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Related Concept Videos

Hearing01:31

Hearing

When we hear a sound, our nervous system is detecting sound waves—pressure waves of mechanical energy traveling through a medium. The frequency of the wave is perceived as pitch, while the amplitude is perceived as loudness.
Sound Intensity00:58

Sound Intensity

The loudness of a sound source is related to how energetically the source is vibrating, consequently making the molecules of the propagation medium vibrate. To measure the loudness of a source, the physical quantity of interest is the intensity. This is defined as the energy emitted per unit of time per unit of area perpendicular to the sound wave's propagation direction. Since the total energy is greater if the source vibrates for a longer duration and over a larger area, dividing the emitted...
Sound Intensity Level00:53

Sound Intensity Level

Humans perceive sound by hearing. The human ear helps sound waves reach the brain, which then interprets the waves and creates the perception of hearing. The loudness of the environment in which a person is located determines whether they can distinguish between different sound sources.
The human ear can perceive an extensive range of sound intensity, necessitating the use of the logarithmic scale to define a physical quantity—the intensity level. It is a ratio of two intensities and hence a...
Intensity and Pressure of Sound Waves01:05

Intensity and Pressure of Sound Waves

The intensity of sound waves can be related to displacement and pressure amplitudes by using their wave expressions and the definition of intensity. The critical step to achieve this is to write the power delivered by the particles on the wave as the product of force and velocity and simplify the force per unit area as the pressure. The velocity of the medium's particles can be derived from the displacement.
Unlike the time average of a sinusoidal term, which is zero since it is positive and...
Sensation01:21

Sensation

Sensory receptors are specialized neurons that respond to specific types of external stimuli, initiating the process known as sensation. This occurs when sensory input, such as light entering the eye, is detected by these receptors, causing chemical changes in the cells of the retina. These cells then convert the sensory stimulus into action potentials that are transmitted to the central nervous system, a process termed transduction.
Absolute thresholds can quantify the sensitivity of sensory...
Perceiving Loudness, Pitch, and Location01:21

Perceiving Loudness, Pitch, and Location

The human brain perceives pitch through two primary mechanisms reflected in place theory and frequency theory. Each mechanism describes how sound waves are interpreted as specific pitches by the brain, offering insights into the intricate processes of auditory perception.
Place theory, or place coding, suggests that different pitches are heard because various sound waves activate specific locations along the cochlea's basilar membrane. The brain determines the pitch of a sound by identifying...

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Related Experiment Video

Updated: Jul 12, 2026

A Low Cost Setup for Behavioral Audiometry in Rodents
09:23

A Low Cost Setup for Behavioral Audiometry in Rodents

Published on: October 16, 2012

Intensity just-noticeable differences at equal-loudness levels in normal and pathological ears

J A Stillman1, J J Zwislocki, M Zhang

  • 1Institute for Sensory Research, Syracuse University, New York 13244.

The Journal of the Acoustical Society of America
|January 1, 1993
PubMed
Summary

This study found that intensity discrimination, measured by just-noticeable differences (jnd

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Area of Science:

  • Audiology
  • Psychoacoustics
  • Sensory neuroscience

Background:

  • Understanding intensity discrimination is crucial for diagnosing and treating hearing impairments.
  • Cochlear hearing loss often leads to loudness recruitment, affecting the perception of sound intensity.
  • Investigating the relationship between loudness and intensity discrimination helps elucidate auditory processing mechanisms.

Purpose of the Study:

  • To investigate the relationship between loudness level and intensity discrimination in the frequency range of 0.5-6.5 kHz.
  • To compare intensity just-noticeable differences (jnd's) at equal-loudness levels in individuals with unilateral hearing loss.
  • To determine how loudness recruitment influences intensity discrimination in impaired ears.

Main Methods:

  • Comparing intensity jnd's at equal-loudness levels in the better and poorer ears of eight individuals with unilateral cochlear hearing loss.
  • Correlating jnd's with loudness level, sound-pressure level (SPL), and sensation-level (SL) across different frequency ranges.
  • Analyzing the effects of loudness recruitment on the relationship between these auditory variables.

Main Results:

  • No systematic differences in jnd's were found between the better and poorer ears at equal-loudness levels across the group.
  • Statistically, equal-loudness jnd's did not differ significantly between ears, though corresponding SLs and SPLs did.
  • The rate of loudness growth did not impact jnd's, and mean jnd's decreased with sound intensity, consistent with the near-miss to Weber's law.

Conclusions:

  • Intensity discrimination is primarily related to loudness level, not SPL or SL, in individuals with unilateral cochlear hearing loss.
  • Loudness recruitment, while altering SPL and SL relationships, does not systematically impair intensity discrimination at equal-loudness levels.
  • The findings support the near-miss to Weber's law and highlight the importance of loudness level in auditory intensity perception.