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Erschienen in: International Journal on Document Analysis and Recognition (IJDAR) 3/2014

01.09.2014 | Original Paper

A graph-based approach for segmenting touching lines in historical handwritten documents

verfasst von: David Fernández-Mota, Josep Lladós, Alicia Fornés

Erschienen in: International Journal on Document Analysis and Recognition (IJDAR) | Ausgabe 3/2014

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Abstract

Text line segmentation in handwritten documents is an important task in the recognition of historical documents. Handwritten document images contain text lines with multiple orientations, touching and overlapping characters between consecutive text lines and different document structures, making line segmentation a difficult task. In this paper, we present a new approach for handwritten text line segmentation solving the problems of touching components, curvilinear text lines and horizontally overlapping components. The proposed algorithm formulates line segmentation as finding the central path in the area between two consecutive lines. This is solved as a graph traversal problem. A graph is constructed using the skeleton of the image. Then, a path-finding algorithm is used to find the optimum path between text lines. The proposed algorithm has been evaluated on a comprehensive dataset consisting of five databases: ICDAR2009, ICDAR2013, UMD, the George Washington and the Barcelona Marriages Database. The proposed method outperforms the state-of-the-art considering the different types and difficulties of the benchmarking data.

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Fußnoten
1
For the sake of understanding we denote \(v \in \{\gamma _i\}\) to represent a node belonging to the category of initial nodes (equally for the rest of types).
 
2
This database is available upon request to the authors of the paper.
 
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Metadaten
Titel
A graph-based approach for segmenting touching lines in historical handwritten documents
verfasst von
David Fernández-Mota
Josep Lladós
Alicia Fornés
Publikationsdatum
01.09.2014
Verlag
Springer Berlin Heidelberg
Erschienen in
International Journal on Document Analysis and Recognition (IJDAR) / Ausgabe 3/2014
Print ISSN: 1433-2833
Elektronische ISSN: 1433-2825
DOI
https://doi.org/10.1007/s10032-014-0220-0

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