Skip to main content
Top
Published in: Journal of the Association for Research in Otolaryngology 6/2014

01-12-2014 | Research Article

Electrode Spanning with Partial Tripolar Stimulation Mode in Cochlear Implants

Authors: Ching-Chih Wu, Xin Luo

Published in: Journal of the Association for Research in Otolaryngology | Issue 6/2014

Login to get access

Abstract

The perceptual effects of electrode spanning (i.e., the use of nonadjacent return electrodes) in partial tripolar (pTP) mode were tested on a main electrode EL8 in five cochlear implant (CI) users. Current focusing was controlled by σ (the ratio of current returned within the cochlea), and current steering was controlled by α (the ratio of current returned to the basal electrode). Experiment 1 tested whether asymmetric spanning with α = 0.5 can create additional channels around standard pTP stimuli. It was found that in general, apical spanning (i.e., returning current to EL6 rather than EL7) elicited a pitch between those of standard pTP stimuli on main electrodes EL8 and EL9, while basal spanning (i.e., returning current to EL10 rather than EL9) elicited a pitch between those of standard pTP stimuli on main electrodes EL7 and EL8. The pitch increase caused by apical spanning was more salient than the pitch decrease caused by basal spanning. To replace the standard pTP channel on the main electrode EL8 when EL7 or EL9 is defective, experiment 2 tested asymmetrically spanned pTP stimuli with various α, and experiment 3 tested symmetrically spanned pTP stimuli with various σ. The results showed that pitch increased with decreasing α in asymmetric spanning, or with increasing σ in symmetric spanning. Apical spanning with α around 0.69 and basal spanning with α around 0.38 may both elicit a similar pitch as the standard pTP stimulus. With the same σ, the symmetrically spanned pTP stimulus was higher in pitch than the standard pTP stimulus. A smaller σ was thus required for symmetric spanning to match the pitch of the standard pTP stimulus. In summary, electrode spanning is an effective field-shaping technique that is useful for adding spectral channels and handling defective electrodes with CIs.
Literature
go back to reference Bierer JA (2007) Threshold and channel interaction in cochlear implant users: Evaluation of the tripolar electrode configuration. J Acoust Soc Am 121:1642–1653PubMedCrossRef Bierer JA (2007) Threshold and channel interaction in cochlear implant users: Evaluation of the tripolar electrode configuration. J Acoust Soc Am 121:1642–1653PubMedCrossRef
go back to reference Colletti V, Shannon RV, Carner M, Veronese S, Colletti L (2009) Progress in restoration of hearing with the auditory brainstem implant. Prog Brain Res 175:333–345PubMedCrossRef Colletti V, Shannon RV, Carner M, Veronese S, Colletti L (2009) Progress in restoration of hearing with the auditory brainstem implant. Prog Brain Res 175:333–345PubMedCrossRef
go back to reference Fishman KE, Shannon RV, Slattery WH (1997) Speech recognition as a function of the number of electrodes used in the SPEAK cochlear implant speech processor. J Speech Lang Hear Res 40:1201–1215PubMedCrossRef Fishman KE, Shannon RV, Slattery WH (1997) Speech recognition as a function of the number of electrodes used in the SPEAK cochlear implant speech processor. J Speech Lang Hear Res 40:1201–1215PubMedCrossRef
go back to reference Friesen LM, Shannon RV, Baskent D, Wang X (2001) Speech recognition in noise as a function of the number of spectral channels: comparison of acoustic hearing and cochlear implants. J Acoust Soc Am 110:1150–1163PubMedCrossRef Friesen LM, Shannon RV, Baskent D, Wang X (2001) Speech recognition in noise as a function of the number of spectral channels: comparison of acoustic hearing and cochlear implants. J Acoust Soc Am 110:1150–1163PubMedCrossRef
go back to reference Frijns JH, Snel-Bongers J, Vellinga D, Schrage E, Vanpoucke FJ, Briaire JJ (2013) Restoring speech perception with cochlear implants by spanning defective electrode contacts. Acta Otolaryngol 133:394–399PubMedCrossRef Frijns JH, Snel-Bongers J, Vellinga D, Schrage E, Vanpoucke FJ, Briaire JJ (2013) Restoring speech perception with cochlear implants by spanning defective electrode contacts. Acta Otolaryngol 133:394–399PubMedCrossRef
go back to reference Goldwyn JH, Bierer SM, Bierer JA (2010) Modeling the electrode–neuron interface of cochlear implants: Effects of neural survival, electrode placement, and the partial tripolar configuration. Hear Res 268:93–104PubMedCentralPubMedCrossRef Goldwyn JH, Bierer SM, Bierer JA (2010) Modeling the electrode–neuron interface of cochlear implants: Effects of neural survival, electrode placement, and the partial tripolar configuration. Hear Res 268:93–104PubMedCentralPubMedCrossRef
go back to reference Hughes ML, Brown CJ, Abbas PJ (2004) Sensitivity and specificity of averaged electrode voltage measures in cochlear implant recipients. Ear Hear 25:431–446PubMedCrossRef Hughes ML, Brown CJ, Abbas PJ (2004) Sensitivity and specificity of averaged electrode voltage measures in cochlear implant recipients. Ear Hear 25:431–446PubMedCrossRef
go back to reference Jesteadt W (1980) An adaptive procedure for subjective judgments. Atten Percept Psychophys 28:85–88CrossRef Jesteadt W (1980) An adaptive procedure for subjective judgments. Atten Percept Psychophys 28:85–88CrossRef
go back to reference Jolly CN, Spelman FA, Clopton BM (1996) Quadrupolar stimulation for Cochlear prostheses: modeling and experimental data. IEEE Trans Biomed Eng 43:857–865PubMedCrossRef Jolly CN, Spelman FA, Clopton BM (1996) Quadrupolar stimulation for Cochlear prostheses: modeling and experimental data. IEEE Trans Biomed Eng 43:857–865PubMedCrossRef
go back to reference Kral A, Hartmann R, Mortazavi D, Klinke R (1998) Spatial resolution of cochlear implants: the electrical field and excitation of auditory afferents. Hear Res 121:11–28PubMedCrossRef Kral A, Hartmann R, Mortazavi D, Klinke R (1998) Spatial resolution of cochlear implants: the electrical field and excitation of auditory afferents. Hear Res 121:11–28PubMedCrossRef
go back to reference Kwon BJ, van den Honert C (2006) Effect of electrode configuration on psychophysical forward masking in cochlear implant listeners. J Acoust Soc Am 119:2994–3002PubMedCrossRef Kwon BJ, van den Honert C (2006) Effect of electrode configuration on psychophysical forward masking in cochlear implant listeners. J Acoust Soc Am 119:2994–3002PubMedCrossRef
go back to reference Landsberger DM, Srinivasan AG (2009) Virtual channel discrimination is improved by current focusing in cochlear implant recipients. Hear Res 254:34–41PubMedCentralPubMedCrossRef Landsberger DM, Srinivasan AG (2009) Virtual channel discrimination is improved by current focusing in cochlear implant recipients. Hear Res 254:34–41PubMedCentralPubMedCrossRef
go back to reference Litvak LM, Spahr AJ, Emadi G (2007) Loudness growth observed under partially tripolar stimulation: model and data from cochlear implant listeners. J Acoust Soc Am 122:967–981PubMedCrossRef Litvak LM, Spahr AJ, Emadi G (2007) Loudness growth observed under partially tripolar stimulation: model and data from cochlear implant listeners. J Acoust Soc Am 122:967–981PubMedCrossRef
go back to reference Macherey O, Carlyon RP, van Wieringen A, Deeks JM, Wouters J (2008) Higher sensitivity of human auditory nerve fibers to positive electrical currents. J Assoc Res Otolaryngol 9:241–251PubMedCentralPubMedCrossRef Macherey O, Carlyon RP, van Wieringen A, Deeks JM, Wouters J (2008) Higher sensitivity of human auditory nerve fibers to positive electrical currents. J Assoc Res Otolaryngol 9:241–251PubMedCentralPubMedCrossRef
go back to reference Marzalek MS, Spahr AJ, Litvak LM (2007) Effects of multi-electrode stimulation on tone perception: modeling and outcomes. Conference on Implantable Auditory Prosthesis, Lake Tahoe, CA Marzalek MS, Spahr AJ, Litvak LM (2007) Effects of multi-electrode stimulation on tone perception: modeling and outcomes. Conference on Implantable Auditory Prosthesis, Lake Tahoe, CA
go back to reference Padilla M, Landsberger DM (2013) Spread of excitation using a new stimulation mode: the virtual tripole. Conference on Implantable Auditory Prosthesis, Lake Tahoe, CA Padilla M, Landsberger DM (2013) Spread of excitation using a new stimulation mode: the virtual tripole. Conference on Implantable Auditory Prosthesis, Lake Tahoe, CA
go back to reference Saoji AA, Litvak LM (2010) Use of “phantom electrode” technique to extend the range of pitches available through a cochlear implant. Ear Hear 31:693–701PubMed Saoji AA, Litvak LM (2010) Use of “phantom electrode” technique to extend the range of pitches available through a cochlear implant. Ear Hear 31:693–701PubMed
go back to reference Saoji AA, Landsberger DM, Padilla M, Litvak LM (2013) Masking patterns for monopolar and phantom electrode stimulation in cochlear implants. Hear Res 298:109–116PubMedCentralPubMedCrossRef Saoji AA, Landsberger DM, Padilla M, Litvak LM (2013) Masking patterns for monopolar and phantom electrode stimulation in cochlear implants. Hear Res 298:109–116PubMedCentralPubMedCrossRef
go back to reference Shannon RV, Fu QJ, Galvin J (2004) The number of spectral channels required for speech recognition depends on the difficulty of the listening situation. Acta Otolaryngol Suppl 552:50–54PubMedCrossRef Shannon RV, Fu QJ, Galvin J (2004) The number of spectral channels required for speech recognition depends on the difficulty of the listening situation. Acta Otolaryngol Suppl 552:50–54PubMedCrossRef
go back to reference Snel-Bongers J, Briaire JJ, Vanpoucke FJ, Frijns JH (2011) Influence of widening electrode separation on current steering performance. Ear Hear 32:221–229PubMedCrossRef Snel-Bongers J, Briaire JJ, Vanpoucke FJ, Frijns JH (2011) Influence of widening electrode separation on current steering performance. Ear Hear 32:221–229PubMedCrossRef
go back to reference Snyder RL, Bierer JA, Middlebrooks JC (2004) Topographic spread of inferior colliculus activation in response to acoustic and intracochlear electric stimulation. J Assoc Res Otolaryngol 5:305–322PubMedCentralPubMedCrossRef Snyder RL, Bierer JA, Middlebrooks JC (2004) Topographic spread of inferior colliculus activation in response to acoustic and intracochlear electric stimulation. J Assoc Res Otolaryngol 5:305–322PubMedCentralPubMedCrossRef
go back to reference Srinivasan AG, Landsberger DM, Shannon RV (2010) Current focusing sharpens local peaks of excitation in cochlear implant stimulation. Hear Res 270:89–100PubMedCentralPubMedCrossRef Srinivasan AG, Landsberger DM, Shannon RV (2010) Current focusing sharpens local peaks of excitation in cochlear implant stimulation. Hear Res 270:89–100PubMedCentralPubMedCrossRef
go back to reference Srinivasan AG, Padilla M, Shannon RV, Landsberger DM (2013) Improving speech perception in noise with current focusing in cochlear implant users. Hear Res 299:29–36PubMedCentralPubMedCrossRef Srinivasan AG, Padilla M, Shannon RV, Landsberger DM (2013) Improving speech perception in noise with current focusing in cochlear implant users. Hear Res 299:29–36PubMedCentralPubMedCrossRef
go back to reference Vanpoucke F, Zarowski A, Casselman J, Frijns J, Peeters S (2004) The facial nerve canal: an important cochlear conduction path revealed by Clarion electrical field imaging. Otol Neurotol 25:282–289PubMedCrossRef Vanpoucke F, Zarowski A, Casselman J, Frijns J, Peeters S (2004) The facial nerve canal: an important cochlear conduction path revealed by Clarion electrical field imaging. Otol Neurotol 25:282–289PubMedCrossRef
Metadata
Title
Electrode Spanning with Partial Tripolar Stimulation Mode in Cochlear Implants
Authors
Ching-Chih Wu
Xin Luo
Publication date
01-12-2014
Publisher
Springer US
Published in
Journal of the Association for Research in Otolaryngology / Issue 6/2014
Print ISSN: 1525-3961
Electronic ISSN: 1438-7573
DOI
https://doi.org/10.1007/s10162-014-0464-x

Other articles of this Issue 6/2014

Journal of the Association for Research in Otolaryngology 6/2014 Go to the issue