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1.
A linear spatial correlation model, with applications to positron emission tomography // J. Amer. Statist. Assoc., 1991. Vol. 86, N 413.-С.55-67

2.
Bentzen S.M. Direct estimation of the fraction of hypoxic cells from tumor-control data obtained under aerobic and clamped conditions // Int. J. Radiat. Biol., 1991. Vol. 59, N 6.-С.1435-1440

3.
Brenner D.J. Reply to letter by Harrison and Balcer-Kubiczek // Int. J. Radiat. Biol., 1992. Vol. 61, N 1.-С.143

4.
Carabe-Fernandez The incorporation of the concept of minimum RBE (RBE[min]) into the linear-quadratic model and the potential for improved radiobiological analysis of high-LET treatments // Int. J. Radiat. Biol., 2007. Vol. 83, N 1.-С.27-39

5.
Chougule Early skin reactions in head and neck malignancy treated by twice-daily fractionated radiotherapy-estimation of alpha/beta of LQ model // Phys. Med. and Biol., 1993. Vol. 38, N 9.-С.1335-1342

6.
Chromosome aberration measurements in mitotic and G[2]-PCC lymphocytes at the standard sampling time of 48 h underestimate the effectiveness of high-LET // Radiat. and Environ. Biophys., 2011. Vol. 50, N 3.-С.371-381

7.
Convex reformulation of biologically-based multi-criteria intensity-modulated radiation therapy optimization including fractionation effects // Phys. Med. and Biol., 2008. Vol. 53, N 22.-С.6345-6362

8.
Convex reformulation of biologically-based multi-criteria intensity-modulated radiation therapy optimization including fractionation effects // Phys. Med. and Biol., 2008. Vol. 53, N 22.-С.6345-6362

9.
Correlation between cell reproductive death and chromosome aberration assessed by FISH for low and high doses of radiation and sensitization by iodo-deoxyuridine in human SW-1573 cells // Int. J. Radiat. Biol., 1999. Vol. 75, N 3.-С.293-299

10.
Correlation between cell reproductive death and chromosome aberration assessed by FISH for low and high doses of radiation and sensitization by iodo-deoxyuridine in human SW-1573 cells // Int. J. Radiat. Biol., 1999. Vol. 75, N 3.-С.293-299

11.
Dale Roger G. The assessment of rbe effects using the concept of biologically effective dose // Int. J. Radiat., Oncol. Biol., Phys., 1999. Vol. 43, N 3.-С.639-645

12.
Dale Roger G. The assessment of rbe effects using the concept of biologically effective dose // Int. J. Radiat., Oncol. Biol., Phys., 1999. Vol. 43, N 3.-С.639-645

13.
Deehan C. Biological equivalence between fractionated radiotherapy treatments using the linear-quadratic model // Brit. J. Radiol., 1988. Vol. 61, N 732.-С.1187-1188

14.
Deschavanne P.J. The relevance of 'альфа'/'бета' ratios determined in vitro for human cell lines to the understanding of in vivo values // Int. J. Radiat. Biol., 1989. Vol. 56, N 5.-С.539-542

15.
Dikomey E. Thermal radiosensitization in CHO cells by prior heating at 41-46'ГРАДУС' С // Int. J. Radiat. Biol., 1991. Vol. 59, N 3.-С.815-825

16.
Dose-response curve for chromosome transclocations induced by low dose rate {137}Cs gamma rays // Radiat. Prot. Dosim., 1997. Vol. 71, N 4.-С.279-282

17.
Dose-response curve for chromosome translocations measured in human lymphocytes exposed to {60}Co gamma rays // Health Phys., 1995. Vol. 68, N 6.-С.761-765

18.
Ekstrand Kenneth E. The Hug-Kellerer equation as the universal cell survival curve // Phys. Med. and Biol., 2010. Vol. 55, N 10.-С.N267-N273

19.
Fowler John F. The linear-quadratic formula and progress in fractionated radiotherapy // Brit. J. Radiol., 1989. Vol. 62, N 740.-С.679-694

20.
Fractionation effects in particle radiotherapy: Implications for hypo-fractionation regimes // Phys. Med. and Biol., 2010. Vol. 55, N 19.-С.5685-5700

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