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首页> 外文期刊>Journal of Applied Geophysics >Global optimization of controlled source audio-frequency magnetotelluric data with an improved artificial bee colony algorithm
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Global optimization of controlled source audio-frequency magnetotelluric data with an improved artificial bee colony algorithm

机译:具有改进的人工蜂菌落算法的控制源音频频率磁识别数据的全局优化

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摘要

The inversion of controlled source audio-frequency magnetotelluric (CSAMT) data is a complex nonlinear problem. A linearization of this problem is easily trapped in local minima and the complexity of the artificial source makes CSAMT data interpretation more difficult than that of magnetotelluric (MT) data. This paper presents an improved artificial bee colony (ABC) algorithm for the 2.5D inversion of CSAMT data. New initialization and generation strategies are proposed to improve the optimization achieved by the original ABC algorithm. The global optimization of CSAMT by the improved ABC algorithm is realized based on 2.5D forward modeling theory and is used in the inversion of a complex model of water-bearing anomalous bodies in sandstone. Results show that the algorithm can accurately recover the resistivity and spatial distribution of strata and anomalous bodies. The survey data for a suspected collapse column in Shandong Province are also processed using the proposed method, and inversion via the algorithm accurately shows the water abundance of the suspected collapse column. Thus, the results of the theoretical modeling and practical data indicate that the improved ABC algorithm is effective for analyzing CSAMT data. Moreover, this algorithm improves the interpretational accuracy and resolution of CSAMT data. (C) 2019 Elsevier B.V. All rights reserved.
机译:受控源音频频率磁电机(CSAMT)数据的反转是复杂的非线性问题。该问题的线性化容易被捕获在局部最小值中,并且人工源的复杂性使CSAMT数据解释比磁音(MT)数据更困难。本文提出了一种改进的人工蜂殖民地(ABC)算法,用于CSAMT数据的2.5D反转。提出了新的初始化和发电策略来改善原始ABC算法实现的优化。基于2.5D前进建模理论实现了改进的ABC算法的全局优化CSAMT,并用于砂岩中含水量异构体复杂模型的反演。结果表明,该算法可以准确地恢复地层和异常体的电阻率和空间分布。山东省疑似崩溃栏的调查数据也使用该方法处理,并通过算法的反演精确地显示了可疑塌陷柱的水丰度。因此,理论建模和实际数据的结果表明改进的ABC算法对于分析CSAMT数据是有效的。此外,该算法提高了CSAMT数据的解释准确性和分辨率。 (c)2019年Elsevier B.V.保留所有权利。

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