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3 months ago

BigVGAN: A Universal Neural Vocoder with Large-Scale Training

Sang-gil Lee Wei Ping Boris Ginsburg Bryan Catanzaro Sungroh Yoon

BigVGAN: A Universal Neural Vocoder with Large-Scale Training

Abstract

Despite recent progress in generative adversarial network (GAN)-based vocoders, where the model generates raw waveform conditioned on acoustic features, it is challenging to synthesize high-fidelity audio for numerous speakers across various recording environments. In this work, we present BigVGAN, a universal vocoder that generalizes well for various out-of-distribution scenarios without fine-tuning. We introduce periodic activation function and anti-aliased representation into the GAN generator, which brings the desired inductive bias for audio synthesis and significantly improves audio quality. In addition, we train our GAN vocoder at the largest scale up to 112M parameters, which is unprecedented in the literature. We identify and address the failure modes in large-scale GAN training for audio, while maintaining high-fidelity output without over-regularization. Our BigVGAN, trained only on clean speech (LibriTTS), achieves the state-of-the-art performance for various zero-shot (out-of-distribution) conditions, including unseen speakers, languages, recording environments, singing voices, music, and instrumental audio. We release our code and model at: https://github.com/NVIDIA/BigVGAN

Code Repositories

nvidia/bigvgan
Official
pytorch
Mentioned in GitHub
sh-lee-prml/BigVGAN
pytorch
Mentioned in GitHub
sh-lee-prml/periodwave
pytorch
Mentioned in GitHub
sh-lee-prml/hierspeechpp
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
speech-synthesis-on-librittsBigVGAN-v2
M-STFT: 0.7026
MCD: 0.2903
PESQ: 4.362
Periodicity: 0.0593
V/UV F1: 0.9793
speech-synthesis-on-librittsBigVGAN
M-STFT: 0.7997
MCD: 0.3745
PESQ: 4.027
Periodicity: 0.1018
V/UV F1: 0.9598
speech-synthesis-on-librittsBigVGAN-base
M-STFT: 0.8788
MCD: 0.4564
PESQ: 3.519
Periodicity: 0.1287
V/UV F1: 0.9459

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BigVGAN: A Universal Neural Vocoder with Large-Scale Training | Papers | HyperAI