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Efficient Image Reconstruction Algorithm for ECT System Using Local Ensemble Transform Kalman Filter

机译:使用本地集合变换Kalman滤波器ECT系统的高效图像重建算法

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One of the vital processes that should be monitored and analyzed continuously in the oil-gas and petroleum-related industries is the multi-phase flow inside pipes. Multi-phase flow means flowing two or more phases of gas, liquid, or solid inside a pipe. Electrical Capacitance Tomography (ECT) is a feasible and economical solution for monitoring dynamic applications. The ECT system offers the benefits of no radiation, non-intrusive, and non-invasive. Despite its potential, ECT systems deployment’s major limitation is the crucial need to develop rapid image reconstruction algorithms. In this paper, a Local Ensemble Transform Kalman Filter (LETKF) is developed as a non-linear system estimator for reconstructing images in the ECT system. This method manages each node of the model independently by assimilating only the observations at a predefined distance. The localized approach of the LETKF gives it high computational efficiency allowing it to be applied to large dynamic systems. A quantitative analysis using Image Error (IE) and Coefficient Correlation (CC) measures has been applied to prove the effectiveness of the proposed algorithm. Indeed, the IE has been significantly decreased (around 62%), and the CC greatly increased (around 58%). Then, the influence of the noise was discussed. The results are promising and prove the algorithm feasibility.
机译:在油气和石油相关行业中连续监测和分析的重要过程之一是管道内的多相流动。多相流动装置在管内流动两相或更多个相的气体,液体或固体。电容断层扫描(ECT)是监控动态应用的可行性和经济的解决方案。 ECT系统提供无辐射,非侵入性和非侵入性的好处。尽管其潜力,但系统部署的主要限制是开发快速图像重建算法的关键需求。在本文中,将局部集合变换卡尔曼滤波器(LetkF)作为非线性系统估计器开发,用于在ECT系统中重建图像。该方法通过仅在预定距离下同化观察来管理模型的每个节点。 Letkf的本地化方法使其具有高计算效率,允许其应用于大型动态系统。已经应用了使用图像误差(即)和系数相关性(CC)测量的定量分析来证明所提出的算法的有效性。实际上,IE已经显着降低(约62%),CC大大增加(约58%)。然后,讨论了噪声的影响。结果是有前途的,并证明了算法可行性。

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