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Better use of experience from other reservoirs for accurate production forecasting by learn-to-learn method
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作者 Hao-Chen wang Kai Zhang +7 位作者 Nancy Chen Wen-Sheng Zhou Chen Liu ji-fu wang Li-Ming Zhang Zhi-Gang Yu Shi-Ti Cui Mei-Chun Yang 《Petroleum Science》 SCIE EI CAS CSCD 2024年第1期716-728,共13页
To assess whether a development strategy will be profitable enough,production forecasting is a crucial and difficult step in the process.The development history of other reservoirs in the same class tends to be studie... To assess whether a development strategy will be profitable enough,production forecasting is a crucial and difficult step in the process.The development history of other reservoirs in the same class tends to be studied to make predictions accurate.However,the permeability field,well patterns,and development regime must all be similar for two reservoirs to be considered in the same class.This results in very few available experiences from other reservoirs even though there is a lot of historical information on numerous reservoirs because it is difficult to find such similar reservoirs.This paper proposes a learn-to-learn method,which can better utilize a vast amount of historical data from various reservoirs.Intuitively,the proposed method first learns how to learn samples before directly learning rules in samples.Technically,by utilizing gradients from networks with independent parameters and copied structure in each class of reservoirs,the proposed network obtains the optimal shared initial parameters which are regarded as transferable information across different classes.Based on that,the network is able to predict future production indices for the target reservoir by only training with very limited samples collected from reservoirs in the same class.Two cases further demonstrate its superiority in accuracy to other widely-used network methods. 展开更多
关键词 Production forecasting Multiple patterns Few-shot learning Transfer learning
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基于全局敏感性分析的压气机多级轮盘参数优化 被引量:1
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作者 王继福 王跃方 《风机技术》 2022年第4期53-59,共7页
压气机是航空发动机的核心部件之一,为了保证结构运行的可靠性,并提升发动机的推重比,需要对其结构进行减重优化设计。相较于单级轮盘,多级轮盘的优化分析更符合实际,但优化效率更低。以复杂的多级轮盘转子优化为研究目标,通过对结构参... 压气机是航空发动机的核心部件之一,为了保证结构运行的可靠性,并提升发动机的推重比,需要对其结构进行减重优化设计。相较于单级轮盘,多级轮盘的优化分析更符合实际,但优化效率更低。以复杂的多级轮盘转子优化为研究目标,通过对结构参数化建模,实现尺寸形状自动控制,并基于全局敏感性分析获得轮盘的关键尺寸以及结构强度受参数影响的情况,为优化模型的简化和调整提供参考。研究轮盘结构破裂裕度,搭建高效、通用的优化流程,在保证结构静强度的前提下,通过遗传算法、可行方向法实现压气机转子减重4.94%的优化效果,对压气机结构设计具有一定的参考意义。 展开更多
关键词 压气机 多级轮盘 破裂裕度 敏感性 参数优化
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