DEVELOPMENT...
Issue | #Downvotes for this reason | By |
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weka.RandomSubSpace_REPTree(2) | Tin Kam Ho (1998). The Random Subspace Method for Constructing Decision Forests. IEEE Transactions on Pattern Analysis and Machine Intelligence. 20(8):832-844. URL http://citeseer.ist.psu.edu/ho98random.html. |
weka.REPTree(5)_I | 0.0 |
weka.REPTree(5)_L | -1 |
weka.REPTree(5)_M | 2 |
weka.REPTree(5)_N | 3 |
weka.REPTree(5)_S | 1 |
weka.REPTree(5)_V | 0.001 |
weka.RandomSubSpace_REPTree(2)_P | 0.5 |
weka.RandomSubSpace_REPTree(2)_S | 1 |
weka.RandomSubSpace_REPTree(2)_num-slots | 1 |
weka.RandomSubSpace_REPTree(2)_I | 10 |
weka.RandomSubSpace_REPTree(2)_W | weka.classifiers.trees.REPTree |
0.9576 ± 0.0053 Per class |
0.0143 |
2875224144.9455 |
0.69 ± 0.0228 Per class |
0.6667 ± 0.0289 |
0.7059 ± 0.0132 |
0.0834 ± 0.0033 |
0.18 |
2000 Per class |
[Sun Microsystems Inc., 1.6.0_33, amd64, Linux, 3.5.0-54-generic] |
0.6938 ± 0.0259 Per class |
0.7 ± 0.026 |
3.3219 |
0.7 ± 0.026 Per class |
0.4634 ± 0.0183 |
0.3 |
0.194 ± 0.0041 |
0.6465 ± 0.0136 |
1367.6268 |