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Estimation of missing logs by regularized neural networks

机译:用正则神经网络估计丢失的日志

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摘要

An approach based on regularized back-propagation neural networks can be used to estimate the missing logs, or parts of those logs, in wells with incomplete log suites. This is done by first analyzing the interdependence of the various log types in a training well that has a complete suite of logs, and then applying the network to nearby wells whose log suites are incomplete to estimate themissing logs in these wells. The accuracy of the method is evaluated by blind tests conducted on real well-log data. These tests indicate that the method produces accurate estimates that are close to the measured log values, and the method can thus be an effective means of enhancing limited suites of wire-line logs. Moreover, this approach has several advantages over the ad hoc practice of manualy patching the missing logs from the complete log suites of proximate wells because it is automatic, objective, completely data driven, inherently nonlinear, and does not suffer from the overfitting difficulties commonly associated with conventional back-propagation networks. Additionally, it seems that an accurate selection of the optimal input log types is not necessary because redundant input containing several logs yields reasonably accurate results as long as some of the logs in the input are sufficiently correlated with the missing log.
机译:基于正则反向传播神经网络的方法可用于估计具有不完整测井套件的井中的缺失测井或部分测井。这是通过首先分析具有完整日志套件的训练井中各种日志类型的相互依赖性,然后将网络应用于附近的日志套件不完整的井以估计这些井中缺少的日志来完成的。该方法的准确性通过对真实测井数据进行的盲测来评估。这些测试表明,该方法产生的准确估计值接近测得的测井值,因此该方法可以成为增强有限数量的有线测井记录的有效手段。此外,与手动修补来自邻近井的完整测井套件中的缺失测井的临时实践相比,此方法具有多个优点,因为它是自动的,客观的,完全由数据驱动的,固有的非线性的,并且不会遭受通常存在的过拟合困难与传统的反向传播网络。另外,似乎没有必要对最佳输入日志类型进行准确选择,因为包含多个日志的冗余输入会产生合理准确的结果,只要输入中的某些日志与丢失的日志充分相关即可。

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