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Drilling stuck pipe classification and mitigation in the Gulf of Suez oil fields using artificial intelligence

机译:使用人工智能钻探苏伊斯油田湾湾的管道分类和缓解

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摘要

Abstract Developing a reliable classification model for drilling pipe stuck is crucial for decision-makers in the petroleum drilling rig. Artificial intelligence (AI) includes several machine learning (ML) algorithms that are used for efficient predictive analytics, optimization, and decision making. Therefore, a comparison analysis for ML models is required to guide practitioners for the appropriate predictive model. Twelve ML techniques are used for drilling pipe stuck such as artificial neural networks, logistic regression, and ensemble methods such as scalable boosting trees and random forest. The drilling cases of the Gulf of Suez wells are collected as an actual dataset for analyzing the ML performance. The key contribution of the study is to automate pipe stuck classification using ML algorithms and mitigate the pipe stuck cases using the genetic algorithm optimization. Out of 12 AI techniques, the results presented that the most reliable algorithm was extremely randomized trees (extra trees) with 100% classification accuracy based on testing dataset. Moreover, this research presents a public open dataset for the drilled wells at the Gulf of Suez to be used for the future experiments, algorithms’ validation, and analysis.
机译:摘要开发用于钻杆可靠的分类模型套牢是在石油钻机决策者至关重要。人工智能(AI)包括用于高效的预测分析,优化和决策的几个机器学习(ML)算法。因此,需要为ML车型进行比较分析,以引导从业人员为适当的预测模型。用于钻探管将12ml技术停留,如人工神经网络,逻辑回归,和集成方法,例如可扩展的推进树和随机森林。苏伊士水井湾的钻探情况下被采集作为分析的ML性能的实际数据集。这项研究的主要贡献是采用ML算法,自动管卡住分类和减少使用遗传算法优化管卡住的情况。出的12项AI技术,目前的成果,最可靠的算法是非常随机基于测试数据集以100%的分类准确度树(多棵)。此外,将用于未来的实验,算法验证和分析,本研究提出了一个公共开放的数据集在苏伊士湾的钻井。

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