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Erschienen in: International Journal on Document Analysis and Recognition (IJDAR) 1/2017

05.01.2017 | Original Paper

Texture feature benchmarking and evaluation for historical document image analysis

verfasst von: Maroua Mehri, Pierre Héroux, Petra Gomez-Krämer, Rémy Mullot

Erschienen in: International Journal on Document Analysis and Recognition (IJDAR) | Ausgabe 1/2017

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Abstract

The use of different texture-based methods is pervasive in different subfields and tasks of document image analysis (DIA) and particularly in historical DIA (HDIA). Nevertheless, faced with a large diversity of texture-based methods used for HDIA, few questions arise. Which texture methods are firstly well suited for segmenting graphical contents from textual ones, discriminating various text fonts and scales, and separating different types of graphics? Then, which texture-based method represents a constructive compromise between the performance and the computational cost? Thus, in this article a benchmarking of the most classical and widely used texture-based feature sets has been conducted using a classical texture-based pixel-labeling scheme on a large corpus of historical documents to have satisfactory and clear answers to the above questions. We focus on determining the performance of each texture-based feature set according to the document content. The results reported in this study provide firstly a qualitative measure of which texture-based feature sets are the most appropriate and secondly a useful benchmark in terms of performance and computational cost for current and future research efforts in HDIA.

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Fußnoten
3
The DIGIDOC-Texture dataset and its ground truth are temporarily available on http://​litis-digidoc.​univ-rouen.​fr/​texture/​DIGIDOC-Texture.​tar.​gz. This dataset is available on request subject to the agreement from the French national library “bibliothèque nationale de France” (BnF).
 
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Metadaten
Titel
Texture feature benchmarking and evaluation for historical document image analysis
verfasst von
Maroua Mehri
Pierre Héroux
Petra Gomez-Krämer
Rémy Mullot
Publikationsdatum
05.01.2017
Verlag
Springer Berlin Heidelberg
Erschienen in
International Journal on Document Analysis and Recognition (IJDAR) / Ausgabe 1/2017
Print ISSN: 1433-2833
Elektronische ISSN: 1433-2825
DOI
https://doi.org/10.1007/s10032-016-0278-y

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