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首页> 外文期刊>IEEE transactions on evolutionary computation >An Evolutionary Algorithm-Based Approach to Automated Design of Analog and RF Circuits Using Adaptive Normalized Cost Functions
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An Evolutionary Algorithm-Based Approach to Automated Design of Analog and RF Circuits Using Adaptive Normalized Cost Functions

机译:基于自适应算法归一化成本函数的基于进化算法的模拟和射频电路自动设计方法

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Typical analog and radio frequency (RF) circuit sizing optimization problems are computationally hard and require the handling of several conflicting cost criteria. Many researchers have used sequential stochastic refinement methods to solve them, where the different cost criteria can either be combined into a single-objective function to find a unique solution, or they can be handled by multiobjective optimization methods to produce tradeoff solutions on the Pareto front. This paper presents a method for solving the problem by the former approach. We propose a systematic method for incorporating the tradeoff wisdom inspired by the circuit domain knowledge in the formulation of the composite cost function. Key issues have been identified and the problem has been divided into two parts: a) normalization of objective functions and b) assignment of weights to objectives in the cost function. A nonlinear, parameterized normalization strategy has been proposed and has been shown to be better than traditional linear normalization functions. Further, the designers'' problem specific knowledge is assembled in the form of a partially ordered set, which is used to construct a hierarchical cost graph for the problem. The scalar cost function is calculated based on this graph. Adaptive mechanisms have been introduced to dynamically change the structure of the graph to improve the chances of reaching the near-optimal solution. A correlated double sampling offset-compensated switched capacitor analog integrator circuit and an RF low-noise amplifier in an industry-standard 0.18mum CMOS technology have been chosen for experimental study. Optimization results have been shown for both the traditional and the proposed methods. The results show significant improvement in both the chosen design problems
机译:典型的模拟和射频(RF)电路尺寸优化问题在计算上比较困难,需要处理几个相互矛盾的成本标准。许多研究人员已经使用顺序随机优化方法来解决这些问题,其中不同的成本标准可以组合为一个目标函数以找到唯一的解决方案,也可以通过多目标优化方法进行处理以在Pareto前沿产生权衡解决方案。本文提出了一种用前一种方法解决问题的方法。我们提出了一种系统的方法,将在电路领域知识的启发下进行权衡的智慧纳入复合成本函数的制定中。确定了关键问题,并将问题分为两个部分:a)目标函数的规范化; b)成本函数中目标的权重分配。已经提出了一种非线性的,参数化的归一化策略,并且已被证明优于传统的线性归一化函数。此外,设计者针对问题的知识以部分排序的集合的形式进行组装,该集合用于构建问题的分层成本图。标量成本函数是基于该图计算的。引入了自适应机制来动态更改图的结构,以提高达到接近最佳解的机会。实验研究选择了行业标准的0.18μmCMOS技术中的相关双采样失调补偿开关电容器模拟积分器电路和RF低噪声放大器。已针对传统方法和建议方法显示了优化结果。结果表明,在选择的两个设计问题上都有显着改善

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