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Full-waveform associated identification method of ATEM 3-d anomalies based on multiple linear regression analysis

机译:基于多元线性回归分析的ATEM 3-d异常全波形关联识别方法

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This article studies full-waveform associated identification method of airborne time-domain electromagnetic method (ATEM) 3-d anomalies based on multiple linear regression analysis method. By using convolution algorithm, full-waveform theoretical responses are computed to derive sample library including switch-off-time period responses and off-time period responses. Extract full-waveform attributes from theoretical responses to derive linear regression equations which are used to identify the geological parameters. In order to improve the precision ulteriorly, we optimize the identification method by separating the sample library into different groups and identify the parameter respectively. Performance of full-waveform associated identification method with field data of wire-loop test experiments with ATEM system in Daedao of Changchun proves that the full-waveform associated identification method is feasible practically.
机译:本文研究了基于多元线性回归分析方法的机载时域电磁法(ATEM)3-d异常全波形关联识别方法。通过使用卷积算法,计算全波形理论响应以得出包括关闭时间段响应和关闭时间段响应的样本库。从理论响应中提取全波形属性,以导出用于确定地质参数的线性回归方程。为了进一步提高精度,我们通过将样本库分为不同的组并分别识别参数来优化识别方法。在长春大岛进行的ATEM系统线环测试实验现场数据的全波形关联识别方法的性能证明,该全波形关联识别方法是切实可行的。

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