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MFCC (Mel-Frequency Cepstral Coefficients)×Neatkarīgā vektoru analīze×
NozareLietišķā fizikaLietišķā fizika
SaimeProcess / pipelineProcess / pipeline
Izcelsmes gads19802007
AutorsSteven Davis, Paul MermelsteinTae-Won Lee, Mark Lewicki, Terrence Sejnowski
TipsAudio feature extraction algorithmMultivariate matrix decomposition algorithm
PirmavotsDavis, S., & Mermelstein, P. (1980). Comparison of parametric representations for monosyllabic word recognition in continuously spoken sentences. IEEE Transactions on Acoustics, Speech, and Signal Processing, 28(4), 357-366. DOI ↗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 ↗
Citi nosaukumimel-cepstral features, MFCC features, mel-frequency featuresIVA, multivariate ICA, vector blind source separation
Saistītās33
KopsavilkumsMel-Frequency Cepstral Coefficients (MFCCs) are a compact representation of audio features that mimic human auditory perception. Introduced by Davis and Mermelstein in 1980, MFCCs are the de facto feature extraction method for speech recognition and environmental sound analysis. They compress the frequency information of audio signals into a small set of coefficients that capture phonetic content while discarding irrelevant details.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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ScholarGateSalīdzināt metodes: MFCC · Independent Vector Analysis. Izgūts 2026-06-17 no https://scholargate.app/lv/compare