A New Method of Significance Testing for Correlation-Coefficient Fields and Its Application

被引:0
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作者
Xiaojuan Sun
Siyan Li
Julian X. L. Wang
Panxing Wang
Dong Guo
机构
[1] Ministry of Education/Collaborative Innovation Center on Forecast and Evaluation of Meteorological Disasters,Key Laboratory of Meteorological Disaster
[2] Nanjing University of Information Science and Technology,National Oceanic and Atmospheric Administration, Silver Spring
[3] Nanjing Xindan Institute of Meteorological Science and Technology,undefined
[4] Air Resources Laboratory,undefined
来源
关键词
correlation-coefficient field; significant-correlation area; empirical Monte Carlo method; significance test; 相关系数场; 显著相关区面积; 经验蒙特卡洛方法; 显著性检验;
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学科分类号
摘要
Correlation-coefficient fields are widely used in short-term climate prediction research. The most frequently used significance test method for the correlation-coefficient field was proposed by Livezey, in which the number of significant-correlation lattice (station) points on the correlation coherence map is used as the statistic. However, the method is based on two assumptions: (1) the spatial distribution of the lattice (station) points is uniform; and (2) there is no correlation between the physical quantities in the correlation-coefficient field. However, in reality, the above two assumptions are not valid. Therefore, we designed a more reasonable method for significance testing of the correlation-coefficient field. Specifically, a new statistic, the significant-correlation area, is introduced to eliminate the inhomogeneity of the grid (station)-point distribution, and an empirical Monte Carlo method is employed to eliminate the spatial correlation of the matrix. Subsequently, the new significance test was used for simultaneous correlation-coefficient fields between intensities of the atmospheric activity center in the Northern Hemisphere and temperature/precipitation in China. The results show that the new method is more reasonable than the Livezey method.
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页码:529 / 535
页数:6
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