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A Survey on Mathematical Aspects of Machine Learning in GeoPhysics: The Cases of Weather Forecast, Wind Energy, Wave Energy, Oil and Gas Exploration

机译:地球物理机械学习数学方面的调查:天气预报,风能,波能,石油和天然气勘探

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This paper reviews the most notable works applying machine learning techniques (ML) in the context of geophysics and corresponding subbranches. We showcase both the progress achieved to date as well as the important future directions for further research while providing an adequate background in the fields of weather forecast, wind energy, wave energy, oil and gas exploration. The objective is to reflect on the previous successes and provide a comprehensive review of the synergy between these two fields in order to speed up the novel approaches of machine learning techniques in geophysics. Last but not least, we would like to point out possible improvements, some of which are related to the implementation of ML algorithms using DataFlow paradigm as a means of performance acceleration.
机译:本文评论了在地球物理和相应的子议的背景下应用机器学习技术(ML)的最值得注意的作品。 我们展示了迄今为止实现的进展以及进一步研究的重要未来方向,同时在天气预报,风能,波能,石油和天然气勘探领域提供足够的背景。 目的是反思以前的成功,并对这两个领域的协同作用进行全面审查,以加快地球物理中的机器学习技术的新方法。 最后但并非最不重要的是,我们想指出可能的改进,其中一些是与使用DataFlow范例的ML算法的实现有关,作为性能加速手段。

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