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Titlebook: Auditory Frequency Selectivity; Brian C. J. Moore,Roy D. Patterson Book 1986 Springer Science+Business Media New York 1986 biophysics.fiel

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期刊全称Auditory Frequency Selectivity
影响因子2023Brian C. J. Moore,Roy D. Patterson
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学科分类NATO Science Series A:
图书封面Titlebook: Auditory Frequency Selectivity;  Brian C. J. Moore,Roy D. Patterson Book 1986 Springer Science+Business Media New York 1986 biophysics.fiel
影响因子One of the most fundamental aspects of the auditory system is its frequency selectivity - the ability to resolve a complex sound into frequency compOhents. This ability plays a role in many aspects of auditory perception, including: the masking of one sound by another; the perception of pitch for pure tones and complex tones; the perception of timbre; the perception of the relative phase of components in complex sounds; and the perception of loudness. Over the last decade, there have been considerable advances in our understanding of frequency selectivity, both at the physiological and psychophysical level, and rapid progress continues to be made. This book summarizes the proceedings of a NATO Advanced Research Workshop on Auditory Frequency Selectivity which was held in Wolfson College, Cambridge from June 23rd to 27th, 1986. The Workshop brought together leading researchers from all disciplines relevant to the topic, with the aim of reviewing and consolidating the latest research findings, and identifying areas of uncertainty or controversy where further research is needed. The book is aimed primarily at research scientists and research students in the fields of psychology, audio
Pindex Book 1986
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Deng-Feng Li,Xiao-Guang Yang,Gen-Jiu Xu3) and in the turtle ear (Crawford and Fettiplace, 1981) there is now evidence that the latter has a mechanical correlate (Crawford and Fettiplace, 1985). Other species appear to utilise micromechanical processes of various types. Suggested mechanisms include mechanical resonance of the stereocilia
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A Game-Theoretic Model of Tenure,sequently, a determination of the harmonic content of hair cell receptor potentials is a desirable objective. This is particularly true for mammalian hair cells where a comparison between harmonic production by inner and outer hair cells may reveal essential information about their, conceivably diff
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The Effects of Temperature on Otoacoustic Emission Tuning Properties3) and in the turtle ear (Crawford and Fettiplace, 1981) there is now evidence that the latter has a mechanical correlate (Crawford and Fettiplace, 1985). Other species appear to utilise micromechanical processes of various types. Suggested mechanisms include mechanical resonance of the stereocilia
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Spontaneous Oto-Acoustic Emissions, Threshold in Quiet, and Just Noticeable Amplitude Modulation at cellation levels (Zwicker, 1981) or as oto-acoustic emission levels (Wilson, 1980b). An active preprocessing with nonlinear feedback, as discussed earlier in principle (Zwicker, 1979), has been realized in an analog model (Zwicker, 1986a) and in a digital model (Zwicker and Lumer, 1985); both models
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