Temporal asymmetry in the auditory system

被引:58
作者
Irino, T [1 ]
Patterson, RD [1 ]
机构
[1] MRC, APPL PSYCHOL UNIT, CAMBRIDGE CB2 2EF, ENGLAND
关键词
D O I
10.1121/1.415419
中图分类号
O42 [声学];
学科分类号
070206 ; 082403 ;
摘要
When a damped exponential with a half-life of 4-8 ms is repeated every 25-50 ms and used to modulate a sinusoid or a wideband noise, it suppresses the sound quality typically associated with the carrier. When the envelopes of these ''damped'' sounds are reversed in time, producing ''ramped'' sounds, a continuous component with the sound quality of the carrier is restored to the perception. This paper presents an experiment that measures the temporal asymmetry revealed by this perceptual contrast. A ramped sinusoid or noise with a given half-life was presented with a damped sinusoid or noise having the same or greater half-life, to determine the damped half-life required to produce a continuous component with the equivalent relative strength in the two sounds. The results with sinusoidal carriers show that the half-life of the damped sound has to be, on average, about five times the half-life of the ramped sound if the tonal component of the two perceptions is to have the same relative strength. The asymmetry for the noise carrier is about half that of the sinusoidal carrier and, again, the damped sound has the greater matching half-life. Several multichannel auditory models based on a gammatone filterbank are used to try to explain the data in terms of traditional leaky integration, but they produce neither sufficient asymmetry nor the correct pattern of asymmetry. A ''delta-gamma'' theory is then developed to provide a framework for understanding temporal asymmetry in the auditory system. The theory is used to compare the temporal asymmetry produced by several auditory models and to explain when and how they can accommodate the perceptual asymmetry observed in the experiments. (C) 1996 Acoustical Society of America.
引用
收藏
页码:2316 / 2331
页数:16
相关论文
共 24 条
[1]   DISCRIMINATION OF WIDE-BAND NOISES MODULATED BY A TEMPORALLY ASYMMETRIC FUNCTION [J].
AKEROYD, MA ;
PATTERSON, RD .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1995, 98 (05) :2466-2474
[2]   COMPUTATIONAL AUDITORY SCENE ANALYSIS [J].
BROWN, GJ ;
COOKE, M .
COMPUTER SPEECH AND LANGUAGE, 1994, 8 (04) :297-336
[3]   TEMPORAL CODING OF RESONANCES BY LOW-FREQUENCY AUDITORY-NERVE FIBERS - SINGLE-FIBER RESPONSES AND A POPULATION-MODEL [J].
CARNEY, LH ;
YIN, TCT .
JOURNAL OF NEUROPHYSIOLOGY, 1988, 60 (05) :1653-1677
[4]   DETECTION OF PARTIALLY FILLED GAPS IN NOISE AND THE TEMPORAL-MODULATION TRANSFER-FUNCTION [J].
FORREST, TG ;
GREEN, DM .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1987, 82 (06) :1933-1943
[5]   DERIVATION OF AUDITORY FILTER SHAPES FROM NOTCHED-NOISE DATA [J].
GLASBERG, BR ;
MOORE, BCJ .
HEARING RESEARCH, 1990, 47 (1-2) :103-138
[6]  
HOLDSWORTH JW, 1993, Patent No. 2234078
[7]  
Houtsma A. J. M., 1987, Auditory demonstrations
[8]  
IRINO T, 1994, INT C SPOK LANG P IC, V4, P1955
[9]   STIMULUS-ORIENTED APPROACH TO DETECTION RE-EXAMINED [J].
JEFFRESS, LA .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1967, 41 (02) :48-&
[10]   VIRTUAL PITCH AND PHASE SENSITIVITY OF A COMPUTER-MODEL OF THE AUDITORY PERIPHERY .1. PITCH IDENTIFICATION [J].
MEDDIS, R ;
HEWITT, MJ .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1991, 89 (06) :2866-2882