UrduDoc / README.md
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metadata
title: UrduDoc (UTRNet)
emoji: 📖
colorFrom: red
colorTo: green
license: cc-by-nc-4.0
task_categories:
  - image-to-text
language:
  - ur
tags:
  - ocr
  - text recognition
  - urdu-ocr
  - utrnet
pretty_name: UrduDoc
references:
  - https://github.com/abdur75648/UTRNet-High-Resolution-Urdu-Text-Recognition
  - https://abdur75648.github.io/UTRNet/
  - https://arxiv.org/abs/2306.15782

The UrduDoc Dataset is a benchmark dataset for Urdu text line detection in scanned documents. It is created as a byproduct of the UTRSet-Real dataset generation process. Comprising 478 diverse images collected from various sources such as books, documents, manuscripts, and newspapers, it offers a valuable resource for research in Urdu document analysis. It includes 358 pages for training and 120 pages for validation, featuring a wide range of styles, scales, and lighting conditions. It serves as a benchmark for evaluating printed Urdu text detection models, and the benchmark results of state-of-the-art models are provided. The Contour-Net model demonstrates the best performance in terms of h-mean.

The UrduDoc dataset is the first of its kind for printed Urdu text line detection and will advance research in the field. It will be made publicly available for non-commercial, academic, and research purposes upon request and execution of a no-cost license agreement. To request the dataset and for more information and details about the UrduDoc , UTRSet-Real & UTRSet-Synth datasets, please refer to the Project Website of our paper "UTRNet: High-Resolution Urdu Text Recognition In Printed Documents"