Репозиторий Евразийского национального университета имени Л.Н. Гумилева
Репозиторий Евразийского национального университета имени Л.Н. Гумилева
Репозиторий Евразийского национального университета имени Л.Н. Гумилева
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  • 01. Публикации в изданиях зарубежных стран
  • Mathematics
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SPEAKER RECOGNITION BY ULTRASHORT UTTERANCES

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Автор
Medetov, B.
Nurlankyzy, A.
Namazbayev, T.
Akhmediyarova, A.
Zhetpisbayev, K.
Zhetpisbayeva, A.
Kargulova, A.
Дата
2025
Редактор
Eastern-European Journal of Enterprise Technologies
ISSN
1729-3774
xmlui.dri2xhtml.METS-1.0.item-identifier-citation
Medetov, B., Nurlankyzy, A., Namazbayev, T., Akhmediyarova, A., Zhetpisbayev, K., Zhetpisbayeva, A., Kargulova, A. (2025). Speaker recognition by ultrashort utterances. Eastern-European Journal of Enterprise Technologies, 2 (9 (134)), 62–69. https://doi.org/10.15587/1729-4061.2025.327907
Аннотации
The object of this study is the accuracy of announcer identification based on short utterances. To solve the task of speaker identification based on ultrashort speech utterances, a phoneme-by-phoneme approach to constructing voice models has been proposed within the framework of the study. The validity of this approach is based on the fact that short utterances usually contain a limited number of phonemes. In this regard, a hypothesis was put forward assuming that in order to increase the accuracy of announcer identification based on short utterances, it is necessary to analyze the sound of specific phonemes by different announcers. The experiments involved speech recordings of monosyllabic words with corresponding phonemes, on the basis of which, using the ECAPA-TDNN neural network architecture, announcer voice models were constructed. The experimental studies showed that voice models constructed based on the sounds of only one model provide higher announcer identification accuracy compared to generalized models constructed based on all speech sounds. It was also found that different phonemes provide different announcer identification accuracy. For example, with a speech signal duration of 2–3 seconds, the accuracy of announcer identification by the generalized model was 75 %. And the accuracy of announcer identification using a model built on the basis of only one phoneme "E", with the same input data, was 85 %, which is 10 percentage points higher than that of the generalized model
URI
http://repository.enu.kz/handle/enu/30726
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SPEAKER-RECOGNITION-BY-ULTRASHORT-UTTERANCES_2025_Technology-Center.pdf (1.334Mb)
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