | ||
695 | _aImage coding | ||
695 | _aImage reconstruction | ||
695 | _aImaging | ||
695 | _aIndexes | ||
695 | _aMagnetic fields | ||
695 | _aMagnetic moments | ||
695 | _aMagnetic resonance imaging | ||
695 | _aMagnetization | ||
695 | _aMagnetostatics | ||
695 | _aMathematics | ||
695 | _aMicroscopy | ||
695 | _aNails | ||
695 | _aNoise | ||
695 | _aNonhomogeneous media | ||
695 | _aNuclear magnetic resonance | ||
695 | _aOscillators | ||
695 | _aPhase estimation | ||
695 | _aPhase measurement | ||
695 | _aPixel | ||
695 | _aProtons | ||
695 | _aQuantum mechanics | ||
695 | _aRadio frequency | ||
695 | _aResonant frequency | ||
695 | _aSections | ||
695 | _aSpatial resolution | ||
695 | _aStability criteria | ||
695 | _aSuperconducting magnets | ||
695 | _aTerminology | ||
695 | _aTime frequency analysis | ||
695 | _aTiming | ||
695 | _aVisualization | ||
700 | 1 |
_aLauterbur, Paul C., _d1929-2007. _924105 |
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710 | 2 |
_aJohn Wiley & Sons, _epublisher. _96902 |
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710 | 2 |
_aIEEE Engineering in Medicine and Biology Society. _926044 |
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710 | 2 |
_aIEEE Xplore (Online service), _edistributor. _926835 |
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776 | 0 | 8 |
_iPrint version: _z9780780347236 |
830 | 0 |
_aIEEE Press series in biomedical engineering ; _v4 _926836 |
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856 | 4 | 2 |
_3Abstract with links to resource _uhttps://ieeexplore.ieee.org/xpl/bkabstractplus.jsp?bkn=5264284 |
942 | _cEBK | ||
999 |
_c73893 _d73893 |