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Digital Hebrew Paleography: Script Types and Modes
Ahmad Droby1, Irina Rabaev2, Daria Vasyutinsky Shapira1
1Department of Computer Science, Ben-Gurion University of the Negev, Be'er Sheva 8410501, Israel.
This study introduces a deep learning tool to automatically classify medieval Hebrew manuscripts by script style and mode. The AI achieves human-level accuracy, significantly speeding up manuscript classification for researchers.
Area of Science:
- Digital Humanities
- Computational Paleography
- Artificial Intelligence in Historical Studies
Background:
- Paleography, the study of ancient handwriting, is crucial for historical text analysis.
- Numerous medieval manuscripts remain unclassified due to the limitations of manual expert analysis.
- Automated tools are needed to efficiently classify large manuscript collections.
Purpose of the Study:
- To develop and evaluate a deep learning model for classifying medieval Hebrew manuscripts.
- To classify manuscripts into 14 distinct classes based on script style and graphical mode.
- To compare the performance of automated classification with human expert paleographers.
Main Methods:
- Utilized a deep learning methodology for script type classification.
- Experimented with various input image representations and network architectures.
- Implemented a hierarchical classification approach: first regional style, then graphical mode.
- Explored the use of soft labels and a 'squareness value' to refine graphical mode classification.
Main Results:
- Achieved highest accuracy with the hierarchical classification approach.
- Redefining graphical mode labels using the 'squareness value' significantly improved classification accuracy.
- The developed deep learning model demonstrated performance on par with human expert paleographers.
Conclusions:
- Deep learning offers an effective solution for automated classification of medieval Hebrew manuscripts.
- Hierarchical classification and refined labeling strategies enhance paleographic analysis accuracy.
- AI-powered tools can significantly aid researchers in processing and understanding historical textual data.
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