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Force-controlled ultrasound robot for consistent tissue pre-loading: Implications for acoustic radiation force elasticity imaging.

, , , and . BioRob, page 259-264. IEEE, (2014)

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Deep learning to detect catheter tips in vivo during photoacoustic-guided catheter interventions : Invited Presentation., , , and . CISS, page 1-3. IEEE, (2019)Photoacoustic Source Detection and Reflection Artifact Removal Enabled by Deep Learning., , and . IEEE Trans. Med. Imaging, 37 (6): 1464-1477 (2018)Force-controlled ultrasound robot for consistent tissue pre-loading: Implications for acoustic radiation force elasticity imaging., , , and . BioRob, page 259-264. IEEE, (2014)A cooperatively controlled robot for ultrasound monitoring of radiation therapy., , , , and . IROS, page 3071-3076. IEEE, (2013)FLEX: FLexible Transducer With External Tracking for Ultrasound Imaging With Patient-Specific Geometry Estimation., , , , , , , , and . IEEE Trans. Biomed. Eng., 71 (4): 1298-1307 (April 2024)Computational modeling towards focused ultrasound therapy for spinal cord injury: visualization of beam propagation through patient-specific anatomy., , , , , , , and . Medical Imaging: Image-Guided Procedures, volume 12466 of SPIE Proceedings, SPIE, (2023)Deep Learning for Ultrasound Beamforming in Flexible Array Transducer., , and . IEEE Trans. Medical Imaging, 40 (11): 3178-3189 (2021)In vivo reproducibility of robotic probe placement for an integrated US-CT image-guided radiation therapy system., , , , and . Medical Imaging: Image-Guided Procedures, volume 9036 of SPIE Proceedings, page 903611. SPIE, (2014)Feasibility of photoacoustic image guidance for telerobotic endonasal transsphenoidal surgery., , , and . BioRob, page 482-488. IEEE, (2016)Reconstruction-Free Deep Convolutional Neural Networks for Partially Observed Images., , , , , and . GlobalSIP, page 400-404. IEEE, (2018)