Datasets:
Commit
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Parent(s):
Update files from the datasets library (from 1.3.0)
Browse filesRelease notes: https://github.com/huggingface/datasets/releases/tag/1.3.0
- .gitattributes +27 -0
- README.md +222 -0
- dataset_infos.json +1 -0
- dummy/main/1.1.0/dummy_data.zip +3 -0
- lj_speech.py +113 -0
.gitattributes
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README.md
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---
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annotations_creators:
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- expert-generated
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language_creators:
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- found
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languages:
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- en
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licenses:
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- other-public-domain
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multilinguality:
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- monolingual
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size_categories:
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- 10K<n<100K
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source_datasets:
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- original
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task_categories:
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- other
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task_ids:
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- other-other-automatic-speech-recognition
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- other-other-text-to-speech
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---
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# Dataset Card for lj_speech
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## Table of Contents
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- [Dataset Description](#dataset-description)
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- [Dataset Summary](#dataset-summary)
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- [Supported Tasks](#supported-tasks-and-leaderboards)
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- [Languages](#languages)
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- [Dataset Structure](#dataset-structure)
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- [Data Instances](#data-instances)
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- [Data Fields](#data-instances)
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- [Data Splits](#data-instances)
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- [Dataset Creation](#dataset-creation)
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- [Curation Rationale](#curation-rationale)
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- [Source Data](#source-data)
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- [Annotations](#annotations)
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- [Personal and Sensitive Information](#personal-and-sensitive-information)
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- [Considerations for Using the Data](#considerations-for-using-the-data)
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- [Social Impact of Dataset](#social-impact-of-dataset)
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- [Discussion of Biases](#discussion-of-biases)
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- [Other Known Limitations](#other-known-limitations)
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- [Additional Information](#additional-information)
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- [Dataset Curators](#dataset-curators)
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- [Licensing Information](#licensing-information)
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- [Citation Information](#citation-information)
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- [Contributions](#contributions)
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## Dataset Description
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- **Homepage:** [The LJ Speech Dataset](https://keithito.com/LJ-Speech-Dataset/)
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- **Repository:** [N/A]
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- **Paper:** [N/A]
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- **Leaderboard:** [Paperswithcode Leaderboard](https://paperswithcode.com/sota/text-to-speech-synthesis-on-ljspeech)
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- **Point of Contact:** [Keith Ito](mailto:[email protected])
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### Dataset Summary
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This is a public domain speech dataset consisting of 13,100 short audio clips of a single speaker reading passages from 7 non-fiction books in English. A transcription is provided for each clip. Clips vary in length from 1 to 10 seconds and have a total length of approximately 24 hours.
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The texts were published between 1884 and 1964, and are in the public domain. The audio was recorded in 2016-17 by the LibriVox project and is also in the public domain.
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### Supported Tasks and Leaderboards
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The dataset can be used to train a model for Automatic Speech Recognition (ASR) or Text-to-Speech (TTS).
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- `other:automatic-speech-recognition`: An ASR model is presented with an audio file and asked to transcribe the audio file to written text.
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The most common ASR evaluation metric is the word error rate (WER).
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- `other:text-to-speech`: A TTS model is given a written text in natural language and asked to generate a speech audio file.
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A reasonable evaluation metric is the mean opinion score (MOS) of audio quality.
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The dataset has an active leaderboard which can be found at https://paperswithcode.com/sota/text-to-speech-synthesis-on-ljspeech
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### Languages
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The transcriptions and audio are in English.
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## Dataset Structure
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### Data Instances
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A data point comprises the path to the audio file, called `file` and its transcription, called `text`.
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A normalized version of the text is also provided.
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```
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{
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'id': 'LJ002-0026',
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'file': '/datasets/downloads/extracted/05bfe561f096e4c52667e3639af495226afe4e5d08763f2d76d069e7a453c543/LJSpeech-1.1/wavs/LJ002-0026.wav',
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'text': 'in the three years between 1813 and 1816,'
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'normalized_text': 'in the three years between eighteen thirteen and eighteen sixteen,',
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}
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```
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Each audio file is a single-channel 16-bit PCM WAV with a sample rate of 22050 Hz.
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### Data Fields
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- id: unique id of the data sample.
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- file: a path to the downloaded audio file in .wav format.
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- text: the transcription of the audio file.
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- normalized_text: the transcription with numbers, ordinals, and monetary units expanded into full words.
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### Data Splits
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The dataset is not pre-split. Some statistics:
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- Total Clips: 13,100
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- Total Words: 225,715
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- Total Characters: 1,308,678
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- Total Duration: 23:55:17
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- Mean Clip Duration: 6.57 sec
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- Min Clip Duration: 1.11 sec
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- Max Clip Duration: 10.10 sec
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- Mean Words per Clip: 17.23
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- Distinct Words: 13,821
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## Dataset Creation
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### Curation Rationale
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[Needs More Information]
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### Source Data
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#### Initial Data Collection and Normalization
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This dataset consists of excerpts from the following works:
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- Morris, William, et al. Arts and Crafts Essays. 1893.
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- Griffiths, Arthur. The Chronicles of Newgate, Vol. 2. 1884.
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- Roosevelt, Franklin D. The Fireside Chats of Franklin Delano Roosevelt. 1933-42.
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- Harland, Marion. Marion Harland's Cookery for Beginners. 1893.
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- Rolt-Wheeler, Francis. The Science - History of the Universe, Vol. 5: Biology. 1910.
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- Banks, Edgar J. The Seven Wonders of the Ancient World. 1916.
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- President's Commission on the Assassination of President Kennedy. Report of the President's Commission on the Assassination of President Kennedy. 1964.
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Some details about normalization:
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- The normalized transcription has the numbers, ordinals, and monetary units expanded into full words (UTF-8)
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- 19 of the transcriptions contain non-ASCII characters (for example, LJ016-0257 contains "raison d'être").
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- The following abbreviations appear in the text. They may be expanded as follows:
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| Abbreviation | Expansion |
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|--------------|-----------|
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| Mr. | Mister |
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| Mrs. | Misess (*) |
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| Dr. | Doctor |
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| No. | Number |
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| St. | Saint |
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| Co. | Company |
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| Jr. | Junior |
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| Maj. | Major |
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| Gen. | General |
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| Drs. | Doctors |
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| Rev. | Reverend |
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| Lt. | Lieutenant |
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| Hon. | Honorable |
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| Sgt. | Sergeant |
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| Capt. | Captain |
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| Esq. | Esquire |
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| Ltd. | Limited |
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| Col. | Colonel |
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| Ft. | Fort |
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(*) there's no standard expansion for "Mrs."
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#### Who are the source language producers?
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[Needs More Information]
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### Annotations
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#### Annotation process
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- The audio clips range in length from approximately 1 second to 10 seconds. They were segmented automatically based on silences in the recording. Clip boundaries generally align with sentence or clause boundaries, but not always.
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- The text was matched to the audio manually, and a QA pass was done to ensure that the text accurately matched the words spoken in the audio.
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#### Who are the annotators?
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Recordings by Linda Johnson from LibriVox. Alignment and annotation by Keith Ito.
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### Personal and Sensitive Information
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[Needs More Information]
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## Considerations for Using the Data
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### Social Impact of Dataset
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[Needs More Information]
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### Discussion of Biases
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[Needs More Information]
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### Other Known Limitations
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- The original LibriVox recordings were distributed as 128 kbps MP3 files. As a result, they may contain artifacts introduced by the MP3 encoding.
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## Additional Information
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### Dataset Curators
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The dataset was initially created by Keith Ito and Linda Johnson.
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### Licensing Information
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Public Domain ([LibriVox](https://librivox.org/pages/public-domain/))
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### Citation Information
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```
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@misc{ljspeech17,
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author = {Keith Ito and Linda Johnson},
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title = {The LJ Speech Dataset},
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howpublished = {\url{https://keithito.com/LJ-Speech-Dataset/}},
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year = 2017
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}
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```
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### Contributions
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Thanks to [@anton-l](https://github.com/anton-l) for adding this dataset.
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dataset_infos.json
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{"main": {"description": "This is a public domain speech dataset consisting of 13,100 short audio clips of a single speaker reading \npassages from 7 non-fiction books in English. A transcription is provided for each clip. Clips vary in length \nfrom 1 to 10 seconds and have a total length of approximately 24 hours.\n\nNote that in order to limit the required storage for preparing this dataset, the audio\nis stored in the .wav format and is not converted to a float32 array. To convert the audio\nfile to a float32 array, please make use of the `.map()` function as follows:\n\n\n```python\nimport soundfile as sf\n\ndef map_to_array(batch):\n speech_array, _ = sf.read(batch[\"file\"])\n batch[\"speech\"] = speech_array\n return batch\n\ndataset = dataset.map(map_to_array, remove_columns=[\"file\"])\n```\n", "citation": "@misc{ljspeech17,\n author = {Keith Ito and Linda Johnson},\n title = {The LJ Speech Dataset},\n howpublished = {\\url{https://keithito.com/LJ-Speech-Dataset/}},\n year = 2017\n}\n", "homepage": "https://keithito.com/LJ-Speech-Dataset/", "license": "", "features": {"id": {"dtype": "string", "id": null, "_type": "Value"}, "file": {"dtype": "string", "id": null, "_type": "Value"}, "text": {"dtype": "string", "id": null, "_type": "Value"}, "normalized_text": {"dtype": "string", "id": null, "_type": "Value"}}, "post_processed": null, "supervised_keys": {"input": "file", "output": "text"}, "builder_name": "lj_speech", "config_name": "main", "version": {"version_str": "1.1.0", "description": null, "major": 1, "minor": 1, "patch": 0}, "splits": {"train": {"name": "train", "num_bytes": 4667022, "num_examples": 13100, "dataset_name": "lj_speech"}}, "download_checksums": {"https://data.keithito.com/data/speech/LJSpeech-1.1.tar.bz2": {"num_bytes": 2748572632, "checksum": "be1a30453f28eb8dd26af4101ae40cbf2c50413b1bb21936cbcdc6fae3de8aa5"}}, "download_size": 2748572632, "post_processing_size": null, "dataset_size": 4667022, "size_in_bytes": 2753239654}}
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dummy/main/1.1.0/dummy_data.zip
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version https://git-lfs.github.com/spec/v1
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oid sha256:fbc98fcaf43b89df9c4c4e218613298edc79211af75c3fa516ec31ef35020db6
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size 74086
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lj_speech.py
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+
# coding=utf-8
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+
# Copyright 2021 The TensorFlow Datasets Authors and the HuggingFace Datasets Authors.
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+
#
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+
# Licensed under the Apache License, Version 2.0 (the "License");
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+
# you may not use this file except in compliance with the License.
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+
# You may obtain a copy of the License at
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+
#
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+
# http://www.apache.org/licenses/LICENSE-2.0
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+
#
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+
# Unless required by applicable law or agreed to in writing, software
|
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+
# distributed under the License is distributed on an "AS IS" BASIS,
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+
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
|
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+
# See the License for the specific language governing permissions and
|
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+
# limitations under the License.
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+
|
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+
# Lint as: python3
|
17 |
+
"""LJ automatic speech recognition dataset."""
|
18 |
+
|
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+
from __future__ import absolute_import, division, print_function
|
20 |
+
|
21 |
+
import csv
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+
import os
|
23 |
+
|
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+
import datasets
|
25 |
+
|
26 |
+
|
27 |
+
_CITATION = """\
|
28 |
+
@misc{ljspeech17,
|
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+
author = {Keith Ito and Linda Johnson},
|
30 |
+
title = {The LJ Speech Dataset},
|
31 |
+
howpublished = {\\url{https://keithito.com/LJ-Speech-Dataset/}},
|
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+
year = 2017
|
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+
}
|
34 |
+
"""
|
35 |
+
|
36 |
+
_DESCRIPTION = """\
|
37 |
+
This is a public domain speech dataset consisting of 13,100 short audio clips of a single speaker reading
|
38 |
+
passages from 7 non-fiction books in English. A transcription is provided for each clip. Clips vary in length
|
39 |
+
from 1 to 10 seconds and have a total length of approximately 24 hours.
|
40 |
+
|
41 |
+
Note that in order to limit the required storage for preparing this dataset, the audio
|
42 |
+
is stored in the .wav format and is not converted to a float32 array. To convert the audio
|
43 |
+
file to a float32 array, please make use of the `.map()` function as follows:
|
44 |
+
|
45 |
+
|
46 |
+
```python
|
47 |
+
import soundfile as sf
|
48 |
+
|
49 |
+
def map_to_array(batch):
|
50 |
+
speech_array, _ = sf.read(batch["file"])
|
51 |
+
batch["speech"] = speech_array
|
52 |
+
return batch
|
53 |
+
|
54 |
+
dataset = dataset.map(map_to_array, remove_columns=["file"])
|
55 |
+
```
|
56 |
+
"""
|
57 |
+
|
58 |
+
_URL = "https://keithito.com/LJ-Speech-Dataset/"
|
59 |
+
_DL_URL = "https://data.keithito.com/data/speech/LJSpeech-1.1.tar.bz2"
|
60 |
+
|
61 |
+
|
62 |
+
class LJSpeech(datasets.GeneratorBasedBuilder):
|
63 |
+
"""LJ Speech dataset."""
|
64 |
+
|
65 |
+
VERSION = datasets.Version("1.1.0")
|
66 |
+
|
67 |
+
BUILDER_CONFIGS = [
|
68 |
+
datasets.BuilderConfig(name="main", version=VERSION, description="The full LJ Speech dataset"),
|
69 |
+
]
|
70 |
+
|
71 |
+
def _info(self):
|
72 |
+
return datasets.DatasetInfo(
|
73 |
+
description=_DESCRIPTION,
|
74 |
+
features=datasets.Features(
|
75 |
+
{
|
76 |
+
"id": datasets.Value("string"),
|
77 |
+
"file": datasets.Value("string"),
|
78 |
+
"text": datasets.Value("string"),
|
79 |
+
"normalized_text": datasets.Value("string"),
|
80 |
+
}
|
81 |
+
),
|
82 |
+
supervised_keys=("file", "text"),
|
83 |
+
homepage=_URL,
|
84 |
+
citation=_CITATION,
|
85 |
+
)
|
86 |
+
|
87 |
+
def _split_generators(self, dl_manager):
|
88 |
+
root_path = dl_manager.download_and_extract(_DL_URL)
|
89 |
+
root_path = os.path.join(root_path, "LJSpeech-1.1/")
|
90 |
+
wav_path = os.path.join(root_path, "wavs/")
|
91 |
+
csv_path = os.path.join(root_path, "metadata.csv")
|
92 |
+
|
93 |
+
return [
|
94 |
+
datasets.SplitGenerator(
|
95 |
+
name=datasets.Split.TRAIN, gen_kwargs={"wav_path": wav_path, "csv_path": csv_path}
|
96 |
+
),
|
97 |
+
]
|
98 |
+
|
99 |
+
def _generate_examples(self, wav_path, csv_path):
|
100 |
+
"""Generate examples from an LJ Speech archive_path."""
|
101 |
+
|
102 |
+
with open(csv_path, encoding="utf-8") as csv_file:
|
103 |
+
csv_reader = csv.reader(csv_file, delimiter="|", quotechar=None, skipinitialspace=True)
|
104 |
+
for row in csv_reader:
|
105 |
+
uid, text, norm_text = row
|
106 |
+
filename = f"{uid}.wav"
|
107 |
+
example = {
|
108 |
+
"id": uid,
|
109 |
+
"file": os.path.join(wav_path, filename),
|
110 |
+
"text": text,
|
111 |
+
"normalized_text": norm_text,
|
112 |
+
}
|
113 |
+
yield uid, example
|