Precise positioning of a transponder placed on a sea floor. 3. Improvement of convergence of iteration calculation

H. Isshiki
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引用次数: 1

Abstract

The precise positioning of a sea bottom transponder is very important for measuring the sea bottom crustal movement. In the previous papers, it was shown that not only the position of a bottom transponder but also the underwater acoustic velocity distribution can be determined, if the position of surface transponders and ranges between the surface and bottom transponders are known. However, the convergence of iteration calculation was a weak point of the previous theory. In the present paper, this problem is reexamined from the basic point. This problem is a singular one that does not converge to a unique solution. A method to eliminate the singularity is proposed. In the previous theory, only the Newton-Raphson method was used to solve the nonlinear equation by iteration. In the present paper, a hybrid method consisting of Monte Carlo and Newton-Raphson methods is introduced. The stability of the calculation seems to be improved considerably.
精确定位放置在海底的应答器。3.改进迭代计算的收敛性
海底应答器的精确定位对于测量海底地壳运动是非常重要的。在以前的论文中,如果知道水面应答器的位置和水面应答器与底部应答器之间的距离,不仅可以确定底部应答器的位置,还可以确定水声速度分布。然而,迭代计算的收敛性是以往理论的一个弱点。本文从基本点对这一问题进行了重新考察。这个问题是一个不收敛于唯一解的奇异问题。提出了一种消除奇异性的方法。在以往的理论中,只采用牛顿-拉夫森法迭代求解非线性方程。本文介绍了一种由蒙特卡罗法和牛顿-拉夫森法组成的混合方法。计算的稳定性似乎有了很大的提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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