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1 al mechanisms that create DTNs in the IC are monaural.
2 s reported perceived distance in response to monaural 1 octave 4 kHz noise source sounds presented at
11 These models, calibrated to reproduce known monaural and binaural characteristics of LSO, generate l
15 alization relies on the neural processing of monaural and binaural spatial cues that arise from the w
16 e rate of nucleus laminaris neurons for both monaural and binaural stimulation increased with sound i
17 MGV) were characterized extracellularly with monaural and binaural tone and noise bursts (100- to 250
18 hat low-frequency LSO neurons of cat are not monaural and can exhibit contralateral inhibition like t
19 data under typical experimental conditions: monaural and diotic stimulation; and whole-head beamform
20 An evaluation of auditory neural activity, monaural/binaural processing, and functional hearing was
21 f interaural time differences is composed of monaural cells in the cochlear nucleus (CN; nucleus magn
25 re, we show in young adult rats that 10 d of monaural conductive hearing loss (i.e., earplugging) lea
28 oth of these tasks likely involve the use of monaural cues due to the absence of any relevant binaura
29 ry spatial planes, such that learning to use monaural cues for the horizontal plane comes at the expe
31 ng total signal magnitude either by doubling monaural current or by binaural stimulation produced equ
32 underlie "amblyaudio" by inducing reversible monaural deprivation (MD) in infant, juvenile, and adult
37 hypothesis that a novel mechanism can create monaural distance sensitivity: a combination of auditory
45 ividuals have been shown to possess superior monaural localization abilities in the horizontal plane,
47 article reviews our studies of the effect of monaural middle ear destruction on midbrain auditory res
51 r paraolivary nucleus (SPON), which contains monaural neurons that extract rapid changes in sound int
53 ons of the anteroventral cochlear nucleus or monaural nuclei of the lateral lemniscus may provide the
57 An example of this plasticity is provided by monaural occlusion during infancy, which leads to compen
59 thms that separate target speech from either monaural or binaural mixtures, as well as microphone-arr
61 curring within a submillisecond epoch and on monaural pathways that transmit level and timing cues wi
62 tory nerve fibers and transmit signals along monaural pathways, and bushy cells sharpen the encoding
63 EEG responses were greater for binaural than monaural presentation of modulated tones, and when a mas
65 tion attempts to increase performance over a monaural prosthesis by harnessing the binaural processin
66 tures of the in vivo neurophonic response to monaural pure tones: large oscillations (hundreds of mic
68 ected neither the ratio between binaural and monaural responses nor the interaural time difference fo
74 h the angle of incidence, producing cues for monaural sound localization in the spectra of the stimul
76 nal processing problems, using as an example monaural source separation using solely the cues provide
78 res of human spatial hearing: sensitivity to monaural spectral cues and interaural time and level dif
79 hite noise stimuli found that high-frequency monaural spectral cues and interaural-level differences
83 sing an interrupted, single-event design and monaural stimulation with random spectrographic sounds.
85 able to detect stimulus omission when either monaural stimuli or those in different frequencies were
90 ticipants performed auditory tasks involving monaural targets presented against binaural white noise
92 e-like Ve patterns in sustained responses to monaural tones with frequencies > approximately 1000 Hz.
93 e and non-dipole features of Ve responses to monaural tones with frequencies ranging from 600 to 1800
95 ests included pure tone signal audibility, a monaural word recognition test, and 2 dichotic tests: th