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ML-For-Beginners/translations/ru/6-NLP/3-Translation-Sentiment/solution/notebook.ipynb

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{
"metadata": {
"language_info": {
"codemirror_mode": {
"name": "ipython",
"version": 3
},
"file_extension": ".py",
"mimetype": "text/x-python",
"name": "python",
"nbconvert_exporter": "python",
"pygments_lexer": "ipython3",
"version": 3
},
"orig_nbformat": 4,
"coopTranslator": {
"original_hash": "27de2abc0235ebd22080fc8f1107454d",
"translation_date": "2025-08-30T00:14:44+00:00",
"source_file": "6-NLP/3-Translation-Sentiment/solution/notebook.ipynb",
"language_code": "ru"
}
},
"nbformat": 4,
"nbformat_minor": 2,
"cells": [
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"from textblob import TextBlob\n"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"# You should download the book text, clean it, and import it here\n",
"with open(\"pride.txt\", encoding=\"utf8\") as f:\n",
" file_contents = f.read()\n"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"book_pride = TextBlob(file_contents)\n",
"positive_sentiment_sentences = []\n",
"negative_sentiment_sentences = []"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"for sentence in book_pride.sentences:\n",
" if sentence.sentiment.polarity == 1:\n",
" positive_sentiment_sentences.append(sentence)\n",
" if sentence.sentiment.polarity == -1:\n",
" negative_sentiment_sentences.append(sentence)\n"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"print(\"The \" + str(len(positive_sentiment_sentences)) + \" most positive sentences:\")\n",
"for sentence in positive_sentiment_sentences:\n",
" print(\"+ \" + str(sentence.replace(\"\\n\", \"\").replace(\" \", \" \")))\n"
]
},
{
"cell_type": "code",
"execution_count": null,
"metadata": {},
"outputs": [],
"source": [
"print(\"The \" + str(len(negative_sentiment_sentences)) + \" most negative sentences:\")\n",
"for sentence in negative_sentiment_sentences:\n",
" print(\"- \" + str(sentence.replace(\"\\n\", \"\").replace(\" \", \" \")))"
]
},
{
"cell_type": "markdown",
"metadata": {},
"source": [
"\n---\n\n**Отказ от ответственности**: \nЭтот документ был переведен с использованием сервиса автоматического перевода [Co-op Translator](https://github.com/Azure/co-op-translator). Хотя мы стремимся к точности, пожалуйста, учитывайте, что автоматические переводы могут содержать ошибки или неточности. Оригинальный документ на его родном языке следует считать авторитетным источником. Для получения критически важной информации рекомендуется профессиональный перевод человеком. Мы не несем ответственности за любые недоразумения или неправильные интерпретации, возникшие в результате использования данного перевода.\n"
]
}
]
}