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基于SVD的叠后地震资料随机噪声分离方法
引用本文:姜宇航,刘财,宋超,高月,鹿琪.基于SVD的叠后地震资料随机噪声分离方法[J].世界地质,2016,35(2):543-548.
作者姓名:姜宇航  刘财  宋超  高月  鹿琪
作者单位:1. 吉林大学 地球探测科学与技术学院,长春 130026; 2. 吉林大学 地下水资源与环境教育部重点实验室,长春 130021
摘    要:笔者提出基于SVD的叠后地震资料随机噪声分离方法,在地震剖面的同相轴水平或接近水平时可以有效地分离出地震剖面中的随机噪声,提高地震剖面的分辨率。为了说明SVD随机噪声分离方法的有效性和高效性,建立模型试验,在合成地震记录中加入随机噪声,之后进行实际地震资料处理,分别用SVD方法和基于小波变换的分层阈值方法对加入随机噪声的合成记录和加入随机噪声的实际资料进行随机噪声分离处理。对比发现,SVD随机噪声分离方法相比于基于小波变换的分层阈值方法更加有效且高效。

关 键 词:SVD  分层阈值法  随机噪声  噪声分离

Method on random noise separation from poststack seismic data based on SVD
JIANG Yu-Hang,LIU Cai,SONG Chao,GAO Yue,LU Qi.Method on random noise separation from poststack seismic data based on SVD[J].World Geology,2016,35(2):543-548.
Authors:JIANG Yu-Hang  LIU Cai  SONG Chao  GAO Yue  LU Qi
Institution:1. College of Geo- exploration Science and Technology,Jilin University,Changchun 130026,China; 2. Key Laboratory of Groundwater Resources and Environment,Ministry of Education,Jilin University,Changchun 130021,China
Abstract:The authors present a new method of random noise separation from poststack seismic data based on SVD. If the events of seismic profile are horizontal or closely horizontal,this method can separate the random noise from the seismic data validly and greatly improve the resolution of the seismic profile. In order to demonstrate the validity and high efficiency of de- noising method based on SVD,the authors set up model experiments firstly,then add random noise into the synthetic seismic data and field data. The noisy synthetic seismic data and field data with SVD method and wavelet threshold de- noising method have been processed respectively. The results show that com- pared with wavelet threshold de- noising method,SVD method can separate the random noise from the seismic data more validly and efficiently.
Keywords:SVD method  wavelet threshold de- noising method  random noise  noise separation
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