Reconfiguration of Spiking Neural Network for Optimization with Applications to Image Processing

S. Chaturvedi, A. Khurshid, S. Dorle
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引用次数: 3

Abstract

This paper depicts the restructuring of different models of third generation of Artificial neural network, that is, the spiking neural networks for image processing applications. The proposed work aims towards implementation of a novel algorithm using different models of Spiking Neural Networks which will improve upon the optimization results in the field of image processing. In this paper, we focus on various evaluation parameters like mean square error, mean absolute error peak signal to noise ratios as well as enhance the output using ANN as wellas Leaky Integrate and firing Model of Spiking Neural Networks.
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峰值神经网络重构优化及其在图像处理中的应用
本文描述了第三代人工神经网络,即用于图像处理的峰值神经网络的不同模型的重构。提出的工作旨在实现一种新的算法,使用不同的峰值神经网络模型,这将改善图像处理领域的优化结果。在本文中,我们重点研究了各种评价参数,如均方误差,平均绝对误差峰值信噪比,并使用人工神经网络以及脉冲神经网络的漏积分和发射模型来增强输出。
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