亚微米CMOS CNN芯片混合信号集成电路设计的挑战

Á. Rodríguez-Vázquez, R. Domínguez-Castro, S. Espejo
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引用次数: 8

摘要

只提供摘要形式。人工视觉机器与“自然”视觉系统性能的对比是由于前者固有的并行性。特别是,视网膜结合了图像传感和并行处理,以减少由人类视觉系统的后续阶段进行后续处理的数据传输量。工业应用需要能够灵活操作的CMOS视觉芯片,具有可编程功能和与传统设备的标准接口。CNN通用机器(CNN- um)是这些芯片系统开发的强大方法框架。这些芯片设计的基本系统级目标是提高单元密度和运行速度。当该技术缩小到亚微米级时,横向尺寸减小到/spl λ /,纵向尺寸减小到/spl λ //sup -a/,其中a通常在1/2左右。理想情况下,单元格密度/spl prop//spl lambda//sup 2/和时间常数/spl prop//spl lambda//sup -2/。本文解释了为什么这不是严格正确的,并解决了在亚微米技术中设计CNN芯片所面临的挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Challenges in mixed-signal IC design of CNN chips in submicron CMOS
Summary form only given. The contrast observed between the performance of artificial vision machines and "natural" vision system is due to the inherent parallelism of the former. In particular, the retina combines image sensing and parallel processing to reduce the amount of data transmitted for subsequent processing by the following stages of the human vision system. Industrial applications demand CMOS vision chips capable of flexible operation, with programmable features and standard interfacing to conventional equipment. The CNN Universal Machine (CNN-UM) is a powerful methodological framework for the systematic development of these chips. Basic system-level targets in the design of these chips are to increase the cell density and operation speed. As the technology scales down to submicron all the lateral dimensions decrease by the scaling factor /spl lambda/, and the vertical dimensions scale as /spl lambda//sup -a/, where a is typically around 1/2. Ideally, cell density /spl prop//spl lambda//sup 2/ and time constant /spl prop//spl lambda//sup -2/. The article explains why this is not strictly true, and addresses the challenges involved in the design of CNN chips in submicron technologies.
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