Turkish Journal of Computer and Mathematics Education
Journal license

Journal

Turkish Journal of Computer and Mathematics Education


Volume
& Issue

Volume 11, Issue 1


Published
on


Pages

567-574


DOI

Article

Handwritten Odia Digits Recognition Using Residual Neural Network


Authors

Mrinmoy Sen Affiliation:
Computer Science & Engineering, Haldia Institute of Technology, India
, Shaon Bandyopadhyay Affiliation:
Dept of CSE, Haldia Institute of Technology, W.B., India
, Palash Ray Affiliation:
Computer Science & Engineering, Haldia Institute of Technology, India
, Mahuya Sasmal Affiliation:
Computer Science & Engineering, Haldia Institute of Technology, India
and Rajesh Mukherjee Affiliation:
Computer Science & Engineering, Haldia Institute of Technology, India


Abstract

Handwritten digit recognition is a highly evolved research domain of pattern recognition. Handwritten digits are segmented first and then they are classified using the handwritten digit recognition technique. The Odia script is one of the writing systems in Odisha. In this paper, an efficient Handwritten Odia numeral digit recognition using ResNet is proposed. Deep learning is a recent research trend in this field. Architectures like Residual neural Networks (ResNet) are being used for classification. ResNet is an architecture that is computationally expensive and normally used to provide high accuracy in classification problems. The structural design of the network consists of sacks of two convolutional (Conyv2D) layers with Batch Normalization and an activation function called Relu. We evaluated our scheme on 4970 handwritten samples of Odia numerals from the ISI database and from the experiment we have achieved 99.20% recognition rate.


Keywords

CNN, ResNet, Handwritten digits recognition, Odia, ISI database


Citation

Sen, M., Bandyopadhyay, S., Ray, P., Sasmal, M., & Mukherjee, R. (2020). Handwritten odia digits recognition using residual neural network. Turkish Journal of Computer and Mathematics Education, 11(1), 567–574.

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