Application of Ensemble Detection and Analysis to modeling uncertainty in non stationary processes

P. Racette
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引用次数: 3

Abstract

Characterization of non stationary and nonlinear processes is a challenge in many engineering and scientific disciplines. Climate change modeling and projection, retrieving information from Doppler measurements of hydrometeors, and modeling calibration architectures and algorithms in microwave radiometers are example applications that can benefit from improvements in the modeling and analysis of non stationary processes. Analyses of measured signals have traditionally been limited to a single measurement series. Ensemble Detection is a technique whereby mixing calibrated noise produces an ensemble measurement set. The collection of ensemble data sets enables new methods for analyzing random signals and offers powerful new approaches to studying and analyzing non stationary processes. Derived information contained in the dynamic stochastic moments of a process will enable many novel applications.
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集成检测与分析在非平稳过程不确定性建模中的应用
表征非平稳和非线性过程是许多工程和科学学科的挑战。气候变化的建模和预测,从水成物的多普勒测量中检索信息,以及在微波辐射计中建模校准架构和算法都是可以从改进非平稳过程的建模和分析中受益的示例应用。传统上,对测量信号的分析仅限于单个测量系列。系综检测是一种通过混合校准噪声产生系综测量集的技术。集成数据集的收集为分析随机信号提供了新的方法,并为研究和分析非平稳过程提供了强大的新方法。在过程的动态随机矩中包含的派生信息将使许多新的应用成为可能。
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