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Classification of Ancient Handwritten Tamil Characters on Palm Leaf Inscription Using Modified Adaptive Backpropagation Neural Network with GLCM Features

机译:使用GLCM功能的修改自适应Backpropagation神经网络对棕榈叶题字的古代手写泰米尔特征的分类

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摘要

The core aspiration of this proposed work is to classify Tamil characters inscribed in the palm leaf manuscript using an Artificial Neural Network. Tamil palm leaf manuscript characters in the form of images were processed and segmented using contour-based convex hull bounding box segmentation. The segmented characters were transformed into two forms: Binary Coded Value and the Gray-Level Co-occurrence Matrix (GLCM) feature. The features extracted from the segmented characters were trained by the proposed method of the Modified Adaptive Backpropagation Network (MABPN) algorithm with Shannon activation function. Weight initialization plays an important role in the Backpropagation Neural Network, and hence Nguyen-Widrow weight initialization was introduced to initialize the weights instead of random weight initialization in the proposed method. The models evaluated are MABPN with Shannon activation function using Nguyen-Widrow weight initialization in two forms of input: Binary Coded Value and GLCM feature extracted values. The proposed method with GLCM features as input gave a promising result over binary coded transform.
机译:该拟议工作的核心愿望是使用人工神经网络对掌上叶片稿件中刻的泰米尔字符进行分类。使用基于轮廓的凸母线绑定框分段处理图像形式的泰米尔棕榈叶稿件,并分割图像。将分段字符转换为两种形式:二进制编码值和灰度级共出矩阵(GLCM)特征。从分段字符中提取的特征是通过具有Shannon激活函数的修改的自适应反向化网络(MABPN)算法的提出方法训练。重量初始化在BackProjagation神经网络中起重要作用,因此引入了Nguyen-WidRow重量初​​始化以初始化权重,而不是在所提出的方法中初始化权重。评估的模型是使用尼文 - Widrow重量初​​始化的Shannon激活函数的MABPN:二进制编码值和GLCM功能提取值。具有GLCM特征的提出的方法,因为输入给出了二进制编码变换的有希望的结果。

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