Energy-efficient waveform for electrical stimulation of the cochlear nerve
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Anantha Chandrakasan | Konstantina M. Stankovic | Marcus Yip | A. Chandrakasan | Victor Noel | K. Stankovic | Peter Bowers | Victor Noel | Peter Bowers | Marcus Yip
[1] Manfred Morari,et al. Energy-optimal electrical excitation of nerve fibers , 2005, IEEE Transactions on Biomedical Engineering.
[2] Darren M. Whiten. Electro-anatomical models of the cochlear implant , 2007 .
[3] Effects of Pulse Shape and Polarity on Sensitivity to Cochlear Implant Stimulation: A Chronic Study in Guinea Pigs. , 2016, Advances in experimental medicine and biology.
[4] J. Zwislocki,et al. Absolute scaling of sensory magnitudes: A validation , 1980, Perception & psychophysics.
[5] Richard D. Klafter,et al. An In Vivo Study of Cardiac Pacemaker Optimization by Pulse Shape Modification , 1976, IEEE Transactions on Biomedical Engineering.
[6] J. Schwarz,et al. Na currents and action potentials in rat myelinated nerve fibres at 20 and 37 degrees C. , 1987, Pflugers Archiv : European journal of physiology.
[7] Graeme M Clark,et al. The multi-channel cochlear implant: Multi-disciplinary development of electrical stimulation of the cochlea and the resulting clinical benefit , 2015, Hearing Research.
[8] M. Wallhagen,et al. The stigma of hearing loss. , 2010, The Gerontologist.
[9] Filiep Vanpoucke,et al. Identification of the impedance model of an implanted cochlear prosthesis from intracochlear potential measurements , 2004, IEEE Transactions on Biomedical Engineering.
[10] Brett A. Swanson,et al. Cochlear Implant Signal Processing ICs , 2007, 2007 IEEE Custom Integrated Circuits Conference.
[11] B. Olusanya,et al. The global burden of disabling hearing impairment: a call to action. , 2014, Bulletin of the World Health Organization.
[12] D. Mcneal. Analysis of a Model for Excitation of Myelinated Nerve , 1976, IEEE Transactions on Biomedical Engineering.
[13] J. Wouters,et al. Higher Sensitivity of Human Auditory Nerve Fibers to Positive Electrical Currents , 2008, Journal of the Association for Research in Otolaryngology.
[14] J. Schwarz,et al. Na currents and action potentials in rat myelinated nerve fibres at 20 and 37° C , 1987, Pflügers Archiv.
[15] U. Baumann,et al. Effects of electrical pulse polarity shape on intra cochlear neural responses in humans: Triphasic pulses with cathodic second phase , 2013, Hearing Research.
[16] Robert L. Smith,et al. The Growth of Loudness in Cochlear Implant Listeners; Possible Developmental Effects? , 2017 .
[17] Warren M Grill,et al. Energy-efficient waveform shapes for neural stimulation revealed with a genetic algorithm , 2010, Journal of neural engineering.
[18] M. Sahin,et al. Non-rectangular waveforms for neural stimulation with practical electrodes , 2007, Journal of neural engineering.
[19] C. Toumazou,et al. A 126-/spl mu/W cochlear chip for a totally implantable system , 2005, IEEE Journal of Solid-State Circuits.
[20] H. Kanis,et al. On Validation , 1994 .
[21] A. Büchner,et al. Long-Term Performance of Cochlear Implants in Postlingually Deafened Adults , 2012, Otolaryngology--head and neck surgery : official journal of American Academy of Otolaryngology-Head and Neck Surgery.
[22] Rahul Sarpeshkar,et al. An ultra-low-power programmable analog bionic ear processor , 2005, IEEE Transactions on Biomedical Engineering.
[23] R. Shepherd,et al. Electrical stimulation of the auditory nerve: direct current measurement in vivo , 1999, IEEE Transactions on Biomedical Engineering.
[24] D. Hay,et al. Call for action. , 1971, Nursing mirror and midwives journal.
[25] Matthew G. Fishler,et al. Theoretical predictions of the optimal monophasic and biphasic defibrillation waveshapes , 2000, IEEE Transactions on Biomedical Engineering.
[26] Frank Rattay,et al. A model of the electrically excited human cochlear neuron. II. Influence of the three-dimensional cochlear structure on neural excitability , 2001, Hearing Research.
[27] Warren M Grill,et al. Efficiency Analysis of Waveform Shape for Electrical Excitation of Nerve Fibers , 2010, IEEE Transactions on Neural Systems and Rehabilitation Engineering.
[28] B. Fraysse,et al. PET-imaging of brain plasticity after cochlear implantation , 2015, Hearing Research.
[29] Jaime A. Undurraga,et al. Polarity effects on neural responses of the electrically stimulated auditory nerve at different cochlear sites , 2010, Hearing Research.
[30] B. Papsin,et al. Skin breakdown over cochlear implants: prevention of a magnet site complication. , 2004, The Journal of otolaryngology.
[31] J.H.M. Frijns,et al. A quantitative approach to modeling mammalian myelinated nerve fibers for electrical prosthesis design , 1994, IEEE Transactions on Biomedical Engineering.
[32] T Hanekom,et al. Three-Dimensional Spiraling Finite Element Model of the Electrically Stimulated Cochlea , 2001, Ear and hearing.
[33] Johan H. M. Frijns,et al. Current focussing in cochlear implants: An analysis of neural recruitment in a computational model , 2015, Hearing Research.