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首页> 外文期刊>Scandinavian Journal of Forest Research >The roles of nearest neighbor methods in imputing missing data in forest inventory and monitoring databases.
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The roles of nearest neighbor methods in imputing missing data in forest inventory and monitoring databases.

机译:最近邻方法在估算森林清单和监视数据库中的缺失数据中的作用。

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摘要

Almost universally, forest inventory and monitoring databases are incomplete, ranging from missing data for only a few records and a few variables, common for small land areas, to missing data for many observations and many variables, common for large land areas. For a wide variety of applications, nearest neighbor (NN) imputation methods have been developed to fill in observations of variables that are missing on some records (Y-variables), using related variables that are available for all records (X-variables). This review attempts to summarize the advantages and weaknesses of NN imputation methods and to give an overview of the NN approaches that have most commonly been used. It also discusses some of the challenges of NN imputation methods. The inclusion of NN imputation methods into standard software packages and the use of consistent notation may improve further development of NN imputation methods. Using X-variables from different data sources provides promising results, but raises the issue of spatial and temporal registration errors. Quantitative measures of the contribution of individual X-variables to the accuracy of imputing the Y-variables are needed. In addition, further research is warranted to verify statistical properties, modify methods to improve statistical properties, and provide variance estimators.
机译:几乎普遍而言,森林资源清查和监测数据库是不完整的,范围很广,从仅少量记录和少量变量的数据丢失(对于小土地面积来说是常见的)到对于许多观测值和许多变量的数据丢失(对于大土地面积而言是常见的)。对于广泛的应用,已开发出最近邻(NN)插补方法,以使用对所有记录都可用的相关变量来填充某些记录( Y 变量)中缺少的变量的观测值。记录( X 变量)。这篇综述试图总结NN插补方法的优点和缺点,并概述最常用的NN方法。它还讨论了NN插补方法的一些挑战。将NN插补方法包括在标准软件包中以及使用一致的符号可以改善NN插补方法的进一步开发。使用来自不同数据源的 X 变量提供了令人鼓舞的结果,但提出了时空配准错误的问题。需要量化各个 X 变量对估算 Y 变量的准确性的贡献的度量。此外,还需要进行进一步的研究以验证统计属性,修改方法以改善统计属性并提供方差估计量。

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