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Chargrid: Towards Understanding 2D Documents

Authors :
Katti, Anoop Raveendra
Reisswig, Christian
Guder, Cordula
Brarda, Sebastian
Bickel, Steffen
Höhne, Johannes
Faddoul, Jean Baptiste
Publication Year :
2018

Abstract

We introduce a novel type of text representation that preserves the 2D layout of a document. This is achieved by encoding each document page as a two-dimensional grid of characters. Based on this representation, we present a generic document understanding pipeline for structured documents. This pipeline makes use of a fully convolutional encoder-decoder network that predicts a segmentation mask and bounding boxes. We demonstrate its capabilities on an information extraction task from invoices and show that it significantly outperforms approaches based on sequential text or document images.<br />Comment: To be published at EMNLP 2018

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.1809.08799
Document Type :
Working Paper