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rishikksh20/hifigan-denoiser

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View on GitHub↗
0 stars·0 forks·9 views

Hifigan Denoiser

This is a Unofficial Pytorch implementation of the paper HiFi-GAN: High Fidelity Denoising and Dereverberation Based on Speech Deep Features in Adversarial Networks.

Features

  • Speech Enhancement Models - High-fidelity denoising and dereverberation using adversarial networks.

Star history

Star history chart for rishikksh20/hifigan-denoiserStar history chart for rishikksh20/hifigan-denoiser

How this analysis was created: This summary and feature list are AI-generated from collected project material and can contain mistakes. Stars, license and language are imported from GitHub. Inclusion does not mean that we have tested or audited this project. Check the source documentation for any feature you depend on. Learn more on our About page.

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Frequently asked questions

What does rishikksh20/hifigan-denoiser do?

This is a Unofficial Pytorch implementation of the paper HiFi-GAN: High Fidelity Denoising and Dereverberation Based on Speech Deep Features in Adversarial Networks.

What are the main features of rishikksh20/hifigan-denoiser?

The main features of rishikksh20/hifigan-denoiser are: Speech Enhancement Models.

Which projects share features with rishikksh20/hifigan-denoiser?

Projects with overlapping indexed features include: modelscope/clearervoice-studio — ClearerVoice-Studio is a speech processing studio and framework designed for speech enhancement, audio… espnet/espnet — ESPnet is a comprehensive speech processing toolkit and PyTorch-based trainer designed for building end-to-end speech… ashutosh620/ddaec. cedarctic/rnnoise-ex — An extension to RNNoise. chanil1218/dcunet.pytorch — Phase-Aware Speech Enhancement with Deep Complex U-Net. breizhn/dtln — Tensorflow 2.x implementation of the stacked dual-signal transformation LSTM network (DTLN) for real-time noise…

Projects sharing features with Hifigan Denoiser

These projects share indexed features with Hifigan Denoiser. Shared tags can include platform or build tooling; verify the primary use case before treating a result as a replacement.
  • modelscope/clearervoice-studiomodelscope avatar

    modelscope/ClearerVoice-Studio

    3,919View on GitHub↗

    ClearerVoice-Studio is a speech processing studio and framework designed for speech enhancement, audio super-resolution, and targeted voice extraction. It provides a suite of tools to remove background noise, increase the sampling rate of low-resolution recordings, and quantify audio clarity through objective quality evaluation metrics. The project features a target speaker extraction tool that isolates specific voices from mixed audio using acoustic, visual, or neural reference signals. It also includes capabilities for overlapping speech separation by capturing temporal patterns and long-ra

    Pythonaudiobandwidth-extensiondeep-learning
    View on GitHub↗3,919
  • espnet/espnetespnet avatar

    espnet/espnet

    9,861View on GitHub↗

    ESPnet is a comprehensive speech processing toolkit and PyTorch-based trainer designed for building end-to-end speech recognition, synthesis, and translation models. It provides a structured framework for developing automatic speech recognition systems using transducer and encoder-decoder architectures, alongside engines for text-to-speech synthesis and speech translation pipelines. The project distinguishes itself through a recipe-based workflow execution system that ensures experimental reproducibility by running standardized sequences of scripts for data preparation and model training. It

    Python
    View on GitHub↗9,861
  • ashutosh620/ddaecashutosh620 avatar

    ashutosh620/DDAEC

    42View on GitHub↗
    Python
    View on GitHub↗42
  • breizhn/dtlnB

    breizhn/DTLN

    0View on GitHub↗

    Tensorflow 2.x implementation of the stacked dual-signal transformation LSTM network (DTLN) for real-time noise suppression. This repository provides the code for training, infering and serving the DTLN model in python. It also provides pretrained models in SavedModel, TF-lite and ONNX format,…

    View on GitHub↗0
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