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from transformers import pipeline | |
import gradio as gr | |
# Load sentiment analysis pipeline with model | |
pipe = pipeline("text-classification", model="arifagustyawan/sentiment-roberta-id") | |
# Define the header, subheader, and example texts | |
header = "Sentiment Analysis" | |
subheader = "Evaluate the sentiment of Indonesian text using the RoBERTa model and IndoNLU dataset" | |
example_texts = [ | |
"Film ini sangat menyenangkan. Aktingnya luar biasa, dan alur ceritanya membuat saya terlibat sepanjang film.", | |
"Cuaca hari ini sangat buruk. Hujan terus-menerus membuat suasana hati saya merasa lesu.", | |
"Saya merasa campur aduk setelah menonton pertandingan tadi malam. Tim favorit saya kalah tetapi memberikan pertunjukan yang luar biasa." | |
] | |
# Create Gradio interface with header, subheader, and example texts | |
demo = gr.Interface.from_pipeline(pipe, | |
title=header, | |
description=subheader, | |
examples=[[text] for text in example_texts]) | |
# Launch the Gradio interface | |
demo.launch() | |