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   1 0-10000 Hz) and input levels (e.g., 50-75 dB sound pressure level).                                  
     2  of NH listeners when compared at equal SPL (sound pressure level).                                  
     3 the unit over a wide dynamic range (10-90 dB sound pressure level).                                  
     4 e youngest embryos (maximum intensity 107 dB sound pressure level).                                  
     5 e effects depend nonlinearly on the stimulus sound pressure level.                                   
     6 lliculus (IC) change their firing rates with sound pressure level.                                   
     7 tic stimulus (a hiss) of approximately equal sound pressure level.                                   
     8  with no requirement of knowing the incident sound pressure level.                                   
     9 uditory system operates over a vast range of sound pressure levels (100-120 dB) with nearly constant 
  
  
    12 al of two acoustic indices, i.e. the average sound pressure level and the acoustic complexity index b
    13 ich presented a significantly higher ambient sound pressure level and were more acoustically complex 
  
    15 ar growth rate of the response to increasing sound pressure level; and the amount of distortion to be
  
    17    These cells never fired to tones at 50 dB sound pressure level but fired to frequency-modulated sw
    18 percentile was associated with a 1.6-dB SPL (sound pressure level) decrease in DPOAE amplitude (95% C
    19 d identically (8-16 kHz noise band at 100 dB sound pressure level for 2 h) but at different ages (4-1
    20  elevation and, correspondingly, on the high sound pressure levels (>100 dB SPL) necessary to produce
    21 ber auditory nerve responses at 70 and 50 dB sound pressure level, have been quantified, based on KL 
    22 elocity toward scala tympani but at 80-90 dB sound pressure level (in decibels relative to 20 microPa
    23  the device's performance and applicability, sound pressure level is characterized in both space and 
    24 es in response to white noise stimuli at low sound pressure levels (</=84 dB SPL), revealing a previo
    25 ect operates by continuously integrating the sound pressure level of background noise through tempora
    26 les thermoacoustic emissions at loud audible sound pressure levels of 90.1 dB, which are inaccessible
  
    28 eocilia in vivo deflect <100 nm even at high sound pressure levels, often it takes >500 nm of stereoc
    29 al frequency distribution at low to moderate sound pressure levels: one peak occurred around the prep
    30 ng from 113 Hz to 49 kHz at a level of 60 dB sound-pressure level or less, with their best sensitivit
    31 including the measurement of peak equivalent sound pressure level (peSPL) and peak sound pressure lev
  
  
    34 lative to 20 microPascals) and at 100-110 dB sound pressure level responses undergo two large phase s
    35 ound-evoked vibrations over a range of input sound pressure levels spanning six orders of magnitude. 
    36  suppresses its spiking response to a 100-dB sound pressure level (SPL) acoustic stimulus and maintai
    37 ontractions were studied as functions of the sound pressure level (SPL) and duration of 2-kHz tone bu
  
  
  
    41 acebo for both clicks (dexamethasone: 6.7-dB sound pressure level [SPL] vs. placebo: 33.4-dB SPL, P=.
  
    43 rnible auditory brainstem responses (ABR) to sound pressure level stimuli up to 100 dB, indicating a 
  
  
  
    47 d areas of Moorea Island (French Polynesia), sound pressure level was positively correlated with the 
    48 sed during passive listening to brief, 95-dB sound pressure level, white noise bursts presented inter
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