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README.md
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| 1 |
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---
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language:
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- as
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- bn
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- en
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- gu
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- hi
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- kn
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- ml
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- mr
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- ne
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- or
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- pa
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- ta
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- te
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license: cc-by-4.0
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task_categories:
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- text-to-speech
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- automatic-speech-recognition
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size_categories:
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- 100K<n<1M
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tags:
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- indic
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- multilingual
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- tts
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- speech
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---
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# Processed TTS Multilingual Data
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Validated and quality-checked multilingual speech datasets for TTS training, covering 12+ Indian languages.
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## Datasets Included
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| Subset | Samples | Hours | Description |
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|---|---|---|---|
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| `indic_voices_r` | 239,684 | 548.8h | Indic Voices_R — IVR recordings |
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| `rasa` | 201,509 | 361.2h | RASA — read speech (wiki, conv, book, news) |
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| `indictts_iitm` | 155,236 | 253.6h | Indic TTS (IIT Madras) — studio TTS recordings at 48kHz |
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| **Total** | **596,429** | **1,163.6h** | |
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## Languages
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Assamese (as), Bengali (bn), English (en), Gujarati (gu), Hindi (hi), Kannada (kn), Malayalam (ml), Marathi (mr), Nepali (ne), Odia (or), Punjabi (pa), Tamil (ta), Telugu (te)
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## Structure
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```
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├── indic_voices_r/
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│ ├── metadata.csv
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│ └── audio/{lang}/*.wav
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├── rasa/
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│ ├── metadata.csv
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│ └── audio/{lang}/*.wav
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└── indictts_iitm/
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├── metadata.csv
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└── audio/{lang}/*.wav
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```
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## Schema (metadata.csv)
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Each subset has a `metadata.csv` with these columns:
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| Field | Description |
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|---|---|
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| `file_name` | Relative path to audio file (e.g., `audio/bn/file.wav`) |
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| `text` | Transcript text |
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| `lang` | ISO 639-1 language code |
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| `speaker_id` | Speaker identifier |
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| `duration` | Audio duration in seconds |
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| `source` | Original data source |
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| `emotion` | Emotion label |
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| `domain` | Text domain (wiki, conv, book, news, etc.) |
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| `snr_db` | Signal-to-noise ratio in dB |
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| `silence_ratio` | Fraction of silent frames |
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| `clipping_ratio` | Fraction of clipped samples |
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## Quality Checks Applied
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All data has been validated through a 4-check pipeline:
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1. **SNR + Silence + Duration** — reject low SNR (<10dB), excess silence (>35%), out-of-range duration (<1.5s or >30s), clipping (>1%)
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2. **Speaking Rate** — reject abnormal speaking rates (<2 or >25 chars/sec)
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3. **Text Normalization** — Unicode NFC normalization applied
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4. **Audio Corruption** — reject empty, all-zeros, NaN/Inf, DC offset >0.1
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## Usage
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```python
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| 89 |
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from datasets import load_dataset
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| 90 |
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# Load a specific subset
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ds = load_dataset(
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"PalakEngineerMaster/Processed_TTS_Multilingual_Data",
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data_dir="rasa",
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split="train",
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)
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+
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# Access a sample
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sample = ds[0]
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| 100 |
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print(sample["text"])
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| 101 |
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# audio is at sample["file_name"]
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```
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## Audio Format
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- Format: WAV
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- Sample rate: 16kHz (Indic Voices_R, RASA) / 48kHz (Indic TTS IIT M)
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| 108 |
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- Channels: mono
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