Literature DB >> 10647615

Characterization of scatter and penetration using Monte Carlo simulation in 131I imaging.

Y K Dewaraja1, M Ljungberg, K F Koral.   

Abstract

UNLABELLED: In 131I SPECT, image quality and quantification accuracy are degraded by object scatter as well as scatter and penetration in the collimator. The characterization of energy and spatial distributions of scatter and penetration performed in this study by Monte Carlo simulation will be useful for the development and evaluation of techniques that compensate for such events in 131I imaging.
METHODS: First, to test the accuracy of the Monte Carlo model, simulated and measured data were compared for both a point source and a phantom. Next, simulations to investigate scatter and penetration were performed for four geometries: point source in air, point source in a water-filled cylinder, hot sphere in a cylinder filled with nonradioactive water, and hot sphere in a cylinder filled with radioactive water. Energy spectra were separated according to order of scatter, type of interaction, and gamma-ray emission energy. A preliminary evaluation of the triple-energy window (TEW) scatter correction method was performed.
RESULTS: The accuracy of the Monte Carlo model was verified by the good agreement between measured and simulated energy spectra and radial point spread functions. For a point source in air, simulations show that 73% of events in the photopeak window had either scattered in or penetrated the collimator, indicating the significance of collimator interactions. For a point source in a water-filled phantom, the separated energy spectra showed that a 20% photopeak window can be used to eliminate events that scatter more than two times in the phantom. For the hot sphere phantoms, it was shown that in the photopeak region the spectrum shape of penetration events is very similar to that of primary (no scatter and no penetration) events. For the hot sphere regions of interest, the percentage difference between true scatter counts and the TEW estimate of scatter counts was <12%.
CONCLUSION: In 131I SPECT, object scatter as well as collimator scatter and penetration are significant. The TEW method provides a reasonable correction for scatter, but the similarity between the 364-keV primary and penetration energy spectra makes it difficult to compensate for these penetration events using techniques that are based on spectral analysis.

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Year:  2000        PMID: 10647615      PMCID: PMC2811856     

Source DB:  PubMed          Journal:  J Nucl Med        ISSN: 0161-5505            Impact factor:   10.057


  17 in total

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Authors:  K F Koral; X Wang; K R Zasadny; N H Clinthorne; W L Rogers; C E Floyd; R J Jaszczak
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2.  Development and validation of a Monte Carlo simulation of photon transport in an Anger camera.

Authors:  D J De Vries; S C Moore; R E Zimmerman; S P Mueller; B Friedland; R C Lanza
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3.  Monte Carlo and experimental evaluation of accuracy and noise properties of two scatter correction methods for SPECT.

Authors:  Y Narita; S Eberl; H Iida; B F Hutton; M Braun; T Nakamura; G Bautovich
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4.  Energy-based scatter corrections for scintillation camera images of iodine-131.

Authors:  K R Pollard; T K Lewellen; M S Kaplan; D R Haynor; R S Miyaoka; J F Eary; L D Durack
Journal:  J Nucl Med       Date:  1996-12       Impact factor: 10.057

5.  Improved conjugate view quantitation of I-131 by subtraction of scatter and septal penetration events with a triple energy window method.

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6.  CT-SPECT fusion plus conjugate views for determining dosimetry in iodine-131-monoclonal antibody therapy of lymphoma patients.

Authors:  K F Koral; K R Zasadny; M L Kessler; J Q Luo; S F Buchbinder; M S Kaminski; I Francis; R L Wahl
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7.  Improved SPECT quantification using compensation for scattered photons.

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10.  Phase II trial of 131I-B1 (anti-CD20) antibody therapy with autologous stem cell transplantation for relapsed B cell lymphomas.

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  17 in total

1.  A 3-dimensional absorbed dose calculation method based on quantitative SPECT for radionuclide therapy: evaluation for (131)I using monte carlo simulation.

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Review 2.  Scatter modelling and compensation in emission tomography.

Authors:  Habib Zaidi; Kenneth F Koral
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3.  3-D Monte Carlo-Based Scatter Compensation in Quantitative I-131 SPECT Reconstruction.

Authors:  Yuni K Dewaraja; Michael Ljungberg; Jeffrey A Fessler
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5.  Development and evaluation of a model-based downscatter compensation method for quantitative I-131 SPECT.

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Journal:  Med Phys       Date:  2011-06       Impact factor: 4.071

6.  Multi-centre evaluation of accuracy and reproducibility of planar and SPECT image quantification: An IAEA phantom study.

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7.  SIMIND Monte Carlo simulation of a single photon emission CT.

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10.  Image quantification for radiation dose calculations--limitations and uncertainties.

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