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油氣資源開發的大數據智能平臺及應用分析

Big data intelligent platform and application analysis for oil and gas resource development

  • 摘要: 油氣資源大數據智能平臺的總體框架應以數據資源為基礎、大數據平臺算力為支撐、人工智能算法為核心,面向油氣行業生產需求,構建集勘探、開發、生產數據于一體的油氣數據資源池,通過數據清洗與融合提升數據質量,整合物理模擬與數據挖掘等手段,實現服務功能模塊化,并在PC端、管控大屏、手機移動APP等多維平臺實現智能監測、預警與展示。通過對深度學習等人工智能方法在油氣工業領域的應用案例分析,表明其具有較好的應用前景。未來石油公司應與科研院所通力合作,挖掘石油工業數據的巨大潛能,實現降本增效,建設全新的智能油氣工業生態圈,完成產業升級。

     

    Abstract: With the rapid improvement of exploration and monitoring technologies, the oil and gas industry has accumulated a large amount of data in the fields of seismic exploration, logging, production, and development. How to transform the huge “data resources” into “data assets” and fully utilize data and tap their real value to better serve society is a main concern in the oil and gas industry today. Therefore, the oil industry needs to complete the industrial upgrading of “Smart Oilfield” through digital and intelligent transformation. In recent years, the rise of big data technology and artificial intelligence have allowed international oil companies and oil service giants to accelerate the construction of digital and intelligent oil fields. The overall framework of the big data intelligent platform of oil and gas resources should be based on data resources with big data platform computing power as the support and artificial intelligence algorithms as the core. To meet the production needs of the oil and gas industry, it is of great urgency to build an oil and gas data resource pool that integrates exploration, development, and production data. The data quality can be improved via data cleaning and fusion. Physical simulations, data mining, and other approaches should be combined to achieve the modularization of service functions. Additionally, the goals of intelligent monitoring, early warning, and display on multi-dimensional platforms such as PC, control screen, and mobile apps can also be achieved. The analysis of artificial intelligence methods such as deep learning in the context of the oil and gas industry shows that these methods have good application prospects. In the future, oil companies should work together with scientific research institutes to tap the huge potential of oil industry data, achieve cost reduction and efficiency increase, and build a new smart oil and gas industrial ecosystem to complete industrial upgrading.

     

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