Full-waveform inversion of seismic
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  • journal_title:The Leading Edge
  • Contributor:Moritz M. Fliedner ; Sven Treitel ; Lucy MacGregor
  • Publisher:Society of Exploration Geophysicists
  • Date:2012-
  • Format:text/html
  • Language:en
  • Identifier:10.1190/tle31050570.1
  • journal_abbrev:The Leading Edge
  • issn:1070-485X
  • volume:31
  • issue:5
  • firstpage:570
  • section:Special section: Seismic inversion for reservoir properties
摘要

Stochastic (Monte Carlo) optimization methods like the Genetic Algorithm (GA) and Simulated Annealing (SA) have become increasingly popular for the inversion of geophysical data. In contrast to deterministic gradient-descent methods that search for the local minimum of the misfit function near a given starting guess, stochastic methods search for the global minimum of the misfit function even in the absence of a good starting model. Stochastic methods do not require the calculation of gradients of error surfaces. Only forward modeling is needed to evaluate the objective function. In addition to a single “best” model, some stochastic methods yield statistical information about the range of acceptable models for a given error tolerance by estimating Bayesian integrals of the posterior probability density distribution (PPD).

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