Calibrating a neural network-based urban change model for two metropolitan areas of the Upper Midwest of the United States

被引:168
作者
Pijanowski, BC
Pithadia, S
Shellito, BA
Alexandridis, K
机构
[1] Purdue Univ, Dept Forestry & Nat Resources, W Lafayette, IN 47907 USA
[2] Youngstown State Univ, Dept Geog, Youngstown, OH 44555 USA
基金
美国国家航空航天局;
关键词
neural nets; GIS; Kappa; landscape pattern metrics;
D O I
10.1080/13658810410001713416
中图分类号
TP [自动化技术、计算机技术];
学科分类号
0812 ;
摘要
We parameterized neural net-based models for the Detroit and Twin Cities metropolitan areas in the US and attempted to test whether they were transferable across both metropolitan areas. Three different types of models were developed. First, we trained and tested the neural nets within each region and compared them against observed change. Second, we used the training weights from one area and applied them to the other. Third, we selected a small subset (similar to1%) of the Twin Cities area where a lot of urban change occurred. Four model performance metrics are reported: (1) Kappa; (2) the scale which correct and paired omission/commission errors exceed 50%; (3) landscape pattern metrics; and (4) percentage of cells in agreement between model simulations. We found that the neural net model in most cases performed well on pattern but not location using Kappa. The model performed well only in one case where the neural net weights from one area were used to simulate the other. We suggest that landscape metrics are good to judge model performance of land use change models but that Kappa might not be reliable for situations where a small percentage of urban areas change.
引用
收藏
页码:197 / 215
页数:19
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