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Issue title: Intelligent and Fuzzy Systems applied to Language & Knowledge Engineering
Guest editors: David Pinto, Vivek Kumar Singh, Aline Villavicencio, Philipp Mayr-Schlegel and Efstathios Stamatatos
Article type: Research Article
Authors: García-Calderón, Miguel Ángel; * | García-Hernández, René Arnulfo; * | Ledeneva, Yulia; *
Affiliations: Autonomous University of the State of Mexico, Instituto Literario #100, Col. Centro, Toluca, State of Mexico
Correspondence: [*] Corresponding author. Miguel Ángel García-Calderón, René Arnulfo García-Hernández and Yulia Ledeneva, Autonomous University of the State of Mexico, Instituto Literario #100, Col. Centro, Toluca 50000, State of Mexico. E-mails: [email protected] (Miguel Ángel García-Calderón), [email protected] (René Arnulfo García-Hernández) and [email protected] (Yulia Ledeneva).
Abstract: Text Lines Segmentation (TLS) affects the performance of Manuscript Text Recognition (MTR) systems from document images. At the same time, the TLS task consists of two tasks: the first is Text Lines Localization (TLL) and the second is the Search of the Path that Divides neighboring Lines (SPDL) of handwritten text. The TLS task depends on the type of language, author’s writing style, pen type and document quality. In this paper, Projected Energy Map with Alpha blending (PEM-Alpha) is presented as an unsupervised method for the TLL task, which can work with lines that are touching or overlapping. In addition, SPDL-GA is proposed as a method for SPDL task which finds the line that best splits the text. The experimentation is carried out with a standard collection of historical multilingual documents. Through experimentation it is demostrated that the proposed methods outperform other state-of-the-art methods, even in documents with mixed languages. In addition, few parameters required by PEM-Alpha and SPDL-GA are automatically calculated.
Keywords: Handwritten text line segmentation, text line segmentation, document image processing, projection profile, segmentation, historical documents
DOI: 10.3233/JIFS-169476
Journal: Journal of Intelligent & Fuzzy Systems, vol. 34, no. 5, pp. 2901-2911, 2018
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