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Qian-Bei Hong

3 accepted papers

2020

Combining Deep Embeddings of Acoustic and Articulatory Features for Speaker Identification

ICASSP 2020accepted

In this study, deep embedding of acoustic and articulatory features are combined for speaker identification. First, a convolutional neural network (CNN)-based universal background model (UBM) is constructed to generate acoustic feature (AC) embedding. In addition, as the articulatory features (AFs)…

Cited by 0SourceScholar
2020

Statistics Pooling Time Delay Neural Network Based on X-Vector for Speaker Verification

ICASSP 2020accepted

This paper aims to improve speaker embedding representation based on x-vector for extracting more detailed information for speaker verification. We propose a statistics pooling time delay neural network (TDNN), in which the TDNN structure integrates statistics pooling for each layer, to consider the…

Cited by 0SourceScholar
2019

Speech Emotion Recognition Using Deep Neural Network Considering Verbal and Nonverbal Speech Sounds

ICASSP 2019accepted

Speech emotion recognition is becoming increasingly important for many applications. In real-life communication, non-verbal sounds within an utterance also play an important role for people to recognize emotion. In current studies, only few emotion recognition systems considered nonverbal sounds, su…

Cited by 0SourceScholar