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Tytuł artykułu

Mathematical and Ultrasonographic Model of the Left Ventricle : in Vitro Studies

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The main objective of this study is to develop an echocardiographic model of the left ventricular and numerical modeling of the speckles- markers tracking in the ultrasound (ultrasonographic) imaging of the left ventricle. The work is aimed at the creation of controlled and mobile environment that enables to examine the relationships between left ventricular wall deformations and visualizations of these states in the form of echocardiographic imaging and relations between the dynamically changing distributions of tissue markers of studied structures.
Rocznik
Strony
583--595
Opis fizyczny
Bibliogr. 20 poz., fot., rys., wykr.
Twórcy
autor
autor
autor
  • Cardiology & Internal Medicine Clinic, Military Institute of Medicine, Cardiac Rapid Diagnostic Department Szaserów 128, 04-141 Warszawa, Poland, rolszewski@wim.mil.pl
Bibliografia
  • 1. Bijnens B., D'Hooge J., Sutherland G., Herregods M.C., Nuyts J., Suetens P., Van de Werf F. (1999), Robustness of integrated backscatter for myocardial tissue characterization, Ultrasound in Medicine & Biology, 25, 95-103.
  • 2. Blotekaer K.I., Ingebrigtsen K.A., Skeie H. (1973), A method for analyzing waves in structures consisting of metal strips on dispersive media, IEEE Trans. Electron Devices, 20, 12, 1133-1138.
  • 3. Bohs L.N., Trahey G.E. (1991), A novel method for angle independent ultrasonic imaging of blood flow and tissue motion, IEEE Transactions on Bio-medical Engineering, 38, 280-286.
  • 4. Evangelista A., Flachskampf F., Lancellotti P., Badano L., Aguilar R., Monaghan M., Zamorano J., Nihoyannopoulos P. (2008), European Association of Echocardiography. European Association of Echocardiography recommendations for standardization of performance, digital storage and reporting of echocardiographic studies, Eur. J. Echocardiogr., 9, 4, 438-448.
  • 5. Feigenbaum H., Amstrong W.F., Ryan T. (2005), Feigenbaum's echocardiography, Lippincott Williams & Wilkins.
  • 6. Isaaz K. (2000), What are we actually measuring by Doppler tissue imaging?, Journal of the American College of Cardiology, 36, 897-899.
  • 7. Korinek J., Wang J., Sengupta P.P., Miyazaki C., Kjaergaard J., McMahon E., Abraham T.P., Belohlavek M. (2005), Two-dimensional strain - a Doppler-independent ultrasound method for quantitation of regional deformation: Validation in vitro and in vivo, Journal of the American Society of Echocardiography: official publication of the American Society of Echocardiography, 18, 1247-1253.
  • 8. Langeland S., D'Hooge J., Torp H., Bijnens B., Suetens P. (2003), Comparison of time-domain displacement estimators for two-dimensional rf tracking, Ultrasound in Medicine & Biology, 29, 1177-1186.
  • 9. Leitman M., Lysyansky P., Sidenko S., Shir V., Peleg E., Binenbaum M., Kaluski E., Krakover R., Vered Z. (2004), Two-dimensional strain - a novel software for real-time quantitative echocardiographic assessment of myocardial function, Journal of the American Society of Echocardiography: official publication of the American Society of Echocardiography, 17, 1021-1029.
  • 10. Lesniak-Plewinska B., Cygan S., Kaluzynski K., D'Hooge J., Zmigrodzki J., Kowalik E., Kordybach M., Kowalski M. (2010), A dual-chamber, thick-walled cardiac phantom for use in cardiac motion and deformation imaging by ultrasound, Ultrasound in Medicine & Biology, 36, 1145-1156.
  • 11. Lloyd-Jones D., Adams R.J., Brown T.M., Carnethon M., Dai S., De Simone G., Ferguson T.B., Ford E., Furie K., Gillespie C., Go A., Greenlund K., Haase N., Hailpern S., Ho P.M., Howard V., Kissela B., Kittner S., Lackland D., Lisabeth L., Marelli A., McDermott M.M., Meigs J., Mozaffarian D., Mussolino M., Nichol G., Roger V.L., Rosamond W., Sacco R., Sorlie P., Roger V.L., Thom T., Wasserthiel-Smoller S., Wong N.D., Wylie-Rosett J. (2010), Heart disease and stroke statistics - 2010 update: A report from the American Heart Association, Circulation, 12, 1, e46-e215.
  • 12. Maecken T., Zinke H., Zenz M., Grau T. (2011), How should anesthesiologists perform ultrasound examinations? Diagnostic use of ultrasound in emergency and intensive care and medicine, Anaesthesist., 60, 3, 203-213.
  • 13. Mor-Avi V., Lang R.M., Badano L.P., Belohlavek M., Cardim N.M., Derumeaux G., Galderisi M., Marwick T., Nagueh S.F., Sengupta P.P., Sicari R., Smiseth O.A., Smulevitz B., Takeuchi M., Thomas J.D., Vannan M., Voigt J.U., Zamorano J.L. (2011), Current and evolving echocardiographic techniques for the quantitative evaluation of cardiac mechanics: ASE/EAE consensus statement on methodology and indications endorsed by the Japanese Society of Echocardiography, European Journal of Echocardiography: the journal of the Working Group on Echocardiography of the European Society of Cardiology, 12, 167-205.
  • 14. Olszewski R., Timperley J., Szmigielski C., Monaghan M., Nihoyannopoulos P., Senior R., Becher H. (2007), The clinical applications of contrast echocardiography, European Jjournal of Echocardiography: the journal of the Working Group on Echocardiography of the European Society of Cardiology, 8, S13-S23.
  • 15. Otero H.J., Rybicki F.J., Greenberg D., Mitsouras D., Mendoza J.A., Neumann P.J. (2010), Cost-effective diagnostic cardiovascular imaging: when does it provide good value for the money? Int. J. Cardiovasc. Imaging, 26, 6, 605-12.
  • 16. Picano E. (2005), Economic and biological costs of cardiac imaging, Cardiovasc. Ultrasound, May 25, 3-13.
  • 17. Van de Veire N.R., De Sutter J., Bax J.J., Roelandt J.R. (2008), Technological advances in tissue Doppler imaging echocardiography, Heart, 94, 1065-1074.
  • 18. Wagner R.F., Smith S.W., Sandrik J.M., Lopez H. (1983), Statistics of speckle in ultrasound Bscan, IEEE Trans. Sonics and Ultrasonics, 30, 156-163.
  • 19. Wojcik J., Kujawska T., Nowicki A., Lewin P.A. (2008), Fast prediction of pulsed nonlinear acoustic fields from clinically relevant sources using time-averaged wave envelope approach: Comparison of numerical simulations and experimental results, Ultrasonics, 48, 707-715.
  • 20. Wojcik J., Nowicki A., Lewin P.A., Bloomfield P.E., Kujawska T., Filipczynski L. (2006), Wave envelopes method for description of nonlinear acoustic wave propagation, Ultrasonics, 44, 310-329
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BUS8-0026-0083
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