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--- |
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license: cc-by-4.0 |
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dataset_info: |
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features: |
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- name: segment_id |
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dtype: string |
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- name: audio |
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dtype: |
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audio: |
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decode: false |
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- name: duration_seconds |
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dtype: int64 |
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- name: segment_text |
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dtype: string |
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- name: cs_terms_list |
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dtype: string |
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|
- name: cs_terms_count |
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dtype: int64 |
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- name: topic |
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dtype: string |
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|
- name: original_video_link |
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dtype: string |
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|
- name: original_video_title |
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dtype: string |
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|
- name: start_time |
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dtype: string |
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|
- name: end_time |
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dtype: string |
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splits: |
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- name: train |
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num_bytes: 14582022075 |
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num_examples: 11832 |
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- name: validation |
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num_bytes: 2139515036 |
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num_examples: 1714 |
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- name: test |
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num_bytes: 2026901460 |
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num_examples: 1614 |
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- name: hard |
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num_bytes: 814798996 |
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num_examples: 658 |
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download_size: 18312886260 |
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dataset_size: 19563237567 |
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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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- split: hard |
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path: data/hard-* |
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task_categories: |
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- automatic-speech-recognition |
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language: |
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- vi |
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tags: |
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- medical |
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- code-switching |
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--- |
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# 🩺 ViMedCSS: Vietnamese Medical Code-Switching Speech Dataset |
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## 📖 Overview |
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ViMedCSS is a Vietnamese medical speech dataset for code-switching ASR, where each utterance contains at least one non-Vietnamese (mainly English) medical term embedded in Vietnamese speech. |
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## 📊 Dataset Statistics |
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### Split Statistics (from `ViMedCSS-Metadata`) |
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| Split | # Rows | Duration (hours) | Avg duration (s) | Total CS terms | |
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|---|---:|---:|---:|---:| |
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| train | 11,832 | 24.30 | 7.39 | 12,314 | |
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| validation | 1,714 | 3.57 | 7.49 | 1,814 | |
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| test | 1,614 | 3.39 | 7.56 | 1,695 | |
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| hard | 658 | 1.38 | 7.57 | 758 | |
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| **Total** | **15,818** | **32.64** | **7.43** | **16,581** | |
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### Topic Statistics (from `ViMedCSS-Metadata`) |
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| Topic | # Rows | Duration (hours) | Total CS terms | |
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|---|---:|---:|---:| |
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| Medical Sciences | 6,836 | 14.68 | 7,459 | |
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| Pathology & Pathogens | 4,827 | 10.00 | 4,951 | |
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| Treatments | 1,969 | 3.80 | 1,985 | |
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| Nutrition | 1,155 | 2.14 | 1,155 | |
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| Diagnostics | 1,031 | 2.02 | 1,031 | |
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## 🧾 Data Fields |
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Each row in metadata corresponds to one segment audio file, where: |
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- `segment_id` maps to `segment_id.wav` (for example: `Med_CS-100-17` -> `Med_CS-100-17.wav`) |
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Main fields: |
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- `segment_id`: utterance identifier |
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- `duration_seconds`: utterance duration |
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- `segment_text`: Vietnamese transcript containing code-switched term(s) |
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- `cs_terms_list`: semicolon-separated code-switched terms |
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- `cs_terms_count`: number of code-switched terms in the utterance |
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- `topic` (or `Topic` in one CSV): medical topic label |
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- `original_video_link`: source video URL |
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- `original_video_title`: source video title |
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- `start_time`, `end_time`: segment boundaries in source audio/video |
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When loaded from Hugging Face, an `audio` column is available with waveform bytes/path in the standard 🤗 Datasets `Audio` format. |
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## 🔽 How to Load |
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Load directly with 🤗 Datasets: |
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```python |
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from datasets import load_dataset |
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dataset = load_dataset("tensorxt/ViMedCSS") |
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print(dataset) |
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``` |
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Clone with Git LFS: |
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```bash |
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git lfs install |
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git clone https://huggingface.co/datasets/tensorxt/ViMedCSS |
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``` |
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## 📝 Notes |
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- The paper reports the full corpus statistics (34.57h). |
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- The `hard` split is intended for evaluating rare/unseen code-switched medical terms, following the paper’s benchmark setup. |
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## 📜 License |
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The paper states that data are collected from publicly available YouTube content for research purposes, and the medical dictionary resource used in construction is under institutional intellectual property licensing. |
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Please verify usage rights for your setting before redistribution or commercial use. |
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## 🙏 Citation |
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If you use ViMedCSS, please cite: |
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```bibtex |
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@inproceedings{nguyen-etal-2026-vimedcss, |
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title = "{V}i{M}ed{CSS}: A Vietnamese Medical Code-Switching Speech Dataset \& Benchmark", |
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author = "Tung X. Nguyen, Nhu Vo, Giang-Son Nguyen, Duy Mai Hoang, Chien Dinh Huynh, Inigo Jauregi Unanue, Massimo Piccardi, Wray Buntine, Dung D. Le", |
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booktitle = "Proceedings of the 2026 Language Resources and Evaluation Conference (LREC 2026)", |
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year = "2026", |
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} |
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``` |