2022
DOI: 10.3390/en15238835
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Suitability of Different Machine Learning Outlier Detection Algorithms to Improve Shale Gas Production Data for Effective Decline Curve Analysis

Abstract: Shale gas reservoirs have huge amounts of reserves. Economically evaluating these reserves is challenging due to complex driving mechanisms, complex drilling and completion configurations, and the complexity of controlling the producing conditions. Decline Curve Analysis (DCA) is historically considered the easiest method for production prediction of unconventional reservoirs as it only requires production history. Besides uncertainties in selecting a suitable DCA model to match the production behavior of the … Show more

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Cited by 12 publications
(2 citation statements)
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“…Removing outliers helps the model capture the underlying patterns and relationships in the data more effectively, leading to better generalisation and predictive performance. We can generate more reliable estimates and reduce the potential bias the extreme values introduce [23,24].…”
Section: Data Preparationmentioning
confidence: 99%
“…Removing outliers helps the model capture the underlying patterns and relationships in the data more effectively, leading to better generalisation and predictive performance. We can generate more reliable estimates and reduce the potential bias the extreme values introduce [23,24].…”
Section: Data Preparationmentioning
confidence: 99%
“…Some DCA models are more sensitive to the quantity and quality of production data while others are more sensitive to both. These variations change depending on the model [33]. Each mentioned source of uncertainty subjected to DCA models should be separately investigated and quantified.…”
Section: Uncertainties Related To Dcamentioning
confidence: 99%