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HYDRAULIC FRACTURING JOB PLAN REAL-TIME REVISIONS UTILIZING DETECTED RESPONSE FEATURE DATA

机译:利用检测到的响应特征数据进行液压压裂作业计划实时修订

摘要

The disclosure is directed to methods to design and revise hydraulic fracturing (HF) job plans. The methods can utilize one or more data sources from public, proprietary, confidential, and historical sources. The methods can build mathematical, statistical, machine learning, neural network, and deep learning models to predict production outcomes based on the data source inputs. In some aspects, the data sources are processed, quality checked, and combined into composite data sources. In some aspects, ensemble modeling techniques can be applied to combine multiple data sources and multiple models. In some aspects, response features can be utilized as data inputs into the modeling process. In some aspects, time-series extracted features can be utilized as data inputs into the modeling process. In some aspects, the methods can be used to build a HF job plan prior to the start of work at a well site. In other aspects, the methods can be used to revise an existing HF job plan in real-time, such as after a treatment cycle, a pumping stage, or a time interval.
机译:本公开针对设计和修改水力压裂(HF)工作计划的方法。该方法可以利用来自公共,专有,机密和历史来源的一个或多个数据源。这些方法可以建立数学,统计,机器学习,神经网络和深度学习模型,以基于数据源输入来预测生产结果。在某些方面,对数据源进行处理,质量检查并组合为复合数据源。在某些方面,可以将集成建模技术应用于组合多个数据源和多个模型。在某些方面,响应特征可以用作建模过程中的数据输入。在某些方面,时间序列提取的特征可以用作建模过程中的数据输入。在某些方面,该方法可用于在井场开始工作之前建立HF工作计划。在其他方面,该方法可用于实时地修改现有的HF工作计划,诸如在治疗周期,泵送阶段或时间间隔之后。

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