test
Browse files- recommend_normal.py +2 -2
- recommendwithdesc.py +2 -2
- recommendwithhist.py +2 -2
recommend_normal.py
CHANGED
@@ -28,8 +28,8 @@ def load_data():
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# Load movie data
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movies_data = load_data()
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vectorizer_path = hf_hub_download(repo_id=repo_id, filename="feature_vector.pkl")
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similarity_path = hf_hub_download(repo_id=repo_id, filename="model_similarity.pkl")
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def recommend_movies(movie_name):
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# Add the movie to the user's history
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if vectorizer_path and similarity_path:
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# Load movie data
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movies_data = load_data()
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+
vectorizer_path = hf_hub_download(repo_id=repo_id, filename="feature_vector.pkl", cache_dir=cache_dir)
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similarity_path = hf_hub_download(repo_id=repo_id, filename="model_similarity.pkl", cache_dir=cache_dir)
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def recommend_movies(movie_name):
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# Add the movie to the user's history
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if vectorizer_path and similarity_path:
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recommendwithdesc.py
CHANGED
@@ -27,8 +27,8 @@ def load_data():
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# Load movie data
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movies_data = load_data()
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model_vectorizer = hf_hub_download(repo_id=repo_id, filename="model_vectorizer.pkl")
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similarity_path = hf_hub_download(repo_id=repo_id, filename="model_similarity.pkl")
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with open(model_vectorizer, 'rb') as vec_file, open(similarity_path, 'rb') as sim_file:
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vectorizer = pickle.load(vec_file)
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similarity = pickle.load(sim_file)
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# Load movie data
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movies_data = load_data()
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+
model_vectorizer = hf_hub_download(repo_id=repo_id, filename="model_vectorizer.pkl", cache_dir=cache_dir)
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similarity_path = hf_hub_download(repo_id=repo_id, filename="model_similarity.pkl", cache_dir=cache_dir)
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with open(model_vectorizer, 'rb') as vec_file, open(similarity_path, 'rb') as sim_file:
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vectorizer = pickle.load(vec_file)
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similarity = pickle.load(sim_file)
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recommendwithhist.py
CHANGED
@@ -61,8 +61,8 @@ for feature in selected_features:
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# Combine features
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combined_features = movies_data['genres'] + ' ' + movies_data['keywords'] + ' ' + movies_data['tagline'] + ' ' + movies_data['cast'] + ' ' + movies_data['director']
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model_vectorizer = hf_hub_download(repo_id=repo_id, filename="model_vectorizer.pkl")
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similarity_path = hf_hub_download(repo_id=repo_id, filename="model_similarity.pkl")
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# Check if the model (vectorizer and similarity) exists
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if model_vectorizer and similarity_path:
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# Load the vectorizer and similarity matrix
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# Combine features
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combined_features = movies_data['genres'] + ' ' + movies_data['keywords'] + ' ' + movies_data['tagline'] + ' ' + movies_data['cast'] + ' ' + movies_data['director']
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model_vectorizer = hf_hub_download(repo_id=repo_id, filename="model_vectorizer.pkl", cache_dir=cache_dir)
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+
similarity_path = hf_hub_download(repo_id=repo_id, filename="model_similarity.pkl", cache_dir=cache_dir)
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# Check if the model (vectorizer and similarity) exists
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if model_vectorizer and similarity_path:
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# Load the vectorizer and similarity matrix
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