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| from operator import index | |
| import streamlit as st | |
| import plotly.express as px | |
| from pycaret.regression import setup, compare_models, pull, save_model, load_model | |
| import pandas_profiling | |
| import pandas as pd | |
| from streamlit_pandas_profiling import st_profile_report | |
| import os | |
| if os.path.exists('./dataset.csv'): | |
| df = pd.read_csv('dataset.csv', index_col=None) | |
| with st.sidebar: | |
| st.image("https://www.onepointltd.com/wp-content/uploads/2020/03/inno2.png") | |
| st.title("AutoNickML") | |
| choice = st.radio("Navigation", ["Upload","Profiling","Modelling", "Download"]) | |
| st.info("This project application helps you build and explore your data.") | |
| if choice == "Upload": | |
| st.title("Upload Your Dataset") | |
| file = st.file_uploader("Upload Your Dataset") | |
| if file: | |
| df = pd.read_csv(file, index_col=None) | |
| df.to_csv('dataset.csv', index=None) | |
| st.dataframe(df) | |
| if choice == "Profiling": | |
| st.title("Exploratory Data Analysis") | |
| profile_df = df.profile_report() | |
| st_profile_report(profile_df) | |
| if choice == "Modelling": | |
| chosen_target = st.selectbox('Choose the Target Column', df.columns) | |
| if st.button('Run Modelling'): | |
| setup(df, target=chosen_target) | |
| setup_df = pull() | |
| st.dataframe(setup_df) | |
| best_model = compare_models() | |
| compare_df = pull() | |
| st.dataframe(compare_df) | |
| save_model(best_model, 'best_model') | |
| if choice == "Download": | |
| with open('best_model.pkl', 'rb') as f: | |
| st.download_button('Download Model', f, file_name="best_model.pkl") |