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app.py
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import streamlit as st
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import pickle
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import pandas as pd
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import requests
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def fetch_poster(movie_id):
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response = requests.get('https://api.themoviedb.org/3/movie/{}?api_key=8265bd1679663a7ea12ac168da84d2e8&language=en-US'.format(movie_id))
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data = response.json()
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return "https://image.tmdb.org/t/p/w500/" + data['poster_path']
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def recommend(movie):
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movie_index = movies[movies['title'] == movie].index[0]
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distances = similarity[movie_index]
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movies_list = sorted(list(enumerate(distances)), reverse=True, key=lambda x:x[1])[1:6]
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recomended_movies = []
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recommended_movies_posters = []
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for i in movies_list:
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movie_id= movies.iloc[i[0]].movie_id
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recomended_movies.append(movies.iloc[i[0]].title)
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recommended_movies_posters.append(fetch_poster(movie_id))
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return recomended_movies, recommended_movies_posters
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movies_dict = pickle.load(open('movie_dict.pkl', 'rb'))
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movies = pd.DataFrame(movies_dict)
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similarity = pickle.load(open('similarity.pkl', 'rb'))
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st.title('Movie Recommender System')
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selected_movie_name = st.selectbox(
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'How',
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movies['title'].values
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)
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if st.button('Recommend'):
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recommended_movie_names, recommended_movie_posters = recommend(selected_movie_name)
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col1, col2, col3, col4, col5 = st.columns(5)
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with col1:
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st.text(recommended_movie_names[0])
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st.image(recommended_movie_posters[0])
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with col2:
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st.text(recommended_movie_names[1])
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st.image(recommended_movie_posters[1])
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with col3:
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st.text(recommended_movie_names[2])
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st.image(recommended_movie_posters[2])
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with col4:
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st.text(recommended_movie_names[3])
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st.image(recommended_movie_posters[3])
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with col5:
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st.text(recommended_movie_names[4])
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st.image(recommended_movie_posters[4])
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