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首页> 外文期刊>Journal of VLSI signal processing systems >Programmable CMOS CNN Cell Based on Floating-gate Inverter Unit
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Programmable CMOS CNN Cell Based on Floating-gate Inverter Unit

机译:基于浮栅反相器单元的可编程CMOS CNN单元

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摘要

At present, the Cellular Neural Network (CNN) is a potential parallel structure able to perform image processing tasks in real-time when is effectively implemented in CMOS technology. The CNN silicon integration success is due mainly to the local connectivity of processing cells. In this work, an alternative design based on floating-gate MOS inverters is presented, which uses unipolar signals for solving binary tasks. The approach brings a fast response in a reduced silicon area, as shown through electrical simulations. A prototype cell in CMOS technology (AMI, 1.2 micron) was fabricated and tested for eight image processing tasks.
机译:当前,当在CMOS技术中有效实现时,蜂窝神经网络(CNN)是一种潜在的并行结构,能够实时执行图像处理任务。 CNN硅集成的成功主要归因于处理单元的本地连接。在这项工作中,提出了一种基于浮栅MOS反相器的替代设计,该设计使用单极性信号来解决二进制任务。如电气仿真所示,该方法在减小的硅面积上带来了快速响应。制作了CMOS技术的原型单元(AMI,1.2微米),并测试了八种图像处理任务。

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