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Chin-Cheng Hsu

5 accepted papers

2021

Adversarial Defense for Deep Speaker Recognition Using Hybrid Adversarial Training

ICASSP 2021accepted

Deep neural network based speaker recognition systems can easily be deceived by an adversary using minuscule imperceptible perturbations to the input speech samples. These adversarial attacks pose serious security threats to the speaker recognition systems that use speech biometric. To address this…

Cited by 0SourceScholar
2020

Singing Voice Conversion with Disentangled Representations of Singer and Vocal Technique Using Variational Autoencoders

ICASSP 2020accepted

We propose a flexible framework that deals with both singer conversion and singers vocal technique conversion. The proposed model is trained on non-parallel corpora, accommodates many-to-many conversion, and leverages recent advances of variational autoencoders. It employs separate encoders to learn…

Cited by 0SourceScholar
2017

A locally linear embbeding based postfiltering approach for speech enhancement

ICASSP 2017accepted

This paper presents a novel postfiltering approach based on the locally linear embedding (LLE) algorithm for speech enchantment (SE). The aim of the proposed LLE-based postfiltering approach is to further remove the residual noise components from the SE-processed speech signals through a spectral co…

Cited by 0SourceScholar
2017

Discriminative autoencoders for speaker verification

ICASSP 2017accepted

This paper presents a learning and scoring framework based on neural networks for speaker verification. The framework employs an autoencoder as its primary structure while three factors are jointly considered in the objective function for speaker discrimination. The first one, relating to the sample…

Cited by 0SourceScholar