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单波束测深仪水深粗差检测与修正新算法及其效果 被引量:11
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作者 刘力 孙再刚 +2 位作者 简波 胡其武 张乐君 《水运工程》 北大核心 2014年第11期55-59,共5页
单波束测深仪是现代海洋测量尤其是内河水下地形测量中的主要测量仪器。即使在声速设定正确的前提下,单波束测深仪的观测值仍然会有各类型的粗差。针对其原始水深值粗差处理问题,创新性地提出"地形链"的概念,设计了一种新的... 单波束测深仪是现代海洋测量尤其是内河水下地形测量中的主要测量仪器。即使在声速设定正确的前提下,单波束测深仪的观测值仍然会有各类型的粗差。针对其原始水深值粗差处理问题,创新性地提出"地形链"的概念,设计了一种新的针对单波束测深仪水深观测值的粗差检测与修正算法,针对长江流域的单波束测深数据进行处理,结果表明算法对各类粗差有明显的检测和修正效果。 展开更多
关键词 地形链 单波束 水深 粗差 算法
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The estimation of lower refractivity uncertainty from radar sea clutter using the Bayesian-MCMC method 被引量:6
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作者 盛峥 《Chinese Physics B》 SCIE EI CAS CSCD 2013年第2期580-585,共6页
The estimation of lower atmospheric refractivity from radar sea clutter(RFC) is a complicated nonlinear optimization problem.This paper deals with the RFC problem in a Bayesian framework.It uses the unbiased Markov ... The estimation of lower atmospheric refractivity from radar sea clutter(RFC) is a complicated nonlinear optimization problem.This paper deals with the RFC problem in a Bayesian framework.It uses the unbiased Markov Chain Monte Carlo(MCMC) sampling technique,which can provide accurate posterior probability distributions of the estimated refractivity parameters by using an electromagnetic split-step fast Fourier transform terrain parabolic equation propagation model within a Bayesian inversion framework.In contrast to the global optimization algorithm,the Bayesian-MCMC can obtain not only the approximate solutions,but also the probability distributions of the solutions,that is,uncertainty analyses of solutions.The Bayesian-MCMC algorithm is implemented on the simulation radar sea-clutter data and the real radar seaclutter data.Reference data are assumed to be simulation data and refractivity profiles are obtained using a helicopter.The inversion algorithm is assessed(i) by comparing the estimated refractivity profiles from the assumed simulation and the helicopter sounding data;(ii) the one-dimensional(1D) and two-dimensional(2D) posterior probability distribution of solutions. 展开更多
关键词 refractivity from clutter terrain parabolic equation propagation model Bayesian-Markov chain Monte Carlo uncertainty analysis
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