Multi-source K-nearest neighbor, Mean Balanced forest inventory of Georgia

نویسندگان

  • Roger C. Lowe
  • Chris J. Cieszewski
چکیده

We describe here a case study in compiling a high-resolution forest inventory for central Georgia using the K-nearest neighbor approach with multi-source data and mean balancing correction for the estimation bias. In general, multi-source data collected through various incompatible designs cannot be mixed due to intractable variances and unknown bias. Because of this incompatibility abundant information about the environment (i.e. atmospheric conditions, soil composition, spatio-temporal data from nearly 40 years of satellite imaging, and a wealth of site specific studies with sampling for various growth attributes) frequently cannot be used to produce new, unbiased estimates for the variables and areas of interest. The discussed here study carried out in central Georgia uses the k-NN approach to combine various incompatible data and the mean balancing approach to remove any resulting bias. The result of the study is a derivation of an unbiased high-resolution forest inventory, which can be used for the area’s fiber supply assessment analysis.

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عنوان ژورنال:
  • MCFNS

دوره 6  شماره 

صفحات  -

تاریخ انتشار 2014