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1.
Kellerer A.M. A generalized definition of dosimetric quantities // Int. J. Radicet. Biol., 1990. Vol. 57, N 4.-С.859-864

2.
A model-based method for the prediction of whole-body absorbed dose and bone marrow toxicity for {186}Re-HEDP treatment of skeletal metastases from prostate cancer // Eur. J. Nucl. Med. and Mol. Imag., 2003. Vol. 30, N 8.-С.1114-1124

3.
A model-based method for the prediction of whole-body absorbed dose and bone marrow toxicity for {186}Re-HEDP treatment of skeletal metastases from prostate cancer // Eur. J. Nucl. Med. and Mol. Imag., 2003. Vol. 30, N 8.-С.1114-1124

4.
Burns J.E. Absorbed-dose calibrations in high-energy photon beams at the National Physical Laboratory: Conversion procedure // Phys. Med. and Biol., 1994. Vol. 39, N 10.-С.1555-1575

5.
Air kerma to H[p](3) conversion coefficients for photons from 10 keyV to 10 MeV, calculated in a cylindrical phantom // Radiat. Prot. Dosim., 2013. Vol. 154, N 4.-С.517-521

6.
Olthoff-Munter K. Applicability of thin CaF[2]:Tm teflon dosemeters for interface dosimetry in d(14)+Be neutron fields // Radiat. Prot. Dosim., 1988. Vol. 23, N 1-4.-С.425-428

7.
Assessment of photon contributions in gadolinium neutron capture reactions. A preliminary study // KURRI Progr. Rept. 1994: Apr., 1994-March, 1995. -Osaka, 1995.-С.177

8.
Breast cancer risk after radiotherapy in infancy: A pooled analysis of two Swedish cohorts of 17,202 infants // Radiat. Res., 1999. Vol. 151, N 5.-С.626-632

9.
Breast cancer risk after radiotherapy in infancy: A pooled analysis of two Swedish cohorts of 17,202 infants // Radiat. Res., 1999. Vol. 151, N 5.-С.626-632

10.
Breast cancer risk after radiotherapy in infancy: A pooled analysis of two Swedish cohorts of 17,202 infants // Radiat. Res., 1999. Vol. 151, N 5.-С.626-632

11.
Breast cancer risk after radiotherapy in infancy: A pooled analysis of two Swedish cohorts of 17,202 infants // Radiat. Res., 1999. Vol. 151, N 5.-С.626-632

12.
Calculation of absorbed dose distributions from dynamic wedges // Phys. Med. and Biol., 1998. Vol. 43, N 6.-С.1497-1506

13.
Calculation of absorbed dose distributions from dynamic wedges // Phys. Med. and Biol., 1998. Vol. 43, N 6.-С.1497-1506

14.
Current status of bioassay procedures to detect and quantify previous exposures to radioactive materials // Health Phys., 1991. Vol. 60, Suppl. N1.-С.45-100

15.
Klevenhagen S.C. Determination of absorbed dose in high-energy electron and photon radiation by means of an uncalibrated ionization chamber // Phys. Med. and Biol., 1991. Vol. 36, N 2.-С.239-253

16.
Roberson Peter L. Determination of photon conversion factors relating exposure and dose for several extremity phantom designs // Health Phys., 1988. Vol. 57, N 5.-С.733-741

17.
Miljanic S. Determination of X ray effective energy and absorbed dose using CaF[2]:Mn and LiF:Mg,Ti thermoluminescence dosemeters // Radiat. Prot. Dosim., 1999. Vol. 85, N 1-4.-С.381-384

18.
Hentschel F. Die Knochenmarkdosis als Indikator fur die effektive Aquivalentdosis // Radiol. diagn.. - H[0]*w[к][м] ; здесь Н[0] - средняя доза в органе мГр , w[к][м] - весевой фактор для костного мозга. Для коэф. k в рентгенодиагностике получена оценка 3'+-'10%. ГДР, Instituts fur Neuroradiologie, Beziksnervenklinik Brandenburg, Brandenburg 12. Табл. 7. Библ. 15., 1989. Vol. 30, N 2.-С.183-188

19.
Dose distribution measurements of cosmic radiation in CaSO[4]: Dy-teflon rods // Radiat. Prot. Dosim., 1986. Vol. 17, N 1 - 4.-С.211-212

20.
Gupta M.M. Dosimetry of N-13-l-glutamate: Basic information on age-dependent absorbed dose coefficients: Discussion on the ICRP Task Group on Dose to Patients from Radiopharmaceuticals report // Eur. J. Nucl. Med., 1996. Vol. 23, N 11.-С.1554-1555

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