Inverse Problems and Data Assimilation

D. Sanz-Alonso, A. Stuart, Armeen Taeb
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引用次数: 25

Abstract

This concise introduction provides an entry point to the world of inverse problems and data assimilation for advanced undergraduates and beginning graduate students in the mathematical sciences. It will also appeal to researchers in science and engineering who are interested in the systematic underpinnings of methodologies widely used in their disciplines. The authors examine inverse problems and data assimilation in turn, before exploring the use of data assimilation methods to solve generic inverse problems by introducing an artificial algorithmic time. Topics covered include maximum a posteriori estimation, (stochastic) gradient descent, variational Bayes, Monte Carlo, importance sampling and Markov chain Monte Carlo for inverse problems; and 3DVAR, 4DVAR, extended and ensemble Kalman filters, and particle filters for data assimilation. The book contains a wealth of examples and exercises, and can be used to accompany courses as well as for self-study.
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逆问题与数据同化
这简明的介绍提供了一个入口点,以反问题和数据同化的世界为先进的本科生和研究生开始在数学科学。它也将吸引科学和工程领域的研究人员,他们对在其学科中广泛使用的方法的系统基础感兴趣。作者依次研究了逆问题和数据同化,然后通过引入人工算法时间来探索使用数据同化方法来解决一般逆问题。涵盖的主题包括最大后验估计,(随机)梯度下降,变分贝叶斯,蒙特卡罗,重要抽样和反问题的马尔可夫链蒙特卡罗;以及用于数据同化的3DVAR、4DVAR、扩展卡尔曼滤波和集合卡尔曼滤波以及粒子滤波。这本书包含了丰富的例子和练习,并可用于伴随课程以及自学。
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