Digital implementation of cellular neural networks

Ryan Grech, E. Gatt, I. Grech, J. Micallef
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Abstract

This paper presents a digital cellular neural network (CNN) for digital image processing applications. The CNN is a relatively new field in this research, making use of a high degree of parallelism to achieve higher levels of processing power which continuously paves new ways of how problems can be tackled. A digital architecture is employed due to the fact that digital devices allow for a very robust, yet simple and modular design while at the same time maintaining established performance standards. Digital design was carried out with VHDL using an iterative design methodology, meaning that only one out of several building blocks are chosen to ensure optimality, robustness and operational correctness. The main design objectives were to construct a digital CNN architecture which is fast and compact for digital image processing applications like next generation digital cameras.
细胞神经网络的数字化实现
本文提出了一种用于数字图像处理的数字细胞神经网络(CNN)。CNN在这项研究中是一个相对较新的领域,它利用高度并行性来实现更高水平的处理能力,不断为解决问题铺平新的道路。采用数字架构是因为数字设备允许非常健壮,但简单和模块化的设计,同时保持既定的性能标准。数字设计是用VHDL进行的,使用迭代设计方法,这意味着只选择几个构建块中的一个来确保最优性、鲁棒性和操作正确性。主要设计目标是构建一个快速紧凑的数字CNN架构,用于下一代数码相机等数字图像处理应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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