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Study of multiscale global optimization based on parameter space partition

机译:基于参数空间划分的多尺度全局优化研究

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Inverse problems in geophysics are usually described as data misfit minimization problems, which are difficult to solve because of various mathematical features, such as multi-parameters, nonlinearity and ill-posedness. Local optimization based on function gradient can not guarantee to find out globally optimal solutions, unless a starting point is sufficiently close to the solution. Some global optimization methods based on stochastic searching mechanisms converge in the limit to a globally optimal solution with probability 1. However, finding the global optimum of a complex function is still a great challenge and practically impossible for some problems so far. This work develops a multiscale deterministic global optimization method which divides definition space into sub-domains. Each of these sub-domains contains the same local optimal solution. Local optimization methods and attraction field searching algorithms are combined to determine the attraction basin near the local solution at different function smoothness scales. With Multiscale Parameter Space Partition method, all attraction fields are to be determined after finite steps of parameter space partition, which can prevent redundant searching near the known local solutions. Numerical examples demonstrate the efficiency, global searching ability and stability of this method.
机译:地球物理学中的逆问题通常被描述为数据失配最小化问题,由于各种数学特征(例如多参数,非线性和不适定),这些问题很难解决。除非起点与解决方案足够接近,否则基于函数梯度的局部优化不能保证找出全局最优解。一些基于随机搜索机制的全局优化方法在极限上收敛到概率为1的全局最优解。但是,到目前为止,对于某些问题,找到复杂函数的全局最优仍然是一个巨大的挑战,实际上是不可能的。这项工作开发了一种多尺度确定性全局优化方法,该方法将定义空间划分为子域。这些子域中的每一个都包含相同的局部最优解。结合局部优化方法和吸引场搜索算法,以不同的函数平滑度尺度确定局部解附近的吸引盆地。使用多尺度参数空间划分方法,所有吸引场都将在参数空间划分的有限步骤之后确定,这可以防止在已知局部解附近进行冗余搜索。数值算例表明了该方法的有效性,全局搜索能力和稳定性。

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