Created
January 13, 2019 00:04
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split tweet data into training, validation and test sets for the transformer
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def stance(data_dir, topic=None): | |
path = Path(data_dir) | |
trainfile = 'semeval2016-task6-trainingdata.txt' | |
testfile = 'SemEval2016-Task6-subtaskA-testdata.txt' | |
X, Y = _stance(path/trainfile, topic=topic) | |
teX, _ = _stance(path/testfile, topic=topic) | |
tr_text, va_text, tr_sent, va_sent = train_test_split(X, Y, test_size=0.2, random_state=seed) | |
trX = [] | |
trY = [] | |
for t, s in zip(tr_text, tr_sent): | |
trX.append(t) | |
trY.append(s) | |
vaX = [] | |
vaY = [] | |
for t, s in zip(va_text, va_sent): | |
vaX.append(t) | |
vaY.append(s) | |
trY = np.asarray(trY, dtype=np.int32) | |
vaY = np.asarray(vaY, dtype=np.int32) | |
return (trX, trY), (vaX, vaY), (teX, ) |
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