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模拟退火法临界温度估算及整体最优化新算法
引用本文:袁健,朱德懋.模拟退火法临界温度估算及整体最优化新算法[J].南京航空航天大学学报,1997,29(5):500-505.
作者姓名:袁健  朱德懋
作者单位:[1]南京航空航天大学理学院 [2]南京航空航天大学振动工程研究所
摘    要:模拟退火法是模拟固体退火过程的基础上发展起来的一种整体最优化算法,本文在研究模拟退火过程的特征量--临界温度和新的随机搜索算法的基础上,得到一种只需在较小的温度范围内进行退火的新的模拟退火算法,数值试验表明,对于目标函数的局部极小值和整体最小值不接近相的优化问题,本算法只需较少数量的迭代便能收敛于整体最小解。

关 键 词:最优化算法  临界温度  模拟退火  随机搜索

Evaluation of Critical Temperature in Simulated Annealing and New Global Optimization Algorithm
Yuan Jian,Li Mingcheng.Evaluation of Critical Temperature in Simulated Annealing and New Global Optimization Algorithm[J].Journal of Nanjing University of Aeronautics & Astronautics,1997,29(5):500-505.
Authors:Yuan Jian  Li Mingcheng
Abstract:Simulated annealing(SA) algorithm is a global optimization algorithm developed from simulating an annealing process in thermophysics.The application of SA is still limited because of its poor efficiency.The key to the efficiency lies in the choice of initial temperature and the random search technique in annealing simulation.The existing study on initial temperature was based on many trial tests for specific problems and the formula derived for estimating initial temperature lacks wide applicability. With localized random search technique, these SA algorithms are difficult to get rid of local minima. After the study on the critical temperature characteristic of annealing process and a random search technique,a new SA algorithm is constructed, in which annealing simulation is carried out within a small temperature range.Numerical tests show that ,if the values of cost function of global minimum and local minima in the problem concerned are not nearly equal, the algorithm converges to the global optimal solution after several iterations.
Keywords:optimization algorithms  critical temperature  simulated annealing  random search  
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