Angiographic Image Analysis to Assess the Severity of Coronary Stenoses
暂无分享,去创建一个
[1] Michael Unser,et al. Splines: a perfect fit for signal and image processing , 1999, IEEE Signal Process. Mag..
[2] T van der Werf,et al. Mean transit time for the assessment of myocardial perfusion by videodensitometry. , 1990, Circulation.
[3] E. Braunwald,et al. TIMI frame count: a quantitative method of assessing coronary artery flow. , 1996, Circulation.
[4] E H Wood,et al. Videodensitometric system for measurement of vessel blood flow, particularly in the coronary arteries, in man. , 1973, The American journal of cardiology.
[5] John D. Enderle,et al. Introduction to Biomedical Engineering , 1999 .
[6] Raj Shekhar,et al. Three-dimensional reconstruction of the coronary artery wall by image fusion of intravascular ultrasound and bi-plane angiography , 2000, The International Journal of Cardiac Imaging.
[7] Ghassan S. Kassab,et al. Quantification of Coronary Artery Lumen Volume by Digital Angiography: In Vivo Validation , 2001, Circulation.
[8] Richard A. Robb,et al. The biomedical imaging resource at Mayo Clinic , 2001, IEEE Transactions on Medical Imaging.
[9] Milan Sonka,et al. Biplane X-ray angiograms, intravascular ultrasound, and 3D visualization of coronary vessels , 2004, The International Journal of Cardiac Imaging.
[10] Guido Gerig,et al. 3D Multi-scale line filter for segmentation and visualization of curvilinear structures in medical images , 1997, CVRMed.
[11] Richard A. Robb,et al. Biomedical Imaging, Visualization, and Analysis , 1999 .
[12] T. Nelson,et al. Three-dimensional ultrasound imaging. , 1998, Ultrasound in medicine & biology.
[13] Greg Bednarz,et al. Absolute volumetric coronary blood flow measurement with digital subtraction angiography , 1998, The International Journal of Cardiac Imaging.
[14] Gerhard de Jager,et al. Automatic registration of temporal image pairs for digital subtraction angiography , 1994, Medical Imaging.
[15] J. Canty,et al. Interpretation of changes in coronary flow that accompany pharmacologic interventions. , 1987, Circulation.
[16] Max A. Viergever,et al. Retrospective motion correction in digital subtraction angiography: a review , 1999, IEEE Transactions on Medical Imaging.
[17] Sabee Molloi,et al. Scatter-glare estimation for digital radiographic systems: comparison of digital filtration and sampling techniques , 1998, IEEE Transactions on Medical Imaging.
[18] E L Ritman,et al. Myocardial blood flow estimated by synchronous, multislice, high-speed computed tomography. , 1989, IEEE transactions on medical imaging.
[19] S. Kaul. Current status of contrast echocardiography , 2000 .
[20] B. Brundage,et al. Ultrafast computed tomography for the physiological evaluation of myocardial perfusion. , 1994, American journal of cardiac imaging.
[21] S. Kety,et al. THE NITROUS OXIDE METHOD FOR THE QUANTITATIVE DETERMINATION OF CEREBRAL BLOOD FLOW IN MAN: THEORY, PROCEDURE AND NORMAL VALUES. , 1948, The Journal of clinical investigation.
[22] P. Doriot,et al. Coronary Blood Flow and Myocardial Perfusion Studied by Digitized Coronary Angiograms , 1988 .
[23] J. Elion,et al. Determination of coronary flow reserve by digital angiography: validation of a practical method not requiring power injection or electrocardiographic gating. , 1990, Journal of the American College of Cardiology.
[24] W.-R. Dix,et al. Intravenous coronary angiography with synchrotron radiation , 1998, CARS.
[25] D. Segar. Assessment of wall motion: new imaging modalities , 1998 .
[26] Coronary reserve: concept and physiological variations. , 1995, European heart journal.
[27] Milan Sonka,et al. Simultaneous detection of both coronary borders , 1993, IEEE Trans. Medical Imaging.
[28] D. Newby. Intracoronary infusions and the assessment of coronary blood flow in clinical studies , 2000, Heart.
[29] Johan H. C. Reiber,et al. An overview of coronary quantitation techniques as of 1989 , 1991 .
[30] Huibert Kwakernaak,et al. Modern signals and systems , 1991 .
[31] M. Garreau,et al. A knowledge-based approach for 3-D reconstruction and labeling of vascular networks from biplane angiographic projections. , 1991, IEEE transactions on medical imaging.
[32] N R Cholvin,et al. Pressure Drop across Artificially Induced Stenoses in the Femoral Arteries of Dogs , 1975, Circulation research.
[33] R. Wilson,et al. Intracoronary papaverine: an ideal coronary vasodilator for studies of the coronary circulation in conscious humans. , 1986, Circulation.
[34] M. Schwaiger,et al. Nuclear medicine studies of the heart , 1998, European Radiology.
[35] B. Brundage,et al. Measurement of myocardial blood flow by ultrafast computed tomography. , 1987, Circulation.
[36] K. Gould,et al. Coronary flow reserve as a physiologic measure of stenosis severity. , 1990, Journal of the American College of Cardiology.
[37] B. Chaitman,et al. Clinical outcome of deferring angioplasty in patients with normal translesional pressure-flow velocity measurements. , 1995, Journal of the American College of Cardiology.
[38] Jan J. Gerbrands,et al. State of the Art in Quantitative Coronary Arteriography as of 1996 , 1996 .
[39] E. Bates,et al. Comparative study of coronary flow reserve, coronary anatomy and results of radionuclide exercise tests in patients with coronary artery disease. , 1986, Journal of the American College of Cardiology.
[41] Rodney A. White,et al. Angioscopy: Vascular and coronary applications , 1989 .
[42] Max A. Viergever,et al. Guide Wire Tracking During Endovascular Interventions , 2000, MICCAI.
[43] J. Schofer,et al. Impact of compensatory enlargement of atherosclerotic coronary arteries on angiographic assessment of coronary artery disease. , 1989, Circulation.
[44] Johan H. C. Reiber,et al. Morphologic and Densitometric Analysis of Coronary Arteries , 1988 .
[45] D D Watson,et al. Myocardial contrast echocardiography in humans. II. Assessment of coronary blood flow reserve. , 1988, Journal of the American College of Cardiology.
[46] James S. Whiting,et al. Advantages and limitations of videodensitometry in quantitative coronary angiography , 1991 .
[47] Jean-Philippe Thirion,et al. MyoTrack: A 3D Deformation Field Method to Measure Cardiac Motion from Gated SPECT , 2000, MICCAI.
[48] R. Carretta. McDonaldʼs Blood Flow in Arteries: Theoretical, Experimental and Clinical Principles , 1998 .
[49] J E Edwards,et al. Correlation of the Antemortem Coronary Arteriogram and the Postmortem Specimen , 1973, Circulation.
[50] W. Hillis,et al. Reactive hyperemia: an index of the significance of coronary stenoses. , 1976, American heart journal.
[51] J. Forrester,et al. Digital angiographic measurement of radiographic contrast material kinetics for estimation of myocardial perfusion. , 1986, Circulation.
[52] E. Wellnhofer,et al. Validation of an accurate method for three-dimensional reconstruction and quantitative assessment of volumes, lengths and diameters of coronary vascular branches and segments from biplane angiographic projections , 1999, The International Journal of Cardiac Imaging.
[53] Karl Rohr,et al. Approximating Thin-Plate Splines for Elastic Registration: Integration of Landmark Errors and Orientation Attributes , 1999, IPMI.
[54] C A Mistretta,et al. Digital subtraction angiographic imaging of coronary flow reserve. , 1987, Circulation.
[55] K W Beach,et al. Ultrasonic color flow mapping: the visualization of four-dimensional cardiac and vascular flow phenomena using two dimensions and "real time". , 1997, Ultrasound in medicine & biology.
[56] Y Sun,et al. Automated identification of vessel contours in coronary arteriograms by an adaptive tracking algorithm. , 1989, IEEE transactions on medical imaging.
[57] R. Wilson,et al. Assessing the severity of coronary-artery stenoses. , 1996, The New England journal of medicine.
[58] W. Rutishauser,et al. Evaluation of Roentgen Cinedensitometry for Flow Measurement in Models and in the Intact Circulation , 1967, Circulation.
[59] K. Zierler,et al. On the theory of the indicator-dilution method for measurement of blood flow and volume. , 1954, Journal of applied physiology.
[60] P. H. van der Voort,et al. Measurement of fractional flow reserve to assess the functional severity of coronary-artery stenoses. , 1996, The New England journal of medicine.
[61] R. Kirkeeide,et al. Coronary obstructions, morphology and physiologic significance , 1991 .
[62] Fang-Hsuan Cheng,et al. Fast algorithm for point pattern matching: Invariant to translations, rotations and scale changes , 1997, Pattern Recognit..
[63] C. White. Simplicity's virtue scorned. Precision comes to TIMI flow grading and the results are ...surprising. , 1996, Circulation.
[64] Aggelos K. Katsaggelos,et al. Motion estimation of skeletonized angiographic images using elastic registration , 1994, IEEE Trans. Medical Imaging.
[65] C G ROB,et al. Hemodynamic effects of arterial stenosis. , 1963, Surgery.
[66] R. Edelman,et al. A preliminary report comparing magnetic resonance coronary angiography with conventional angiography. , 1993, The New England journal of medicine.
[67] J. Hoffman. A critical view of coronary reserve. , 1987, Circulation.
[68] H. S. Mueller,et al. The Thrombolysis in Myocardial Infarction (TIMI) trial. Phase I findings. , 1985, The New England journal of medicine.
[69] C M Grondin,et al. Discrepancies Between Cineangiographic and Postmortem Findings in Patients with Coronary Artery Disease and Recent Myocardial Revascularization , 1974, Circulation.
[70] K. Gould,et al. Noninvasive assessment of coronary stenoses by myocardial perfusion imaging during pharmacologic coronary vasodilatation. I. Physiologic basis and experimental validation. , 1978, The American journal of cardiology.
[71] J. Murray,et al. Variability in the Analysis of Coronary Arteriograms , 1977, Circulation.
[72] Raimund Erbel,et al. X-ray densitometry for the measurement of regional myocardial perfusion , 2000, Basic Research in Cardiology.
[73] W. O’Neill,et al. Application of digital techniques to selective coronary arteriography: use of myocardial contrast appearance time to measure coronary flow reserve. , 1984, American heart journal.
[74] Kenneth Steiglitz,et al. Combinatorial Optimization: Algorithms and Complexity , 1981 .
[75] C. David Cooke,et al. A quantitative evaluation of the three dimensional reconstruction of patients' coronary arteries , 2004, The International Journal of Cardiac Imaging.
[76] C. White,et al. Does visual interpretation of the coronary arteriogram predict the physiologic importance of a coronary stenosis? , 1984, The New England journal of medicine.
[77] E O Ofili,et al. Analysis of coronary blood flow velocity dynamics in angiographically normal and stenosed arteries before and after endolumen enlargement by angioplasty. , 1993, Journal of the American College of Cardiology.
[78] P. H. van der Voort,et al. Fractional flow reserve. A useful index to evaluate the influence of an epicardial coronary stenosis on myocardial blood flow. , 1995, Circulation.
[79] Helmut Wollschläger,et al. Computed Triple Orthogonal Projections for Optimal Radiological Imaging with Biplane Isocentric Multidirectional X-ray Systems , 1988 .
[80] M. Kern. Focus for the new millennium: diffuse coronary artery disease and physiologic measurements of severity , 2000 .
[81] Asker M. Bazen,et al. Fingerprint Identification - Feature Extraction, Matching and Database Search , 2002 .
[82] Jürgen Weese,et al. Weighted least squares for point-based registration in digital subtraction angiography (DSA) , 1999, Medical Imaging.
[83] J. Womersley. Method for the calculation of velocity, rate of flow and viscous drag in arteries when the pressure gradient is known , 1955, The Journal of physiology.
[84] K. Gould,et al. Assessment of coronary stenoses by myocardial perfusion imaging during pharmacologic coronary vasodilation. VII. Validation of coronary flow reserve as a single integrated functional measure of stenosis severity reflecting all its geometric dimensions. , 1986, Journal of the American College of Cardiology.
[85] M. Kern,et al. Assessment of angiographically intermediate coronary artery stenosis using the Doppler flowire. , 1993, The American journal of cardiology.
[86] Dennis L. Parker,et al. Three-dimensional Reconstruction and Cross-section Measurements of Coronary Arteries using ECG-Correlated Digital Coronary Arteriography , 1988 .
[87] J. Elion,et al. Value and limitations of computer analysis of digital subtraction angiography in the assessment of coronary flow reserve. , 1986, Circulation.
[88] Hoffman Ji. A critical view of coronary reserve. , 1987, Circulation.
[89] R. Dinsmore,et al. Interobserver Variability in Coronary Angiography , 1976, Circulation.
[90] S. M. Collins,et al. Automated analysis of coronary arterial morphology in cineangiograms: geometric and physiologic validation in humans. , 1989, IEEE transactions on medical imaging.
[91] J. Seward,et al. Rapid Three-Dimensional Echocardiography: Clinically Feasible Alternative for Precise and Accurate Measurement of Left Ventricular Volumes , 2001, Circulation.
[92] Wiro J. Niessen,et al. 2D Guide Wire Tracking during Endovascular Interventions , 2002, MICCAI.
[93] J. H. Eusterman,et al. Atherosclerotic Disease of the Coronary Arteries: A Pathologic‐Radiologic Correlative Study , 1962 .
[94] W. Roberts,et al. Coronary artery narrowing in coronary heart disease: comparison of cineangiographic and necropsy findings. , 1979, Annals of internal medicine.
[95] D. F. Young,et al. Flow characteristics in models of arterial stenoses. II. Unsteady flow. , 1973, Journal of biomechanics.
[96] B D Kosowsky,et al. Combined physiologic and anatomic assessment of percutaneous revascularization using a Doppler guidewire and ultrasound catheter. , 1993, The American journal of cardiology.
[97] Cornelis H. Slump,et al. Densitometric determination of the flow distribution in the bifurcation of the left coronary artery , 1999, Medical Imaging.
[98] J. Reiber,et al. Which cineangiographically assessed anatomic variable correlates best with functional measurements of stenosis severity? A comparison of quantitative analysis of the coronary cineangiogram with measured coronary flow reserve and exercise/redistribution thallium-201 scintigraphy. , 1988, Journal of the American College of Cardiology.
[99] James W. Nilsson,et al. Electric Circuits , 1983 .
[100] J. Hoffman. Maximal coronary flow and the concept of coronary vascular reserve. , 1984, Circulation.
[101] Milan Sonka,et al. Geometrically correct 3-D reconstruction of intravascular ultrasound images by fusion with biplane angiography-methods and validation , 1999, IEEE Transactions on Medical Imaging.
[102] Jouke Dijkstra,et al. Current and future developments in QCA and image fusion with IVUS , 1998 .
[103] C. White,et al. The value of lesion cross-sectional area determined by quantitative coronary angiography in assessing the physiologic significance of proximal left anterior descending coronary arterial stenoses. , 1984, Circulation.
[104] Milan Sonka,et al. 3D catheter path reconstruction from biplane angiograms , 1998, Medical Imaging.
[105] F. Klocke,et al. Measurements of coronary blood flow and degree of stenosis: current clinical implications and continuing uncertainties. , 1983, Journal of the American College of Cardiology.
[106] E L Bolson,et al. Experimental Validation of Quantitative Coronary Arteriography for Determining Pressure-Flow Characteristics of Coronary Stenosis , 1982, Circulation.
[107] W. Hundley,et al. Visualization and functional assessment of proximal and middle left anterior descending coronary stenoses in humans with magnetic resonance imaging. , 1999, Circulation.
[108] S. P. Karas,et al. Restenosis following coronary angioplasty , 1991, Clinical cardiology.
[109] J. Edwards,et al. Pathology of coronary atherosclerosis. , 1971, Progress in cardiovascular diseases.
[110] M. Poullis. Coronary pressure measurements: catheter induced errors , 1999, Heart.
[111] J. Womersley. XXIV. Oscillatory motion of a viscous liquid in a thin-walled elastic tube—I: The linear approximation for long waves , 1955 .
[112] R. Vogel. The radiographic assessment of coronary blood flow parameters. , 1985, Circulation.
[113] C. Nienaber,et al. The cost-effectiveness of QCA in interventional cardiology , 1998 .
[114] M. Murphy,et al. Coronary angiogram interpretation. Interobserver variability. , 1978, JAMA.
[115] L.A.J. Verhoeven,et al. Digital subtraction angiography (DSA) : The technique and an analysis of the physical factors influencing the image quality , 1985 .
[116] R. Wilson,et al. Methods of measurement of myocardial blood flow in patients: a critical review. , 1987, Circulation.
[117] D. Bluemke,et al. Cardiac disease in the adult: MR evaluation. , 1999, Critical reviews in diagnostic imaging.
[118] A.C.M. Dumay,et al. Image reconstruction from biplane angiographic projections , 1992 .
[119] J. Elion,et al. Parametric Encoding of Coronary Arteriograms for the Evaluation of Hyperemic Reserve , 1988 .
[120] W Rutishauser,et al. Blood flow measurement through single coronary arteries by roentgen densitometry. Right coronary artery flow in conscious man. , 1970, The American journal of roentgenology, radium therapy, and nuclear medicine.
[121] Anne V. Clough,et al. Stream tube and velocity profile analysis of pulmonary arterial angiograms , 1999, Medical Imaging.
[122] B. Smaill,et al. Estimation of epicardial strain using the motions of coronary bifurcations in biplane cineangiography , 1992, IEEE Transactions on Biomedical Engineering.
[123] K. terBrugge,et al. Rotational angiography assessment of cerebral aneurysms. , 1994, AJNR. American journal of neuroradiology.
[124] E. Hoffman,et al. Noninvasive assessment of coronary stenoses by myocardial imaging during pharmacologic coronary vasodilation. VI. Detection of coronary artery disease in human beings with intravenous N-13 ammonia and positron computed tomography. , 1982, The American journal of cardiology.
[125] D. L. Pope,et al. Left ventricular border recognition using a dynamic search algorithm. , 1985, Radiology.
[126] Cornelis H. Slump,et al. Myocardial fractional flow reserve: a biplane angiocardiographic alternative to the pressure gradient method , 2001, SPIE Medical Imaging.
[127] J. Murray,et al. Myocardial Imaging with Thallium-201 at Rest and during Exercise , 1977, Circulation.
[128] J. Sklansky,et al. Computing the skeleton of coronary arteries in cineangiograms. , 1986, Computers and biomedical research, an international journal.
[129] E. Ritman. Angiographic measurement of coronary blood flow reserve. Does it work? , 1990, Circulation.
[130] P. Gosse,et al. Coronary reserve in experimental myocardial hypertrophy. , 1995, European heart journal.
[131] P. Doriot,et al. A new densitometric approach to the assessment of mean coronary flow. , 1997, Investigative radiology.
[132] M. Goldbaum,et al. Detection of blood vessels in retinal images using two-dimensional matched filters. , 1989, IEEE transactions on medical imaging.
[133] B. Bruyne,et al. Coronary Pressure , 1997, Developments in Cardiovascular Medicine.
[134] Amir A. Amini,et al. Quantitative coronary angiography with deformable spline models , 1997, IEEE Transactions on Medical Imaging.
[135] E. Braunwald,et al. The Stunned Myocardium: Prolonged, Postischemic Ventricular Dysfunction , 1982, Circulation.
[136] S E Nissen,et al. Assessment of the functional significance of coronary stenoses. Is digital angiography the answer? , 1990, Circulation.
[137] E R Bates,et al. Validation in dogs of a rapid digital angiographic technique to measure relative coronary blood flow during routine cardiac catheterization. , 1985, The American journal of cardiology.
[138] R. Krams,et al. New invasive techniques of assessment of the physiological significance of coronary stenoses in humans. , 1995, European heart journal.
[139] R. Vogel,et al. Assessing stenosis significance by coronary arteriography: are the best variables good enough? , 1988, Journal of the American College of Cardiology.
[140] N. Nanda,et al. Color Doppler imaging of the myocardium: current status and potential clinical applications. , 1998, Ultrasound in medicine & biology.
[141] K. Miles,et al. Measurement of tissue perfusion by dynamic computed tomography. , 1991, The British journal of radiology.
[142] Johan H. C. Reiber,et al. Quantitative Coronary Arteriography , 1991 .
[143] A Camerini,et al. Panoramic coronary angiography. , 1998, Journal of the American College of Cardiology.
[144] N. Dunnick,et al. A Practical Approach to Angiography , 1979 .
[145] A Hasman,et al. Extrapolation of incomplete marker tracks by lower rank approximation. , 1993, International journal of bio-medical computing.
[146] E H Wood,et al. Roentgen videodensitometric measure of coronary blood flow. Determination from simultaneous indicator-dilution curves at selected sites in the coronary circulation and in coronary artery-saphenous vein grafts. , 1971, Mayo Clinic proceedings.
[147] S. Nissen,et al. Application of indicator dilution principles to regional assessment of coronary flow reserve from digital angiography , 1991 .
[148] Alejandro F. Frangi,et al. Model-based quantitation of 3-D magnetic resonance angiographic images , 1999, IEEE Transactions on Medical Imaging.
[149] Fred L. Bookstein,et al. Principal Warps: Thin-Plate Splines and the Decomposition of Deformations , 1989, IEEE Trans. Pattern Anal. Mach. Intell..
[150] P. Marhoff,et al. Fast Automatic Recognition and 3D Reconstruction of the Coronary Tree from DSA-Projection Pairs , 1988 .
[151] M. McConnell,et al. Identification of anomalous coronary arteries and their anatomic course by magnetic resonance coronary angiography. , 1995, Circulation.
[152] K. Gould. Focus for the new millennium—diffuse coronary artery disease and new paradigms in cardiovascular medicine , 2000 .
[153] A Zeiher,et al. Digital angiographic impulse response analysis of regional myocardial perfusion. Estimation of coronary flow, flow reserve, and distribution volume by compartmental transit time measurement in a canine model. , 1991, Circulation research.
[154] Jean-Louis Coatrieux,et al. Three-dimensional motion and reconstruction of coronary arteries from biplane cineangiography , 1994, Image Vis. Comput..
[155] G. Mancini,et al. Characterization of changes in coronary blood flow during the first six seconds after intracoronary contrast injection. , 1985, Investigative radiology.
[156] J G van den Broek,et al. Three-dimensional densitometric reconstruction and visualization of stenosed coronary artery segments. , 1995, Computerized medical imaging and graphics : the official journal of the Computerized Medical Imaging Society.
[157] A Zeiher,et al. Digital angiographic impulse response analysis of regional myocardial perfusion: linearity, reproducibility, accuracy, and comparison with conventional indicator dilution curve parameters in phantom and canine models. , 1989, Circulation research.
[158] Fjh Frank Gijsen. Modeling of wall shear stress in large arteries , 1998 .
[159] J. Sklansky,et al. Estimating the 3D skeletons and transverse areas of coronary arteries from biplane angiograms. , 1988, IEEE transactions on medical imaging.
[160] G. Beller,et al. Prediction of cardiac events after uncomplicated myocardial infarction: a prospective study comparing predischarge exercise thallium-201 scintigraphy and coronary angiography. , 1983, Circulation.
[161] Cornelis H. Slump,et al. On the Reliability of Template Matching in Biomedical Image Processing , 2000 .
[162] T. Harris,et al. An analysis of mathematical models of circulatory indicator-dilution curves. , 1970, Journal of applied physiology.
[163] C Caiati,et al. New noninvasive method for coronary flow reserve assessment: contrast-enhanced transthoracic second harmonic echo Doppler. , 1999, Circulation.
[164] B E Bouma,et al. High resolution in vivo intra-arterial imaging with optical coherence tomography , 1999, Heart.
[165] G. B. John Mancini,et al. Digital coronary angiography: advantages and limitations , 1991 .
[166] Milan Sonka,et al. Visualization of human coronary arteries with quantification results from 3-D and 4-D computational hemodynamics based upon virtual endoscopy , 2001, CARS.
[167] F. Spiers. Physics of Radiology , 1968, Nature.
[168] D. Berman,et al. The ongoing evolution of risk stratification using myocardial perfusion imaging in patients with known or suspected coronary artery disease , 1999 .
[169] K. Gould. Functional measures of coronary stenosis severity at cardiac catheterization. , 1990, Journal of the American College of Cardiology.
[170] R. Westcott,et al. Noninvasive assessment of coronary stenoses by myocardial imaging during pharmacologic coronary vasodilatation. II. Clinical methodology and feasibility. , 1978, The American journal of cardiology.
[171] Kunio Doi,et al. Automated Tracking Of The Vascular Tree In DSA Images Using A Double-Square-Box Region-Of-Search Algorithm , 1986, Other Conferences.
[172] C. Seiler,et al. Basic Structure–Function Relations of the Epicardial Coronary Vascular Tree: Basis of Quantitative Coronary Arteriography for Diffuse Coronary Artery Disease , 1992, Circulation.
[174] B B Goldberg,et al. 2-D and 3-D Endoluminal Ultrasound: Vascular and Nonvascular Applications , 1999, Surgical neurology.
[175] P. V. van Ooijen,et al. Non-invasive coronary artery imaging with electron beam computed tomography and magnetic resonance imaging , 2000, Heart.
[176] Werner Moshage,et al. Detection of Coronary Artery Stenoses by Contrast-Enhanced, Retrospectively Electrocardiographically-Gated, Multislice Spiral Computed Tomography , 2001, Circulation.
[177] W. Nichols,et al. McDonald's Blood Flow in Arteries: Theoretical, Experimental and Clinical Principles , 1998 .
[178] Dennis L. Parker,et al. Blood Flow Measurements in Digital Cardiac Angiography using 3D Coronary Artery Reconstructions , 1988 .
[179] A. Franke,et al. Bildgebende Verfahren in der Kardiologie: 3D-Echokardiographie , 2000, Zeitschrift für Kardiologie.
[180] R. Körfer,et al. Measurement of systolic and diastolic flow rates in the coronary artery system by x-ray densitometry. , 1983, Circulation.
[181] Carsten Steger,et al. An Unbiased Detector of Curvilinear Structures , 1998, IEEE Trans. Pattern Anal. Mach. Intell..
[182] A. Schmermund,et al. Abnormal Coronary Flow Velocity Reserve After Coronary Intervention Is Associated With Cardiac Marker Elevation , 2001, Circulation.
[183] O. Hess,et al. Determination of coronary flow reserve by parametric imaging. , 1990, Circulation.
[184] H. Frank. Imaging techniques in the diagnosis of coronary heart disease , 1997, Der Radiologe.
[185] J. Elion,et al. Methods for Calculation of Coronary Flow Reserve by Computer Processing of Digital Angiograms , 1988 .
[186] F. Klocke,et al. Coronary blood flow in man. , 1976, Progress in cardiovascular diseases.
[187] D. F. Young,et al. Flow characteristics in models of arterial stenoses. I. Steady flow. , 1973, Journal of biomechanics.
[188] B. De Bruyne,et al. Experimental Basis of Determining Maximum Coronary, Myocardial, and Collateral Blood Flow by Pressure Measurements for Assessing Functional Stenosis Severity Before and After Percutaneous Transluminal Coronary Angioplasty , 1993, Circulation.
[189] S. Achenbach,et al. Noninvasive detection of coronary artery stenosis using contrast-enhanced three-dimensional breath-hold magnetic resonance coronary angiography. , 2000, Journal of the American College of Cardiology.
[190] Mcm Marcel Rutten,et al. Fluid-solid interaction in large arteries , 1998 .
[191] Klaus D. Tönnies,et al. Accuracy of distance measurements in biplane angiography , 1997, Medical Imaging.
[192] S. M. Collins,et al. Visual estimates of percent diameter coronary stenosis: "a battered gold standard". , 1988, Journal of the American College of Cardiology.
[193] J. H. C. Reiber,et al. Overview of Coronary Quantitation Techniques , 1989 .
[194] N. Mullani,et al. Noninvasive assessment of coronary stenoses by myocardial perfusion imaging during pharmacologic coronary vasodilation. VIII. Clinical feasibility of positron cardiac imaging without a cyclotron using generator-produced rubidium-82. , 1986, Journal of the American College of Cardiology.
[195] Max A. Viergever,et al. Image Registration for Digital Subtraction Angiography , 1999, International Journal of Computer Vision.
[196] Ming Fang,et al. Multiscale adaptive method for blood vessel enhancement in x-ray angiography , 1997, Medical Imaging.
[197] N. Lassen,et al. Tracer kinetic methods in medical physiology , 1979 .
[198] E. Ritman,et al. Regional myocardial volume perfused by the coronary artery branch: estimation in vivo. , 1986, Circulation.
[199] J. Womersley,et al. An Elastic Tube Theory of Pulse Transmission and Oscillatory Flow in Mammalian Arteries , 1957 .
[200] P. Heintzen,et al. Concepts for Coronary Flow and Myocardial Perfusion Measurements , 1988 .
[201] T. Takaro,et al. Observer Agreement in Evaluating Coronary Angiograms , 1975, Circulation.
[202] Cornelis H. Slump,et al. Automatic Segmentation of the Coronary Artery Tree in Angiographic Projections , 2002 .
[203] Arnold W. M. Smeulders,et al. High accuracy tracking of 2D/3D curved line-structures by consecutive cross-section matching , 1998, Pattern Recognit. Lett..
[204] N de Jong,et al. Ultrasound contrast imaging: current and new potential methods. , 2000, Ultrasound in medicine & biology.
[205] G W Hamilton,et al. Physiologic basis for assessing critical coronary stenosis. Instantaneous flow response and regional distribution during coronary hyperemia as measures of coronary flow reserve. , 1974, The American journal of cardiology.
[206] M. Paul,et al. Limitations of thermal dilution curves for cardiac output determinations. , 1971, Journal of applied physiology.
[207] Y. Bentoutou,et al. An invariant approach for image registration in digital subtraction angiography , 2002, Pattern Recognit..
[208] Richard A. Robb. Three-Dimensional Biomedical Imaging: Principles and Practice , 1995 .
[209] P. Croisille,et al. MR imaging of the heart: functional imaging , 2000, European Radiology.
[210] Milan Sonka,et al. Determination of the absolute axial orientation of intracoronary ultrasound images in fusion with biplane angiography , 1998, Computers in Cardiology 1998. Vol. 25 (Cat. No.98CH36292).
[211] Andreas Wahle,et al. Assessment of diffuse coronary artery disease by quantitative analysis of coronary morphology based upon 3-D reconstruction from biplane angiograms , 1995, IEEE Trans. Medical Imaging.
[212] Yao-Jin Qian,et al. Scatter and veiling glare corrections for quantitative digital subtraction angiography , 1994, Medical Imaging.
[213] Milan Sonka,et al. Adaptive approach to accurate analysis of small-diameter vessels in cineangiograms , 1997, IEEE Transactions on Medical Imaging.
[214] J Wellauer,et al. BLOOD FLOW MEASUREMENT THROUGH SINGLE CORONARY ARTERIES BY ROENTGEN DENSITOMETRY. PART I. A COMPARISON OF FLOW MEASURED BY A RADIOLOGIC TECHNIQUE APPLICABLE IN THE INTACT ORGANISM AND BY ELECTROMAGNETIC FLOWMETER. , 1970 .
[215] H. Swan,et al. Measurement of Coronary Sinus Blood Flow by Continuous Thermodilution in Man , 1971, Circulation.
[216] D. L. Pope,et al. Three-dimensional reconstruction of moving arterial beds from digital subtraction angiography. , 1987, Computers and biomedical research, an international journal.
[217] K. Lipscomb,et al. Effects of coronary stenoses on coronary flow reserve and resistance. , 1974, The American journal of cardiology.
[218] F. Klocke,et al. Measurements of coronary flow reserve: defining pathophysiology versus making decisions about patient care. , 1987, Circulation.
[219] A. Mitiche. Computational Analysis of Visual Motion , 1994, Advances in Computer Vision and Machine Intelligence.
[220] Yoshinobu Sato,et al. A viewpoint determination system for stenosis diagnosis and quantification in coronary angiographic image acquisition , 1998, IEEE Transactions on Medical Imaging.
[221] F. Klocke,et al. Measurements of Coronary Flow Reserve in Clinically Problematic Coronary Stenoses , 1998 .
[222] R. Wilson,et al. Transluminal, subselective measurement of coronary artery blood flow velocity and vasodilator reserve in man. , 1985, Circulation.
[223] S. Watanabe,et al. THE USEFULNESS OF X‐RAY COMPUTED TOMOGRAPHY FOR THE DIAGNOSIS OF MYOCARDIAL INFARCTION , 1985, Circulation.
[224] E. L. Ritman. Symposium: Dynamic spatial reconstruction. Editorial: Introduction and overview , 1994 .
[225] J. Reiber,et al. Relation between Coronary Flow Reserve and Severity of Coronary Obstruction, Both Assessed from Coronary Cineangiogram , 1988 .
[226] N. Danchin,et al. Dipyridamole and exercise SPET provide different estimates of myocardial ischaemic areas: role of the severity of coronary stenoses and of the increase in heart rate during exercise , 2000, European Journal of Nuclear Medicine.
[227] Ferdinand van der Heijden. Image Based Measurement Systems: Object Recognition and Parameter Estimation , 1995 .
[228] B. De Bruyne,et al. Coronary pressure measurement and fractional flow reserve , 1998, Heart.
[229] C. White,et al. Isn't it time to reevaluate the sensitivity of noninvasive approaches for the diagnosis of coronary artery disease? , 1986, Journal of the American College of Cardiology.
[230] E. Ritman,et al. CORONARY ANGIOGRAPHIC EXAMINATION WITH THE DYNAMIC SPATIAL RECONSTRUCTOR , 1984, Circulation.
[231] O. Hess,et al. Measurement of coronary flow reserve and its role in patient care , 1998, Basic Research in Cardiology.
[232] W. Mali,et al. Maximum internal carotid arterial stenosis: assessment with rotational angiography versus conventional intraarterial digital subtraction angiography. , 1999, Radiology.
[233] A. Nitenberg,et al. Coronary vascular reserve in humans: a critical review of methods of evaluation and of interpretation of the results. , 1995, European heart journal.
[234] M. Kern,et al. Coronary flow velocity dynamics in normal and diseased arteries. , 1993, The American journal of cardiology.
[235] E. Topol,et al. Our preoccupation with coronary luminology. The dissociation between clinical and angiographic findings in ischemic heart disease. , 1995, Circulation.
[236] Hubert W. Vliegen,et al. Magnetic Resonance Imaging in Coronary Artery Disease , 1991, Developments in Cardiovascular Medicine.