Room_lighting / app.py
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refactor: classes
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from PIL import Image
import gradio as gr
import requests
from transformers import CLIPProcessor, CLIPModel
model = CLIPModel.from_pretrained("openai/clip-vit-base-patch32")
processor = CLIPProcessor.from_pretrained("tokenizer")
def generate_answer(image):
classes = ['A picture of a room filled with abundant natural light with a lot or few windows regardless of whether it is night, without objects that prevent the light from passing through.','a picture of room in the dark','A picture of a room with Artificial lights like lamps or headlamps']
clas = ['natural_light','no_light', 'artificial_light']
inputs = processor(text=classes, images=image, return_tensors="pt", padding=True)
outputs = model(**inputs)
logits_per_image = outputs.logits_per_image
probs = logits_per_image.softmax(dim=1)
probabilities_list = probs.squeeze().tolist()
result_dict = {class_name: probability for class_name, probability in zip(clas, probabilities_list)}
return result_dict
image_input = gr.Image(type="pil", label="Upload Image")
iface = gr.Interface(
fn=generate_answer,
inputs=[image_input],
outputs="text",
title="Room Lightning Score",
description="Upload an room image"
)
iface.launch()