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Accurate and Precise Computation using Analog VLSI, with Applications to Computer Graphics and Neural Networks

机译:使用模拟VLSI进行精确,精确的计算,并应用于计算机图形学和神经网络

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摘要

This thesis develops an engineering practice and design methodology to enable us to use CMOS analog VLSI chips to perform more accurate and precise computation. These techniques form the basis of an approach that permits us to build computer graphics and neural network applications using analog VLSI. The nature of the design methodology focuses on defining goals for circuit behavior to be met as part of the design process. To increase the accuracy of analog computation, we develop techniques for creating compensated circuit building blocks, where compensation implies the cancellation of device variations, offsets, and nonlinearities. These compensated building blocks can be used as components in larger and more complex circuits, which can then also be compensated. To this end, we develop techniques for automatically determining appropriate parameters for circuits, using constrained optimization. We also fabricate circuits that implement multi-dimensional gradient estimation for a gradient descent optimization technique. The parameter-setting and optimization tools allow us to automatically choose values for compensating our circuit building blocks, based on our goals for the circuit performance. We can also use the techniques to optimize parameters for larger systems, applying the goal-based techniques hierarchically. We also describe a set of thought experiments involving circuit techniques for increasing the precision of analog computation. Our engineering design methodology is a step toward easier use of analog VLSI to solve problems in computer graphics and neural networks. We provide data measured from compensated multipliers built using these design techniques. To demonstrate the feasibility of using analog VLSI for more quantitative computation, we develop small applications using the goal-based design approach and compensated components. Finally, we conclude by discussing the expected significance of this work for the wider use of analog VLSI for quantitative computation, as well as qualitative.
机译:本文开发了一种工程实践和设计方法,使我们能够使用CMOS模拟VLSI芯片来执行更精确的计算。这些技术构成了一种方法的基础,该方法允许我们使用模拟VLSI构建计算机图形和神经网络应用程序。设计方法的本质集中在定义电路行为的目标,这些目标应作为设计过程的一部分来满足。为了提高模拟计算的准确性,我们开发了用于创建补偿电路构件的技术,其中补偿意味着消除了设备变化,失调和非线性。这些补偿的构建模块可以用作较大和更复杂的电路中的组件,然后也可以对其进行补偿。为此,我们开发了使用约束优化自动确定电路适当参数的技术。我们还制造了用于实现梯度下降优化技术的多维梯度估计的电路。参数设置和优化工具使我们能够根据电路性能目标自动选择用于补偿电路构件的值。我们还可以使用这些技术来优化大型系统的参数,并逐级应用基于目标的技术。我们还将描述一组涉及电路技术的思想实验,以提高模拟计算的精度。我们的工程设计方法论是朝着更容易使用模拟VLSI来解决计算机图形和神经网络问题迈出的一步。我们提供从使用这些设计技术构建的补偿乘法器测得的数据。为了证明使用模拟VLSI进行更多定量计算的可行性,我们使用基于目标的设计方法和补偿组件来开发小型应用程序。最后,我们通过讨论这项工作对于将模拟VLSI广泛用于定量计算和定性分析的预期意义进行总结。

著录项

  • 作者

    Kirk David B.;

  • 作者单位
  • 年度 1993
  • 总页数
  • 原文格式 PDF
  • 正文语种 {"code":"ko","name":"Korean","id":24}
  • 中图分类

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