Completed Brain & Nervous System Psychology & Behaviour

A multi-disciplinary approach to understanding and improving hearing by cochlear implant users

In plain English

AI plain-English summary

Cochlear implant users can understand speech in quiet, but struggle to hear in a noisy restaurant or to appreciate the pitch of a musical note. The problem is that current implants deliver electrical pulses to the auditory nerve, but the brain’s ability to distinguish pitch—whether by which nerve fibres are stimulated or by the timing of the pulses—is far worse than in normal hearing. This project will run the same pitch-perception tests in cats and humans, using some identical measures. For the first time, this allows researchers to link what a listener hears to the underlying neural activity, even for novel stimulation patterns not possible with existing clinical devices. If successful, the work could lead to changes in implant design—for example, new electrode arrays or pulse strategies—and in how audiologists programme the devices. The result would be implants that give users a better sense of pitch and the ability to pick out a single voice in a crowd, improving everyday communication and quality of life.

View original technical description
Cochlear implants (CIs) restore hearing by electrically stimulating the auditory nerve. This allows many CI users to understand speech well in quiet, but even the most successful have poor pitch perception and struggle in noisy situations. We believe there are two main reasons for these limitations. (i) Although it is possible to elicit different pitches by stimulating different electrodes, the selectivity of this "place-of-excitation" cue is much worse than in normal hearing (NH). (ii) It is also possible to increase pitch by increasing the pulse rate applied to each electrode, but use of this temporal cue is also much worse than in NH. We will study both of these limitations by performing analogous experiments in cats and humans, using some of the same measures in the two species. This will allow us, for the first time, to link the limitations that occur perceptually to their underlying physiological bases, and to do so even for novel stimulation methods that are not possible with existing clinical CIs. The knowledge gained will allow us to propose and test modifications both to implant design and audiological practice.

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Researchers

Robert Carlyon (EPMC Awardee)

Related Research

Grants with similar aims, by meaning.

Patient-specific electrophysical and psychophysical characterisation of cochlear implant hearing for enhancement of pitch perception
Bespoke methods for improving speech perception by cochlear implant users
Post-activation changes in loudness and speech perception in cochlear implant listeners
Automatic and individually optimised fitting of cochlear implants
Developing electrophysiological measures of brain activity to optimise cochlear implant outcomes

Original classification

Collaborative Award in Science

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