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def train(dataSet, target): | |
clf = svm.SVC(gamma=0.00000001, probability=True, C=1000000, verbose=True, tol=1e-10, cache_size=600, kernel='rbf', | |
class_weight='balanced') | |
n_samples = len(dataSet) | |
a = np.array(dataSet) | |
b = np.array(target) | |
print b | |
x_train, x_test, y_train, y_test = model_selection.train_test_split(a, b, test_size=0.20) | |
clf.fit(x_train[:n_samples], y_train[:n_samples]) | |
joblib.dump(clf, 'trained_alpha_clf.pkl') |
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from __future__ import print_function | |
import random | |
HANGMANPICS = [''' | |
+---+ | |
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HANGMANPICS = [''' | |
+---+ | |
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=========''', ''' | |
+---+ |