Image Based Character Recognition, Documentation System To Decode Inscription From Temple

Fuente: arXiv
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Autores principales: G, Velmathi, M, Shangavelan, D, Harish, S, Krithikshun M
Formato: Preprint
Publicado: 2024
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author G, Velmathi
M, Shangavelan
D, Harish
S, Krithikshun M
author_facet G, Velmathi
M, Shangavelan
D, Harish
S, Krithikshun M
contents This project undertakes the training and analysis of optical character recognition OCR methods applied to 10th century ancient Tamil inscriptions discovered on the walls of the Brihadeeswarar Temple.The chosen OCR methods include Tesseract,a widely used OCR engine,using modern ICR techniques to pre process the raw data and a box editing software to finetune our model.The analysis with Tesseract aims to evaluate their effectiveness in accurately deciphering the nuances of the ancient Tamil characters.The performance of our model for the dataset are determined by their accuracy rate where the evaluated dataset divided into training set and testing set.By addressing the unique challenges posed by the script's historical context,this study seeks to contribute valuable insights to the broader field of OCR,facilitating improved preservation and interpretation of ancient inscriptions
format Preprint
id arxiv_https___arxiv_org_abs_2405_17449
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Image Based Character Recognition, Documentation System To Decode Inscription From Temple
G, Velmathi
M, Shangavelan
D, Harish
S, Krithikshun M
Computer Vision and Pattern Recognition
Artificial Intelligence
Machine Learning
This project undertakes the training and analysis of optical character recognition OCR methods applied to 10th century ancient Tamil inscriptions discovered on the walls of the Brihadeeswarar Temple.The chosen OCR methods include Tesseract,a widely used OCR engine,using modern ICR techniques to pre process the raw data and a box editing software to finetune our model.The analysis with Tesseract aims to evaluate their effectiveness in accurately deciphering the nuances of the ancient Tamil characters.The performance of our model for the dataset are determined by their accuracy rate where the evaluated dataset divided into training set and testing set.By addressing the unique challenges posed by the script's historical context,this study seeks to contribute valuable insights to the broader field of OCR,facilitating improved preservation and interpretation of ancient inscriptions
title Image Based Character Recognition, Documentation System To Decode Inscription From Temple
topic Computer Vision and Pattern Recognition
Artificial Intelligence
Machine Learning
url https://arxiv.org/abs/2405.17449