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Adversarial Learning and Augmentation for Speaker Recognition
Jen Tzung Chien
, Kang Ting Peng
Department of Electrical and Computer Engineering
Research output
:
Contribution to conference
›
Paper
›
peer-review
9
Scopus citations
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Keyphrases
I-vector
100%
Adversarial Learning
100%
Speaker Recognition
100%
Adversarial Data Augmentation
100%
Probabilistic Linear Discriminant Analysis
40%
Class Label
40%
Generative Adversarial Networks
40%
Learning Objectives
20%
Low Quality Data
20%
System Robustness
20%
Posterior Probability
20%
Loss Function
20%
Utterance
20%
Min-max Optimization
20%
Imbalanced Data
20%
Model Regularization
20%
Recognition-based
20%
Adversarial Loss
20%
Discriminant Analysis
20%
Cosine Similarity
20%
Data Reconstruction
20%
Deep Model
20%
Data Augmentation
20%
Multi-objective Learning
20%
Multiple Learning
20%
Minimax Optimization
20%
Reconstruction Regularization
20%
Gaussian Regularization
20%
Computer Science
Speaker Recognition
100%
Linear Discriminant Analysis
50%
Generative Adversarial Networks
50%
Discriminator
50%
Optimization Problem
25%
Posterior Probability
25%
Multiobjective
25%
Analysis Model
25%
Regularization
25%
Cosine Similarity
25%
Data Augmentation
25%
Gaussian Regularization
25%