Motion correction in SPECT and planar radionuclide studies
Vestnik Sankt-Peterburgskogo universiteta. Prikladnaâ matematika, informatika, processy upravleniâ, no. 1 (2011), pp. 29-36
Cet article a éte moissonné depuis la source Math-Net.Ru

Voir la notice de l'article

Detection and correction of patient motion during the collection of diagnostic data is an important step in the processing of radionuclide studies, since even a small shift of the patient's body at this moment can affect the reliability of diagnostics results. Algorithms for motion correction in single photon emission computed tomography (SPECT) and dynamic scintigraphy are considered. For the first time it's suggested to use optical flow for the data of radionuclide studies.
Keywords: SPECT, dynamic scintigraphy, optical flow.
Mots-clés : motion correction
@article{VSPUI_2011_1_a3,
     author = {E. D. Kotina and K. M. Maximov},
     title = {Motion correction in {SPECT} and planar radionuclide studies},
     journal = {Vestnik Sankt-Peterburgskogo universiteta. Prikladna\^a matematika, informatika, processy upravleni\^a},
     pages = {29--36},
     year = {2011},
     number = {1},
     language = {ru},
     url = {http://geodesic.mathdoc.fr/item/VSPUI_2011_1_a3/}
}
TY  - JOUR
AU  - E. D. Kotina
AU  - K. M. Maximov
TI  - Motion correction in SPECT and planar radionuclide studies
JO  - Vestnik Sankt-Peterburgskogo universiteta. Prikladnaâ matematika, informatika, processy upravleniâ
PY  - 2011
SP  - 29
EP  - 36
IS  - 1
UR  - http://geodesic.mathdoc.fr/item/VSPUI_2011_1_a3/
LA  - ru
ID  - VSPUI_2011_1_a3
ER  - 
%0 Journal Article
%A E. D. Kotina
%A K. M. Maximov
%T Motion correction in SPECT and planar radionuclide studies
%J Vestnik Sankt-Peterburgskogo universiteta. Prikladnaâ matematika, informatika, processy upravleniâ
%D 2011
%P 29-36
%N 1
%U http://geodesic.mathdoc.fr/item/VSPUI_2011_1_a3/
%G ru
%F VSPUI_2011_1_a3
E. D. Kotina; K. M. Maximov. Motion correction in SPECT and planar radionuclide studies. Vestnik Sankt-Peterburgskogo universiteta. Prikladnaâ matematika, informatika, processy upravleniâ, no. 1 (2011), pp. 29-36. http://geodesic.mathdoc.fr/item/VSPUI_2011_1_a3/

[1] Cooper J. A., Neumann P. H., McCandless D. K., “Effect of patient motion on Thallium–201 SPECT”, J. of Nucl. Medicine, 33:8 (1992), 1566–1571

[2] Botvinivk E., Zhu Y., O'Connell W., Dae M., “A quantitative assessment of patient motion and its effect on myocardial perfusion SPECT image SPECT”, J. of Nucl. Medicine, 34:2 (1993), 303–310

[3] Eisner R., Churchwell A., Nowak D., Cloninger K., “Quantitative analysis of the tomographic Thallium–201 myocardial bullseyedisplay: critical role of correcting for patient motion”, J. of Nucl. Medicine, 29 (1989), 91–97

[4] Mommennezhad M., Zakavi S. R., Sadeghi R., Kakhki V., “Review of the linogram and sinogram: an easy way to detect off-peak artifacts in myocardial perfusion SPECT”, J. Nucl. Med. Technology, 37:3 (2009), 188–190 | DOI

[5] Geckle W. J., Frank T. L., Links J. M., “Correction for patient and organ movement in SPECT: Application to exercise Thallium–201 cardiac imaging”, J. of Nucl. Medicine, 29:4 (1988), 441–450

[6] Cooper J. A., Neumann P. H., McCandless B. K., “Detection of patient motion during tomographic myocardial perfusion imaging”, J. of Nucl. Medicine, 34:8 (1993), 1341–1348

[7] Noever T., Nowak D., Carlson W. et al., “Use of cross-correlation function to detect patient motion during SPECT imaging”, J. of Nucl. Medicine, 28 (1987), 97–101

[8] Appledorn C. R., Oppenheimand B. E., Wellman H., “An automated method for the alignment of image pairs”, J. of Nucl. Medicine, 21 (1980), 165–167

[9] O'Connor M. K., Kanal K. M., Gebhard M. W., Rossman P. J., “Comparison offour motion correction techniques in SPECT imaging of the heart: A cardiac phantom study”, J. of Nucl. Medicine, 39:12 (1998), 2027–2034

[10] Tabrizi M. H. N., Dong K., Movahed A., “Performance comparison of different motion correction algorithms used in cardiac SPECT imaging”, ITCC, v. 1, 2001, 488

[11] Maksimov K. M., “Programmnaya realizatsiya algoritmov korrektsii dvizheniya pri odnofotonnoi emissionnoi tomografii”, Protsessy upravleniya i ustoichivost, Trudy 40-i Mezhdunar. nauch. konferentsii studentov i aspirantov, eds. N. V. Smirnov, G. Sh. Tamasyan, Izdat. dom S.-Peterb. gos. un-ta, SPb., 2009, 347–352

[12] Kotina E. D., “Programmnyi kompleks «Diagnostika» dlya obrabotki radionuklidnykh issledovanii”, Vestn. S.-Peterb. un-ta. Ser. 10: Prikladnaya matematika, informatika, protsessy upravleniya, 2010, no. 2, 100–113 | MR

[13] Anandan P., “A computational framework and an algorithm for the measurement of visual motion”, Intern. Journal of Computer Vision, 2 (1989), 283–310 | DOI

[14] Horn B. K. P., Schunck B. G., “Determining of Optical Flow”, Artificial Intelligence, 17 (1981), 185–203 | DOI

[15] Ibrahim N., Riyadi S., Zakaria N. et al., “Implementation of differential optical flow algorithms in natural rigid video motion”, Proc. of IMECS, v. 1, 2009, 795–798

[16] Kotina E. D., “K teorii opredeleniya polya vektora peremescheniya na osnove uravneniya perenosa dlya diskretnogo sluchaya”, Vestn. S.-Peterb. un-ta. Ser. 10: Prikladnaya matematika, informatika, protsessy upravleniya, 2010, no. 3, 38–43

[17] Ortega Dzh., Vvedenie v parallelnye i vektornye metody resheniya lineinykh sistem, per. s angl. Kh. D. Ikramova, I. E. Kaporina, ed. Kh. D. Ikramov, Mir, M., 1991, 367 pp.

[18] Gonsales R., Vuds R., Tsifrovaya obrabotka izobrazhenii, per. s angl., ed. P. A. Chochia, Tekhnosfera, M., 2005, 1072 pp.