首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Semiglobal viscoacoustic full-waveform inversion
【24h】

Semiglobal viscoacoustic full-waveform inversion

机译:半球形粘性全波形反转

获取原文
获取原文并翻译 | 示例
           

摘要

Full-waveform inversion deals with estimating physical properties of the earth's subsurface by matching simulated to recorded seismic data. Intrinsic attenuation in the medium leads to the dispersion of propagating waves and the absorption of energy - media with this type of rheology are not perfectly elastic. Accounting for that effect is necessary to simulate wave propagation in realistic geologic media, leading to the need to estimate intrinsic attenuation from the seismic data. That increases the complexity of the constitutive laws leading to additional issues related to the ill-posed nature of the inverse problem. In particular, the joint estimation of several physical properties increases the null space of the parameter space, leading to a larger domain of ambiguity and increasing the number of different models that can equally well explain the data. We have evaluated a method for the joint inversion of velocity and intrinsic attenuation using semiglobal inversion; this combine, quantum particle-swarm optimization for the estimation of the intrinsic attenuation with nested gradient-descent iterations for the estimation of the P-wave velocity. This approach takes advantage of the fact that some physical properties. and in particular the intrinsic attenuation, can be represented using a reduced basis, substantially decreasing the dimension of the search space. We determine the feasibility of the method and its robustness to ambiguity with 2D synthetic examples. The 3D inversion of a field data set for a geologic medium with transversely isotropic anisotropy in velocity indicates the feasibility of the method for inverting large-scale real seismic data and improving the data fitting. The principal benefits of the semiglobal multiparameter inversion are the recovery of the intrinsic attenuation from the data and the recovery of the true undispersed infinite-frequency P-wave velocity, while mitigating ambiguity between the estimated parameters.
机译:全波形反转差异估计地球地下的物理特性通过模拟录制地震数据进行匹配。培养基中的固有衰减导致繁殖波的分散,并且通过这种类型的流变学的能量培养基的吸收不是完全弹性的。核对这一效果是在现实地质媒体中模拟波传播所必需的,从而需要估计来自地震数据的内在衰减。这提高了本构规定的复杂性,导致与逆问题的不良性质有关的额外问题。特别地,若干物理性质的联合估计会增加参数空间的空空间,导致更大的歧义域,并增加了可以同样地解释数据的不同模型的数量。我们已经评估了使用半球形反转的联合速度和内在衰减的方法的方法;这种组合,量子粒子 - 群优化用于估计具有嵌套梯度 - 渐变迭代的固有衰减,用于估计P波速度。这种方法利用了一些物理性质的事实。特别是本质衰减,可以使用降低的基础表示,显着降低了搜索空间的尺寸。我们确定方法的可行性及其与2D合成实例模糊的稳健性。在速度下具有横向各向同性各向异性的地质介质的现场数据的3D反转表明了用于反转大规模实际地震数据并改善数据配件的方法的可行性。半球形多路径计反转的主要益处是从数据的内在衰减和真正的未分开的无限频率p波速度的恢复,同时减轻估计参数之间的模糊性。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号