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Estimates of Ripple-Density Resolution Based on the Discrimination From Rippled and Nonrippled Reference Signals
Author(s) -
Nechaev Dmitry I.,
Milekhina Olga N.,
Supin Alexander Ya
Publication year - 2019
Publication title -
trends in hearing
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.54
H-Index - 49
ISSN - 2331-2165
DOI - 10.1177/2331216518824435
Subject(s) - ripple , stimulus (psychology) , psychophysics , spectral density , physics , psychology , mathematics , neuroscience , statistics , perception , quantum mechanics , psychotherapist , voltage
Rippled-spectrum stimuli are used to evaluate the resolution of the spectro-temporal structure of sounds. Measurements of spectrum-pattern resolution imply the discrimination between the test and reference stimuli. Therefore, estimates of rippled-pattern resolution could depend on both the test stimulus and the reference stimulus type. In this study, the ripple-density resolution was measured using combinations of two test stimuli and two reference stimuli. The test stimuli were rippled-spectrum signals with constant phase or rippled-spectrum signals with ripple-phase reversals. The reference stimuli were rippled-spectrum signals with opposite ripple phase to the test or nonrippled signals. The spectra were centered at 2 kHz and had an equivalent rectangular bandwidth of 1 oct and a level of 70 dB sound pressure level. A three-alternative forced-choice procedure was combined with an adaptive procedure. With rippled reference stimuli, the mean ripple-density resolution limits were 8.9 ripples/oct (phase-reversals test stimulus) or 7.7 ripples/oct (constant-phase test stimulus). With nonrippled reference stimuli, the mean resolution limits were 26.1 ripples/oct (phase-reversals test stimulus) or 22.2 ripples/oct (constant-phase test stimulus). Different contributions of excitation-pattern and temporal-processing mechanisms are assumed for measurements with rippled and nonrippled reference stimuli: The excitation-pattern mechanism is more effective for the discrimination of rippled stimuli that differ in their ripple-phase patterns, whereas the temporal-processing mechanism is more effective for the discrimination of rippled and nonrippled stimuli.

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