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An adaptable prosthetic socket: Regulating independent air bladders through closed-loop control.

, , , , and . ISCAS, page 1-4. IEEE, (2017)

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Live demonstration: Targeted transcutaneous electrical nerve stimulation for phantom limb sensory feedback., , , and . BioCAS, page 1. IEEE, (2017)Real-time arm tracking for HMI applications., , , and . BSN, page 1-4. IEEE, (2015)Limb-position robust classification of myoelectric signals for prosthesis control using sparse representations., , , , and . EMBC, page 6373-6376. IEEE, (2016)Tactile feedback in upper limb prosthetic devices using flexible textile force sensors., , , and . BioRob, page 114-119. IEEE, (2014)Dynamic training protocol improves the robustness of PR-based myoelectric control., , , , and . Biomed. Signal Process. Control., (2017)Sensory Feedback in Upper Limb Amputees Impacts Cortical Activity as Revealed by Multiscale Connectivity Analysis., , , , , , and . EMBC, page 3844-3847. IEEE, (2020)Neuromimetic Event-Based Detection for Closed-Loop Tactile Feedback Control of Upper Limb Prostheses., , , and . IEEE Trans. Haptics, 9 (2): 196-206 (2016)Neuromorphic vision and tactile fusion for upper limb prosthesis control., , , , , and . NER, page 981-984. IEEE, (2019)Designing Feedback Controllers for Human-Prosthetic Systems Using H∞ Model Matching., , , and . EMBC, page 2316-2319. IEEE, (2018)Dynamically Mapping Socket Loading Conditions During Real Time Operation of an Upper Limb Prosthesis., , , , , , and . EMBC, page 3930-3933. IEEE, (2018)