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Updated app.py
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import joblib
import gradio as gr
import pandas as pd
def clean_text(text:str)->str:
if pd.isna(text):
return ""
text = str(text).lower()
text = ''.join(char for char in text if char.isalpha() or char.isspace())
return text
LogisticModel = joblib.load(r'transaction_classifier_model_Logistic_Regression.joblib')
Vectorizer = joblib.load(r'tfidf_vectorizer.joblib')
def predict_category(description:str)->str:
cleaned_text = clean_text(description)
X = Vectorizer.transform([cleaned_text]).toarray()
predict = LogisticModel.predict(X)[0]
return predict
demo = gr.Interface(
fn=predict_category,
inputs=gr.Textbox(label="Enter Transaction Description"),
outputs=gr.Textbox(label="Predicted Category"),
title="Transaction Classifier",
description="Enter a transaction description to predict its category!"
)
demo.launch(share=True)