Klein DJ, Depireux DA, Simon JZ, Shamma SA. (2000). Robust spectrotemporal reverse correlation for the auditory system: optimizing stimulus design. Journal of computational neuroscience. 9 [PubMed]

See more from authors: Klein DJ · Depireux DA · Simon JZ · Shamma SA

References and models cited by this paper

Aertsen A, Johannesma P. (1980). Spectro-temporal receptive fields of auditory neurons in the grassfrog. I. Characterization of tonal and natural stimuli Biol Cybernet. 38

Aertsen A, Johannesma P, Hermes D. (1980). Spectro-temporal receptive fields of auditory neurons in the grassfrog. II. Analysis of the stimulus-event relation for tonal stimuli Biol Cybernet. 38

Aertsen AM, Johannesma PI. (1981). A comparison of the spectro-temporal sensitivity of auditory neurons to tonal and natural stimuli. Biological cybernetics. 42 [PubMed]

Aertsen AM, Johannesma PI. (1981). The spectro-temporal receptive field. A functional characteristic of auditory neurons. Biological cybernetics. 42 [PubMed]

Aertsen AM, Olders JH, Johannesma PI. (1981). Spectro-temporal receptive fields of auditory neurons in the grassfrog. III. Analysis of the stimulus-event relation for natural stimuli. Biological cybernetics. 39 [PubMed]

Arieli A, Sterkin A, Grinvald A, Aertsen A. (1996). Dynamics of ongoing activity: explanation of the large variability in evoked cortical responses. Science (New York, N.Y.). 273 [PubMed]

Azouz R, Gray CM. (1999). Cellular mechanisms contributing to response variability of cortical neurons in vivo. The Journal of neuroscience : the official journal of the Society for Neuroscience. 19 [PubMed]

Backoff PM, Clopton BM. (1991). A spectrotemporal analysis of DCN single unit responses to wideband noise in guinea pig. Hearing research. 53 [PubMed]

Boyd S, Tang Y, Chua L. (1983). Measuring Volterra kernels IEEE Trans Circuits And Systems. 30

Carney LH, Friedman M. (1998). Spatiotemporal tuning of low-frequency cells in the anteroventral cochlear nucleus. The Journal of neuroscience : the official journal of the Society for Neuroscience. 18 [PubMed]

Carney LH, Yin TC. (1988). Temporal coding of resonances by low-frequency auditory nerve fibers: single-fiber responses and a population model. Journal of neurophysiology. 60 [PubMed]

Chi T, Gao Y, Guyton MC, Ru P, Shamma S. (1999). Spectro-temporal modulation transfer functions and speech intelligibility. The Journal of the Acoustical Society of America. 106 [PubMed]

Clopton BM, Backoff PM. (1991). Spectrotemporal receptive fields of neurons in cochlear nucleus of guinea pig. Hearing research. 52 [PubMed]

Cohen L. (1995). Time-Frequency Analysis.

De_boer E. (1967). Correlation studies applied to the frequency resolution of the cochlea J Auditory Res. 7

Eggermont JJ. (1993). Wiener and Volterra analyses applied to the auditory system. Hearing research. 66 [PubMed]

Eggermont JJ, Aertsen AM, Hermes DJ, Johannesma PI. (1981). Spectro-temporal characterization of auditory neurons: redundant or necessary. Hearing research. 5 [PubMed]

Eggermont JJ, Aertsen AM, Johannesma PI. (1983). Quantitative characterisation procedure for auditory neurons based on the spectro-temporal receptive field. Hearing research. 10 [PubMed]

Eggermont JJ, Aertsen AM, Johannesma PI. (1983). Prediction of the responses of auditory neurons in the midbrain of the grass frog based on the spectro-temporal receptive field. Hearing research. 10 [PubMed]

Eggermont JJ, Johannesma PM, Aertsen AM. (1983). Reverse-correlation methods in auditory research. Quarterly reviews of biophysics. 16 [PubMed]

Eggermont JJ, Smith GM. (1990). Characterizing auditory neurons using the Wigner and Rihacek distributions: a comparison. The Journal of the Acoustical Society of America. 87 [PubMed]

Epping WJ, Eggermont JJ. (1985). Single-unit characteristics in the auditory midbrain of the immobilized grassfrog. Hearing research. 18 [PubMed]

Escab M, Schreiner C, Miller L. (1998). Dynamic time-frequency processing in the cat midbrain, thalamus, and auditory cortex: Spectro-temporal receptive fields obtained using dynamic ripple spectra Soc Neurosci Abstr. 24

Hermes DJ, Aertsen AM, Johannesma PI, Eggermont JJ. (1981). Spectro-temporal characteristics of single units in the auditory midbrain of the lightly anaesthetised grass frog (Rana temporaria L) investigated with noise stimuli. Hearing research. 5 [PubMed]

Johnson DH. (1980). Applicability of white-noise nonlinear system analysis to the peripheral auditory system. The Journal of the Acoustical Society of America. 68 [PubMed]

Kim PJ, Young ED. (1994). Comparative analysis of spectro-temporal receptive fields, reverse correlation functions, and frequency tuning curves of auditory-nerve fibers. The Journal of the Acoustical Society of America. 95 [PubMed]

Knight B, Victor J. (1979). Nonlinear analysis with an arbitrary stimulus ensemble Quarterly Of Applied Math. 37

Korenberg MJ, Hunter IW. (2000). The identification of nonlinear biological systems: Volterra kernel approaches. Ann Biomed Eng. 24

Kowalski N, Depireux DA, Shamma SA. (1996). Analysis of dynamic spectra in ferret primary auditory cortex. II. Prediction of unit responses to arbitrary dynamic spectra. Journal of neurophysiology. 76 [PubMed]

Kowalski N, Depireux DA, Shamma SA. (1996). Analysis of dynamic spectra in ferret primary auditory cortex. I. Characteristics of single-unit responses to moving ripple spectra. Journal of neurophysiology. 76 [PubMed]

Langner G. (1992). Periodicity coding in the auditory system. Hearing research. 60 [PubMed]

Lee YW, Schetzen M. (1965). Measurement of the Wiener kernels of a non-linear system by cross-correlation Int J Cont. 2

Marmarelis VZ. (2000). Identification of nonlinear biological systems using Laguerre expansions of kernels. Ann Biomed Eng. 21

Marmarelis VZ, Marmarelis PN. (1978). Analysis of Physiological Systems: The White Noise Approach.

Nelken I, Kim PJ, Young ED. (1997). Linear and nonlinear spectral integration in type IV neurons of the dorsal cochlear nucleus. II. Predicting responses with the use of nonlinear models. Journal of neurophysiology. 78 [PubMed]

Nelken I, Rotman Y, Bar Yosef O. (1999). Responses of auditory-cortex neurons to structural features of natural sounds. Nature. 397 [PubMed]

Palm G, Pöpel B. (1985). Volterra representation and Wiener-like identification of nonlinear systems: scope and limitations. Quarterly reviews of biophysics. 18 [PubMed]

Papoulis A. (1962). The Fourier Integral and Its Applications.

Pickles JO. (1988). An introduction to the physiology of hearing..

Recio A, Temchin A, Van_dijk P, Ruggero M. (1995). Wiener-kernel analysis of chinchilla auditory-nerve responses to noise Abstracts of the Eighteenth ARO Mid-Winter Meeting. 18

Ruggero MA. (1992). Physiology and coding of sound in the auditory nerve Springer Handbook Of Auditory Research The Mammalian Auditory Pathway: Neurophysiology.

Schreiner C, Calhoun B. (1995). Spectral envelope coding in cat primary auditory cortex: Properties of ripple transfer functions J Auditory Neurosci. 1

Schreiner C, Kvale M, Bonham B. (1998). Spectro-temporal and adaptive response to AM stimuli in the inferior colliculus Abstracts of the Twenty-first ARO Mid-Winter Meeting. 21

Schreiner CE, Attias H. (1997). Temporal low-order statistics of natural sounds Advances in Neural Information Processing Systems. 9

Sen K, Theunissen F, Doupe A. (1998). Characterizing non-linear encoding in the zebra finch auditory forebrain Soc Neurosci Abstracts. 24

Shamma S, Depireux D, Simon J. (1998). Measuring the dynamics of neural responses in primary auditory cortex Comments Theoretical Biol. 5

Shamma S, Depireux D, Simon J, Klein D. (1998). Representation of dynamic complex spectra in primary auditory cortex Assoc Res Otolaryngol Abs. 2

Shamma S, Depireux D, Simon J, Klein D. (1998). Representation of dynamic broadband spectra in auditory cortex Soc Neurosci Abstracts. 24

Shamma S, Kowalski N, Versnel H. (1995). Ripple analysis in the ferret primary auditory cortex. I. Response characteristics of single units to sinusoidally ripples spectra J Auditory Neurosci. 1

Shamma SA. (1985). nerve. J Acoust Soc Am. 78

Smolders JW, Aertsen AM, Johannesma PI. (1979). Neural representation of the acoustic biotope. A comparison of the response of auditory neurons to tonal and natural stimuli in the cat. Biological cybernetics. 35 [PubMed]

Sutter E. (1992). A deterministic approach to nonlinear systems analysis Nonlinear Vision: Determination of Neural Receptive Fields, Function, and Networks.

Swerup C. (1978). On the choice of noise for the analysis of the peripheral auditory system. Biological cybernetics. 29 [PubMed]

Valois RD, Valois KD. (1990). Spatial Vision.

Victor J, Shapley R. (1980). A method of nonlinear analysis in the frequency domain. Biophysical journal. 29 [PubMed]

Victor JD. (1991). functional expansions to Wiener kernels. Ann Biomed Eng. 19

Victor JD. (1992). Nonlinear system analysis in vision: Overview of kernel methods Nonlinear Vision.

Volterra V. (1930). Theory of Functionals and of Integro-Differential Equations.

Wiener N. (1958). Nonlinear Problems in Random Theory.

Yamada W, Wolodkin G, Lewis E, Henry K. (1997). Wiener kernel analysis and the singular value decomposition Diversity in Auditory Mechanics.

Yamada WM, Lewis ER. (1999). bullfrog auditory units to complex acoustic waveforms. Hear Res. 130

Yeshurun Y, Wollberg Z, Dyn N, Allon N. (1985). Prediction of responses to species specific vocalizations. Biol Cybern. 51

de Boer E, de Jongh HR. (1978). On cochlear encoding: potentialities and limitations of the reverse-correlation technique. The Journal of the Acoustical Society of America. 63 [PubMed]

deCharms RC, Blake DT, Merzenich MM. (1998). Optimizing sound features for cortical neurons. Science (New York, N.Y.). 280 [PubMed]

fer M, bsamen R, rrscheidt GJ, Knipschild M. (1992). response characteristics? Hear Res. 57

van Dijk P, Wit HP, Segenhout JM. (1997). Application of high-order Wiener-kernel analysis. Hear Res. 114

References and models that cite this paper

Escabí MA, Nassiri R, Miller LM, Schreiner CE, Read HL. (2005). The contribution of spike threshold to acoustic feature selectivity, spike information content, and information throughput. The Journal of neuroscience : the official journal of the Society for Neuroscience. 25 [PubMed]

Gill P, Zhang J, Woolley SM, Fremouw T, Theunissen FE. (2006). Sound representation methods for spectro-temporal receptive field estimation. Journal of computational neuroscience. 21 [PubMed]

Gütig R, Sompolinsky H. (2009). Time-warp-invariant neuronal processing. PLoS biology. 7 [PubMed]

Klein DJ, Simon JZ, Depireux DA, Shamma SA. (2006). Stimulus-invariant processing and spectrotemporal reverse correlation in primary auditory cortex. Journal of computational neuroscience. 20 [PubMed]

Leon PS, Vanzetta I, Masson GS, Perrinet LU. (2012). Motion clouds: model-based stimulus synthesis of natural-like random textures for the study of motion perception. Journal of neurophysiology. 107 [PubMed]

Simon JZ, Depireux DA, Klein DJ, Fritz JB, Shamma SA. (2007). Temporal symmetry in primary auditory cortex: implications for cortical connectivity. Neural computation. 19 [PubMed]

This website requires cookies and limited processing of your personal data in order to function. By continuing to browse or otherwise use this site, you are agreeing to this use. See our Privacy policy and how to cite and terms of use.