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Reservoir parameter inversion based on weighted statistics
Authors:Jin-Yong Gui  Jian-Hu Gao  Xue-Shan Yong  Sheng-Jun Li  Bin-Yang Liu  Wan-Jin Zhao
Institution:1. Research Institute of Petroleum Exploration & Development-Northwest Branch, Petrochina, Lanzhou, 730020, China
Abstract:Variation of reservoir physical properties can cause changes in its elastic parameters. However, this is not a simple linear relation. Furthermore, the lack of observations, data overlap, noise interference, and idealized models increases the uncertainties of the inversion result. Thus, we propose an inversion method that is different from traditional statistical rock physics modeling. First, we use deterministic and stochastic rock physics models considering the uncertainties of elastic parameters obtained by prestack seismic inversion and introduce weighting coefficients to establish a weighted statistical relation between reservoir and elastic parameters. Second, based on the weighted statistical relation, we use Markov chain Monte Carlo simulations to generate the random joint distribution space of reservoir and elastic parameters that serves as a sample solution space of an objective function. Finally, we propose a fast solution criterion to maximize the posterior probability density and obtain reservoir parameters. The method has high efficiency and application potential.
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