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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.
The Cochlea01:13

The Cochlea

The cochlea is a coiled structure in the inner ear that contains hair cells—the sensory receptors of the auditory system. Sound waves are transmitted to the cochlea by small bones attached to the eardrum called the ossicles, which vibrate the oval window that leads to the inner ear. This causes fluid in the chambers of the cochlea to move, vibrating the basilar membrane.
Convergent Evolution01:54

Convergent Evolution

Evolution shapes the features of organisms over time, ensuring that they are suited for the environments in which they live. Sometimes, selection pressure leads to the rise of similar but unrelated adaptations in organisms with no recent common ancestors, a process known as convergent evolution.The structures that arise from convergent evolution are called analogous structures. They are similar in function even if they are dissimilar in structure. Further, structures can be analogous while also...
Echo01:06

Echo

The human ear cannot distinguish between two sources of sound if they happen to reach within a specific time interval, typically 0.1 seconds apart. More than this, and they are perceived as separate sources.
Imagine the sound is reflected back to the ears. Assuming that the source is very close to the human, the difference between hearing the two sounds—the emitted sound and the reflected sound—may be more than the minimum time for perceiving distinct sounds. If this is the case, then the...
Auditory Pathway01:15

Auditory Pathway

Auditory pathways constitute the complex neural circuits responsible for transmitting and interpreting auditory information from the peripheral auditory system to the brain. Sound waves are initially captured by the outer ear, funneled through the ear canal, and reach the tympanic membrane (eardrum). These vibrations are transmitted via the middle ear's ossicles to the inner ear's cochlea.
When viewed cross-sectionally, the cochlea reveals the scala vestibuli and scala tympani flanking the...
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 14, 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

Echolocation in bats: signal processing of echoes for target range.

J A Simmons

    Science (New York, N.Y.)
    |March 5, 1971
    PubMed
    Summary

    Echolocating bats accurately distinguish target distances using their sonar cries. Their auditory system functions like an ideal sonar, correlating echoes to determine range, minimizing discrimination errors.

    Area of Science:

    • Bioacoustics
    • Animal Sensory Systems
    • Neuroethology

    Background:

    • Echolocating bats navigate and hunt using self-generated sound pulses.
    • Understanding the mechanisms of auditory range discrimination in bats is crucial for deciphering sensory processing.

    Purpose of the Study:

    • To investigate the ability of Eptesicus fuscus and Phyllostomus hastatus bats to discriminate between targets at different distances.
    • To determine if the autocorrelation functions of bat sonar cries accurately predict discrimination errors.

    Main Methods:

    • Behavioral experiments presenting bats with two targets at varying distances.
    • Analysis of sonar cry autocorrelation functions and comparison with bat discrimination performance.

    Main Results:

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    • Bats demonstrated a clear ability to discriminate between nearer and farther targets.
    • Discrimination errors were accurately predicted by the autocorrelation functions of the bats' sonar emissions.

    Conclusions:

    • Echolocating bats possess sophisticated range discrimination capabilities.
    • Bat sonar systems appear to function optimally, cross-correlating transmitted sounds with returning echoes for precise range estimation.