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Laterally constrained inversion for CSAMT data interpretation

机译:用于CSAMT数据解释的横向约束反演

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摘要

Laterally constrained inversion (LCI) has been successfully applied to the inversion of dc resistivity, TEM and airborne EM data. However, it hasn't been yet applied to the interpretation of controlled-source audio-frequency magnetotelluric (CSAMT) data. In this paper, we apply the LCI method for CSAMT data inversion by preconditioning the Jacobian matrix. We apply a weighting matrix to Jacobian to balance the sensitivity of model parameters, so that the resolution with respect to different model parameters becomes more uniform. Numerical experiments confirm that this can improve the convergence of the inversion. We first invert a synthetic dataset with and without noise to investigate the effect of LCI applications to CSAMT data, for the noise free data, the results show that the LCI method can recover the true model better compared to the traditional single-station inversion; and for the noisy data, the true model is recovered even with a noise level of 8%, indicating that LCI inversions are to some extent noise insensitive. Then, we re-invert two CSAMT datasets collected respectively in a watershed and a coal mine area in Northern China and compare our results with those from previous inversions. The comparison with the previous inversion in a coal mine shows that LCI method delivers smoother layer interfaces that well correlate to seismic data, while comparison with a global searching algorithm of simulated annealing (SA) in a watershed shows that though both methods deliver very similar good results, however, LCI algorithm presented in this paper runs much faster. The inversion results for the coal mine CSAMT survey show that a conductive water-bearing zone that was not revealed by the previous inversions has been identified by the La This further demonstrates that the method presented in this paper works for CSAMT data inversion. (C) 2015 Elsevier B.V. All rights reserved.
机译:横向约束反演(LCI)已成功应用于直流电阻率,TEM和机载EM数据的反演。但是,它尚未应用于解释受控源音频大地电磁(CSAMT)数据。在本文中,我们通过预处理雅可比矩阵将LCI方法应用于CSAMT数据反演。我们将加权矩阵应用于Jacobian,以平衡模型参数的敏感性,以使针对不同模型参数的分辨率变得更均匀。数值实验证实,这可以提高反演的收敛性。我们首先对有噪声和无噪声的合成数据集进行反演,以研究LCI应用对CSAMT数据的影响,对于无噪声数据,结果表明,与传统的单站反演相比,LCI方法可以更好地恢复真实模型;对于嘈杂的数据,即使噪声水平为8%,也可以恢复真实模型,这表明LCI反演在某种程度上对噪声不敏感。然后,我们重新反演分别在中国北方一个流域和一个煤矿地区收集的两个CSAMT数据集,并将我们的结果与先前反演的结果进行比较。与煤矿中先前反演的比较表明,LCI方法可提供与地震数据良好相关的更平滑的层界面,而与分水岭中的模拟退火(SA)的全局搜索算法相比,则表明尽管这两种方法都具有非常相似的优点结果,但是,本文提出的LCI算法运行得更快。煤矿CSAMT调查的反演结果表明,La已识别出先前反演未揭示的导电含水带。这进一步证明了本文介绍的方法适用于CSAMT数据反演。 (C)2015 Elsevier B.V.保留所有权利。

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