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Peaga seotud ülekandefunktsioon×Ambisonics×Sõltumatu vektoranalüüs×
ValdkondRakendusfüüsikaRakendusfüüsikaRakendusfüüsika
PerekondProcess / pipelineProcess / pipelineProcess / pipeline
Tekkeaasta198919732007
LoojaFredrik Wightman, Doris KistlerMichael GerzonTae-Won Lee, Mark Lewicki, Terrence Sejnowski
TüüpFrequency-dependent spatial filtering functionSpatial audio encoding and reproduction techniqueMultivariate matrix decomposition algorithm
AlgallikasWightman, F. L., & Kistler, D. J. (1989). Headphone simulation of free-field listening. I: Stimulus synthesis. The Journal of the Acoustical Society of America, 85(2), 858-867. DOI ↗Gerzon, M. A. (1973). Periphony: with-height sound reproduction. Journal of the Audio Engineering Society, 21(1), 2-10. link ↗Lee, T. W., Lewicki, M. S., & Sejnowski, T. J. (2007). Independent Component Analysis for Source Localization in Biomedical Signals. In Proc. IEEE Int. Conf. Acoust. Speech Signal Process., pp. 97-100. link ↗
RööpnimetusedHRTF, spatial hearing, binaural filterspatial audio, B-format, ambisonic recordingIVA, multivariate ICA, vector blind source separation
Seotud333
KokkuvõteThe Head-Related Transfer Function (HRTF) describes how the human head, ears, and torso filter sound from different directions. HRTFs capture the acoustical changes that occur as sound travels around the head to reach each ear, enabling the perception of sound location in 3D space. Measured or modeled HRTFs are essential for creating convincing 3D audio through headphones in virtual reality, spatial games, and immersive audio applications.Ambisonics is a full-sphere spatial audio encoding and reproduction technique that captures and reproduces three-dimensional sound fields. Developed by Michael Gerzon in the 1970s, it uses spherical harmonics to represent sound at all directions around a central point. Unlike surround systems that use discrete channels, Ambisonics provides a format-agnostic spatial representation that can be rotated, translated, and rendered to any speaker configuration.Independent Vector Analysis (IVA) is a multivariate extension of Independent Component Analysis that jointly separates multiple datasets while maintaining dependencies within each dataset. Developed by Lee, Lewicki, and Sejnowski in the 2000s, IVA is used for blind source separation in multi-channel audio, brain imaging, and signal processing. It exploits both the independence between sources and correlations within frequency bands or time-frequency structures.
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ScholarGateVõrdle meetodeid: Head-Related Transfer Function · Ambisonics · Independent Vector Analysis. Loetud 2026-06-18 aadressilt https://scholargate.app/et/compare