U-Net-bin: hacking the document image binarization contest

Author:

Bezmaternykh P.V.1,Ilin D.A.2,Nikolaev D.P.3

Affiliation:

1. Smart Engines Service LLC, 117312, Moscow, Russia; Federal Research Center "Computer Science and Control" of RAS, 117312, Moscow, Russia

2. Smart Engines Service LLC, 117312, Moscow, Russia

3. Smart Engines Service LLC, 117312, Moscow, Russia; Institute for Information Transmission Problems of RAS, 127051, Moscow, Russia

Abstract

Image binarization is still a challenging task in a variety of applications. In particular, Document Image Binarization Contest (DIBCO) is organized regularly to track the state-of-the-art techniques for the historical document binarization. In this work we present a binarization method that was ranked first in the DIBCO`17 contest. It is a convolutional neural network (CNN) based method which uses U-Net architecture, originally designed for biomedical image segmentation. We describe our approach to training data preparation and contest ground truth examination and provide multiple insights on its construction (so called hacking). It led to more accurate historical document binarization problem statement with respect to the challenges one could face in the open access datasets. A docker container with the final network along with all the supplementary data we used in the training process has been published on Github.

Funder

Российский Фонд Фундаментальных Исследований

Publisher

Samara State National Research University

Subject

Electrical and Electronic Engineering,Computer Science Applications,Atomic and Molecular Physics, and Optics

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