Leveraging laryngograph data for robust voicing detection in speech
Yixuan Zhang,
Heming Wang,
DeLiang Wang
Abstract:Accurately detecting voiced intervals in speech signals is a critical step in pitch tracking and has numerous applications. While conventional signal processing methods and deep learning algorithms have been proposed for this task, their need to fine-tune threshold parameters for different datasets and limited generalization restrict their utility in real-world applications. To address these challenges, this study proposes a supervised voicing detection model that leverages recorded laryngograph data. The mode… Show more
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