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Integrated vision and force control in suspended cell injection system: Towards automatic batch biomanipulation.

, , , and . ICRA, page 3413-3418. IEEE, (2008)

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Robotic manipulation of human red blood cells with optical tweezers for cell property characterization., , , , and . IROS, page 4269-4274. IEEE, (2010)Integrated vision and force control in suspended cell injection system: Towards automatic batch biomanipulation., , , and . ICRA, page 3413-3418. IEEE, (2008)Three-Dimensional Enhancement of Confocal Scanning Laser Fluorescence Microscope Images for Vascular Reconstruction., , and . ICPR (3), page 863-866. IEEE Computer Society, (2002)Automated segmentation in confocal images using a density clustering method., , and . J. Electronic Imaging, 16 (4): 043003 (2007)Robotic cell manipulation with optical tweezers for biomechanical characterization., , , and . ICRA, page 4104-4109. IEEE, (2011)Automated in-vivo transportation of biological cells with a disturbance compensation controller., , , , , and . IROS, page 2561-2566. IEEE, (2016)An adaptive impedance force control approach for robotic cell microinjection., , , and . IROS, page 907-912. IEEE, (2008)Robotic Cell Injection System With Position and Force Control: Toward Automatic Batch Biomanipulation., , , and . IEEE Trans. Robotics, 25 (3): 727-737 (2009)Adaptive thresholding image series from fluorescence confocal scanning laser microscope using orientation intensity profiles., , and . Medical Imaging: Image Processing, volume 5370 of SPIE Proceedings, SPIE, (2004)The SAMAL Model for Affective Learning: A multidimensional model incorporating the body, mind and emotion in learning., , , and . DMS, page 216-221. Knowledge Systems Institute, (2011)