results of SVM shown in Figure 4.9(a) that the RF model failed to correctly label the oriented
buildings for the ALOS- 2/ PALSAR- 2 dataset. The SVM model performs extraordinarily to pre-
dict the label of oriented buildings and the water label using the TerraSAR- X dataset, as can be
observed in Figure 4.9(d).
4.8 CONCLUSION AND RECOMMENDATIONS
The outcomes of this study are aligned with previous research. The SVM classication model is
found to have the best pixel accuracy and F1- score of 94.74% and 0.95, respectively, when compared
to other models for the purpose of land cover and ...
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