Quantitative Analysis in Nuclear Medicine Imaging by Habib Zaidi

By Habib Zaidi

This publication is designed to be a pragmatic consultant to easy methods to practice quantitative MR measurements within the mind. It includes  either the method and scientific purposes, reflecting the expanding curiosity in quantitative MR in learning ailment and its development.

  • The editor is an MR scientist with a global attractiveness for top of the range study
  • The contributions may be written together by means of MR physicists and MR clinicians, generating a pragmatic ebook for either the study and clinical groups

Show description

By Habib Zaidi

This publication is designed to be a pragmatic consultant to easy methods to practice quantitative MR measurements within the mind. It includes  either the method and scientific purposes, reflecting the expanding curiosity in quantitative MR in learning ailment and its development.

  • The editor is an MR scientist with a global attractiveness for top of the range study
  • The contributions may be written together by means of MR physicists and MR clinicians, generating a pragmatic ebook for either the study and clinical groups

Show description

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And Hasegawa, B. , Radiation dose estimates in small animal SPECT and PET. Med Phys 31: 2680-2686 (2004). 106. Jaszczak R. , Wang, H. , Pinhole collimation for ultra highresolution, small field of view SPECT. Phys Med Biol 39: 425-437 (1994). 107. Wu M. , Tang, H. , O’Connell, J. W. , An ultra-high resolution ECGgated myocardial imaging system for small animals. IEEE Tran Nucl Sci 46: 1199-1202 (1999). 108. Wu M. , Hasegawa, B. H. and Dae, M. , Performance evaluation of a pinhole SPECT system for myocardial perfusion imaging of mice.

54 99m X-Ray Source (120 kV) Tc source (140 keV) Collimator HPGe Detector Preamp Pulse Height Analysis Energy Window 1 Energy Window 2 X-Ray Data Radionuclide Data Computer Readout Figure 2. Schematic of data acquisition of combined emission-transmission imaging system developed at UCSF using single high-purity germanium detector array with fast pulse-counting electronics for simultaneous emission-transmission imaging. H. Hasegawa and H. Zaidi Figure 3. Early emission-transmission CT system at UCSF had an HPGe detector was translated across a circular arc to simulate an entire detector array and was rotated around an isocenter for tomographic imaging.

Comput Med Imaging Graph 25: 79-86 (2001). 8. MacDonald L. , Patt, B. , Iwanczyk, J. S. , Pinhole SPECT of mice using the LumaGEM gamma camera. IEEE Trans Nucl Sci 48: 830-836 (2001). 9. Wu M. , Gao, D. , Sievers, R. E. , Pinhole single-photon emission computed tomography for myocardial perfusion imaging of mice. J Am Coll Cardiol 42: 576-582 (2003). 10. Beekman F. J. , Design and simulation of a high-resolution stationary SPECT system for small animals. Phys Med Biol 49: 4579-4592 (2004). 11. Kimiaei S.

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