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Ambulatory Position and Orientation Tracking Fusing Magnetic and Inertial Sensing.

, , and . IEEE Trans. Biomed. Engineering, 54 (5): 883-890 (2007)

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Sensing Power Transfer Between the Human Body and the Environment., , and . IEEE Trans. Biomed. Engineering, 56 (6): 1711-1718 (2009)Discussion on: "Robust Discrete-Time H∞ Control for Unsupported Paraplegic Standing: Experimental Results"., , and . Eur. J. Control, 10 (3): 285-287 (2004)Time Coherent Full-Body Poses Estimated Using Only Five Inertial Sensors: Deep versus Shallow Learning., , , , , and . Sensors, 19 (17): 3716 (2019)Drift-Free 3D Orientation and Displacement Estimation for Quasi-Cyclical Movements Using One Inertial Measurement Unit: Application to Running., , , , , and . Sensors, 22 (3): 956 (2022)Estimation of Full-Body Poses Using Only Five Inertial Sensors: An Eager or Lazy Learning Approach?, , , and . Sensors, 16 (12): 2138 (2016)Vibro- and Electrotactile User Feedback on Hand Opening for Myoelectric Forearm Prostheses., , , and . IEEE Trans. Biomed. Engineering, 59 (8): 2219-2226 (2012)Ambulatory Assessment of Ankle and Foot Dynamics., , and . IEEE Trans. Biomed. Engineering, 54 (5): 895-902 (2007)On the Validity of Different Motion Capture Technologies for the Analysis of Running., , , , , , and . BioRob, page 1175-1180. IEEE, (2018)Improving Full-Body Pose Estimation from a Small Sensor Set Using Artificial Neural Networks and a Kalman Filter., , , , and . AAAI, page 10063-10064. AAAI Press, (2019)Comparison of Three Hand Pose Reconstruction Algorithms Using Inertial and Magnetic Measurement Units., , , , , , , and . Humanoids, page 1-9. IEEE, (2018)