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Biomedical subjects

S E Keilson

Publications and source records attributed to S E Keilson.

8 recordsLinked to original sources

Rate representation and discriminability of second formant frequencies for /epsilon/-like steady-state vowels in cat auditory nerve.

Alternate forms of the steady-state vowel /epsilon/ with second formant peaks located at 1400, 1500, 1700, and 2000 Hz were used to study the representation and discrimination of second formant frequencies at the level of the auditory nerve. Recordings from large populations of auditory nerve fibers in response to these stimuli were used to create rate-place plots, which show second formant peaks that resembled the stimulus spectra. Measures of the peak amplitude decreased as sound level was increased and as second formant frequency was lowered. Representation of the spectra was degraded at the higher sound level because of saturation and two-tone suppressive effects. However, formant peaks were clearly represented in plots of rate differences between two vowels. Such plots resemble the ratio of the magnitudes of the two vowel spectra. The results suggest that information concerning the position of formant peaks is present in the average discharge rate of the auditory nerve. A measure of discriminability, d', between vowel pairs was also calculated. Second formants differing by 125-240 hz can be discriminated using the rate responses of individual fibers that are optimally placed on the basilar membrane; the estimated second formant jnd for the whole auditory nerve is approximately 1 Hz.

Animals

Spontaneous cellular vibrations in the guinea-pig cochlea.

Mechanical vibrations of Hensen cells were measured with a laser-heterodyne interferometer in the third turn of the guinea-pig temporal-bone preparation without the application of an external stimulus. Smoothed periodograms (spectral-density estimates vs frequency) were constructed from the velocity vs time waveforms recorded from individual cells. For some cells, several peaks appear in the periodograms at levels as high as 10 dB above the noise floor, indicating the presence of spontaneous vibrations. The frequencies at which the peaks are located differ in different preparations, indicating that the observed peaks are not caused by the presence of ambient noise or ambient vibrations. It is demonstrated that smoothed-periodogram analysis is superior to fast-Fourier-transform analysis for discerning these spontaneous spectral components. The frequency tuning curves of cells from which spontaneous vibrations were measured (determined by applying an external stimulus to the ear) have single principal peaks. When the spontaneous spectral features are present, their frequencies lie, for the most part, within the principal-peak region of the tuning curve. We propose that these spontaneous vibrations originate at the outer hair cells and are the source of spontaneous otoacoustic emissions in the ear.

Animals

Spontaneous cellular vibrations in the guinea-pig temporal-bone preparation.

Mechanical vibrations of Hensen cells were measured with a laser-heterodyne interferometer in the guinea-pig temporal-bone preparation without the application of an external acoustic stimulus. Smoothed periodograms (spectral-density estimates v. frequency) were constructed from the velocity v. time waveforms recorded from individual cells. Several peaks were seen in the periodograms at levels as high as 10 dB above the noise floor, indicating the presence of spontaneous vibrations. The frequencies at which the peaks were located differed in different preparations, indicating that the observed peaks were not caused by the presence of ambient noise or ambient vibrations. Furthermore, vibrations were seen only in fresh preparations. The tuning curves of cells from which spontaneous vibrations were measured (determined by applying an external stimulus to the ear) had single principal peaks. Several peaks in the periodogram were found to be located within the principal-peak region of the tuning curve. The spontaneous response does not arise from noise filtered through the tuning curve which would have a single peak. We propose that these spontaneous vibrations originate at the outer hair cells and are the source of spontaneous otoacoustic emissions in the ear.

Animals