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arxiv: 1807.08351 · v5 · pith:L5F2D2CEnew · submitted 2018-07-22 · 🧮 math.NA · cs.NA

Data Assimilation: The Schr\"odinger Perspective

classification 🧮 math.NA cs.NA
keywords assimilationdataodingerperspectiveproblemschradditionaddresses
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Data assimilation addresses the general problem of how to combine model-based predictions with partial and noisy observations of the process in an optimal manner. This survey focuses on sequential data assimilation techniques using probabilistic particle-based algorithms. In addition to surveying recent developments for discrete- and continuous-time data assimilation, both in terms of mathematical foundations and algorithmic implementations, we also provide a unifying framework from the perspective of coupling of measures, and Schr\"odinger's boundary value problem for stochastic processes in particular.

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