Auditory Signal Processing: Physiology, Psychoacoustics, and by Daniel Pressnitzer, Alain de Cheveigne, Stephen McAdams,

By Daniel Pressnitzer, Alain de Cheveigne, Stephen McAdams, Lionel Collet

The results of broad collaboration between leaders of the global auditory study group, Auditory sign Processing: body structure, Psychoacoustics, and types is a checklist of the papers presented on the XIIIth foreign Symposium on listening to (ISH) Dourdan, France, August 24-29, 2003. the amount includes a overall of sixty two invited papers, geared up into 12 large thematic parts: cochlear sign processing; brainstem sign processing; pitch; frequency modulation; streaming; amplitude modulation; responses to advanced sounds; speech; comodulation overlaying liberate; binaural listening to; temporal coding; and plasticity.

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In the second part, RTs were obtained by asking the listeners to press a telegraph key as soon as they heard a tone. The RT was defined as the time elapsed 32 Mary Florentine, Søren Buus, and Mindy Rosenberg between the onset of the stimulus and the listener’s response. Each trial started by flashing an LED, which marked the beginning of a random-duration foreperiod that was inserted between the response and the presentation of the next tone. The duration of the foreperiod was the sum of a fixed one-second interval plus an exponentially distributed random variable with a mean of one second.

With regard to suppression, these are frequency domain fits, and so we expect that they would be affected in the same way by the suppression observed in simultaneous masking. That is, we believe that a difference in suppression is probably not the source of the bandwidth discrepancy. Comment by Kollmeier: As discussed in several of the last ISH meetings, the ERB is an inappropriate measure of “effective” bandwidth if filters with different shapes are to be compared. The ERB is simply the integral of the whole filter transfer function divided by the filter response at the center frequency.

A. (2001) Mechanics of the mammalian cochlea. Physiol. Rev. 81, 1305-1352. A. C. Recio, A. Narayan, S. and Robles L. (1997) Basilar-membrane responses to tones at the base of chinchilla cochlea. J. Acoust. Soc. Am. 101: 2151-2163. Smith, J. O. (2003). Introduction to Digital Filters, Stanford University. edu/~jos/filters/. , and Meddis, R. (2002) A revised model of the inner-hair cell and the auditory-nerve complex. J. Acoust. Soc. Am. 111, 2178-2188. N. Robles, L. A. (2001) A re-examination of middle-ear transmission in chinchilla.

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Auditory Signal Processing: Physiology, Psychoacoustics, and by Daniel Pressnitzer, Alain de Cheveigne, Stephen McAdams,
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