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  1. Research Outputs

Markov logic networks for optical chemical structure recognition

Academic Article
Publication Date:
2014
Short description:
Markov logic networks for optical chemical structure recognition / Frasconi, Paolo; Gabbrielli, Francesco; Lippi, Marco; Marinai, Simone. - In: JOURNAL OF CHEMICAL INFORMATION AND MODELING. - ISSN 1549-9596. - 54:8(2014), pp. 2380-2390. [10.1021/ci5002197]
abstract:
Optical chemical structure recognition is the problem of converting a bitmap image containing a chemical structure formula into a standard structured representation of the molecule. We introduce a novel approach to this problem based on the pipelined integration of pattern recognition techniques with probabilistic knowledge representation and reasoning. Basic entities and relations (such as textual elements, points, lines, etc.) are first extracted by a low-level processing module. A probabilistic reasoning engine based on Markov logic, embodying chemical and graphical knowledge, is subsequently used to refine these pieces of information. An annotated connection table of atoms and bonds is finally assembled and converted into a standard chemical exchange format. We report a successful evaluation on two large image data sets, showing that the method compares favorably with the current state-of-the-art, especially on degraded low-resolution images. The system is available as a web server at http://mlocsr.dinfo.unifi.it. © 2014 American Chemical Society.
Iris type:
Articolo su rivista
Keywords:
Chemistry (all); Chemical Engineering (all); Computer Science Applications1707 Computer Vision and Pattern Recognition; Library and Information Sciences; Medicine (all)
List of contributors:
Frasconi, Paolo; Gabbrielli, Francesco; Lippi, Marco; Marinai, Simone
Handle:
https://iris.unimore.it/handle/11380/1122402
Published in:
JOURNAL OF CHEMICAL INFORMATION AND MODELING
Journal
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URL

http://pubs.acs.org/journal/jcisd8
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