Model description

This is a pipeline for sentiment analysis trained on the Stanford Twitter dataset.TF-IDF vectorizer is used for vectorization.

Intended uses & limitations

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Training Procedure

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Hyperparameters

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Hyperparameter Value
memory
steps [('vectorizer', TfidfVectorizer(encoding='latin-1', min_df=5, ngram_range=(1, 2),
sublinear_tf=True)), ('mnb', MultinomialNB())]
verbose False
vectorizer TfidfVectorizer(encoding='latin-1', min_df=5, ngram_range=(1, 2),
sublinear_tf=True)
mnb MultinomialNB()
vectorizer__analyzer word
vectorizer__binary False
vectorizer__decode_error strict
vectorizer__dtype <class 'numpy.float64'>
vectorizer__encoding latin-1
vectorizer__input content
vectorizer__lowercase True
vectorizer__max_df 1.0
vectorizer__max_features
vectorizer__min_df 5
vectorizer__ngram_range (1, 2)
vectorizer__norm l2
vectorizer__preprocessor
vectorizer__smooth_idf True
vectorizer__stop_words
vectorizer__strip_accents
vectorizer__sublinear_tf True
vectorizer__token_pattern (?u)\b\w\w+\b
vectorizer__tokenizer
vectorizer__use_idf True
vectorizer__vocabulary
mnb__alpha 1.0
mnb__class_prior
mnb__fit_prior True
mnb__force_alpha True

Model Plot

Pipeline(steps=[('vectorizer',TfidfVectorizer(encoding='latin-1', min_df=5,ngram_range=(1, 2), sublinear_tf=True)),('mnb', MultinomialNB())])
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Evaluation Results

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How to Get Started with the Model

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Model Card Authors

This model card is written by following authors:

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Citation

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BibTeX:

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get_started_code

import joblib model = joblib.load('pipeline_sentiment_analysis.pkl')

model_card_authors

Rodrigo Rodrigues do Carmo

limitations

This pipeline is for studying purposes only.

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