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Streaming prediction-error filters

delete2024-07-29
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PRE
AI
S
Sergey Fomel *
J
Jon F. Claerbout
DOI:10.1190/GEO2023-0646.1delete
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Abstract

Abstract

En 中文
Prediction-error filters (PEFs) are essential for seismic de- convolution and other geophysical estimation problems. We find that nonstationary multidimensional PEFs can be computed in a streaming manner, wherein the filter is updated incrementally by accepting one new data point at a time. The computational cost of estimating a streaming PEF is reduced to the cost of a single convolution. In other words, the cost of the PEF design while filtering is equivalent to the cost of applying the filter. Moreover, the nonlinear operation of finding and applying a streaming PEF is invertible at a similar cost, which enables a fast approach for missing data interpolation.

Journal

Geophysics cover
Geophysics
IF:
3.2
Papers:
8.4K
Citations:
3.3W

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U
university of texas austin
Scholars:
2.4W
Papers: 2.0W
Citations: 54
U
university of texas system
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Citations: 210