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Fast Bayesian Linearized Inversion With an Efficient Dimension Reduction Strategy

delete2024-01-01
delete26
PRE
AI
于波 封面图
于波 (Bo Yu)
Y
Ying Shi *
周辉 封面图
周辉 (Hui Zhou)
Y
Yamei Cao
王宁 封面图
王宁 (Ning Wang)
X
Xinhong Ji
DOI:10.1109/TGRS.2024.3360031delete
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摘要

摘要

En 中文
Bayesian linearized inversion (BLI) stands out as an exceptional stochastic inversion method in the realms of geophysics and remote sensing. It excels in estimating inversion results and assessing their uncertainty with remarkable efficiency. However, one of the challenges faced by BLI lies in the inversion of its core matrix. To surmount this limitation, an innovative dimension reduction strategy is proposed based on the discrete cosine transform (DCT), thus formulating a rapid BLI approach termed DCT-BLI. Within this method, the DCT-based reduction strategy effectively compresses a large sparse matrix by extracting its essential information, transforming the inversion of this sizable matrix into the inversion of a reduced-size counterpart. A compression factor (CF), defined as the size ratio of matrices after and before reduction, quantifies the extent of matrix reduction. DCT-BLI integrates the strengths of both BLI and the DCT-based reduction strategy. Leveraging this reduction approach, DCT-BLI tackles the challenge of inverting its sizable core matrix. Through the synthetic and field data tests, DCT-BLI exhibits clear superiority over BLI in terms of efficiency, and the DCT-based reduction method achieves a remarkable two-thirds reduction in the core matrix size of BLI without compromising inversion accuracy.
Keyword:
Bayesian inversion
dimension reduction
matrix inverse
stochastic inversion

期刊

IEEE Transactions on Geoscience and Remote Sensing 封面图
IEEE Transactions on Geoscience and Remote Sensing
IF:
8.6
论文数:
2.1W
被引数:
10.7W

机构

N
northeast petroleum university
学者数:
5.0K
论文数: 2.7K
被引数: 3
C
china university of petroleum
学者数:
4.1W
论文数: 2.7W
被引数: 30
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