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1 ye movements, is transiently modulated after auditory stimulation.
2 ectable waveforms evoked by 8, 16, or 32 kHz auditory stimulation.
3 k loop delays estimated using electrical and auditory stimulation.
4 id signaling selectively alters responses to auditory stimulation.
5 pha frequency band (~7-12 Hz) in response to auditory stimulation.
6 lected by greater activity in the absence of auditory stimulation.
7 lative timing of motor cortical activity and auditory stimulation.
8 ertness and neuronal response to tactile and auditory stimulation.
9 gions during painful stimulation relative to auditory stimulation.
10 ject to systematic influences through simple auditory stimulation.
11 nhibition (gating) of response to repetitive auditory stimulation.
12 ry areas contained neurons that responded to auditory stimulation.
13 onse to visual, auditory, and bimodal visual-auditory stimulation.
14 rior auditory cortex N1 sources by preceding auditory stimulation.
15 se (MMN) by changes in repetitive aspects of auditory stimulation.
16 ing of pyramidal neuron response to repeated auditory stimulation.
17 in response to noxious, tactile, visual, and auditory stimulation [7-10].
18 ted in hippocampal habituation to repetitive auditory stimulation, a phenomenon thought to involve in
19 neurophysiological responses associated with auditory stimulation across the sleep-wake cycle.
20  rapidly inhibits its response to repetitive auditory stimulation, an example of an auditory sensory
21 somatosensory cortex (increased responses to auditory stimulation and decreased responses to somatose
22 ncy and safety of this modality in long-term auditory stimulation and its ability to be integrated wi
23                     The interval between the auditory stimulation and the following R peak was signif
24 tive experience of hearing in the absence of auditory stimulation, and is useful for investigating as
25 ronal adaptation to the mean and contrast of auditory stimulation as one ascends the auditory pathway
26 ansition from responding to both tactile and auditory stimulation before LOC to only tactile modality
27 tion from responding to bimodal (tactile and auditory) stimulation before LOC to only tactile modalit
28 2nd group of embryos was exposed to the same auditory stimulation but in the opposite order of presen
29             In certain situations, preceding auditory stimulation can actually result in heightened s
30 y from parietotemporal cortex in response to auditory stimulation, demonstrating reorganized cortical
31 d age-matched control children using passive auditory stimulation during functional magnetic resonanc
32 tone and shock rather than to nonassociative auditory stimulation, foot shock sensitization, or unpai
33 he limits of driving SOs through closed-loop auditory stimulation in healthy humans.
34 cy band were consistently observed following auditory stimulation in inferior frontal, superior tempo
35 in alpha 7-mediated inhibition to repetitive auditory stimulation in rat hippocampus.
36  strong as visual responses, selectivity for auditory stimulation in visual cortex was stronger in bl
37 lection process wherein spatially discrepant auditory stimulation is grouped with synchronous attende
38 tympani in response to both auditory and non-auditory stimulation is mediated by the tensor tympani m
39        Sensory flooding, particularly during auditory stimulation, is a common problem for patients w
40 dulation of area X output, in the absence of auditory stimulation, is sufficient to bidirectionally m
41  that simultaneous visual mental imagery and auditory stimulation led to an illusory translocation of
42 ed the effects of specific types of prenatal auditory stimulation on the auditory learning capacity o
43 ceived no supplemental stimulation, unimodal auditory stimulation, or bimodal (audiovisual) stimulati
44 ological, stop signal, saccadic control, and auditory stimulation paradigms) characterizing diverse a
45 l visual responsiveness, suggesting that the auditory stimulation precocial avian embryos encounter 1
46 nd before and after paired somatosensory and auditory stimulation presented with varying intervals an
47 eep corroborated the notion that appropriate auditory stimulation that does not disrupt sleep can nev
48 ng the acquisition and expression of fear to auditory stimulation, thus further strengthening the pro
49 ogram (EEG) to different rates (20-40 Hz) of auditory stimulation was recorded from 15 patients with
50 ctive experience of sound, in the absence of auditory stimulation, was associated with content-specif
51 it neurophysiological methods and free-field auditory stimulation, we present data on biologically re
52 n can be effectively enhanced by closed-loop auditory stimulation, when clicks are presented in synch
53 c vesicle storage and release, is induced by auditory stimulation with birdsong in the caudomedial ni
54 se in the NCM of males and females following auditory stimulation with conspecific song.

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