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Multi-objective Optimization Based Design of High Efficiency DC-DC Switching Converters

机译:基于多目标优化的高效DC-DC开关变换器设计

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摘要

In this paper we explore the feasibility of applying multi objective stochastic optimization algorithms to the optimal design of switching DC-DC converters, in this way allowing the direct determination of the Pareto optimal front of the problem. This approach provides the designer, at affordable computational cost, a complete optimal set of choices, and a more general insight in the objectives and parameters space, as compared to other design procedures. As simple but significant study case we consider a low power DC-DC hybrid control buck converter. Its optimal design is fully analyzed basing on a Matlab public domain implementations for the considered algorithms, the GODLIKE package implementing Genetic Algorithm (GA), Particle Swarm Optimization (PSO) and Simulated Annealing (SA). In this way, in a unique optimization environment, three different optimization approaches are easily implemented and compared. Basic assumptions for the Matlab model of the converter are briefly discussed, and the optimal design choice is validated “a-posteriori” with SPICE simulations.
机译:在本文中,我们探讨了将多目标随机优化算法应用于开关DC-DC转换器的优化设计的可行性,从而可以直接确定问题的Pareto最优前沿。与其他设计过程相比,这种方法以可承受的计算成本为设计人员提供了完整的最佳选择集,并且在目标和参数空间上具有更广泛的洞察力。作为简单但有意义的研究案例,我们考虑使用低功率DC-DC混合控制降压转换器。根据Matlab公共领域对所考虑算法,GODLIKE软件包(遗传算法(GA),粒子群优化(PSO)和模拟退火(SA))的实现,对其最佳设计进行了全面分析。这样,在独特的优化环境中,可以轻松实现和比较三种不同的优化方法。简要讨论了转换器的Matlab模型的基本假设,并通过SPICE仿真“ a-posteriori”验证了最佳设计选择。

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