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Behavioral synthesis of field programmable analog array circuits

机译:现场可编程模拟阵列电路的行为综合

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This article presents methods to translate a behavioral-level analog description into a Field Programmable Analog Array (FPAA) implementation. The methods consist of several steps that are referred to as function decomposition, macrocell synthesis, placement and routing, and postplacemeat simulation. The focus of this article is on the first three steps. The function decomposition step deals with decomposing a high-order system function into a set of lower-order functions. We present an efficient procedure for searching for an optimal solution. This procedure is based on first formally demonstrating the equivalence of two previously used optimization criteria. The objective of the macrocell synthesis step is to generate a hardware realization. A modified signal flow graph is introduced to represent FPAA circuits and graph transformations are used to identify the realizations that comply with the FPAA hardware constraints. The modified signal flow graph also allows scaling of capacitor values due to the limited set of allowable values in an FPAA. For the placement and routing step, an efficient method to estimate the circuit performance degradation due to parasitic effects is given. Using performance degradation as the cost function, an algorithm for finding an optimal FPAA placement and routing configuration is given. The efficacy of the methods developed is demonstrated by direct measurements on a set of filters.
机译:本文介绍了将行为级别的模拟描述转换为现场可编程模拟阵列(FPAA)实现的方法。该方法由几个步骤组成,这些步骤称为功能分解,宏单元合成,放置和路由以及后餐肉模拟。本文的重点是前三个步骤。函数分解步骤涉及将高阶系统函数分解为一组低阶函数。我们提出了寻找最佳解决方案的有效程序。此过程基于首先正式证明两个先前使用的优化标准的等效性。宏单元合成步骤的目的是生成硬件实现。引入了修改后的信号流图来表示FPAA电路,并使用图变换来识别符合FPAA硬件约束的实现。修改后的信号流图还允许缩放电容器值,这是因为FPAA中的允许值数量有限。对于布局和布线步骤,给出了一种有效的方法来估算由于寄生效应引起的电路性能下降。以性能下降为代价函数,给出了寻找最佳FPAA布局和路由配置的算法。通过对一组过滤器进行直接测量证明了所开发方法的有效性。

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