Papers › MetricGAN: Generative Adversarial Networks based Black-box Metric Scores Optimization...

MetricGAN: Generative Adversarial Networks based Black-box Metric Scores Optimization for Speech Enhancement

13 May 2019arXiv:1905.04874archive 2025-07-28

Szu-Wei Fu, Chien-Feng Liao, Yu Tsao, Shou-De Lin

Adversarial loss in a conditional generative adversarial network (GAN) is not designed to directly optimize evaluation metrics of a target task, and thus, may not always guide the generator in a GAN to generate data with improved metric scores. To overcome this issue, we propose a novel MetricGAN approach with an aim to optimize the generator with respect to one or multiple evaluation metrics. Moreover, based on MetricGAN, the metric scores of the generated data can also be arbitrarily specified by users. We tested the proposed MetricGAN on a speech enhancement task, which is particularly suitable to verify the proposed approach because there are multiple metrics measuring different aspects of speech signals. Moreover, these metrics are generally complex and could not be fully optimized by Lp or conventional adversarial losses.

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Code

JasonSWFu/MetricGAN officialmentioned on GitHub report
anicolson/DeepXi mentioned on GitHubtfMPL-2.0 report
somvy/MetricGAN mentioned on GitHub report
unfinity-core/MetricGAN mentioned on GitHubpytorch report

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Tasks

Speech Enhancement

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Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Speech Enhancement VoiceBank + DEMAND MetricGAN CBAK 3.18 #39 of 42 Archive leaderboard report
Speech Enhancement VoiceBank + DEMAND MetricGAN COVL 3.42 #39 of 42 Archive leaderboard report
Speech Enhancement VoiceBank + DEMAND MetricGAN CSIG 3.99 #39 of 42 Archive leaderboard report
Speech Enhancement VoiceBank + DEMAND MetricGAN PESQ (wb) 2.86 #39 of 42 Archive leaderboard report

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Methods

Convolution

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