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SCENE TEXT REMOVAL

A synthetic benchmark database for scene text removal is now released by Deep Learning and Vision Computing Lab of South China University of Technology. The database can be downloaded through the following links:

Description

The training set of synthetic database consists of a total of 8000 images and the test set contains 800 images; all the training and test samples are resized to 512 × 512. The code for generating synthetic dataset and more synthetic text images as described in “Ankush Gupta, Andrea Vedaldi, Andrew Zisserman, Synthetic Data for Text localisation in Natural Images, CVPR 2016", and can be found in (https://github.com/ankush-me/SynthText). Besides, all the real scene text images are also resized to 512 × 512.

For more details, please refer to our arxiv paper.

Paper

Please consider to cite our paper when you use our database:

@article{zhang2019EnsNet,
  title     = {EnsNet: Ensconce Text in the Wild},
  author    = {Shuaitao Zhang∗, Yuliang Liu∗, Lianwen Jin†, Yaoxiong Huang, Songxuan Lai
  joural    = {AAAI}
  year      = {2019}
}

Feedback

Suggestions and opinions of dataset of this dataset (both positive and negative) are greatly welcome. Please contact the authors by sending email to [email protected] or [email protected].

Copyright

The synthetic database can be only used for non-commercial research purpose.

For commercial purpose usage, please contact Dr. Lianwen Jin: [email protected].

Copyright 2018, Deep Learning and Vision Computing Lab, South China University of Teacnology.http://www.dlvc-lab.net

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