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Temporal enhancement of two-dimensional color doppler echocardiography.

, , , , , and . Medical Imaging: Image Processing, volume 9784 of SPIE Proceedings, page 97843T. SPIE, (2016)

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GPU based real-time instrument tracking with three-dimensional ultrasound., , , , , , and . Medical Image Analysis, 11 (5): 458-464 (2007)Mitral Annulus Segmentation From 3D Ultrasound Using Graph Cuts., , , , , and . IEEE Trans. Med. Imaging, 29 (9): 1676-1687 (2010)Enabling 3D Ultrasound Procedure Guidance through Enhanced Visualization., , and . IPCAI, volume 7330 of Lecture Notes in Computer Science, page 115-124. Springer, (2012)Mitral Annulus Segmentation from Three-Dimensional Ultrasound., , , , , and . ISBI, page 779-782. IEEE, (2009)An active motion compensation instrument for beating heart mitral valve surgery., , , , , and . IROS, page 1290-1295. IEEE, (2007)Temporal enhancement of two-dimensional color doppler echocardiography., , , , , and . Medical Imaging: Image Processing, volume 9784 of SPIE Proceedings, page 97843T. SPIE, (2016)GPU Based Real-Time Instrument Tracking with Three Dimensional Ultrasound., , , , , and . MICCAI (1), volume 4190 of Lecture Notes in Computer Science, page 58-65. Springer, (2006)Metal MEMS tools for beating-heart tissue approximation., , , , , , and . ICRA, page 411-416. IEEE, (2011)Percutaneous intracardiac beating-heart surgery using metal MEMS tissue approximation tools., , , , , , , , and . I. J. Robotics Res., 31 (9): 1081-1093 (2012)Robotic tissue tracking for beating heart mitral valve surgery., , , and . Medical Image Analysis, 17 (8): 1236-1242 (2013)