DSing ASR task: Resources and Baseline for an unaccompanied singing ASR.
Authors/Creators
Description
DSing ASR task: Resources and Baseline for an unaccompanied singing ASR.
In this repository, you will find the scripts used to construct the DSing ASR-oriented dataset and the baseline system constructed on Kaldi.
Cite:
@inproceedings{Roa_Dabike-Barker_2019,
author = {Roa Dabike, Gerardo and Barker, Jon}
title = {{Automatic Lyric Transcription from Karaoke Vocal Tracks: Resources and a Baseline System}},
year = 2019,
booktitle = {Proceedings of the 20th Annual Conference of the International Speech Communication Association (INTERSPEECH 2019)}
}
1- DSing dataset
DSing is an ASR-oriented dataset constructed from the Smule Sing!300x30x2 dataset (Sing!). This repository provides the scripts to transform Sing! to the DSing ASR task.
2- Initial steps
The first step before running any of the scripts is to obtain access to Sing! dataset. For more details, go to DAMP repository.
3- Transform Sing! to DSing dataset
The scripts to transform the Sing! dataset to DSing ASR task dataset is located in the [DSing Construction](DSing Construction/) directory. The process is based on a series of python tools that are summarised in the runme_sing2dsing.sh bash script.
- Define the variable version with the name of the DSing version you want to construct (DSing1, DSing3 or DSing30). Any other option will raise an error.
- Set the variable DSing_dest with the path where the DSing version will be saved.
- Set the variable SmuleSing_path with the path to your copy of Smule Sing!300x30x2.
- Run code until step K
- .....
4- Extract DSing dataset using pre-segmented data.
If you want to do some analysis in the segmentation results or to use DSing for different porpoise than ASR. In directory [DSing preconstructed](DSing preconstructed) you can find a small script that allows recovering the transcriptions and utterance wav files. Just need to to set the output directory and the path of your version of Sing!
Files
groadabike/Kaldi-Dsing-task-v1.0.zip
Files
(19.3 MB)
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md5:2fbd512a957f406bd96fb68727488976
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Additional details
Related works
- Is supplement to
- https://github.com/groadabike/Kaldi-Dsing-task/tree/v1.0 (URL)