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首页> 外文期刊>International Journal of Climatology: A Journal of the Royal Meteorological Society >The impact of filtering self-organizing maps: a case study with Australian pressure and rainfall
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The impact of filtering self-organizing maps: a case study with Australian pressure and rainfall

机译:自组织图过滤的影响:以澳大利亚的压力和降雨为例的研究

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摘要

This study presents a semi-objective set of criteria for filtering the time series of a self-organizing map (SOM, a method for collapsing a complex data set onto a series of typical instancesodes). The purpose of the filter (or selection process) is to avoid the problem of associating anomalous time steps with SOM nodes that do not adequately describe that time step. The filter is based on measures of the match of the original field to the nearest SOM node. We demonstrate the method by using 21 years of MSLP reanalysis data for the Australian region from the European Centre for Medium Range Weather Forecasting product, ERA-Interim. We show that there are instances in which the SOM is incapable of describing the original data and that these instances can be removed using a set of criteria. We then show that this filtering/removal process improves both the quantitative and qualitative matching of the SOM to the MSLP data. Finally, we show that SOM-associated precipitation at three Australian cities (Melbourne, Sydney and Perth) is significantly influenced by the MSLP distributions that do not relate to the SOM and were removed by the filtering. The results show that care is required when interpreting trends inferred from data sorted into SOM nodes.
机译:这项研究提出了一套半客观标准,用于过滤自组织图的时间序列(SOM,一种将复杂数据集折叠到一系列典型实例/节点上的方法)。过滤器(或选择过程)的目的是避免将异常时间步长与无法充分描述该时间步长的SOM节点相关联的问题。过滤器基于原始字段与最近的SOM节点匹配的度量。我们使用欧洲中距离天气预报中心ERA-Interim对澳大利亚地区进行的21年MSLP再分析数据来演示该方法。我们显示了在某些情况下SOM无法描述原始数据,并且可以使用一组条件来删除这些实例。然后,我们证明此过滤/删除过程可以改善SOM与MSLP数据的定量和定性匹配。最后,我们表明,在三个澳大利亚城市(墨尔本,悉尼和珀斯)与SOM相关的降水受到与SOM不相关的MSLP分布的显着影响,并且被过滤去除。结果表明,在解释从分类到SOM节点的数据推断出的趋势时,需要格外小心。

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