2022
DOI: 10.1111/1365-2478.13249
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A machine‐learning framework to estimate saturation changes from 4D seismic data using reservoir models

Abstract: Time‐lapse seismic (four‐dimensional seismic) data play a preeminent role in closed‐loop reservoir management by providing a full‐field image of dynamic reservoir behaviour during production. Nonetheless, the multidisciplinary nature of four‐dimensional closed‐loop approaches demands more quantitative and fast methods to integrate rock physics models, reservoir flow simulation models and four‐dimensional seismic analysis. In this work, we tackle this time‐consuming and expensive process and develop a data‐driv… Show more

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Cited by 4 publications
(2 citation statements)
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“…The research and development model of the 4-D model consists of 4 stages, namely; define, design, develop, and disseminate. The 4-D model can then be adapted into the 4Ps namely: defining, designing, developing, and deploying (Maleki et al, 2022).…”
Section: Methodsmentioning
confidence: 99%
“…The research and development model of the 4-D model consists of 4 stages, namely; define, design, develop, and disseminate. The 4-D model can then be adapted into the 4Ps namely: defining, designing, developing, and deploying (Maleki et al, 2022).…”
Section: Methodsmentioning
confidence: 99%
“…Finally, maps of 4D seismic attributes, such as dRMS maps, are extracted. To streamline the process and avoid the time-consuming preparation of the training and testing dataset, it is recommended to utilize automatic and prompt procedures for computing reservoir properties and synthetic 4D seismic attributes of the simulation models [24].…”
Section: Data Preparationmentioning
confidence: 99%