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Modelling the effects of lung cancer motion due to respiration

radiation oncology with existing technology. Rep. Pract. Oncol. Radiother., 19, 259-266. DOI: 10.1016/j.rpor.2013.09.002. 3. Pan, T., Lee, T. Y., Rietzel, E., & Chen, G. T. (2004). 4D-CT imaging of a volume infl uenced by respiratory motion on multi-slice CT. Med. Phys., 31, 333-3340. DOI: 10.1118/1.1639993. 4. Ehler, E. D., & Tomé, W. A. (2009). Step and shoot IMRT to mobile targets and techniques to mitigate the interplay effect. Phys. Med. Biol., 54, 4311-4324. DOI: 10.1088/0031-9155/54/13/023. 5. Nelms, B. E., Opp, D

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Radiation activities and application of ionizing radiation on cultural heritage at ENEA Calliope gamma facility (Casaccia R.C., Rome, Italy)

.fusengdes.2013.03.030. 25. Attix, F. H., & Roesch, W. (Eds). (1968). Radiation dosimeter. Vol. 1 . New York: Academic Press. 26. International Atomic Energy Agency. (2009). Nuclear techniques for preservation of cultural heritage artefacts . Vienna: IAEA. (TECP-RER 8/015). 27. International Atomic Energy Agency. (2011). Nuclear techniques for cultural heritage research . Vienna: IAEA. (Radiation Technology Series no. 2). 28. Adamo, M., Baccaro, S., & Cemmi, A. (2015). Radiation processing for bio-deteriorated archived materials and for consolidation

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Toward a European Network of Positron Laboratories

References 1. Dupasquier, A., Mills Jr, A. P., & Brusa, R. (Eds.). (2010). Physics with many positrons . 174th Proceedings of the International School of Physics “Enrico Fermi” . Amsterdam: IOS Press. 2. Brusa, R. S., Macchi, C., Mariazzi, S., Karwasz, G. P., Scarel, G., & Fanciulli, M. (2007). Innovative dielectrics for semiconductor technology. Radiat. Phys. Chem ., 76 (2), 189–194. DOI: 10.1016/j.radphyschem.2006.03.033. 3. Karwasz, G. P., Zecca, A., Brusa, R. S., & Pliszka, D. (2004). Application of positron annihilation techniques for

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