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dc.contributor.authorMerah, Idriss-
dc.contributor.authorGhecham, Ahmed-Zakaria-
dc.contributor.otherBelouchrani, Adel, Directeur de thèse-
dc.contributor.otherTebache, Soufiane, Directeur de thèse-
dc.date.accessioned2023-10-09T13:14:23Z-
dc.date.available2023-10-09T13:14:23Z-
dc.date.issued2023-
dc.identifier.otherEP00542-
dc.identifier.urihttp://repository.enp.edu.dz/jspui/handle/123456789/10793-
dc.descriptionMémoire de Projet de Fin d’Études : Electronique : Alger, École Nationale Polytechnique : 2023fr_FR
dc.description.abstractIn an environment where multiple recorded individuals are speaking simultaneously, it is difficult to discern each voice. Therefore, extracting each speech signal from this convoluted mixture is crucial and has several applications. The objective of this work is to perform blind source separation in an adaptive manner. First, we studied the Independent Vector Analysis (IVA) algorithm to fully understand its principle. Then, we modified the algorithm to obtain its adaptive version and added adaptive data whitening to it. Finally, we compared the effects of this whitening on the performance of our algorithm and implemented this method using real signals recorded through an array of microphonesfr_FR
dc.language.isoenfr_FR
dc.subjectBlind source separationfr_FR
dc.subjectWhiteningfr_FR
dc.subjectIVA-
dc.titleBlind speech separation : adaptive algorithm and implementation using UMA-16 v2 mic array testbedfr_FR
dc.typeThesisfr_FR
Collection(s) :Département Electronique

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