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Advanced Applications on Bilingual Document Analysis and Processing Systems

Author

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  • Shalini Puri

    (BIT, Mesra, Ranchi, India)

  • Satya Prakash Singh

    (BIT, Mesra, Ranchi, Jharkhand, India)

Abstract

Today, rapid digitization requires efficient bilingual non-image and image document classification systems. Although many bilingual NLP and image-based systems provide solutions for real-world problems, they primarily focus on text extraction, identification, and recognition tasks with limited document types. This article discusses a journey of these systems and provides an overview of their methods, feature extraction techniques, document sets, classifiers, and accuracy for English-Hindi and other language pairs. The gaps found lead toward the idea of a generic and integrated bilingual English-Hindi document classification system, which classifies heterogeneous documents using a dual class feeder and two character corpora. Its non-image and image modules include pre- and post-processing stages and pre-and post-segmentation stages to classify documents into predefined classes. This article discusses many real-life applications on societal and commercial issues. The analytical results show important findings of existing and proposed systems.

Suggested Citation

  • Shalini Puri & Satya Prakash Singh, 2020. "Advanced Applications on Bilingual Document Analysis and Processing Systems," International Journal of Applied Metaheuristic Computing (IJAMC), IGI Global, vol. 11(4), pages 149-193, October.
  • Handle: RePEc:igg:jamc00:v:11:y:2020:i:4:p:149-193
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