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---
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dataset_info:
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features:
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- name: audio
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dtype:
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audio:
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sampling_rate: 16000
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- name: sampling_rate
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dtype: int64
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- name: transcript
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dtype: string
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splits:
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- name: train
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num_bytes: 26537763371.78
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num_examples: 185402
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- name: validation
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num_bytes: 2948998696.305
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num_examples: 20601
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- name: test
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num_bytes: 7390220553.37
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num_examples: 51501
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download_size: 29378895903
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dataset_size: 36876982621.455
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configs:
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- config_name: default
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data_files:
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- split: train
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path: data/train-*
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- split: validation
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path: data/validation-*
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- split: test
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path: data/test-*
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task_categories:
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- automatic-speech-recognition
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tags:
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- paralinguistic
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- laughter
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pretty_name: switchboard-speechlaugh
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size_categories:
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- 100K<n<1M
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---
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## Corpus Overview |
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A preprocessed version of `Switchboard Corpus`. The corpus audio has been upsampled to 16kHz, separated channels and the transcripts have been processed |
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with special treats for paralinguistic events, particularly laughter and speech-laughs. |
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This preprocessed dataset has been processed for ASR task. For the original dataset, please check out the original link: https://catalog.ldc.upenn.edu/LDC97S62 for contributed original authors. |
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To download the original dataset, it can be found at: |
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https://drive.google.com/drive/folders/1YhpWgzCwc4cVhYJPcjuLWy84s-L0hJbf |
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or using `gdown`: |
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```bash |
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gdown 1YhpWgzCwc4cVhYJPcjuLWy84s-L0hJbf -O /path/to/dataset/switchboard |
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``` |
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|
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## Corpus Structure |
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The dataset has been splitted into train, test and validation sets with 70/20/10 ratio, as following summary: |
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|
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```python |
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Train Dataset (70%): Dataset({ |
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features: ['audio', 'sampling_rate', 'transcript'], |
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num_rows: 185402 |
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}) |
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Validation Dataset (10%): Dataset({ |
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features: ['audio', 'sampling_rate', 'transcript'], |
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num_rows: 20601 |
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}) |
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Test Dataset (20%): Dataset({ |
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features: ['audio', 'sampling_rate', 'transcript'], |
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num_rows: 51501 |
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}) |
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``` |
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|
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An example of the content is this dataset: |
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``` |
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``` |
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## Specifications |
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Regarding the total amount of `laughter` and `speech-laugh` existing in the dataset, which using for specific task for `Laughter and Speech-laugh Recognition`, here is the additional overview: |
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```bash |
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Train Dataset (swb_train): {'laughter': 16044, 'speechlaugh': 9586} |
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Validation Dataset (swb_val): {'laughter': 1845, 'speechlaugh': 1133} |
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Test Dataset (swb_test): {'laughter': 4335, 'speechlaugh': 2775} |
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``` |