计算机科学 ›› 2025, Vol. 52 ›› Issue (6A): 240600155-6.doi: 10.11896/jsjkx.240600155
王雪鉴1, 王毅恒1,2, 孙新坡2, 柳川3, 加明4, 赵超1, 杨超1
WANG Xuejian1, WANG Yiheng1,2, SUN Xinpo2, LIU Chuan3, JIA Ming4, ZHAO Chao1, YANG Chao1
摘要: GPS地壳变形监测在地震前兆研究中起着至关重要的作用。随着观测数据的积累,传统数据处理方法在大数据处理方面面临挑战。文中提出了一种基于Transformer网络和重构误差训练策略的算法。该算法通过训练Transformer网络学习无地震时的GPS地壳位移数据,输出正常数据,并将异常时的地震GPS地壳位移数据重构误差输入到Isolation Forest异常检测算法模型中来判别是否是地震异常前兆。从GPS地壳变形数据中提取了2个Mw>5的地震事件前异常,获得了比以往研究更全面且普遍的异常数据现象。统计分析显示,相同地区的观测站在2次地震前的GPS地壳变形数据中存在相似的异常现象,表明相同地区存在相似的地壳形变积累和释放模式。这些发现,强调了通过理解地震机制来提高地震预测和防范的必要性。
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