Image_QA / app.py
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from dotenv import load_dotenv
import streamlit as st
import os
from PIL import Image
import google.generativeai as genai
load_dotenv()
genai.configure(api_key=os.getenv("GOOGLE_API_KEY"))
# Function to load Gemini Pro Vision
model = genai.GenerativeModel('gemini-pro-vision')
def get_gemini_response(input,image, prompt):
response = model.generate_content([input, image[0], prompt])
return response.text
def input_image_setup(uploaded_file):
if uploaded_file is not None:
# Read the file into bytes
bytes_data = uploaded_file.getvalue()
image_parts = [
{
"mime_type": uploaded_file.type,
'data' : bytes_data
}
]
return image_parts
else:
raise FileNotFoundError("No file Uploaded")
st.set_page_config(page_title='Multi Langauge Invoice Extractor')
st.header("Multi Langauge Invoice Extractor")
input = st.text_input("Input prompt: ", key="input")
uploaded_file = st.file_uploader("Choose an image... ", type=['jpg', 'jpeg', 'png'])
image = ''
if uploaded_file is not None:
image = Image.open(uploaded_file)
st.image(image, caption='Uploaded Image.', use_column_width=True)
submit = st.button("Tell me about the image")
input_prompt="""
You are an expert in understanding invoices. We will upload a image as invoice
and you will have to answer any questions based on the uploaded invoice image
"""
if submit:
image_data = input_image_setup(uploaded_file)
response = get_gemini_response(input_prompt, image_data, input)
st.subheader("The Response is")
st.write(response)