J Pollyfan Nicole Pusycat Set Docx [upd]

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J Pollyfan Nicole PusyCat Set docx

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J Pollyfan Nicole PusyCat Set docx

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J Pollyfan Nicole PusyCat Set docx
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J Pollyfan Nicole Pusycat Set Docx [upd]

# Print the top 10 most common words print(word_freq.most_common(10)) This code extracts the text from the docx file, tokenizes it, removes stopwords and punctuation, and calculates the word frequency. You can build upon this code to generate additional features.

Here are some features that can be extracted or generated: J Pollyfan Nicole PusyCat Set docx

# Extract text from the document text = [] for para in doc.paragraphs: text.append(para.text) text = '\n'.join(text) # Print the top 10 most common words print(word_freq

# Load the docx file doc = docx.Document('J Pollyfan Nicole PusyCat Set.docx') Keep in mind that these features might require

# Remove stopwords and punctuation stop_words = set(stopwords.words('english')) tokens = [t for t in tokens if t.isalpha() and t not in stop_words]

Based on the J Pollyfan Nicole PusyCat Set docx, I'll generate some potentially useful features. Keep in mind that these features might require additional processing or engineering to be useful in a specific machine learning or data analysis context.

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