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Automated Localization of Multiple Pelvic Bone Structures on MRI.

, , , , and . IEEE J. Biomed. Health Informatics, 20 (1): 249-255 (2016)

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Automated Localization of Multiple Pelvic Bone Structures on MRI., , , , and . IEEE J. Biomed. Health Informatics, 20 (1): 249-255 (2016)A novel acoustic catheter stethoscope based acquisition and signal processing framework to extract multiple bio signals., , , and . EMBC, page 1336-1339. IEEE, (2017)The Business of Sustainable Forestry: Meshing Operations with Strategic Purpose., , and . Interfaces, 30 (3): 234-250 (2000)Automated tracking, segmentation and trajectory classification of pelvic organs on dynamic MRI., , , , and . EMBC, page 2403-2406. IEEE, (2016)MRI-Based Segmentation of Pubic Bone for Evaluation of Pelvic Organ Prolapse., , , , and . IEEE J. Biomed. Health Informatics, 18 (4): 1370-1378 (2014)Novel Catheter Multiscope: A Feasibility Study., , , , and . IEEE Trans. Biomed. Eng., 68 (2): 606-615 (2021)MRI-based semi-automatic pelvimetry measurement for pelvic organ prolapse diagnosis., , , , and . ISSPA, page 804-808. IEEE, (2012)Fully automated localization of multiple pelvic bone structures on MRI., , , , and . EMBC, page 3353-3356. IEEE, (2014)Segmentation of sacral curve on dynamic MRI for diagnosis of pelvic organ prolapse., , , and . BHI, page 90-93. IEEE, (2016)Trends in fetal monitoring through phonocardiography: Challenges and future directions., , , and . Biomed. Signal Process. Control., (2017)