M. Salerno and G. Beller, Noninvasive Assessment of Myocardial Perfusion, Circulation: Cardiovascular Imaging, vol.2, issue.5, pp.412-436, 2009.
DOI : 10.1161/CIRCIMAGING.109.854893

G. Barone-rochette, M. Leclere, and A. Calizzano, Stress thallium-201/rest technetium-99m sequential dual-isotope high-speed myocardial perfusion imaging validation versus invasive coronary angiography, Journal of Nuclear Cardiology, vol.17, issue.40, pp.513-535, 2015.
DOI : 10.1007/s12350-014-0016-0

G. Toth, M. Hamilos, and S. Pyxaras, Evolving concepts of angiogram: fractional flow reserve discordances in 4000 coronary stenoses, European Heart Journal, vol.35, issue.40, pp.2831-2839, 2014.
DOI : 10.1093/eurheartj/ehu094

P. Tonino, D. Bruyne, B. Pijls, and N. , Fractional Flow Reserve versus Angiography for Guiding Percutaneous Coronary Intervention, New England Journal of Medicine, vol.360, issue.3, pp.213-237, 2009.
DOI : 10.1056/NEJMoa0807611

B. Bruyne, N. Pijls, and B. Kalesan, Fractional Flow Reserve???Guided PCI versus Medical Therapy in Stable Coronary Disease, New England Journal of Medicine, vol.367, issue.11, pp.991-1001, 2012.
DOI : 10.1056/NEJMoa1205361

M. Graham, P. Faris, and W. Ghali, Validation of three myocardial jeopardy scores in a population-based cardiac catheterization cohort, American Heart Journal, vol.142, issue.2, pp.254-61, 2001.
DOI : 10.1067/mhj.2001.116481

S. S. Tessa, W. Ewout, M. G. Steyerberg, and . Hunink, A Clinical Prediction Rule for the Diagnosis of Coronary Artery Disease: Validation, Updating, and Extension

P. Slomka, J. Patton, D. Berman, and G. Germano, Advances in technical aspects of myocardial perfusion SPECT imaging, Journal of Nuclear Cardiology, vol.49, issue.2, pp.255-76, 2009.
DOI : 10.1007/s12350-009-9052-6

M. Bocher, I. Blevis, L. Tsukerman, Y. Shrem, G. Kovalski et al., A fast cardiac gamma camera with dynamic SPECT capabilities: design, system validation and future potential, European Journal of Nuclear Medicine and Molecular Imaging, vol.16, issue.2, pp.1887-1902, 2010.
DOI : 10.1007/s00259-010-1488-z

URL : http://doi.org/10.1007/s00259-010-1488-z

M. Cerqueira, N. Weissman, and V. Dilsizian, Standardized Myocardial Segmentation and Nomenclature for Tomographic Imaging of the Heart, Journal of Cardiovascular Magnetic Resonance, vol.4, issue.2, pp.539-581, 2002.
DOI : 10.1081/JCMR-120003946

R. Jogiya, G. Morton, D. Silva, and K. , Ischemic Burden by 3-Dimensional Myocardial Perfusion Cardiovascular Magnetic Resonance: Comparison With Myocardial Perfusion Scintigraphy, Circulation: Cardiovascular Imaging, vol.7, issue.4, pp.647-54, 2014.
DOI : 10.1161/CIRCIMAGING.113.001620

URL : http://www.zora.uzh.ch/98659/1/Circ_Cardiovasc_Imaging_7_4__647_654_Jogiya.pdf

E. Alderman and M. Stadius, The angiographic definitions of the Bypass Angioplasty Revascularization Investigation, Coronary Artery Disease, vol.3, pp.1189-1207, 1992.

W. Duvall, J. Sweeny, L. Croft, E. Ginsberg, K. Guma et al., Reduced stress dose with rapid acquisition CZT SPECT MPI in a non-obese clinical population: Comparison to coronary angiography, Journal of Nuclear Cardiology, vol.153, issue.1, pp.19-27, 2012.
DOI : 10.1007/s12350-011-9480-y

R. Nakazato, B. Tamarappoo, and X. Kang, Quantitative Upright-Supine High-Speed SPECT Myocardial Perfusion Imaging for Detection of Coronary Artery Disease: Correlation with Invasive Coronary Angiography, Journal of Nuclear Medicine, vol.51, issue.11, pp.1724-1755, 2010.
DOI : 10.2967/jnumed.110.078782

W. Duvall, J. Sweeny, and L. Croft, Comparison of high efficiency CZT SPECT MPI to coronary angiography, Journal of Nuclear Cardiology, vol.11, issue.4, pp.595-604, 2011.
DOI : 10.1007/s12350-011-9382-z

M. Fiechter, J. Ghadri, and S. Kuest, Nuclear myocardial perfusion imaging with a novel cadmium-zinc-telluride detector SPECT/CT device: first validation versus invasive coronary angiography, European Journal of Nuclear Medicine and Molecular Imaging, vol.48, issue.11, pp.2025-2055, 2011.
DOI : 10.1007/s00259-011-1877-y

A. Gimelli, M. Bottai, and D. Genovesi, High diagnostic accuracy of low-dose gated-SPECT with solid-state ultrafast detectors: preliminary clinical results, European Journal of Nuclear Medicine and Molecular Imaging, vol.50, issue.4, pp.83-90, 2011.
DOI : 10.1007/s00259-011-1918-6

J. Neill, E. Prvulovich, and M. Fish, Initial multicentre experience of high-speed myocardial perfusion imaging: comparison between high-speed and conventional single-photon emission computed tomography with angiographic validation, European Journal of Nuclear Medicine and Molecular Imaging, vol.39, issue.1, pp.1084-94, 2013.
DOI : 10.1007/s00259-013-2399-6

A. Gimelli, M. Bottai, and A. Quaranta, Gender differences in the evaluation of coronary artery disease with a cadmium-zinc telluride camera, European Journal of Nuclear Medicine and Molecular Imaging, vol.107, issue.6, pp.1542-1550, 2013.
DOI : 10.1007/s00259-013-2449-0

W. Duvall, P. Slomka, and J. Gerlach, High-efficiency SPECT MPI: Comparison of automated quantification, visual interpretation, and coronary angiography, Journal of Nuclear Cardiology, vol.19, issue.5, pp.763-73, 2013.
DOI : 10.1007/s12350-013-9735-x

M. Mouden, J. Ottervanger, S. Knollema, and . Timmer, Myocardial perfusion imaging with a cadmium zinc telluride-based gamma camera versus invasive fractional flow reserve, European Journal of Nuclear Medicine and Molecular Imaging, vol.300, issue.6
DOI : 10.1007/s00259-013-2630-5

URL : http://doi.org/10.1007/s00259-013-2630-5

Y. Nishiyama, M. Miyagawa, and N. Kawagushi, Combined Supine and Prone Myocardial Perfusion Single-Photon Emission Computed Tomography With a Cadmium Zinc Telluride Camera for Detection of Coronary Artery Disease, Circulation Journal, vol.78, issue.5, pp.1169-75, 2014.
DOI : 10.1253/circj.CJ-13-1316

R. Lima, D. Watson, and A. Goode, Incremental value of combined perfusion and function over perfusion alone by gated SPECT myocardial perfusion imaging for detection of severe three-vessel coronary artery disease, Journal of the American College of Cardiology, vol.42, issue.1, pp.64-70, 2003.
DOI : 10.1016/S0735-1097(03)00562-X

J. Layland, D. Carrick, and M. Mcentegart, Vasodilatory Capacity of the Coronary Microcirculation is Preserved in Selected Patients With Non-ST-Segment-Elevation Myocardial Infarction, Circulation: Cardiovascular Interventions, vol.6, issue.3
DOI : 10.1161/CIRCINTERVENTIONS.112.000180

K. Marques, P. Knaapen, and R. Boellaard, Hyperaemic microvascular resistance is not increased in viable myocardium after chronic myocardial infarction, European Heart Journal, vol.28, issue.19, pp.2320-2325, 2007.
DOI : 10.1093/eurheartj/ehm309

F. Cuculi, D. Maria, G. Meier, and P. , Impact of Microvascular Obstruction on the Assessment of Coronary Flow Reserve, Index of Microcirculatory Resistance, and Fractional Flow Reserve After ST-Segment Elevation Myocardial Infarction, Journal of the American College of Cardiology, vol.64, issue.18, pp.1894-904, 2014.
DOI : 10.1016/j.jacc.2014.07.987

M. Echavarria-pinto, J. Escaned, and E. Macías, Disturbed Coronary Hemodynamics in Vessels With Intermediate Stenoses Evaluated With Fractional Flow Reserve: A Combined Analysis of Epicardial and Microcirculatory Involvement in Ischemic Heart Disease, Circulation, vol.128, issue.24, pp.2557-66, 2013.
DOI : 10.1161/CIRCULATIONAHA.112.001345

T. Lockie, M. Ishida, and D. Perera, High-Resolution Magnetic Resonance Myocardial Perfusion Imaging at 3.0-Tesla to Detect Hemodynamically Significant Coronary Stenoses as Determined by Fractional Flow Reserve, Journal of the American College of Cardiology, vol.57, issue.1, pp.70-75, 2011.
DOI : 10.1016/j.jacc.2010.09.019

A. Chiribiri, G. Hautvast, and T. Lockie, Assessment of Coronary Artery Stenosis Severity and Location, JACC: Cardiovascular Imaging, vol.6, issue.5, pp.600-609, 2013.
DOI : 10.1016/j.jcmg.2012.09.019

N. Pijls, D. Bruyne, B. Peels, and K. , Measurement of Fractional Flow Reserve to Assess the Functional Severity of Coronary-Artery Stenoses, New England Journal of Medicine, vol.334, issue.26, pp.1703-1711, 1996.
DOI : 10.1056/NEJM199606273342604

N. Pijls, W. Fearon, and P. Tonino, Fractional Flow Reserve Versus Angiography for Guiding Percutaneous Coronary Intervention in Patients With Multivessel Coronary Artery Disease, Journal of the American College of Cardiology, vol.56, issue.3, pp.177-84, 2010.
DOI : 10.1016/j.jacc.2010.04.012

A. Leone, D. Caterina, A. Basile, and E. , Influence of the Amount of Myocardium Subtended by a Stenosis on Fractional Flow Reserve, Circulation: Cardiovascular Interventions, vol.6, issue.1, pp.29-36, 2013.
DOI : 10.1161/CIRCINTERVENTIONS.112.971101

J. Maublant, X. Marcaggi, and J. Lusson, Comparison between thallium-201 and technetium-99m methoxyisobutyl isonitrile defect size in single-photon emission computed tomography at rest, exercise and redistribution in coronary artery disease, The American Journal of Cardiology, vol.69, issue.3, pp.183-190, 1992.
DOI : 10.1016/0002-9149(92)91302-K

S. Ben-haim, V. Murthy, and C. Breault, Quantification of Myocardial Perfusion Reserve Using Dynamic SPECT Imaging in Humans: A Feasibility Study, Journal of Nuclear Medicine, vol.54, issue.6, pp.873-882, 2013.
DOI : 10.2967/jnumed.112.109652

N. Johnson, R. Kirkeeide, and K. Gould, Is Discordance of Coronary Flow Reserve and Fractional Flow Reserve Due to Methodology or Clinically Relevant Coronary Pathophysiology?, JACC: Cardiovascular Imaging, vol.5, issue.2
DOI : 10.1016/j.jcmg.2011.09.020

T. Schindler, H. Schelbert, A. Quercioli, and V. Dilsizian, Cardiac PET Imaging for the Detection and Monitoring of Coronary Artery Disease and Microvascular Health, JACC: Cardiovascular Imaging, vol.3, issue.6, pp.623-663, 2010.
DOI : 10.1016/j.jcmg.2010.04.007