fix
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parent
dc2a76c237
commit
6c3ca75b83
@ -7,8 +7,16 @@ from sklearn.metrics import accuracy_score
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df = pd.read_csv("train/train.tsv", sep="\t", header=None, error_bad_lines=False)
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dev_x = pd.read_csv("dev-0/in.tsv", sep="\t", header=None, error_bad_lines=False)
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test_x = pd.read_csv("test-A/in.tsv", sep="\t", header=None, error_bad_lines=False)
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with open('test-A/in.tsv', 'r', encoding='utf8') as file:
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test = file.readlines()
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test = pd.Series(test)
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x = df[1]
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y = df[0]
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@ -17,17 +25,20 @@ model = make_pipeline(TfidfVectorizer(), MultinomialNB())
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model.fit(x,y)
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pred_dev = model.predict(dev_x[0])
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pred_test = model.predict(test_x[0])
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pred_dev = pd.Series(pred_dev)
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with open('dev-0/out.tsv', 'wt') as f:
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with open('dev-0/out.tsv', 'wt') as file:
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for pred in pred_dev:
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f.write(str(pred)+'\n')
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file.write(str(pred)+'\n')
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with open('test-A/out.tsv', 'wt') as f:
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pred_test = model.predict(test)
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pred_test = pd.Series(pred_test)
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pred_test = pred_test.astype('int')
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with open('test-A/out.tsv', 'wt') as file:
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for pred in pred_test:
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f.write(str(pred)+'\n')
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file.write(str(pred)+'\n')
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52
bayes.ipynb
52
bayes.ipynb
@ -2,7 +2,7 @@
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"cells": [
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{
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"cell_type": "code",
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"execution_count": 22,
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"execution_count": 23,
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"id": "ce420679-f5aa-4c83-a912-3c4afa982d7e",
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"metadata": {},
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"outputs": [
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@ -28,7 +28,7 @@
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"\n",
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"\n",
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"df = pd.read_csv(\"train/train.tsv\", sep=\"\\t\", header=None, error_bad_lines=False)\n",
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"df = df.head(1000)\n",
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"\n",
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"\n",
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"\n",
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"dev_x = pd.read_csv(\"dev-0/in.tsv\", sep=\"\\t\", header=None, error_bad_lines=False)\n",
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@ -69,54 +69,6 @@
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"\n",
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" \n"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 15,
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"id": "3e2a9ef0-6da0-4934-8099-378d859ae04e",
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"metadata": {},
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"outputs": [
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{
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"name": "stdout",
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"output_type": "stream",
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"text": [
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" 0\n",
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"0 ATP Sztokholm: Juergen Zopp wykorzystał szansę...\n",
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"1 Krowicki z reprezentacją kobiet aż do igrzysk ...\n",
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"2 Wielki powrót Łukasza Kubota Odradza się zawsz...\n",
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"3 Marcel Hirscher wygrał ostatni slalom gigant m...\n",
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"4 Polki do Czarnogóry z pełnią zaangażowania. Sy...\n",
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"... ...\n",
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"5440 Biało-czerwona siła w Falun. Oni będą reprezen...\n",
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"5441 Finał WTA Tokio na żywo: Woźniacka - Osaka LIV...\n",
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"5442 Oni zapisali się w annałach. Hubert Hurkacz 15...\n",
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"5443 Poprawia się stan Nikiego Laudy. Austriak może...\n",
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"5444 Liga Mistrzów. Zabójcza końcówka Interu Mediol...\n",
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"\n",
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"[5445 rows x 1 columns]\n",
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"0 ATP Sztokholm: Juergen Zopp wykorzystał szansę...\n",
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"1 Krowicki z reprezentacją kobiet aż do igrzysk ...\n",
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"2 Wielki powrót Łukasza Kubota Odradza się zawsz...\n",
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"3 Marcel Hirscher wygrał ostatni slalom gigant m...\n",
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"4 Polki do Czarnogóry z pełnią zaangażowania. Sy...\n",
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" ... \n",
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"5442 Biało-czerwona siła w Falun. Oni będą reprezen...\n",
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"5443 Finał WTA Tokio na żywo: Woźniacka - Osaka LIV...\n",
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"5444 Oni zapisali się w annałach. Hubert Hurkacz 15...\n",
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"5445 Poprawia się stan Nikiego Laudy. Austriak może...\n",
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"5446 Liga Mistrzów. Zabójcza końcówka Interu Mediol...\n",
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"Length: 5447, dtype: object\n"
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]
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}
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],
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"source": [
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"print(test)\n",
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"\n",
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"\n",
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"\n",
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"\n",
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"print(Xtest)"
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]
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}
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],
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"metadata": {
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1128
dev-0/out.tsv
1128
dev-0/out.tsv
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31
run.py
31
run.py
@ -7,8 +7,16 @@ from sklearn.metrics import accuracy_score
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df = pd.read_csv("train/train.tsv", sep="\t", header=None, error_bad_lines=False)
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dev_x = pd.read_csv("dev-0/in.tsv", sep="\t", header=None, error_bad_lines=False)
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test_x = pd.read_csv("test-A/in.tsv", sep="\t", header=None, error_bad_lines=False)
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with open('test-A/in.tsv', 'r', encoding='utf8') as file:
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test = file.readlines()
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test = pd.Series(test)
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x = df[1]
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y = df[0]
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@ -17,17 +25,20 @@ model = make_pipeline(TfidfVectorizer(), MultinomialNB())
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model.fit(x,y)
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pred_dev = model.predict(dev_x[0])
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pred_test = model.predict(test_x[0])
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pred_dev = pd.Series(pred_dev)
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with open('dev-0/out.tsv', 'wt') as f:
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with open('dev-0/out.tsv', 'wt') as file:
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for pred in pred_dev:
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f.write(str(pred)+'\n')
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file.write(str(pred)+'\n')
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with open('test-A/out.tsv', 'wt') as f:
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pred_test = model.predict(test)
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pred_test = pd.Series(pred_test)
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pred_test = pred_test.astype('int')
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with open('test-A/out.tsv', 'wt') as file:
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for pred in pred_test:
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f.write(str(pred)+'\n')
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file.write(str(pred)+'\n')
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1050
test-A/out.tsv
1050
test-A/out.tsv
File diff suppressed because it is too large
Load Diff
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