Nonlinear modeling of auditory-nerve rate responses to wideband stimuli

被引:29
作者
Young, ED [1 ]
Calhoun, BM [1 ]
机构
[1] Johns Hopkins Univ, Sch Med, Dept Biomed Engn, Ctr Hearing & Balance, Baltimore, MD 21205 USA
关键词
D O I
10.1152/jn.00261.2005
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
Young, Eric D. and Barbara M. Calhoun. Nonlinear modeling of auditory-nerve rate responses to wideband stimuli. J Neurophysiol 94:4441-4454,2005. First published September 14, 2005; doi:10.1152/jn.00261.2005. The spectral selectivity of auditory nerve fibers was characterized by a method based on responses to random-spectrum-shape stimuli. The method models the average discharge rate of fibers for steady stimuli and is based on responses to approximate to 100 noise-like stimuli with pseudorandom spectral levels in 1/8- or 1/16- octave frequency bins. The model assumes that rate is determined by a linear weighting of the spectrum plus a second-order weighting of all pairs of spectrum values within a certain frequency range of best frequency. The method allows prediction of rate responses to stimuli with arbitrary wideband spectral shapes, thus providing a direct test of the degree of linearity of spectral processing Auditory-nerve fibers are shown to rely mainly on linear weighting of the stimulus spectrum; however, significant second-order terms are present and are important in predicting responses to random- spectrum shape stimuli, although not for predicting responses to noise filtered with cat head-related transfer functions. The second-order terms weight the products of levels at identical frequencies positively and the products of different frequencies negatively. As such, they model both curvature in the rate versus level function and suppressive interactions between different frequency components. The first-and second-order characterizations derived in this method provide a measure of higher-order nonlinearities in neurons, albeit without providing information about temporal characteristics.
引用
收藏
页码:4441 / 4454
页数:14
相关论文
共 75 条
[1]   THE SPECTRO-TEMPORAL RECEPTIVE-FIELD - A FUNCTIONAL CHARACTERISTIC OF AUDITORY NEURONS [J].
AERTSEN, AMHJ ;
JOHANNESMA, PIM .
BIOLOGICAL CYBERNETICS, 1981, 42 (02) :133-143
[2]   SPECTRO-TEMPORAL RECEPTIVE-FIELDS OF AUDITORY NEURONS IN THE GRASSFROG .3. ANALYSIS OF THE STIMULUS-EVENT RELATION FOR NATURAL STIMULI [J].
AERTSEN, AMHJ ;
OLDERS, JHJ ;
JOHANNESMA, PIM .
BIOLOGICAL CYBERNETICS, 1981, 39 (03) :195-209
[3]  
[Anonymous], 1986, NUMERICAL RECIPES C
[4]   Auditory cortical responses elicited in awake primates by random spectrum stimuli [J].
Barbour, DL ;
Wang, XQ .
JOURNAL OF NEUROSCIENCE, 2003, 23 (18) :7194-7206
[5]   An auditory-periphery model of the effects of acoustic trauma on auditory nerve responses [J].
Bruce, IC ;
Sachs, MB ;
Young, ED .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 2003, 113 (01) :369-388
[6]  
CALHOUN BM, 1998, PSYCHOPHYSICAL PHYSL, P170
[7]   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
[8]   Rate representation and discriminability of second formant frequencies for /epsilon/-like steady-state vowels in cat auditory nerve [J].
Conley, RA ;
Keilson, SE .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1995, 98 (06) :3223-3234
[9]   Modeling auditory processing of amplitude modulation .1. Detection and masking with narrow-band carriers [J].
Dau, T ;
Kollmeier, B ;
Kohlrausch, A .
JOURNAL OF THE ACOUSTICAL SOCIETY OF AMERICA, 1997, 102 (05) :2892-2905
[10]   TRIGGERED CORRELATION [J].
DEBOER, E ;
KUYPER, P .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1968, BM15 (03) :169-&