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1.
A comparison of three methods for the determination of regional myocardial blood flow (rMBF) by {8}{2}Rb PET // Eur. J Nucl. Med., 1993. Vol. 20, N 10.-С.883

2.
A detailed model of [1-{1}{1}C]-acetate kinetic in aerobic tissue: Implications for assessing myocardial viability with dynamic PET // Eur. J. Nucl. Med., 1994. Vol. 21, N 8.-С.764

3.
A method for correcting myocardium to blood pool spillover in dynamic cardiac PET FDG studies // J. Nucl. Med., 1992. Vol. 33, N 5 Suppl..-С.882

4.
Li X. A model-based method for spillover correction in dynamic cardiac PET FDG studies The application to human subjects // J. Nucl. Med., 1994. Vol. 35, N 5 Suppl..-С.105

5.
Schabel Matthias C. A model-constrained Monte Carlo method for blind arterial input function estimation in dynamic contrast-enhanced MRI I: Simulations // Phys. Med. and Biol., 2010. Vol. 55, N 16.-С.4783-4806

6.
A model-constrained Monte Carlo method for blind arterial input function estimation in dynamic contrast-enhanced MRI II: In vivo results // Phys. Med. and Biol., 2010. Vol. 55, N 16.-С.4807-4823

7.
A modeling approach for separation of blood time activity curves of labeled metabolites (MET) in quantitative tracer PET studies // J. Nucl. Med., 1990. Vol. 31, N 5 suppl..-С.708

8.
Hellwig D. A new method for parametric imaging of metabolic rates using Patlak-analysis (РА) and maximum-likelihood-reconstruction (MLR) for {1}{8}F-FDG-PET in oncology // Eur. J. Nucl. Med., 1993. Vol. 20, N 10.-С.883

9.
A new myocardial imaging method by factor analysis using H[2]{1}{5}O and dynamic PET without a blood pool scan // J. Nucl. Med., 1990. Vol. 31, N 5 suppl..-С.861-862

10.
A new myocardial imaging method using factor analysis with H[2]{1}{5}O and dynamic positron emission tomography // Eur. J. Nucl. Med., 1989. Vol. 15, N 8.-С.440

11.
Wong W.H. A practical method for acquiring parametric images of UNI-directional rate constants and blood space // J. Nucl. Med., 1994. Vol. 35, N 5 Suppl..-С.184

12.
A quantitative model for PET study of the interactions between GCP 12177 and 'бета'-adrenergic receptors // Eur. J. Nucl. Med., 1989. Vol. 15, N 8.-С.555

13.
A refined method for quantification of myocardial oxygen consumption using mean transit time with C-11 acetate and dynamic PET // J. Nucl. Med., 1993. Vol. 34, N 5 Suppl..-С.183

14.
A straight, explicit and easy to understand analytical deduction of the Gjedde-Patlak equation // Eur. J. Nucl. Med., 1993. Vol. 20, N 10.-С.989

15.
A strategy for tomographic mapping of kinetic rate constants using I-123 IMP and dynamic SPECT // J. Nucl. Med., 1989. Vol. 30, N 5 Suppl..-С.805-806

16.
Whitaker H.A. Alternative interpretations of PeT measurements // Hum. Brain Mapp., 1995, Suppl. n 1.-С.210

17.
An analysis of thoracic and abdominal tumour motion for stereotactic body radiotherapy patients // Phys. Med. and Biol., 2008. Vol. 53, N 13.-С.3623-3640

18.
An analysis of thoracic and abdominal tumour motion for stereotactic body radiotherapy patients // Phys. Med. and Biol., 2008. Vol. 53, N 13.-С.3623-3640

19.
An automated blood sampling system used in fast dynamic function studies of the brain with positron emission tomography (PET) // Nuklearmed.. -Stuttgart, New York, 1988.-С.15-18

20.
An investigation into the effect of input function shape and image acquisition interval on estimates of washin for dynamic cardiac SPECT // Phys. Med. and Biol., 1997. Vol. 42, N 11.-С.2193-2213

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