Metinden konuşma sentezinde yeni bir geliştirme çerçevesi yaklaşımı

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Ieee

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info:eu-repo/semantics/closedAccess

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Text to speech applications are mostly used to extract interaction with the user in high-level multimedia tools. These applications usually produce artificial (robotic) sounds. In this study, instead of synthesizing textual expressions as monotone, single sound form, it is aimed to be separated into species and sounded as different sound forms. Briefly, the process of speech synthesis from the text is considered as a text classification problem. Machine learning algorithms have been used to perform this sorting process. As a result of the classification, sound files of correctly classified documents are obtained in the formats initially set as default, and different sound formats are obtained for misclassified documents except for their own category.

Açıklama

26th IEEE Signal Processing and Communications Applications Conference (SIU) -- MAY 02-05, 2018 -- Izmir, TURKEY
WOS:000511448500681

Anahtar Kelimeler

text to speech synthesis, speech processing, machine learning, classification, artificial intelligence, data mining, Metinden konuşma sentezleme, Makine öğrenmesi, Sınıflandırma, Ses işleme, Yapay zeka, Veri madenciliği

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2018 26Th Signal Processing And Communications Applications Conference (Siu)

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