Performance analysis of the speech enhancement application with wavelet transform domain adaptive filters

dc.contributor.author Elif Özen Acarbay
dc.contributor.author Nalan Ǒzkurt
dc.contributor.author Özen Acarbay, Elif
dc.contributor.author Özkurt, Nalan
dc.date.accessioned 2025-10-06T17:49:33Z
dc.date.issued 2023
dc.description.abstract Adaptive filters are one of the most commonly used methods in digital signal processing today. Nonetheless depending on the characteristics of the signals and noise the processing complexity and convergence speed for adaptive filters vary. The application of adaptive filters in the transform domain is preferred as a solution to this problem. It has been shown that the application of the NLMS (Normalized Least Mean Square) algorithm in the wavelet transform domain was successful for speech enhancement application. However further analysis is required to see the performance of the Wavelet Transform Domain (WTD)-NLMS method for cleaning speech signals disturbed by commonly used ambient noises for speech applications. Obtained results were evaluated with the measures frequently used for speech enhancement applications and compared with the results in the state-of-art. It was observed that the proposed WTD-NLMS structure outperforms speech enhancement applications done up to now in terms of SDR MSE STOI and PESQ metrics. © 2023 Elsevier B.V. All rights reserved.
dc.identifier.doi 10.1007/s10772-023-10022-3
dc.identifier.issn 15728110, 13812416
dc.identifier.issn 1381-2416
dc.identifier.issn 1572-8110
dc.identifier.scopus 2-s2.0-85149747896
dc.identifier.uri https://www.scopus.com/inward/record.uri?eid=2-s2.0-85149747896&doi=10.1007%2Fs10772-023-10022-3&partnerID=40&md5=26dc45cfffe6cc9929161c236c2082d2
dc.identifier.uri https://gcris.yasar.edu.tr/handle/123456789/8475
dc.identifier.uri https://doi.org/10.1007/s10772-023-10022-3
dc.language.iso English
dc.publisher Springer
dc.relation.ispartof International Journal of Speech Technology
dc.rights info:eu-repo/semantics/closedAccess
dc.source International Journal of Speech Technology
dc.subject Adaptive Filter In Transform Domain, Adaptive System, Matlab, Noise Reduction, Speech Enhancement, Wavelet Transform Domain—lms, Adaptive Filtering, Digital Signal Processing, Noise Abatement, Speech Enhancement, Wavelet Transforms, Adaptive Filter In Transform Domain, Convergence Speed, Normalized Least Mean Squares Algorithms, Performance, Performances Analysis, Processing Complexity, Transform Domain, Transform-domain Adaptive Filters, Wavelet Transform Domain—lms, Wavelet-transform Domain, Adaptive Filters
dc.subject Adaptive filtering, Digital signal processing, Noise abatement, Speech enhancement, Wavelet transforms, Adaptive filter in transform domain, Convergence speed, Normalized least mean squares algorithms, Performance, Performances analysis, Processing complexity, Transform domain, Transform-domain adaptive filters, Wavelet transform domain—LMS, Wavelet-transform domain, Adaptive filters
dc.subject Adaptive System
dc.subject Matlab
dc.subject Noise Reduction
dc.subject Wavelet Transform Domain—LMS
dc.subject Speech Enhancement
dc.subject Adaptive Filter in Transform Domain
dc.title Performance analysis of the speech enhancement application with wavelet transform domain adaptive filters
dc.type Article
dspace.entity.type Publication
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gdc.author.scopusid 58135569700
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gdc.description.department
gdc.description.departmenttemp [Özen Acarbay E.] Graduate School, Yaşar University, Izmir, Turkey, IDLAB-IMEC, Unniversiteit Gent, Ghent, Belgium; [Özkurt N.] Department of Electrical and Electronics Engineering, Yaşar University, Izmir, Turkey
gdc.description.endpage 258
gdc.description.issue 1
gdc.description.publicationcategory Makale - Uluslararası Hakemli Dergi - Kurum Öğretim Elemanı
gdc.description.startpage 245
gdc.description.volume 26
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gdc.virtual.author Özkurt, Nalan
oaire.citation.endPage 258
oaire.citation.startPage 245
person.identifier.scopus-author-id Özen Acarbay- Elif (58135569700), Ǒzkurt- Nalan (8546186400)
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publicationvolume.volumeNumber 26
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