test-space / app.py
Samantha Hipple
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import streamlit as st
# from transformers import pipeline
from deepface import DeepFace
import numpy as np
from PIL import Image
# pipeline = pipeline(task="image-classification", model="julien-c/hotdog-not-hotdog")
st.title("Your Emotions? Or Nah?")
# st.title("Hot Dog? Or Not?")
file_name = st.file_uploader("Upload a photo of your face.")
# file_name = st.file_uploader("Upload a hot dog candidate image")
if file_name is not None:
# make two columns
col1, col2 = st.columns(2)
# capture image
image = Image.open(file_name)
# to display in in column 1
col1.image(image, use_column_width=True)
# capture image data for deepface
image_data = np.array(image)
# capture predictions from deepface
predictions = DeepFace.analyze(image_data, actions=['emotion'])['emotion']
# predictions = pipeline(image)
# to display in column 2
col2.header("Emotion Probabilities")
# for p in predictions:
for emotion in predictions:
# col2.subheader(f"{ p['label'] }: { round(p['score'] * 100, 1)}%")
col2.subheader(f"{emotion}")