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theta00 2022-05-17 10:57:09 +02:00
parent 33b70ce7b1
commit df7c995a83
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#!/usr/bin/env python
# coding: utf-8
# In[59]:
import pandas as pd
from sklearn.linear_model import LinearRegression
from sklearn.feature_extraction.text import CountVectorizer,TfidfVectorizer
from sklearn.metrics import mean_squared_error
from sklearn.pipeline import make_pipeline
# In[60]:
colnames = ['start', 'text']
data = pd.read_csv('train/train.tsv', sep='\t', names=colnames, usecols=[0, 4])
# In[66]:
x_train = data['text']
y_train = data['start']
# In[67]:
tfidf_vectorizer=TfidfVectorizer(use_idf=True, max_df=0.95)
tfidf_vectorizer.fit_transform(x_train.values)
x_train_prepared = tfidf_vectorizer.transform(x_train.values)
# In[68]:
lr = LinearRegression()
model = lr.fit(x_train_prepared, y_train)
# In[69]:
y_dev0_exp = pd.read_csv('dev-0/expected.tsv', sep='\t', names=['text'])
f = open("dev-0/in.tsv", "r", encoding='utf-8')
lines_dev_0 = f.readlines()
x_dev0 = pd.DataFrame(lines_dev_0)
x_dev0.rename(columns = {0 : 'text'}, inplace = True)
x_dev0_prepared = tfidf_vectorizer.transform(x_dev0['text'].values)
y_dev0_pred = model.predict(x_dev0_prepared)
file = open('dev-0/out.tsv', 'w')
for y in y_dev0_pred:
file.write(f'{y}\n')
file.close()
# In[74]:
y_dev1_exp = pd.read_csv('dev-1/expected.tsv', sep='\t', names=['text'])
f = open("dev-1/in.tsv", "r", encoding='utf-8')
lines_dev_1 = f.readlines()
x_dev1 = pd.DataFrame(lines_dev_1)
x_dev1.rename(columns = {0 : 'text'}, inplace = True)
x_dev1_prepared = tfidf_vectorizer.transform(x_dev1['text'].values)
y_dev1_pred = model.predict(x_dev1_prepared)
file = open('dev-1/out.tsv', 'w')
for y in y_dev1_pred:
file.write(f'{y}\n')
file.close()
# In[76]:
f = open("test-A/in.tsv", "r", encoding='utf-8')
lines_test = f.readlines()
x_test = pd.DataFrame(lines_test)
x_test.rename(columns = {0 : 'text'}, inplace = True)
x_test_prepared = tfidf_vectorizer.transform(x_test['text'].values)
y_test_pred = model.predict(x_test_prepared)
file = open('test-A/out.tsv', 'w')
for y in y_test_pred:
file.write(f'{y}\n')
file.close()

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