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首页> 外文期刊>Journal of Applied Geophysics >Arrival-time picking method based on approximate negentropy for microseismic data
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Arrival-time picking method based on approximate negentropy for microseismic data

机译:基于近似未激结读数的拾取方法

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Accurate and dependable picking of the first arrival time for microseismic data is an important part in microseismic monitoring, which directly affects analysis results of post-processing. This paper presents a new method based on approximate negentropy (AN) theory for microseismic arrival time picking in condition of much lower signal-tonoise ratio (SNR). According to the differences in information characteristics between microseismic data and random noise, an appropriate approximation of negentropy function is selected to minimize the effect of SNR. At the same time, a weighted function of the differences between maximum and minimum value of AN spectrum curve is designed to obtain a proper threshold function. In this way, the region of signal and noise is distinguished to pick the first arrival time accurately. To demonstrate the effectiveness of AN method, we make many experiments on a series of synthetic data with different SNR from -1 dB to -12 dB and compare it with previously published Akaike information criterion (AIC) and short/long time average ratio (STA/LTA) methods. Experimental results indicate that these three methods can achieve well picking effect when SNR is from -1 dB to -8 dB. However, when SNR is as low as -8 dB to -12 dB, the proposed AN method yields more accurate and stable picking result than AIC and STA/LTA methods. Furthermore, the application results of real three-component microseismic data also show that the new method is superior to the other two methods in accuracy and stability. (C) 2017 Elsevier B.V. All rights reserved.
机译:对于微震数据的第一个到达时间准确和可靠的挑选是微震监测中的重要组成部分,这直接影响了后处理的分析结果。本文介绍了一种基于近似的共阴(AN)理论的新方法,用于微震到达时间拣选的条件下的信号 - 儿童比例(SNR)。根据微震数据和随机噪声之间的信息特性的差异,选择了对共阴功能的适当近似,以最小化SNR的效果。同时,谱曲线的最大值和最小值之间的差异的加权函数被设计为获得适当的阈值函数。以这种方式,区分信号和噪声区域以准确地选择第一到达时间。为了证明方法的有效性,我们在一系列具有不同SNR的一系列合成数据的实验,并将其从-1 dB到-12 dB不同,并将其与先前发布的Akaike信息标准(AIC)和短/长/长的平均比率进行比较(STA / LTA)方法。实验结果表明,当SNR为-1 dB至-8 dB时,这三种方法可以达到良好的拾取效果。然而,当SNR低至-12dB至-12 dB时,提出的方法比AIC和STA / LTA方法产生更准确和稳定的拣选结果。此外,真正的三组分微震数据的应用结果还表明,新方法在准确性和稳定性方面优于其他两种方法。 (c)2017 Elsevier B.v.保留所有权利。

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