Auditory signal processing : physiology, psychoacoustics, by Daniel Pressnitzer; et al
By Daniel Pressnitzer; et al
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Additional resources for Auditory signal processing : physiology, psychoacoustics, and models
Am. 109, 648-670. Auditory Signal Processing: Physiology, Psychoacoustics, and Models. ,and Collet, L. (Eds). Springer Verlag, 2004. Comparison of the compressive-gammachirp and double-roex auditory filters Roy D. Patterson1, Masashi Unoki2, and Toshio Irino3 1 Centre for the Neural Basis of Hearing, Physiology Dept. K. uk 2 School of Information Science, Japan Advanced Institute of Science and Technology, Tatsunokuchi, Nomi, Ishikawa, 923-1292 Japan. jp 3 Faculty of Systems Engineering, Wakayama University, Wakayama, Japan.
The narrow tip filter of the double roex is undoubtedly compensated for by a broader tail filter at some level. We have not investigated this in detail but we have noted: a) that the tail filter of the double roex is not sufficiently sharp on the high frequency side to represent the passive basilar membrane properly, and b) that the passive gammachirp in the cGC provides a better representation of the passive basilar membrane. 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.
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.