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Identification of delay-fired mining explosions using seismic arrays: Application to the PDAR array in Wyoming, USA

机译:使用地震阵列识别延迟发射的采矿爆炸:在美国怀俄明州的PDAR阵列中的应用

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摘要

We extend a time-frequency discrimination algorithm, developed in an earlier article (Arrowsmith et al., 2006), for application to seismic-array data. Spectrograms evaluated at each component of an array are stacked and then converted into binary form for computation of discriminants. Because noise can bias the discriminants, we develop a procedure for removing the effect of noise on the discriminants. The binary spectrograms are randomized where the spectral amplitude of the signal is similar to the mean spectral amplitude of the pre-event noise at that frequency. The formulism of Arrowsmith et al. (2006) is further extended by modifying the objective function used to optimize the values of input parameters and by removing high-frequency and low-frequency spectral content. We apply the method to a dataset of regional recordings of earthquakes and delay-fired mine blasts recorded at the Pinedale seismic array in Wyoming. Our results show that the utilization of array data improves the success rate for source identification. Furthermore, we find that incorporating the noise-correction procedure increases the separation between earthquakes and cast overburden blasts (the largest type of delay-fired mine blasts). In total, the algorithm successfully identifies 97.4% of the events (74 of a total of 76 events, which comprise earthquakes and cast overburden blasts).
机译:我们扩展了在较早的文章(Arrowsmith等,2006)中开发的时频判别算法,将其应用于地震阵列数据。将在阵列的每个组件处评估的频谱图进行堆叠,然后转换为二进制形式以计算判别式。由于噪声会使判别力产生偏差,因此我们开发了一种消除噪声对判别力影响的方法。二进制频谱图是随机的,其中信号的频谱幅度类似于该频率下事前噪声的平均频谱幅度。阿罗史密斯等人的公式。 (2006)通过修改用于优化输入参数值的目标函数以及删除高频和低频频谱内容进一步扩展。我们将该方法应用于怀俄明州Pinedale地震台阵记录的地震和延迟发射的矿井爆炸的区域记录数据集。我们的结果表明,利用阵列数据可以提高源识别的成功率。此外,我们发现,结合噪声校正程序可以增加地震与覆盖层爆炸(最大类型的延迟发射矿井爆炸)之间的距离。总体而言,该算法成功地识别了97.4%的事件(总共76个事件中的74个,包括地震和覆盖岩层爆炸)。

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