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An adaptive coupling strategy for joint inversions that use petrophysical information as constraints.

机译:利用岩石物理信息作为约束条件的联合反演的自适应耦合策略。

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摘要

Joint inversion strategies for geophysical data have become increasingly popular as they allow for the efficient combination of complementary information from different data sets. The algorithm used for the joint inversion needs to be flexible in its description of the subsurface so as to be able to handle the diverse nature of the data. Hence, joint inversion schemes are needed that 1) adequately balance data from the different methods, 2) have stable convergence behavior, 3) consider the different resolution power of the methods used and 4) link the parameter models in a way that they are suited for a wide range of applications.ududHere, we combine active source seismic P-wave tomography, gravity and magnetotelluric (MT) data in a petrophysical joint inversion that accounts for these issues. Data from the different methods are inverted separately but are linked through constraints accounting for parameter relationships. An advantage of performing the inversions separately is that no relative weighting between the data sets is required. To avoid perturbing the convergence behavior of the inversions by the coupling, the strengths of the constraints are readjusted at each iteration. The criterion we use to control the adaption of the coupling strengths is based on variations in the objective functions of the individual inversions from one to the next iteration. Adaption of the coupling strengths makes the joint inversion scheme also applicable to subsurface conditions, where assumed relationships are not valid everywhere, because the individual inversions decouple if it is not possible to reach adequately low data misfits for the made assumptions. In addition, the coupling constraints depend on the relative resolutions of the methods, which leads to an improved convergence behavior of the joint inversion. Another benefit of the proposed scheme is that structural information can easily be incorporated in the petrophysical joint inversion (no additional terms are added in the objective functions) by using mutually controlled structural weights for the smoothing constraints.ududWe test our scheme using data generated from a synthetic 2-D sub-basalt model. We observe that the adaption of the coupling strengths makes the convergence of the inversions very robust (data misfits of all methods are close to the target misfits) and that final results are always close to the true models independent of the parameter choices. Finally, the scheme is applied on real data sets from the Faroe-Shetland Basin to image a basaltic sequence and underlying structures. The presence of a borehole and a 3-D reflection seismic survey in this region allows direct comparison and, hence, evaluate the quality of the joint inversion results. The results from joint inversion are more consistent with results from other studies than the ones from the corresponding individual inversions and the shape of the basaltic sequence is better resolved. However, due to the limited resolution of the individual methods used it was not possible to resolve structures underneath the basalt in detail, indicating that additional geophysical information (e.g. CSEM, reflection onsets) needs to be included.
机译:地球物理数据的联合反演策略变得越来越流行,因为它们可以有效组合来自不同数据集的互补信息。用于联合反演的算法在描述地下时需要灵活一些,以便能够处理数据的多种性质。因此,需要以下联合反演方案:1)充分平衡来自不同方法的数据,2)具有稳定的收敛行为,3)考虑所使用方法的不同分辨率,以及4)以适合的方式链接参数模型在广泛的应用中。 ud ud此处,我们在岩石物理联合反演中结合了有源地震P波层析成像,重力和大地电磁(MT)数据,从而解决了这些问题。来自不同方法的数据分别进行反转,但通过考虑参数关系的约束进行链接。单独执行反演的一个优点是,数据集之间不需要相对权重。为了避免通过耦合干扰反演的收敛行为,在每次迭代时都会重新调整约束的强度。我们用来控制耦合强度适应性的标准是基于单个反演的目标函数从一次迭代到下一次迭代的变化。耦合强度的适应使联合反演方案也适用于地下条件,在这种条件下假设关系在任何地方都不成立,因为如果无法针对所进行的假设达到足够低的数据失配,则各个反演将解耦。另外,耦合约束取决于方法的相对分辨率,这导致联合反演的改进收敛行为。拟议方案的另一个好处是,通过使用相互控制的结构权重来进行平滑约束,可以轻松地将结构信息合并到岩石物理联合反演中(在目标函数中不添加其他术语)。 ud ud我们使用数据测试方案从合成的二维亚玄武岩模型生成。我们观察到,耦合强度的适应性使反演的收敛性非常强(所有方法的数据失配都接近目标失配),并且最终结果始终与真实模型接近,而与参数选择无关。最后,该方案应用于法罗-设得兰群岛盆地的真实数据集,以成像玄武岩层序及其下伏构造。在该区域中存在钻孔和3-D反射地震勘测,可以直接进行比较,因此可以评估联合反演结果的质量。联合反演的结果与其他研究的结果相比,与相应的单个反演的结果更加一致,并且玄武岩层序的形状得到了更好的解析。但是,由于所使用的各种方法的分辨率有限,因此无法详细解析玄武岩下的结构,这表明需要包括其他地球物理信息(例如CSEM,反射起点)。

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