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Efficient page layout analysis on small devices

delete2009-06-01
delete6
PRE
AI
E
Eun‐Jung Han
C
Chee-Onn Wong
K
Kyungho Lee
E
Eun Yi Kim
DOI:10.1631/jzus.A0820842delete
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Abstract

Abstract

En 中文
Previously we have designed and implemented new image browsing facilities to support effective offline image contents on mobile devices with limited capabilities: low bandwidth, small display, and slow processing. In this letter, we fulfill the automatic production of cartoon contents fitting small-screen display, and introduce a clustering method useful for various types of cartoon images as a prerequisite stage for preserving semantic meaning. The usage of neural networks is to properly cut the various forms of pages. Texture information that is useful for grayscale image segmentation gives us a good clue for page layout analysis using the multilayer perceptron (MLP) based x-y recursive algorithm. We also automatically frame the segment MLP using agglomerative segmentation. Our experimental results show that the combined approaches yield good results of segmentation for several cartoons.
Keywords:
Efficient page layout analysis
MLP-based segmentation
Mobile devices
Image segmentation
Neural network
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Journal

Journal of Zhejiang University-SCIENCE B cover
Journal of Zhejiang University-SCIENCE B
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Konkuk University
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Inha University
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Soongsil University
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