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1

Hsu, H. H., J. Chen, H. Ing, E. T. H. Clifford, and T. McLean. "Skin dose measurement with microspec-2TM." Nuclear Instruments and Methods in Physics Research Section A: Accelerators, Spectrometers, Detectors and Associated Equipment 412, no. 1 (1998): 155–60. http://dx.doi.org/10.1016/s0168-9002(98)00477-x.

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Gañán Mora, Antonio, Roberto Mariano Sánchez Casanueva, and José Miguel Fernández Soto. "Metodología para la validación de programas de cálculo de dosis en piel." Revista de Física Médica 25, no. 2 (2024): 25–34. http://dx.doi.org/10.37004/sefm/2024.25.2.002.

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Objective. A methodology for facilitating the validation of skin dose estimation programs for interventional procedures is presented. Materials and methods. The methodology uses a series of irradiations stored as DICOM Radiation Dose Structured Reports (RDSRs) as well as reference skin dose values measured in each irradiation. Users must input the RDSRs to their program and compare output doses with reference doses. The authors performed 27 irradiations using two C-arms from different manufacturers. For each irradiation, the authors modified parameters that affect skin dose and measured it wit
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Aoki, M., S. Okabe, M. Nishikawa, and T. Nishikawa. "Measurement of Skin Dose with TSEE From BeO." Radiation Protection Dosimetry 33, no. 1-4 (1990): 315–17. http://dx.doi.org/10.1093/oxfordjournals.rpd.a080819.

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Aoki, M., S. Okabe, M. Nishikawa, and T. Nishikawa. "Measurement of Skin Dose with TSEE From BeO." Radiation Protection Dosimetry 33, no. 1-4 (1990): 315–17. http://dx.doi.org/10.1093/rpd/33.1-4.315.

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Lin, Jao-Perng, Tieh-Chi Chu, Sung-Yen Lin, and Mu-Tai Liu. "Skin dose measurement by using ultra-thin TLDs." Applied Radiation and Isotopes 55, no. 3 (2001): 383–91. http://dx.doi.org/10.1016/s0969-8043(01)00082-3.

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Addo, Daniel Akwei, Elsie Effah Kaufmann, Samuel Nii Tagoe, and Augustine Kwame Kyere. "Characterization of GafChromic EBT2 film dose measurements using a tissue-equivalent water phantom for a Theratron® Equinox Cobalt-60 teletherapy machine." PLOS ONE 17, no. 8 (2022): e0271000. http://dx.doi.org/10.1371/journal.pone.0271000.

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Purpose In vivo dosimetry is a quality assurance tool that provides post-treatment measurement of the absorbed dose as delivered to the patient. This dosimetry compares the prescribed and measured dose delivered to the target volume. In this study, a tissue-equivalent water phantom provided the simulation of the human environment. The skin and entrance doses were measured using GafChromic EBT2 film for a Theratron® Equinox Cobalt-60 teletherapy machine. Methods We examined the behaviors of unencapsulated films and custom-made film encapsulation. Films were cut to 1 cm × 1 cm, calibrated, and u
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Ekendahl, Daniela, Zina Čemusová, Dana Kurková, and Michaela Kapuciánová. "RESPONSE OF CURRENT PHOTON PERSONAL DOSEMETERS TO NEW OPERATIONAL QUANTITIES." Radiation Protection Dosimetry 190, no. 1 (2020): 45–57. http://dx.doi.org/10.1093/rpd/ncaa078.

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Abstract The ICRU proposed new operational quantities, which are defined in close relation to effective dose and absorbed dose. Most of the current personal dosemeters were designed to measure personal dose equivalents. Because of differences between the new and old quantities, the existing dosemeters may not be ideal for measurements of the new quantities, personal dose, Hp, and absorbed dose in local skin, Dp local skin. For photon radiation sources, we investigated relative responses of the current personal dosemeters with respect to the measurement of the new quantities. Introduction of th
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Soleymanifard, Shokouhozaman, Seyed Amir Aledavood, Atefeh Vejdani Noghreiyan, Mahdi Ghorbani, Farideh Jamali, and David Davenport. "In vivo skin dose measurement in breast conformal radiotherapy." Współczesna Onkologia 2 (2016): 137–40. http://dx.doi.org/10.5114/wo.2015.54396.

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Fang, W., Z. Ziying, L. Jian, and Z. Zhongmei. "LiF(Mg,Cu.P) Thin Dosemeter for Skin Dose Measurement." Radiation Protection Dosimetry 33, no. 1-4 (1990): 331–34. http://dx.doi.org/10.1093/oxfordjournals.rpd.a080823.

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Fang, W., Z. Ziying, L. Jian, and Z. Zhongmei. "LiF(Mg,Cu.P) Thin Dosemeter for Skin Dose Measurement." Radiation Protection Dosimetry 33, no. 1-4 (1990): 331–34. http://dx.doi.org/10.1093/rpd/33.1-4.331.

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Radaideh, Khaldoon M., and Laila M. Matalqah. "Predictors of radiation-induced skin toxicity in nasopharyngeal cancer patients treated by intensity-modulated radiation therapy: a prospective study." Journal of Radiotherapy in Practice 15, no. 3 (2016): 276–82. http://dx.doi.org/10.1017/s1460396916000108.

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AbstractPurposesExposure of skin to high doses of radiation may lead to the development of erythematous skin changes. The aims of this study were to measure skin doses and to identify potential factors that may contribute to skin reactions in nasopharyngeal cancer patients undergoing intensity-modulated radiation therapy (IMRT).Material and methodsThis study was a prospective study with 21 nasopharyngeal cancer patients treated by IMRT. Personal data were collected and in vivo skin dose measurements were performed using Thermoluminescent dosimeters. All patients were monitored clinically and s
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KOMIYA, ISAO, TAKASHI SHIRASAKA, YOSHIYUKI UMEZU, MASAYUKI TACHIBANA, and TAKASHI IZUMI. "Patient Dose Measurement with Fluorescent Glass Dosimeter: Characteristics Evaluation and Patient Skin Dose Measurement in Abdominal Interventional Radiology." Japanese Journal of Radiological Technology 60, no. 2 (2004): 270–77. http://dx.doi.org/10.6009/jjrt.kj00000922295.

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Kumaresan, M., Rajesh Kumar, K. Biju, Ajay Choubey, and S. Kantharia. "MEASUREMENT OF ENTRANCE SKIN DOSE AND ESTIMATION OF ORGAN DOSE DURING PEDIATRIC CHEST RADIOGRAPHY." Health Physics 100, no. 6 (2011): 654–57. http://dx.doi.org/10.1097/hp.0b013e3182092963.

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de Almeida, Shirlane Barbosa, Daniel Villani, Roberto Kenji Sakuraba, Ana Carolina Pires de Rezende, Silas Cardoso Santos, and Letícia Lucente Campos. "Dosimetric evaluation employing TL and OSL techniques with different luminescent materials for clinical evaluation of extremity doses using electron beams applied to Total-Irradiation-of-Skin treatments." International Journal of Modern Physics: Conference Series 48 (January 2018): 1860110. http://dx.doi.org/10.1142/s2010194518601102.

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Total-skin electron beam (TSEB) irradiation is used to deliver a homogeneous dose distribution over the entire skin surface of a patient. TSEB dosimetry is quite complex as to the evaluation and measurement of absorbed dosage in the cutaneous region. This paper evaluates the performance of different dosimetric materials, using TL and OSL dosimetry, in the extremity-dose assessment of TSEB treatments using the six-dual-field technique and an anthropomorphic phantom. Dosimeters were selected with repeatability better than [Formula: see text] and calibrated to 6-MeV electron-beam dosimetry. Measu
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15

Morota, Koichi, Takashi Moritake, Keisuke Nagamoto, et al. "Optimization of the Maximum Skin Dose Measurement Technique Using Digital Imaging and Communication in Medicine—Radiation Dose Structured Report Data for Patients Undergoing Cerebral Angiography." Diagnostics 11, no. 1 (2020): 14. http://dx.doi.org/10.3390/diagnostics11010014.

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Understanding the maximum skin dose is important for avoiding tissue reactions in cerebral angiography. In this study, we devised a method for using digital imaging and communication in medicine—radiation dose structured report (DICOM-RDSR) data to accurately estimate the maximum skin dose from the total air kerma at the patient entrance reference point (Total Ka,r). Using a test data set (n = 50), we defined the mean ratio of the maximum skin dose obtained from measurements with radio-photoluminescence glass dosimeters (RPLGDs) to the Total Ka,r as the conversion factor, CFKa,constant, and co
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16

Singh, Sunil K., and M. S. Kulkarni. "WALL THICKNESS OPTIMISATION OF AN IONISATION CHAMBER FOR DIRECTIONAL DOSE EQUIVALENT RATE MEASUREMENT AT LOW AND MEDIUM PHOTON ENERGIES." Radiation Protection Dosimetry 183, no. 4 (2018): 469–74. http://dx.doi.org/10.1093/rpd/ncy171.

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Abstract A thin and plane wall ionisation chamber having 900 cc volume was designed and fabricated to study the calibration coefficient dependency on ionisation chamber wall thickness for directional dose equivalent rate (Ḣ′(d)) at various low and medium energy X-ray beam qualities. Optimised wall thickness was established through measurements to achieve a near flat energy response using the developed ionisation chamber. The measurement shows that in the energy range 12–213 keV, the average calibration coefficient for directional dose equivalent rate lies within ±10% for wall thickness 1.2 mg
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17

Lin, Chi-Ta, An-Cheng Shiau, Hui-Ju Tien, Hsin-Pei Yeh, Pei-Wei Shueng, and Chen-Hsi Hsieh. "An Attempted Substitute Study of Total Skin Electron Therapy Technique by Using Helical Photon Tomotherapy with Helical Irradiation of the Total Skin Treatment: A Phantom Result." BioMed Research International 2013 (2013): 1–7. http://dx.doi.org/10.1155/2013/108794.

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An anthropomorphic phantom was used to investigate a treatment technique and analyze the dose distributions for helical irradiation of the total skin (HITS) by helical tomotherapy (HT). Hypothetical bolus of thicknesses of 0, 10, and 15 mm was added around the phantom body to account for the dose homogeneity and setup uncertainty. A central core structure was assigned as a “complete block” to force the dose tangential delivery. HITS technique with prescribed dose (Dp) of 36 Gy in 36 fractions was generated. The radiochromic EBT2 films were used for the dose measurements. The target region with
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18

Gutschenritter, Tyler, Afua Yorke, Nayak Polissar, Nirnaya Miljacic, Janice Kim, and Lori Young. "Abstract P1-10-11: Optical stimulated luminescence dosimeters for skin dose measurements during accelerated partial breast brachytherapy: In vivo dosimetric validation and clinical outcomes." Cancer Research 83, no. 5_Supplement (2023): P1–10–11—P1–10–11. http://dx.doi.org/10.1158/1538-7445.sabcs22-p1-10-11.

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Abstract BACKGROUND: The role of multi-lumen catheter devices in the delivery of high dose rate (HDR) brachytherapy for adjuvant accelerated partial breast irradiation (APBI) for women with DCIS or early-stage breast cancer has been well established. In vivo dosimetry (IVD) using optically stimulating luminescence dosimeters (OSLD) is a feasible way to detect applicator instability that may cause translational and rotational inaccuracies during HDR brachytherapy delivery. Herein, we evaluate the accuracy and effectiveness of IVD to improve patient outcomes following APBI brachytherapy using th
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19

Devic, S., W. Abdel-Rahman, J. Seuntjens, E. Podgorsak, T. Vuong, and C. Soares. "MO-D-T-617-08: Skin Dose Measurement with Radiochromic Film." Medical Physics 32, no. 6Part14 (2005): 2061. http://dx.doi.org/10.1118/1.1998270.

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DʼErcole, Loredana, Andrea Azzaretti, Federico Zappoli Thyrion, Milena Bocchiola, and Federico Di Maria. "Measurement of Patient Skin Dose in Vertebroplasty Using Radiochromic Dosimetry Film." Spine 35, no. 13 (2010): 1304–6. http://dx.doi.org/10.1097/brs.0b013e3181c3e880.

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Butson, Martin J., Peter K. N. Yu, and Peter E. Metcalfe. "Measurement of off-axis and peripheral skin dose using radiochromic film." Physics in Medicine and Biology 43, no. 9 (1998): 2647–50. http://dx.doi.org/10.1088/0031-9155/43/9/015.

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Janjan, N. A., D. Zellmer, M. Gillin, W. Kengchon, and B. Campbell. "Measurement of Skin Dose in Primary Irradiation of Maxillary Sinus Carcinoma." Medical Dosimetry 16, no. 1 (1991): 33–36. http://dx.doi.org/10.1016/0958-3947(91)90075-d.

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Misson-Yates, Sarah, Marium Naeem, Isabel Palmer, et al. "Total skin electron beam therapy rationalization and utility of in vivo dosimetry in a high-volume centre." BJR|Open 1, no. 1 (2019): 20190008. http://dx.doi.org/10.1259/bjro.20190008.

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Objective: This paper reports on the rationalization of a substantial pool of in vivo dosimetry (IVD) data from patients treated with total skin electron beam therapy (TSEBT) and the application of this to verify the accurate delivery of TSEBT when changing linac manufacturer. Methods: Thermoluminescent dosimeter IVD data from 149 patients were analyzed comparing the population mean and standard deviation for each site. The number of sites required to confirm the prescribed dose were reviewed considering both dosimetric and clinical relevance. The reduced sites were then used to assess the con
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Rizk, C., G. Fares, F. Vanhavere, and J. Farah. "MEASUREMENT OF PATIENT SKIN DOSE DISTRIBUTIONS IN THREE LEBANESE INTERVENTIONAL CARDIOLOGY SUITES." Radiation Protection Dosimetry 183, no. 3 (2018): 375–85. http://dx.doi.org/10.1093/rpd/ncy152.

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Jong, W. L., N. M. Ung, J. H. D. Wong, et al. "In vivo skin dose measurement using MOSkin detectors in tangential breast radiotherapy." Physica Medica 32, no. 11 (2016): 1466–74. http://dx.doi.org/10.1016/j.ejmp.2016.10.022.

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IIDA, HIROJI, KIMIYA NOTO, HIROTO NAKAGAWA, et al. "Measurement of Patient Skin Dose in Interventional Radiology Using Passive Integrating Dosimeter." Japanese Journal of Radiological Technology 62, no. 2 (2006): 305–14. http://dx.doi.org/10.6009/jjrt.62.305.

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Quach, K. Y., J. Morales, M. J. Butson, A. B. Rosenfeld, and P. E. Metcalfe. "Measurement of radiotherapy x-ray skin dose on a chest wall phantom." Medical Physics 27, no. 7 (2000): 1676–80. http://dx.doi.org/10.1118/1.599035.

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Ohuchi, Hiroko, Toshimitsu Satoh, Yoichi Eguchi, et al. "SKIN DOSE MEASUREMENT FOR PATIENTS USING IMAGING PLATES IN INTERVENTIONAL RADIOLOGY PROCEDURES." Health Physics 93, no. 1 (2007): 78–86. http://dx.doi.org/10.1097/01.hp.0000259849.31770.ab.

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Sun, Lue, Yusuke Mizuno, Mari Iwamoto, et al. "Direct measurement of a patient's entrance skin dose during pediatric cardiac catheterization." Journal of Radiation Research 55, no. 6 (2014): 1122–30. http://dx.doi.org/10.1093/jrr/rru050.

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Wołowiec, Paweł, Paweł Franciszek Kukołowicz, and Krzysztof Buliński. "Evaluation of the usefulness of small detectors made of Gafchromic EBT3 film for measurements in areas with high dose gradient and without charged-particle equilibrium (CPE)." Polish Journal of Medical Physics and Engineering 30, no. 3 (2024): 152–60. http://dx.doi.org/10.2478/pjmpe-2024-0018.

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Abstract Introduction: In some clinical cases a full therapeutic dose needs to be delivered in the area close to the skin surface where a high dose gradient and there no charged-particle equilibrium (CPE) exists. The accuracy of dose distribution calculations performed in this region with the treatment planning system is limited. In this work we investigated the usefulness of small pieces of Gafchromic EBT3 film for measurements of the absolute dose value in the area close to the skin surface. Material and methods: The Gafchromic EBT3 film detectors of size 1.0 cm x 1.5 cm were prepared. The f
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31

Quinn, A. G., J. McLelland, T. Essex, and P. M. Farr. "Quantification of contact allergic inflammation: a comparison of existing methods with a scanning laser Doppler velocimeter." Acta Dermato-Venereologica 73, no. 1 (1993): 21–25. http://dx.doi.org/10.2340/00015555732125.

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Responses to a range of doses of common contact dermatitis/producing allergens were measured using a novel scanning laser Doppler velocimeter and three commonly used conventional measurement techniques. The techniques were compared in terms of sensitivity, measurement error, range of the linear portion of the dose/response curve and ease of use. The detection thresholds of the objective methods did not differ significantly and did not detect responses at concentrations less than those required to produce a visible response. Of the objective methods the range of linearity was greatest when reac
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Hayakawa, Mikito, Takashi Moritake, Fumikatsu Kataoka, et al. "Direct measurement of patient's entrance skin dose during neurointerventional procedure to avoid further radiation-induced skin injuries." Clinical Neurology and Neurosurgery 112, no. 6 (2010): 530–36. http://dx.doi.org/10.1016/j.clineuro.2010.03.019.

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Chiu-Tsao, Sou-Tung, Joseph Hanley, and John J. Napoli. "Skin dose measurement for a high-dose-rate brachytherapy treatment: A phantom study using radiochromic film dosimetry." Brachytherapy 7, no. 2 (2008): 107. http://dx.doi.org/10.1016/j.brachy.2008.02.379.

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Suzuki, S., S. Furui, Y. Matsumaru, et al. "Patient Skin Dose during Neuroembolization by Multiple-Point Measurement Using a Radiosensitive Indicator." American Journal of Neuroradiology 29, no. 6 (2008): 1076–81. http://dx.doi.org/10.3174/ajnr.a1045.

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Gamble, Lisa M., Thomas J. Farrell, Glenn W. Jones, and Joseph E. Hayward. "Composite depth dose measurement for total skin electron (TSE) treatments using radiochromic film." Physics in Medicine and Biology 48, no. 7 (2003): 891–98. http://dx.doi.org/10.1088/0031-9155/48/7/306.

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Hanley, Joseph, John Napoli, Sou-Tung Chiu-Tsao, and Loren Godfrey. "Measurement of skin dose for MammoSite® patients using GafChromic® EBT film." Brachytherapy 7, no. 2 (2008): 143. http://dx.doi.org/10.1016/j.brachy.2008.02.387.

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Cho, Dong-Hyun, Kyoung-Won Jang, Wook-Jae Yoo, et al. "Measurement of Skin Dose and Percentage Depth Does in Build-up Region Using a Fiber-optic Dosimeter." Korean Journal of Optics and Photonics 21, no. 1 (2010): 16–20. http://dx.doi.org/10.3807/kjop.2010.21.1.016.

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Alexeev, A., G. Britvich, and V, Pikalov. "MEASUREMENT OF THE DIRECTIONAL EQUIVALENT DOSE RADIATION IN THE SKIN AND LENS OF THE EYES." EurasianUnionScientists 5, no. 9(78) (2020): 18–23. http://dx.doi.org/10.31618/esu.2413-9335.2020.5.78.1021.

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The results of calibration of individual dosimeters in Hp(0.07) and Hp(3) units using a 90Sr+90Y radionuclide source are presented. A method for measuring the characteristics of the 90Sr+90Y source is presented, which allows measuring Hp(0.07) and Hp(3) with an error of less than 10%.Measurements were made of the directional dose equivalents rate H '(0.07), H'(3), the ambient dose equivalent rate at the working places of the personnel of Balakovo NPP. Based on the results, an assessment is made of the need for instrumental monitoring of lens exposure in the event of a possible reduction in the
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Nguyen, Mai Loan, and Thanh Lương Đặng. "Research and development of the algorithms to determine the operational personal quantities for photon using photoluminescent dosimeter." Nuclear Science and Technology 14, no. 3 (2025): 14–25. https://doi.org/10.53747/nst.v14i3.464.

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Objective: This study presents the results of investigating the dosimetric characteristics of Inlight Al2O3:C dosimeters to develop algorithms for determining effective dose, equivalent doses for lens and skin organs by evaluating the operational personal dose equivalent Hp(10) and the ICRU 95 operational personal doses. These quantities are the best approximate values to evaluate the dose limits specified in Circular 19/2012/TT-BKHCN on occupational radiation exposure control. These quantities are calibrated with the ISO 4037 standard dose fields. Research object and method: Investigating dos
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Farah, J., M. Cuttat, L. Hadid, C. Jenny, and I. Clairand. "Patient dosimetry in interventional radiology: Uncertainties associated to skin dose measurement and exposure correlation to online dose indicators." Physica Medica 31 (November 2015): e46-e47. http://dx.doi.org/10.1016/j.ejmp.2015.10.064.

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Elcim, Yelda, Bahar Dirican, and Omer Yavas. "Dosimetric comparison of treatment planning systems using collapsed cone convolution and pencil beam algorithms." Journal of Radiotherapy in Practice 15, no. 4 (2016): 364–77. http://dx.doi.org/10.1017/s1460396916000303.

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AbstractPurposeThe aim of this study is the dosimetric verification and comparative analysis of two different treatment planning systems (TPS) using collapsed cone convolution (CCC) and pencil beam (PB) algorithms for treatment sites of head and neck, chest wall–supraclavicular region, lung and prostate.Methods and materialsTarget volumes and critical organs for treatment sites mentioned above were delineated according to relevant The Radiation Therapy Oncology Group protocols. Treatment plans were generated using 6 MV photon energy with medical linear accelerator and Thermoluminescent Dosimet
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Kim, Sang-Tae. "Monte Carlo Simulation for the Measurement of Entrance Skin Dose on Newborn and Infants." Journal of the Korea Contents Association 12, no. 6 (2012): 346–52. http://dx.doi.org/10.5392/jkca.2012.12.06.346.

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AMANO, MASAFUMI, HIROMU NISHITANI, SHINGO KOHNO, MOTOKATSU YASUTOMO, HIROKAZU MIYOSHI, and HIROFUMI YAGI. "Measurement of Patient Skin Dose in Interventional Radiology Using Radiochromic Reflecting-type Sheet Films." Japanese Journal of Radiological Technology 58, no. 3 (2002): 420–23. http://dx.doi.org/10.6009/jjrt.kj00001364297.

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Rong, J., SC Kappadath, and D. Schellingerhout. "TH-A-214-09: Direct Measurement of Skin Dose from CT Brain Perfusion Scans." Medical Physics 38, no. 6Part34 (2011): 3844. http://dx.doi.org/10.1118/1.3613474.

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Akyalcin, S., J. English, K. Abramovitch, and J. Rong. "SU-E-I-06: Measurement of Skin Dose from Dental Cone-Beam CT Scans." Medical Physics 39, no. 6Part4 (2012): 3626. http://dx.doi.org/10.1118/1.4734720.

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Jia, Y., H. Costlow, Y. Akino, Y. Peng, C. Desrosiers, and H. Zhang. "SU-E-T-288: Skin Dose Measurement of Whole Brain with GAFCHROMIC EBT2 Films." Medical Physics 39, no. 6Part14 (2012): 3769. http://dx.doi.org/10.1118/1.4735356.

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Alnawaf, Hani, Martin Butson, and Peter K. N. Yu. "Measurement and effects of MOSKIN detectors on skin dose during high energy radiotherapy treatment." Australasian Physical & Engineering Sciences in Medicine 35, no. 3 (2012): 321–28. http://dx.doi.org/10.1007/s13246-012-0153-1.

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