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CNN Computer for High Speed Visual Inspection

机译:CNN高速视觉检查计算机

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摘要

An image entails a huge amount of data and information. For this reason, image synthesis and analysis by computer systems requires a high processing time. This represents a handicap in systems where real time processing or an immediate interpretation is demanded as in visual inspection industrial applications. Present work, introduces a computer architecture for the construction of a compact real-time system for high speed visual inspection. The vision system is essentially a Cellular Neural Network Computer (CNN-C) basically composed of a Cellular Neural Network Universal Machine (CNN-UM), an analog memory, an imager and a control unit with mixed-signal properties. This prototype has some limitations, but represents the first approximation of a new kind of systems for visual inspection. The CNN-C prototype will be tested in visual inspection of paper, metal and polymer surfaces. Besides the CNN-C can be used in many other image processing tasks, such as coding, singularity detection or multiresolution representation.
机译:图像需要大量的数据和信息。因此,通过计算机系统进行图像合成和分析需要大量的处理时间。这代表了在视觉检查工业应用中需要实时处理或即时解释的系统中的障碍。当前的工作介绍了一种计算机体系结构,用于构建用于高速视觉检查的紧凑型实时系统。视觉系统本质上是一个细胞神经网络计算机(CNN-C),主要由一个细胞神经网络通用机器(CNN-UM),一个模拟存储器,一个成像器和一个具有混合信号特性的控制单元组成。该原型有一些局限性,但代表了一种新型的视觉检查系统。 CNN-C原型将在纸,金属和聚合物表面的外观检查中进行测试。除此以外,CNN-C还可用于许多其他图像处理任务,例如编码,奇异性检测或多分辨率表示。

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