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Convtasnet Libri1Mix Enhsingle 16k

Developed by JorisCos
ConvTasNet model trained on the Asteroid framework for single-channel speech enhancement tasks, trained on the Libri1Mix dataset.
Downloads 2,570
Release Time : 3/2/2022

Model Overview

This model is an audio-to-audio conversion model specifically designed for single-channel speech enhancement tasks, capable of extracting clear speech signals from noisy audio.

Model Features

Efficient speech enhancement
Utilizes the ConvTasNet architecture to effectively separate speech from noise, improving speech quality.
Lightweight design
Optimized model parameters make it suitable for running on resource-limited devices.
High performance metrics
Outstanding performance on the Libri1Mix test set, achieving an SI-SDR improvement of 11.29dB.

Model Capabilities

Single-channel speech enhancement
Noise suppression
Speech clarity improvement

Use Cases

Speech processing
Voice communication enhancement
Improves voice call quality by reducing background noise interference.
SI-SDR improvement of 11.29dB, STOI improvement of 0.135
Speech recognition preprocessing
Serves as a front-end processing module for speech recognition systems to improve accuracy.
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