DC ElementWertSprache
dc.contributor.advisorGerkmann, Timo-
dc.contributor.authorLemercier, Jean-Marie-
dc.date.accessioned2025-03-18T11:16:42Z-
dc.date.available2025-03-18T11:16:42Z-
dc.date.issued2024-
dc.identifier.urihttps://ediss.sub.uni-hamburg.de/handle/ediss/11545-
dc.description.abstractReverberation degrades speech quality, especially for hearing-impaired listeners. Therefore, most speech communication systems (video-conferencing, smart home devices, hearing aids, etc.) now include dereverberation algorithms to increase the quality and intelligibility of speech. Traditional statistics-based dereverberation methods struggle in adverse conditions. In comparison, deep learning approaches show stronger performance, however they often lack interpretability and their failure cases are hard to predict. This thesis first explores hybrid models combining deep learning with domain knowledge -- called model-based techniques -- for optimal and robust dereverberation. The focus then shifts on the introduction of supervised diffusion-based generative systems in the design of dereverberation algorithms, while the last chapter unifies model-based algorithms and diffusion models for unsupervised dereverberation.en
dc.language.isoende_DE
dc.publisherStaats- und Universitätsbibliothek Hamburg Carl von Ossietzkyde
dc.relation.haspart10.1186/s13636-023-00285-8de_DE
dc.relation.haspart10.21437/Interspeech.2023-1429de_DE
dc.relation.haspart10.1109/MSP.2024.3445871de_DE
dc.relation.haspart10.1109/ICASSP49357.2023.10095258de_DE
dc.relation.haspart10.1109/TASLP.2023.3294692de_DE
dc.relation.haspart10.1109/WASPAA58266.2023.10248108de_DE
dc.relation.haspart10.1109/IWAENC61483.2024.10694254de_DE
dc.rightshttp://purl.org/coar/access_right/c_abf2de_DE
dc.subjectSpeech Dereverberationen
dc.subjectSpeech Enhancement and Restorationen
dc.subjectModel-based Techniquesen
dc.subjectDiffusion Modelsen
dc.subject.ddc004: Informatikde_DE
dc.titleModel-based Techniques and Diffusion Models for Speech Dereverberationen
dc.title.alternativeModellbasierte Techniken und Diffusionsmodelle für die Dereverberation von Sprachede
dc.typedoctoralThesisen
dcterms.dateAccepted2025-02-14-
dc.rights.cchttps://creativecommons.org/licenses/by/4.0/de_DE
dc.rights.rshttp://rightsstatements.org/vocab/InC/1.0/-
dc.subject.gndSprachverarbeitungde_DE
dc.subject.gndMaschinelles Lernende_DE
dc.subject.gndKünstliche Intelligenzde_DE
dc.type.casraiDissertation-
dc.type.dinidoctoralThesis-
dc.type.driverdoctoralThesis-
dc.type.statusinfo:eu-repo/semantics/publishedVersionde_DE
dc.type.thesisdoctoralThesisde_DE
tuhh.type.opusDissertation-
thesis.grantor.departmentInformatikde_DE
thesis.grantor.placeHamburg-
thesis.grantor.universityOrInstitutionUniversität Hamburgde_DE
dcterms.DCMITypeText-
datacite.relation.IsSupplementedBy10.1186/s13636-023-00285-8de_DE
datacite.relation.IsSupplementedBy10.21437/Interspeech.2023-1429de_DE
datacite.relation.IsSupplementedBy10.1109/MSP.2024.3445871de_DE
datacite.relation.IsSupplementedBy10.1109/ICASSP49357.2023.10095258de_DE
datacite.relation.IsSupplementedBy10.1109/TASLP.2023.3294692de_DE
datacite.relation.IsSupplementedBy10.1109/WASPAA58266.2023.10248108de_DE
datacite.relation.IsSupplementedBy10.1109/IWAENC61483.2024.10694254de_DE
datacite.relation.IsSupplementedBy10.1109/ICASSP43922.2022.9746235de_DE
datacite.relation.IsSupplementedByhttps://doi.org/10.48550/arXiv.2408.07472de_DE
datacite.relation.IsSupplementedByhttps://doi.org/10.48550/arXiv.2204.02741de_DE
datacite.relation.IsSupplementedBy10.30420/456164022de_DE
dc.identifier.urnurn:nbn:de:gbv:18-ediss-126511-
item.creatorOrcidLemercier, Jean-Marie-
item.creatorGNDLemercier, Jean-Marie-
item.languageiso639-1other-
item.fulltextWith Fulltext-
item.advisorGNDGerkmann, Timo-
item.grantfulltextopen-
Enthalten in den Sammlungen:Elektronische Dissertationen und Habilitationen
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