4.6 Article

Source-structure trade-offs in ambient noise correlations

期刊

GEOPHYSICAL JOURNAL INTERNATIONAL
卷 202, 期 1, 页码 678-694

出版社

OXFORD UNIV PRESS
DOI: 10.1093/gji/ggv182

关键词

Inverse theory; Tomography; Interferometry; Computational seismology

资金

  1. Swiss National Supercomputing Center (CSCS)
  2. Swiss National Science Foundation (SNF) [200021_149143]
  3. Netherlands Organisation for Scientific Research [864.11.008]
  4. Swiss National Science Foundation (SNF) [200021_149143] Funding Source: Swiss National Science Foundation (SNF)

向作者/读者索取更多资源

We analyse the physics and geometry of trade-offs between Earth structure and noise sources in interstation noise correlations. Our approach is based on the computation of off-diagonal Hessian elements that describe the extent to which variations in noise sources can compensate for variations in Earth structure without changing the misfit beyond the measurement uncertainty. Despite the fact that all ambient noise inverse problems are special in terms of their receiver configuration and data, some general statements concerning source-structure trade-offs can be made: (i) While source-structure trade-offs may be reduced to some extent by clever measurement design, there are inherent trade-offs that can generally not be avoided. These inherent trade-offs may lead to a mispositioning of structural heterogeneities when the noise source distribution is unknown. (ii) When attenuation is weak, source-structure trade-offs in ambient noise correlations are a global phenomenon, meaning that there is no noise source perturbation that does not trade-off with some Earth structure, and vice versa. (iii) The most significant source-structure trade-offs occur within two elliptically shaped regions connecting a potential noise source perturbation to each one of the receivers. (iv) Far from these elliptical regions, only small-scale structure can trade off against changes in the noise source. (v) While source-structure trade-offs mostly decay with increasing attenuation, they are nearly unaffected by attenuation when the noise source perturbation is located near the receiver-receiver line. This work is intended to contribute to the development of joint source-structure inversions of ambient noise correlations, and in particular to an understanding of the extent to which source-structure trade-offs may be reduced. It furthermore establishes the foundation of future resolution analyses that properly quantify trade-offs between noise sources and Earth structure.

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