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Color image processing in a cellular neural-network environment

机译:细胞神经网络环境中的彩色图像处理

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When low-level hardware simulations of cellular neural networks (CNNs) are very costly for exploring new applications, the use of a behavioral simulator becomes indispensable. This paper presents a software prototype capable of performing image processing applications using CNNs. The software is based on a CNN multilayer structure in which each primary color is assigned to a unique layer. This allows an added flexibility as different processing applications can be performed in parallel. To be able to handle a full range of color tones, two novel color mapping schemes were derived. In the proposed schemes the color information is obtained from the cell's state rather than from its output. This modification is necessary because for many templates CNN has only binary stable outputs from which only either a fully saturated or a black color can be obtained. Additionally, a postprocessor capable of performing pixelwise logical operations among color layers was developed to enhance the results obtained from CNN. Examples in the areas of medical image processing, image restoration, and weather forecasting are provided to demonstrate the robustness of the software and the vast potential of CNN.
机译:当蜂窝神经网络(CNN)的低级硬件仿真对于探索新应用非常昂贵时,行为仿真器的使用变得必不可少。本文介绍了一种能够使用CNN执行图像处理应用程序的软件原型。该软件基于CNN多层结构,其中每个原色都分配给一个唯一的层。由于可以并行执行不同的处理应用程序,因此可以增加灵活性。为了能够处理所有范围的色调,派生了两种新颖的颜色映射方案。在提出的方案中,颜色信息是从单元的状态而不是从其输出获得的。这种修改是必要的,因为对于许多模板,CNN仅具有二进制稳定输出,从中只能获得完全饱和或黑色的输出。此外,开发了一种能够在彩色层之间执行像素级逻辑运算的后处理器,以增强从CNN获得的结果。提供了医学图像处理,图像恢复和天气预报领域的示例,以证明该软件的功能强大和CNN的巨大潜力。

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