Effect of deviant probability and interstimulus/interdeviant interval on the auditory N1 and mismatch negativity in the cat auditory cortex.
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[1] K Alho,et al. Cerebral mechanisms underlying orienting of attention towards auditory frequency changes , 2001, Neuroreport.
[2] István Ulbert,et al. Separation of mismatch negativity and the N1 wave in the auditory cortex of the cat: a topographic study , 2001, Clinical Neurophysiology.
[3] Naoko Shinozaki,et al. The effect of deviant stimulus probability on the human mismatch process , 2000, Neuroreport.
[4] K. Alho,et al. Separate Time Behaviors of the Temporal and Frontal Mismatch Negativity Sources , 2000, NeuroImage.
[5] C. Schroeder,et al. Schizophrenia-like deficits in auditory P1 and N1 refractoriness induced by the psychomimetic agent phencyclidine (PCP) , 2000, Clinical Neurophysiology.
[6] L. Deouell,et al. Mismatch negativity in dichotic listening: evidence for interhemispheric differences and multiple generators. , 1998, Psychophysiology.
[7] M. Penttonen,et al. Auditory cortical event-related potentials to pitch deviances in rats , 1998, Neuroscience Letters.
[8] D. Javitt,et al. Impaired mismatch negativity (MMN) generation in schizophrenia as a function of stimulus deviance, probability, and interstimulus/interdeviant interval. , 1998, Electroencephalography and clinical neurophysiology.
[9] G. Karmos,et al. Adaptive modeling of the unattended acoustic environment reflected in the mismatch negativity event-related potential , 1996, Brain Research.
[10] M Huotilainen,et al. From objective to subjective: pitch representation in the human auditory cortex. , 1995, Neuroreport.
[11] V. Jousmäki,et al. Auditory sensory memory impairment in Alzheimer's disease: an event-related potential study. , 1994, Neuroreport.
[12] K. Reinikainen,et al. Attentive novelty detection in humans is governed by pre-attentive sensory memory , 1994, Nature.
[13] N. Kraus,et al. Nonprimary auditory thalamic representation of acoustic change. , 1994, Journal of neurophysiology.
[14] V. Jousmäki,et al. Mismatch negativity area and age-related auditory memory. , 1993, Electroencephalography and clinical neurophysiology.
[15] L. McEvoy,et al. Determinants of the auditory mismatch response. , 1993, Electroencephalography and clinical neurophysiology.
[16] R J Ilmoniemi,et al. Tonotopic auditory cortex and the magnetoencephalographic (MEG) equivalent of the mismatch negativity. , 1993, Psychophysiology.
[17] R. Hari,et al. The Human Auditory Sensory Memory Trace Persists about 10 sec: Neuromagnetic Evidence , 1993, Journal of Cognitive Neuroscience.
[18] M Hoke,et al. Evoked magnetic responses of the human auditory cortex to minor pitch changes: localization of the mismatch field. , 1992, Electroencephalography and clinical neurophysiology.
[19] P. Ullsperger,et al. Mismatch negativity in event-related potentials to auditory stimuli as a function of varying interstimulus interval. , 1992, Psychophysiology.
[20] M Steinschneider,et al. Demonstration of mismatch negativity in the monkey. , 1992, Electroencephalography and clinical neurophysiology.
[21] W. Ritter,et al. The chronometry of attention-modulated processing and automatic mismatch detection. , 1992, Psychophysiology.
[22] G. Csibra,et al. Age and inter-stimulus interval effects on event-related potentials to frequent and infrequent auditory stimuli , 1992, Biological Psychology.
[23] R Hari,et al. Neuromagnetic mismatch fields to single and paired tones. , 1992, Electroencephalography and clinical neurophysiology.
[24] F. Perrin,et al. Brain generators implicated in the processing of auditory stimulus deviance: a topographic event-related potential study. , 1990, Psychophysiology.
[25] T. Picton,et al. The N1 wave of the human electric and magnetic response to sound: a review and an analysis of the component structure. , 1987, Psychophysiology.
[26] M Molnár,et al. Evoked potential correlates of stimulus deviance during wakefulness and sleep in cat--animal model of mismatch negativity. , 1987, Electroencephalography and clinical neurophysiology.
[27] R. Näätänen,et al. The duration of a neuronal trace of an auditory stimulus as indicated by event-related potentials , 1987, Biological Psychology.
[28] R. Hari,et al. Interstimulus interval dependence of the auditory vertex response and its magnetic counterpart: implications for their neural generation. , 1982, Electroencephalography and clinical neurophysiology.
[29] G. Karmos,et al. Constant intensity sound stimulation with a bone conductor in the freely moving cat. , 1970, Electroencephalography and clinical neurophysiology.
[30] H. Davis,et al. The slow response of the human cortex to auditory stimuli: recovery process. , 1966, Electroencephalography and clinical neurophysiology.
[31] D. C. Teas,et al. EVOKED RESPONSES FROM THE AUDITORY CERTEX. , 1964, Experimental neurology.
[32] R. Näätänen. Attention and brain function , 1992 .
[33] R. Näätänen,et al. Cortical activity elicited by changes in auditory stimuli: different sources for the magnetic N100m and mismatch responses. , 1991, Psychophysiology.
[34] C. Barber,et al. Evoked potentials III , 1987 .