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1.
A computer model of human ventricular myocardium for simulation of ECG, MCG, and activation sequence including reentry rhythms // Basic Res. Cardiol, 1989. Vol. 84, N 4.-С.404-413

2.
A logical state model of reentrant ventricular activation // IEEE Trans. Biomed. Eng., 1990. Vol. 37, N 4.-С.344-353

3.
Age dependence of complete heart block complicating readiofrequency ablation of the atrioventricular nodal slow pathway // Amer. J. Cardiol., 1998. Vol. 82, N 3.-С.390-391

4.
Anisotropic conduction and reentry in perfused epicardium of rabbit left ventricle // Amer. J. Physiol., 1992. Vol. 263, N 3.-С.Н/1466-Н/1478

5.
Atrioventricular node reentrant tachycardia in patients with a long fast pathway effective refractory period: Clinical features, electrophysiologic characteristics, and results of radiofrequency ablation // Amer. Heart J., 1997. Vol. 134, N 3.-С.387-394

6.
Begemann M.J.S. Computer simulation of reentry tachycardias // Comput in Cardiol., Washington, D. C., Sept. 25-28, 1988. -Washington (D. C.), 1989.-С.527-530

7.
Ben-Haim Shlomo A. Intercellular conduction velocity variability as the basis for re-entrant arrhythmias in the ischemic myocardium // J. Theor. Biol., 1992. Vol. 154, N 3.-С.317-330

8.
Biktashev V.N. Re-entrant activity and its control in a model of mammalian ventricular tissue // Proc. Roy. Soc. London. B, 1996. Vol. 263, N 1375.-С.1373-1382

9.
Characteristics of the temporal and spatial excitable gap in anisotropic reentrant circuits causing sustained ventricular tachycardia // Circ. Res., 1998. Vol. 82, N 2.-С.279

10.
Characteristics of the temporal and spatial excitable gap in anisotropic reentrant circuits causing sustained ventricular tachycardia // Circ. Res., 1998. Vol. 82, N 2.-С.279

11.
Characteristics of the temporal and spatial excitable gap in anisotropic reentrant circuits causing sustained ventricular tachycardia // Circ. Res., 1998. Vol. 82, N 2.-С.279

12.
Chay Studies on re-entrant arrhythmias and ectopic beats in excitable tissues by bifurcation analyses // J. Theor. Biol., 1992. Vol. 155, N 2.-С.137-171

13.
Ciaccio Edward J. Premature excitation and onset of reentrant ventricular tachycardia // Amer. J. Physiol., 2002. Vol. 283, N 4.-С.H1703-H1712

14.
Clough A. The effects of anisotropy on re-entrant waves in a three-dimensional, coupled map lattice model of myocardial tissue // J. Physiol., 1993. Vol. 467.-С.153

15.
Comparison between influence of the conduction velocity and the refractory period variation on the reentry mechanism // Proc. Annu. Int. Conf. IEEE Eng. Med. and Biol. Soc., Orlando, Fla, Oct. 31 - Nov. 3, 1991. -New York (N. Y.), 1991, Vol. 13.-С.621-622

16.
Computer simulation of defibrillating electric shocks: critical mass // Images 21st Century: Proc. 11th Annu. Int. Conf. IEEE Eng. Med. and Biol. Sco. Seattle, Wash., Nov. 9-12, 1989. -New York (N. Y.), 1989, Pt 1/6.-С.75-76

17.
Computer simulation of ventricular fibrillation and of defibrillating electric shors. Effects of antiarrhythmic drugs // Math. and Comput. Modell, 1990. Vol. 14.-С.576-581

18.
Data analysis techniques for measuring spatial inhomogeneity in repolarization using optical transmembrane potentials // Images 21st Century. -New York (N. Y.), 1989, Pt 1/6.-С.222-223

19.
Differential effects of adenosine on antegrade and retrograde fast pathway conduction in atrioventricular nodal reentry // Amer. Heart J., 1997. Vol. 134, N 5.-С.799-806

20.
Effects of enhanced parasympathetic tone on atrioventricular nodal conduction during atrioventricular nodal reentrant tachycardia // Amer. J. Cardiol., 1997. Vol. 80, N 7.-С.878-882

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