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ROC evaluation of SPECT myocardial lesion detectability with and without single itération non-uniform chang atténuation compensation using an anthropomorphic female phantom

Publication ,  Journal Article
Jangl, S; Jaszczak, RJ; Benjamin, MW; Metz, CE; Gilland, DR; Turkington, TG; Edward Coleman, R
Published in: IEEE Transactions on Nuclear Science
January 1, 1998

The purpose of this work was to evaluate lesion detectability with and without nonuniform attenuation compensation (AC) in myocardial perfusion SPECT imaging in women using an anthropomorphic phantom and receiver operating characteristics (ROC) methodology. Breast attenuation causes artifacts in reconstructed images and may increase the difficulty of diagnosis of myocardial perfusion imaging in women. The null hypothesis tested using the ROC study was that nonuniform AC does not change the lesion detectability in myocardial perfusion SPECT imaging in women. We used a filtered backprojection (EBP) reconstruction algorithm and Chang's single iteration method for AC. In conclusion, with our proposed myocardial defect model nuclear medicine physicians demonstrated no significant difference for the detection of the anterior wall defect; however, a greater accuracy for the detection of the inferior wall defect was observed without nonuniform AC than with it (Pvalue = 0.0034). Medical physicists did not demonstrate any statistically significant difference in defect detection accuracy with or without nonuniform AC in the female phantom. © 1998 IEEE.

Duke Scholars

Published In

IEEE Transactions on Nuclear Science

DOI

ISSN

0018-9499

Publication Date

January 1, 1998

Volume

45

Issue

4 PART 2

Start / End Page

2080 / 2088

Related Subject Headings

  • Nuclear & Particles Physics
  • 5106 Nuclear and plasma physics
  • 0903 Biomedical Engineering
  • 0299 Other Physical Sciences
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics
 

Citation

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Jangl, S., Jaszczak, R. J., Benjamin, M. W., Metz, C. E., Gilland, D. R., Turkington, T. G., & Edward Coleman, R. (1998). ROC evaluation of SPECT myocardial lesion detectability with and without single itération non-uniform chang atténuation compensation using an anthropomorphic female phantom. IEEE Transactions on Nuclear Science, 45(4 PART 2), 2080–2088. https://doi.org/10.1109/23.708303
Jangl, S., R. J. Jaszczak, M. W. Benjamin, C. E. Metz, D. R. Gilland, T. G. Turkington, and R. Edward Coleman. “ROC evaluation of SPECT myocardial lesion detectability with and without single itération non-uniform chang atténuation compensation using an anthropomorphic female phantom.” IEEE Transactions on Nuclear Science 45, no. 4 PART 2 (January 1, 1998): 2080–88. https://doi.org/10.1109/23.708303.
Jangl S, Jaszczak RJ, Benjamin MW, Metz CE, Gilland DR, Turkington TG, et al. ROC evaluation of SPECT myocardial lesion detectability with and without single itération non-uniform chang atténuation compensation using an anthropomorphic female phantom. IEEE Transactions on Nuclear Science. 1998 Jan 1;45(4 PART 2):2080–8.
Jangl, S., et al. “ROC evaluation of SPECT myocardial lesion detectability with and without single itération non-uniform chang atténuation compensation using an anthropomorphic female phantom.” IEEE Transactions on Nuclear Science, vol. 45, no. 4 PART 2, Jan. 1998, pp. 2080–88. Scopus, doi:10.1109/23.708303.
Jangl S, Jaszczak RJ, Benjamin MW, Metz CE, Gilland DR, Turkington TG, Edward Coleman R. ROC evaluation of SPECT myocardial lesion detectability with and without single itération non-uniform chang atténuation compensation using an anthropomorphic female phantom. IEEE Transactions on Nuclear Science. 1998 Jan 1;45(4 PART 2):2080–2088.

Published In

IEEE Transactions on Nuclear Science

DOI

ISSN

0018-9499

Publication Date

January 1, 1998

Volume

45

Issue

4 PART 2

Start / End Page

2080 / 2088

Related Subject Headings

  • Nuclear & Particles Physics
  • 5106 Nuclear and plasma physics
  • 0903 Biomedical Engineering
  • 0299 Other Physical Sciences
  • 0202 Atomic, Molecular, Nuclear, Particle and Plasma Physics