首页> 外文期刊>Journal of Geoscience and Environment Protection >A Bayesian Inference Approach to Reduce Uncertainty in Magnetotelluric Inversion: A Synthetic Case Study
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A Bayesian Inference Approach to Reduce Uncertainty in Magnetotelluric Inversion: A Synthetic Case Study

机译:减少大地电磁反演不确定性的贝叶斯推理方法:综合案例研究

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摘要

The deterministic geophysical inversion methods are dominant when inverting magnetotelluric data whereby its results largely depends on the assumed initial model and only a single representative solution is obtained. A common problem to this approach is that all inversion techniques suffer from non-uniqueness since all model solutions are subjected to errors, under-determination and uncertainty. A statistical approach in nature is a possible solution to this problem as it can provide extensive information about unknown parameters. In this paper, we developed a 1D Bayesian inversion code based Metropolis-Hastings algorithm whereby the uncertainty of the earth model parameters were quantified by examining the posterior model distribution. As a test, we applied the inversion algorithm to synthetic model data obtained from available literature based on a three layer model (K, H, A and Q). The frequency for the magnetotelluric impedance data was generated from 0.01 to 100 Hz. A 5% Gaussian noise was added at each frequency in order to simulate errors to the synthetic results. The developed algorithm has been successfully applied to all types of models and results obtained have demonstrated a good compatibility with the initial synthetic model data.
机译:在反演大地电磁数据时,确定性地球物理反演方法占主导地位,因此其结果在很大程度上取决于假设的初始模型,并且只能获得一个代表性的解决方案。这种方法的一个普遍问题是,所有反演技术都存在非唯一性,因为所有模型解都存在误差,欠确定性和不确定性。从本质上讲,统计方法可以解决此问题,因为它可以提供有关未知参数的大量信息。在本文中,我们开发了基于Metropolis-Hastings算法的一维贝叶斯反演代码,通过检查后验模型分布来量化地球模型参数的不确定性。作为测试,我们将反演算法应用于根据三层模型(K,H,A和Q)从可用文献中获得的合成模型数据。大地电磁阻抗数据的频率从0.01到100 Hz。为了模拟合成结果的误差,在每个频率上添加了5%高斯噪声。所开发的算法已成功应用于所有类型的模型,并且所获得的结果证明与初始合成模型数据具有良好的兼容性。

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