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PubMed · 11699819

Optimizing electrode and filter selection in cochlear implant speech processor maps.

Abstract

This study examined two hypotheses: that speech understanding of cochlear implantees could be improved by removing electrodes that exhibit nontonotopic percepts from the speech processor map and that speech understanding could be improved by extending the range of high frequencies that are mapped to the electrodes. Electrodes producing nontonotopic percepts were identified using a multidimensional scaling procedure with seven users of the Nucleus CI22 implant and Spectra processor. Two experimental maps were created with those electrodes removed: the first using the same set of filters as their clinical map and the second using the complete set of filters available. After periods of take-home experience, speech perception was tested and compared for the two experimental maps and their own clinical map. It was found that removing nontonotopic electrodes did not improve speech perception, possibly due to the deleterious side effect of shifting the frequency-to-electrode allocation. Also, extending the high-frequency range of the map did not improve speech perception, possibly due to the poor sensitivity of this processor to high-frequency sounds.

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BibTeXRIS

K R Henshall, C M McKay. 2001. Optimizing electrode and filter selection in cochlear implant speech processor maps.. https://pubmed.ncbi.nlm.nih.gov/11699819/

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Nondestructive three-dimensional analysis of electrode to modiolus proximity.

PURPOSE: To propose a nondestructive method for three-dimensional analysis of inner ear morphology after cochlear implantation for isolated petrous bones. MATERIALS AND METHODS: After implantation of cochlear implant electrode arrays, fresh temporal bones were investigated on a new C-arm-based radiographic device permitting the generation of cross-sectional images and of three-dimensional models from multiple two-dimensional radiographic images taken under different projections (cone-beam computed tomography). Cross-sectional images and multiplanar reformations with a slice thickness of 0.15 mm were acquired. The relationship of the electrode to the modiolus was analyzed (distance between electrode and the modiolus; position of the electrode inside the tympanic or vestibular scale). Histologic preparation was used as a gold standard. RESULTS: In all cases, cone-beam computed tomography gave similar information concerning the position of the electrode compared with histologic analysis (tympanic scale versus vestibular scale, proximity versus distance to the modiolus). Perforation of the electrode from the tympanic to the vestibular scale could be assessed three-dimensionally in the cross-sectional images. In contrast to histology, cross-sectional imaging based on radiography is performed in less than 10 minutes and needs no preparation of the object. Because it is nondestructive, it can be repeated and used as a control after position-correcting maneuvers. CONCLUSION: Cross-sectional imaging based on radiography is a valuable tool for the analysis of the electrode-modiolus relationship after cochlear implantation in isolated temporal bones, which may confirm histologic analysis.

Cochlear Implantation↗

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Cochlear Implantation↗