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import joblib | |
import pandas as pd | |
import streamlit as st | |
from huggingface_hub import hf_hub_download | |
REPO_ID = "chanyaphas/creditc" | |
access_token = st.secrets["HF_TOKEN"] | |
model = joblib.load( | |
hf_hub_download(repo_id=REPO_ID, filename='model.joblib', token=access_token, repo_type="space") | |
) | |
unique_values = joblib.load( | |
hf_hub_download(repo_id=REPO_ID, filename='unique_values.joblib', token=access_token, repo_type="space") | |
) | |
EDU_DICT = {'Lower secondary': 1, | |
'Secondary / secondary special': 2, | |
'Academic degree': 3, | |
'Incomplete higher': 4, | |
'Higher education' : 5 | |
} | |
def main(): | |
st.title("Credit Card Approval Prediction") | |
with st.form("questionaire"): | |
Gender = st.selectbox('Gender', unique_values['CODE_GENDER']) | |
Own_car = st.selectbox('Own_car', unique_values['FLAG_OWN_CAR']) | |
Property = st.selectbox('Property', unique_values['FLAG_OWN_REALTY']) | |
Income_type = st.selectbox('Income_type', unique_values['NAME_INCOME_TYPE']) | |
Marital_status = st.selectbox('Marital_status', unique_values['NAME_FAMILY_STATUS']) | |
Housing_type = st.selectbox('Housing_type', unique_values['NAME_HOUSING_TYPE']) | |
Education = st.selectbox('Education', unique_values['NAME_EDUCATION_TYPE']) | |
Income = st.slider('Income', min_value=27000, max_value=1575000) | |
Children = st.slider('Children', min_value=0, max_value=19) | |
Day_Employed = st.slider('Day_Employed', min_value=0, max_value=3) | |
Flag_Mobile = st.slider('Flag_Mobile', min_value=0, max_value=1) | |
Flag_work_phone = st.slider('Flag_work_phone', min_value=0, max_value=1) | |
Flag_Phone = st.slider('Flag_Phone', min_value=0, max_value=1) | |
Flag_Email = st.slider('Flag_Email', min_value=0, max_value=1) | |
Family_mem = st.slider('Family_mem', min_value=1, max_value=20) | |
clicked = st.form_submit_button("Result") | |
if clicked: | |
result = model.predict(pd.DataFrame({ | |
"CODE_GENDER": [Gender], | |
"FLAG_OWN_CAR": [Own_car], | |
"FLAG_OWN_REALTY": [Property], | |
"CNT_CHILDREN": [Children], | |
"AMT_INCOME_TOTAL": [Income], | |
"NAME_INCOME_TYPE": [Income_type], | |
"NAME_EDUCATION_TYPE": [EDU_DICT[Education]], | |
"NAME_FAMILY_STATUS": [Marital_status], | |
"NAME_HOUSING_TYPE": [Housing_type], | |
"DAYS_EMPLOYED": [Day_Employed], | |
"FLAG_MOBIL": [Flag_Mobile], | |
"FLAG_WORK_PHONE": [Flag_work_phone], | |
"FLAG_PHONE": [Flag_Phone], | |
"FLAG_EMAIL": [Flag_Email], | |
"CNT_FAM_MEMBERS": [Family_mem]})) | |
result = 'Pass' if result[0] == 1 else 'Did not Pass' | |
st.success('Credit Card approval prediction results is {}'.format(result)) | |
if __name__ == '__main__': | |
main() | |