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1

Broadhead, B. L. QADS, a multidimensional point kernel analysis module. Division of Safeguards and Transportation, Office of Nuclear Material Safety and Safeguards, U.S. Nuclear Regulatory Commission, 1990.

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2

E, Faw Richard, ed. Radiation shielding. American Nuclear Society, 2000.

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3

Shultis, J. Kenneth. Radiation shielding. Prentice Hall PTR, 1996.

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4

Hyde, Anthony T. Radiation monitoring methods. Sampson Pub. Co., 2007.

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5

Kondratʹev, K. I͡A. Vlii͡anie atmosfery na issledovanii͡a prirodnykh resursov iz kosmosa. "Mashinostroenie", 1985.

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6

Pawłowski, Zdzisław. Modele zjawisk w spektrometrycznych gazowych detektorach promieniowania jądrowego. Wydawnictwa Politechniki Warszawskiej, 1986.

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7

Band model theory of radiation transport. Aerospace Press ; American Institute of Aeronautics and Astronautics, 2013.

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8

Kondratʹev, K. I͡A. Remote sensing of the earth from space: Atmospheric correction. Springer-Verlag, 1992.

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9

K, Fraley S., ed. A Monte Carlo primer: A practical approach to radiation transport. Kluwer Academic/Plenum, 2002.

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10

R, Howell John, ed. Thermal radiation heat transfer. 4th ed. Taylor & Francis, 2002.

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11

R, Howell John, ed. Thermal radiation heat transfer. 3rd ed. Hemisphere Pub. Corp., 1992.

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12

Taudiere, Isabelle. Analyse du rayonnement electromagnetique VHF-UHF de l'eclair: Application a un modele d'avancee du precurseur negatif. Office national d'etudes et de recherches aerospatiales, 1989.

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13

Baur, Alain. Protection contre les rayonnements: Aspects physiques et méthodes de calcul. Commissariat à l'énergie atomique, 1985.

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14

Heinbockel, J. H. An improved neutron transport algorithm for space radiation. National Aeronautics and Space Administration, Langley Research Center, 2000.

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15

Mice, myths, and men. National Council on Radiation Protection and Measurements, 1995.

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16

Taylor, V. R. Implementation of reflectance models in operational AVHRR radiation budget processing. U.S. Dept. of Commerce, National Oceanic and Atmospheric Administration, National Environmental Satellite, Data, and Information Service, 1990.

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17

Loevinger, Robert. MIRD primer for absorbed dose calculations. Society of Nuclear Medicine, 1988.

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18

Environmental radiation effects on mammals: A dynamical modeling approach. Springer, 2011.

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19

Hanford Life Sciences Symposium (26th 1987 Richland, Wash.). Modeling for scaling to man: Biology, dosimetry, and response, [proceedings of the] 26th Hanford Life Sciences Symposium. Edited by Mahaffey Judith A. Pergamon Press, 1989.

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20

1951-, Weber Roman, ed. Radiation in enclosures: Elliptic boundary value problem. Springer, 2000.

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21

Huston, S. L. Space environment effects: Low-altitude trapped radiation model. National Aeronautics and Space Administration, Marshall Space Flight Center, 1998.

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22

Ovchinnikov, Igorʹ Georgievich. Napri︠a︡zhenno-deformirovannoe sostoi︠a︡nie armirovannykh ėlementov konstrukt︠s︡iĭ pri vozdeĭstvii radiat︠s︡ionnykh poleĭ. Saratovskiĭ gos. tekhnicheskiĭ universitet, 2004.

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23

Armstrong, T. W. Trapped radiation model uncertainties: Model, data and model, model comparisons. National Aeronautics and Space Administration, Marshall Space Flight Center, 2000.

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24

Uncertainties in the measurement and dosimetry of external radiation: Recommendations of the National Council on Radiation Protection and Measurements. National Council on Radiation Protection and Measurements, 2008.

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25

France, Société mathématique de, ed. Mathematical models and numerical methods for radiative transfer. Société Mathématique de France, 2009.

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26

Kang, Kab Seok. P1 nonconforming finite element method for the solution of radiation transport problems. Institute for Computer Applications in Science and Engineering, NASA Langley Research Center, 2002.

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27

Armstrong, T. W. Evaluation of trapped radiation model uncertainties for spacecraft design. National Aeronautics and Space Administration, Marshall Space Flight Center, 2000.

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28

O'Brien, D. M. Radiation fluxes and cloud amounts predicted by the CSIRO nine level GCM and observed by ERBE and ISCCP. CSIRO Australia, 1993.

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29

Uwe, Schmidt. Modellierung des kurzwelligen solaren Strahlungshaushalts im Hochgebirge auf der Basis von digitalen Geländemodellen und Satellitendaten am Beispiel des Hunza-Karakorum, Nordpakistan. in Kommission bei Asgard-Verlag, 2006.

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30

A, Mikhaĭlov G., ed. Matematicheskie osnovy radiat͡s︡ionnogo teploobmena. Akademii͡a︡ nauk SSSR, Sibirskoe otd-nie, Vychislitelʹnyĭ t͡s︡entr, 1988.

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31

Lee, Myung W. Two- and three-dimensional low-frequency radiation from an arbitrary source in a fluid-filled borehole. U.S. Dept. of the Interior, Geological Survey, 1985.

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32

Lee, Myung W. Two- and three-dimensional low-frequency radiation from an arbitrary source in a fluid-filled borehole. U.S. Dept. of the Interior, Geological Survey, 1985.

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33

Lee, Myung W. Two- and three-dimensional low-frequency radiation from an arbitrary source in a fluid-filled borehole. U.S. Dept. of the Interior, Geological Survey, 1985.

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34

Lee, Myung W. Two- and three-dimensional low-frequency radiation from an arbitrary source in a fluid-filled borehole. U.S. Dept. of the Interior, Geological Survey, 1985.

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35

Thompson, Roy C. Life-span effects of ionizing radiation in the beagle dog. Office of Scientific and Technical Information, U.S. Dept. of Energy, 1989.

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36

Stone, Kenneth A. Modeled and observed longwave radiances at the top of the atmosphere. 1990.

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37

Chance, Kelly, and Randall V. Martin. Radiation and Climate. Oxford University Press, 2017. http://dx.doi.org/10.1093/oso/9780199662104.003.0008.

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Global climate is controlled by an energy balance between incoming solar radiation and outgoing terrestrial radiation. An energy balance is first developed using a simple one-layer model of the atmosphere and then made more realistic by distributing the atmospheric optical depth smoothly in a Gray Atmosphere Model. Wavelength-specific and altitude-dependent absorption and emission for the ultraviolet through long-wave infrared are described. Knowledge is combined into an overall Earth energy budget. The sensitivity of the climate to radiative forcing is examined.
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38

United States. National Aeronautics and Space Administration., ed. Studies of the net surface radiative flux from satellite radiances during FIFE: Final report. National Aeronautics and Space Administration, 1993.

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39

Laws, Priscilla W. Workshop Physics Activity Guide, Module III: Heat Temperature and Nuclear Radiation. Wiley, 2004.

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40

1937-, Chadwick K. H., Moschini G, Varma Matesh N, Istituto nazionale di fisica nucleare., United States. Dept. of Energy. Office of Health and Environmental Research., and Commission of the European Communities., eds. Biophysical modelling of radiation effects. A. Hilger, 1992.

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41

Einstein, Andrew J. Radiation Considerations. Oxford University Press, 2015. http://dx.doi.org/10.1093/med/9780199392094.003.0034.

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Radiation considerations are an integral part of the practice of nuclear cardiac imaging. Concern regarding radiation has increased in recent years, reflected in statements by many professional societies, and likely attributable both to rapid growth in use of nuclear cardiology as well as high doses received by some nuclear cardiology patients. The fundamental principles of medical radiological protection are justification (ensuring that the right test is performed for the right patient at the right time), optimization (ensuring that the test is performed in the right manner), and dose limitation, which while applicable to healthcare workers is not operative regarding patients. Three "As" facilitate and serve as an organizing principle for justification: awareness, appropriateness, and audit. Awareness incorporates knowledge of the benefits and risks of testing involving radiation and effective communication of these to the patient. Appropriateness in nuclear cardiology can be assessed using the American College of Cardiology's appropriateness criteria. Methods that have been demonstrated to improve appropriateness include using a collaborative learning model, a point-of-order decision support tool, and a multifaceted intervention including threatened loss of insurance coverage. A variety of strategies should be considered for optimization to ensure patient-centered imaging. These including strategic selection of both the protocol, e.g. selecting a stress-first protocol and performing stress-only imaging in patients without a high pre-test probability of abnormal findings on stress imaging, or using PET, and also the administered activity, e.g. by using weight-based dosing and/or software- or hardware-based advances in camera technology. Special considerations are required for pregnant, nursing, and pediatric patients.
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42

Center, Goddard Space Flight, ed. Radiation flux tables for ICRCCM using the GLA GCM radiation codes. National Aeronautics and Space Administration, Goddard Space Flight Center, 1986.

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43

Qualey, Douglas L. Radiation from an infinite plane to parallel rows of infinitely long tubes - hottel extended. 1994.

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44

United States. National Aeronautics and Space Administration., ed. NASA cooperative agreement no. NCC2-958 entitled "Improvement & application of atmospheric radiative transfer models for prediction of the climatic effects of aerosol": Final performance report : time period--September 1, 1996 through December 31, 1997. Bay Area Environmental Research Institute, 1998.

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45

Dupree, Stephen A., and Stanley K. Fraley. A Monte Carlo Primer: A Practical Approach to Radiation Transport. Springer, 2001.

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46

Kondratev, K. Y., V. V. Kozoderov, and O. I. Smokty. Remote Sensing of the Earth from Space: Atmospheric Correction. Springer, 1992.

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47

Dupree, Stephen A., and Stanley K. Fraley. Monte Carlo Primer: Volume 2. Springer, 2004.

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48

Animal models of ionizing radiation damage. Defense Nuclear Agency, 1992.

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49

Slinn, Anne Marie. An investigation of hydrocarbon absorption modeled by molecular structure. 1988.

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50

IEA Solar Heating and Cooling Programme and Sveriges meteorologiska och hydrologiska institut., eds. Handbook of methods of estimating solar radiation. Swedish Council for Building Research, 1985.

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