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Echo01:06

Echo

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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,...
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Ultrasonography01:17

Ultrasonography

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Ultrasonography is an imaging technique that uses high-frequency sound waves to visualize the body's internal structures. It is a non-invasive and safe procedure that does not involve the use of ionizing radiation, making it widely used in various medical fields. Ultrasonography is used to study heart function, blood flow in the neck or extremities, certain conditions such as gallbladder disease, and fetal growth and development.
During an ultrasonography procedure, a handheld device called...
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Perceiving Loudness, Pitch, and Location01:21

Perceiving Loudness, Pitch, and Location

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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...
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Sound Intensity Level00:53

Sound Intensity Level

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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...
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Hearing01:31

Hearing

54.7K
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.
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Perception of Sound Waves01:01

Perception of Sound Waves

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The human ear is not equally sensitive to all frequencies in the audible range. It may perceive sound waves with the same pressure but different frequencies as having different loudness. Moreover, the perception of sound waves depends on the health of an individual's ears, which decays with age. The health of one's ears may also be affected by regular exposure to loud noises.
The pitch of a sound depends on the frequency and the pressure amplitude of the source. Two sounds of the same...
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Related Experiment Video

Updated: Nov 3, 2025

Controllable Nucleation of Cavitation from Plasmonic Gold Nanoparticles for Enhancing High Intensity Focused Ultrasound Applications
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Superhuman spatial hearing technology for ultrasonic frequencies.

Ville Pulkki1, Leo McCormack2, Raimundo Gonzalez2

  • 1Acoustics Lab, Department of Signal Processing and Acoustics, Aalto University, Espoo, Finland. Ville.Pulkki@aalto.fi.

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This study introduces a novel system for real-time localization of inaudible ultrasonic sources using spatial hearing. The technology enables listeners to pinpoint ultrasonic sounds, opening new applications in wildlife monitoring and system diagnostics.

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Area of Science:

  • Acoustics and Signal Processing
  • Bioacoustics
  • Human-Computer Interaction

Background:

  • Ultrasonic sources are inaudible to humans.
  • Existing digital signal processing can make ultrasonic signals audible but lacks spatial localization capabilities.
  • There is a need for systems that allow real-time spatial localization of ultrasonic sources for various applications.

Purpose of the Study:

  • To develop and demonstrate a method for in-situ, real-time localization of ultrasonic sources using normal binaural hearing.
  • To enable new applications such as wildlife monitoring and man-made system diagnostics through enhanced auditory perception.

Main Methods:

  • An array of ultrasonic microphones was mounted on headphones.
  • Spatial parameters of the ultrasonic sound-field were extracted from microphone data.
  • A pitch-shifted audio signal was rendered to the headphones, incorporating the estimated spatial parameters.

Main Results:

  • The developed system successfully allows listeners to localize ultrasonic sources in real-time.
  • Localization accuracy was found to be comparable to that of audible sound sources.
  • The proof-of-concept device performed well in both laboratory and field tests.

Conclusions:

  • The described method effectively provides listeners with spatial cues for ultrasonic sound localization.
  • This technology opens up novel applications in fields requiring the monitoring of ultrasonic phenomena.
  • The system offers a significant advancement in auditory perception for inaudible sound sources.