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20996
dev-0/out.tsv
20996
dev-0/out.tsv
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30
run.py
30
run.py
@ -3,6 +3,8 @@ import csv
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import regex as re
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from nltk import bigrams, word_tokenize
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from collections import Counter, defaultdict
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import string
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import unicodedata
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data = pd.read_csv(
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"train/in.tsv.xz",
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@ -10,7 +12,7 @@ data = pd.read_csv(
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error_bad_lines=False,
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header=None,
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quoting=csv.QUOTE_NONE,
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nrows=200000,
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nrows=250000
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)
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train_labels = pd.read_csv(
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"train/expected.tsv",
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@ -18,7 +20,7 @@ train_labels = pd.read_csv(
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error_bad_lines=False,
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header=None,
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quoting=csv.QUOTE_NONE,
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nrows=200000,
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nrows=250000
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)
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train_data = data[[6, 7]]
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@ -30,8 +32,24 @@ model = defaultdict(lambda: defaultdict(lambda: 0))
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def clean(text):
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text = str(text).lower().replace("-\\n", "").replace("\\n", " ")
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return re.sub(r"\p{P}", "", text)
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text = str(text)
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# normalize text
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text = (
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unicodedata.normalize('NFKD', text).encode('ascii', 'ignore').decode(
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'utf-8', 'ignore'))
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# replace html chars with ' '
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text = re.sub('<.*?>', ' ', text)
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# remove punctuation
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text = text.translate(str.maketrans(' ', ' ', string.punctuation))
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# only alphabets and numerics
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text = re.sub('[^a-zA-Z]', ' ', text)
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# replace newline with space
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text = re.sub("\n", " ", text)
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# lower case
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text = text.lower()
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# split and join the words
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text = ' '.join(text.split())
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return text
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def train_model(data):
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@ -74,11 +92,11 @@ def predict_data(read_path, save_path):
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)
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with open(save_path, "w") as file:
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for _, row in data.iterrows():
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words = word_tokenize(clean(row[7]))
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words = word_tokenize(clean(row[6]))
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if len(words) < 3:
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prediction = "the:0.2 be:0.2 to:0.2 of:0.1 and:0.1 a:0.1 :0.1"
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else:
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prediction = predict(words[0])
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prediction = predict(words[-1])
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file.write(prediction + "\n")
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14750
test-A/out.tsv
14750
test-A/out.tsv
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