Literature DB >> 27740945

The origin of the flatbed scanner artifacts in radiochromic film dosimetry-key experiments and theoretical descriptions.

Andreas A Schoenfeld1, Soeren Wieker, Dietrich Harder, Bjoern Poppe.   

Abstract

The optical origin of the lateral response and orientation artifacts, which occur when using EBT3 and EBT-XD radiochromic films together with flatbed scanners, has been reinvestigated by experimental and theoretical means. The common feature of these artifacts is the well-known parabolic increase in the optical density OD(x)  =  -log10 I(x)/I 0(x) versus offset x from the scanner midline (Poppinga et al 2014 Med. Phys. 41 021707). This holds for landscape and portrait orientations as well as for the three color channels. Dose-independent optical subjects, such as neutral density filters, linear polarizers, the EBT polyester foil and diffusive glass, also present the parabolic lateral artifact when scanned with a flatbed scanner. The curvature parameter c of the parabola function OD(x)  =  c 0  +  cx 2 is found to be a linear function of the dose, the parameters of which are influenced by the film orientation and film type, EBT3 or EBT-XD. The ubiquitous parabolic shape of function OD(x) is attributed (a) to the optical path-length effect (van Battum et al 2016 Phys. Med. Biol. 61 625-49), due to the increasing obliquity of the optical scanner light associated with increasing offset x from the scanner midline, and (b) and (c) to the partial polarization and scattering of the light leaving the film, which affect the ratio [Formula: see text], thus making OD(x) increase with x 2. The orientation effect results from the changes of effects (b) and (c) associated with turning the film position, and thereby the orientation of the polymer structure of the sensitive film layer. In a comparison of experimental results obtained with selected optical subjects, the relative weights of the contributions of the optical path-length effect and the polarization and scattering of light leaving the films to the lateral response artifact have been estimated to be of the same order of magnitude. Mathematical models of these causes for the parabolic shape of function OD(x) are given as appendices.

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Year:  2016        PMID: 27740945     DOI: 10.1088/0031-9155/61/21/7704

Source DB:  PubMed          Journal:  Phys Med Biol        ISSN: 0031-9155            Impact factor:   3.609


  5 in total

1.  Correction of lateral response artifacts from flatbed scanners for dual-channel radiochromic film dosimetry.

Authors:  Yuichi Akino; Hiroya Shiomi; Fumiaki Isohashi; Osamu Suzuki; Yuji Seo; Keisuke Tamari; Takero Hirata; Hirokazu Mizuno; Kazuhiko Ogawa
Journal:  J Radiat Res       Date:  2021-03-10       Impact factor: 2.724

2.  Monte Carlo calculation of the mass stopping power of EBT3 and EBT-XD films for protons for energy ranges of 50-400 MeV.

Authors:  Chengyu Shi; Chin-Cheng Chen; Dennis Mah; Maria F Chan
Journal:  Precis Radiat Oncol       Date:  2018-11-19

3.  Effect of scanner lens on lateral response artefact in radiochromic film dosimetry.

Authors:  Tarafder Shameem; Nick Bennie; Martin Butson; David Thwaites
Journal:  Phys Eng Sci Med       Date:  2022-05-30

4.  A new analytical model for the response curve in megavoltage photon beams of the radiochromic EBT3 films measured with flatbed scanners.

Authors:  César Rodríguez; Diego García-Pinto; Luis Carlos Martínez; Alfonso López-Fernández
Journal:  J Appl Clin Med Phys       Date:  2022-05-17       Impact factor: 2.243

5.  Accelerating and improving radiochromic film calibration by utilizing the dose ratio in photon and proton beams.

Authors:  Andreas F Resch; Fatima Padilla Cabal; Milovan Regodic; Wolfgang Lechner; Gerd Heilemann; Peter Kuess; Dietmar Georg; Hugo Palmans
Journal:  Med Phys       Date:  2022-07-14       Impact factor: 4.506

  5 in total

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