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---
dataset_info:
features:
- name: id
dtype: string
- name: image
dtype: image
- name: label
dtype: string
splits:
- name: train
num_bytes: 1128567156
num_examples: 28318
download_size: 1119122327
dataset_size: 1128567156
configs:
- config_name: default
data_files:
- split: train
path: data/train-*
license: odc-by
task_categories:
- image-to-text
language:
- bo
tags:
- low-resource
- ocr
- bdrc
- buddhism
- Tibet
size_categories:
- 10K<n<100K
---
---
# Dataset Card for OCR-Betsug
A line-to-text dataset for Tibetan OCR of the Betsug script.
## Dataset Details
### Dataset Description
- **Curated by:** Buddhist Digital Resource Center
- **Language:** Tibetan
- **Total Samples:** 28,318 line images with text transcriptions
### Dataset Structure
- **Features:**
- `id`: Image file identifier
- `image`: Image file of text
- `label`: Text transcription
- **Splits:**
- **Train:** 28,318 samples
## Uses
### Direct Use
- Training and evaluation of Tibetan OCR models
- Betsug (or other Ume) script OCR development
- Comparative analysis of historical scripts
- Large-scale OCR model pretraining
### Out-of-Scope Use
- Not be suitable for printed Tibetan texts or Uchen script
- May not suitably represent contemporary digital Tibetan fonts
## Dataset Creation
### Curation Rationale and Process
This dataset was created from 2 manuscripts to support the development of robust OCR systems for Tibetan literature, including handwritten material.
## Usage
```python
from datasets import load_dataset
# Load training split
dataset = load_dataset("openpecha/OCR-Betsug", split="train")
# Example features
print(dataset[0])
# {'id': 'I1KG812780077_1',
# 'image': <PIL.JpegImagePlugin.JpegImageFile image mode=RGB size=2133x52 at 0x7B784AD93860>,
# 'label': 'ཀྱི་ཐིག་ལེ་ཏེ་། རྟེན་དང་བརྟེན་པར་བཅས་པ་ཉིད་། རང་ཉིད་གསལ་བར་བྱིན་བརླབས་ན་། ཇི་ལྟར་སྣང་སྲིད་ཆོས་ཐམས་ཅད་། ལྷན་ཅིག་སྐྱེས་པའི་ངོ་བོར་'}
```
## Dataset Contact
BDRC - help@bdrc.org |