• DocumentCode
    2589500
  • Title

    A cyber-physical system for strain measurements in the cerebral aneurysm models

  • Author

    Shi, Chaoyang ; Kojima, Masahiro ; Tercero, Carlos ; Anzai, Hitomi ; Ohta, Makoto ; Ooe, Katsutoshi ; Ikeda, Seiichi ; Fukuda, Toshio ; Arai, Fumihito ; Negoro, Makoto ; Irie, Keiko ; Kwon, Guiryong

  • Author_Institution
    Dept. of Micro-Nano Syst. Eng., Nagoya Univ., Nagoya, Japan
  • fYear
    2012
  • fDate
    7-12 Oct. 2012
  • Firstpage
    4137
  • Lastpage
    4142
  • Abstract
    For the development of artificial intelligent diagnosis for cerebrovascular intervention, it is desirable to forecast the growth of cerebral aneurysms. In order to achieve such purpose, it is needed to evaluate wall shear stress, strain, pressure, deformation and flow velocity in the aneurysm region. In this research, we focus on in-vitro strain and deformation measurements of cerebral aneurysm models, and propose a cyber-physical system, in which a scaled-up membranous silicone model of cerebral aneurysm was built and integrated with a specialized pump for the pulsatile blood flow simulation, and a vision system was constructed to measure the strain on different regions on the model with pulsatile blood flow circulated inside. Experimental results show that both distance and area strain maxima were larger for the aneurysm neck (0.042 and 0.052), followed by the aneurysm dome (0.023 and 0.04) and then by the main blood vessel section (0.01 and 0.014), which were complemented with computer fluid dynamics simulation for the inclusion of wall shear stress, oscillatory shear index and aneurysm formation index. Medical imaging data of the cerebral aneurysm in 2008 and 2011 was obtained. Diagnosis results have concordance with the aneurysm growth in 2011. The presented measurement method offers an option for measuring strain and deformation to be complementary with computer fluid dynamics and photoelastic stress analysis for advanced diagnostic in the endovascular surgery.
  • Keywords
    artificial intelligence; blood vessels; brain; cardiovascular system; computational fluid dynamics; haemodynamics; medical image processing; strain measurement; stress-strain relations; vision; advanced diagnostic; aneurysm dome; aneurysm formation index; aneurysm neck; aneurysm region; artificial intelligent diagnosis; cerebral aneurysm growth forecasting; cerebral aneurysm model; cerebrovascular intervention; computer fluid dynamics simulation; cyber-physical system; deformation evaluation; deformation measurement; endovascular surgery; flow velocity; in-vitro strain measurement; main blood vessel section; medical imaging data; oscillatory shear index; photoelastic stress analysis; pressure evaluation; pulsatile blood flow circulation; pulsatile blood flow simulation; scaled-up membranous silicone model; strain evaluation; vision system; wall shear stress evaluation; Aneurysm; Biomedical imaging; Blood vessels; Computational fluid dynamics; Deformable models; Strain; Strain measurement;
  • fLanguage
    English
  • Publisher
    ieee
  • Conference_Titel
    Intelligent Robots and Systems (IROS), 2012 IEEE/RSJ International Conference on
  • Conference_Location
    Vilamoura
  • ISSN
    2153-0858
  • Print_ISBN
    978-1-4673-1737-5
  • Type

    conf

  • DOI
    10.1109/IROS.2012.6385754
  • Filename
    6385754