随机动态时间翘曲测井自动关联中的不确定性

M. A. Ibrahim
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摘要

测井相关性被广泛用于从稀疏井数据中生成地下剖面。这通常是由地层学家和勘探地球物理学家等学科专家完成的。有几种方法可以实现该过程的自动化,并取得了不同程度的成功。动态时间规整(DTW)是一种信号处理技术,其中一个信号局部拉伸和压缩,以最大限度地提高参考秒信号之间的相似性。这是通过计算一个相似代价矩阵来实现的,该矩阵被遍历以最小化累积距离。将该技术应用于井间对比问题,取得了较好的效果。然而,所产生的相关性是确定性的,因此,它不允许研究相关的不确定性。本研究提出了传统动态时间翘曲的扩展,以允许产生多重实现的相关性。为了实现这一点,成本矩阵是基于局部相关度量(例如,局部相关系数)确定地或概率地遍历的。由此产生的实现在信号相似的相关标记中显示稳定性,而在信号不相似的相关标记中显示不稳定性。该方法应用于两口相邻井。使用多种测井类型(伽马、声波和电阻率)来构建两口井之间的相似成本矩阵。多次遍历成本矩阵以产生多种实现。生成的实现在地质学上是可接受的。通过产生大量的实现,可以量化解决方案中的不确定性。虽然这里介绍的应用与测井相关,但所介绍的随机动态时间翘曲方法可以应用于其他类型的信号和数据,如地震、化学地层学数据和实时钻井测量。
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Uncertainty in Automated Well-Log Correlation Using Stochastic Dynamic Time Warping
Well-log correlation is used extensively to generate subsurface cross sections from sparse well data. This is commonly done by a subject matter expert such as stratigraphers and exploration geophysicists. Several methodologies exist for automating the procedure with varying success. Dynamic time warping (DTW) is a signal-processing technique where one signal is locally stretched and squeezed to maximize the similarity between a reference second signal. This is done by calculating a similarity cost matrix that is traversed to minimize the cumulative distance. The technique produces reasonable results when applied to the well correlation problem. The produced correlation, however, is deterministic, and thus, it does not allow for studying the associated uncertainty. This study presents an extension of traditional dynamic time warping to allow the generation of multiple realizations of correlations. To accomplish this, the cost matrix is traversed deterministically or probabilistically based on a local correlation metric, e.g., the local correlation coefficient. The resultant realizations show stability in the correlation markers where the signals are similar and instability where they are not. The methodology is applied to two adjacent wells. Multiple well-log types (gamma ray, sonic, and resistivity) are used to construct the similarity cost matrix between the two wells. The cost matrix is traversed multiple times to produce multiple realizations. The produced realizations are geologically acceptable. By generating a large number of realizations, the uncertainty in the solutions is quantified. While the application presented here relates to well-log correlation, the presented stochastic dynamic time warping methodology can be applied to other types of signals and data, such as seismic, chemostratigraphy data, and real-time drilling measurements.
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