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- gemini pro testing

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  1. .gitignore +1 -0
  2. app.py +82 -0
  3. requirements.txt +2 -0
.gitignore ADDED
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+ .env
app.py ADDED
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+ """
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+ App to take in image and output a list of objects in the image
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+ """
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+
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+ import os
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+ from pathlib import Path
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+
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+ import google.generativeai as genai
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+ import gradio as gr
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+ from dotenv import load_dotenv
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+
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+ load_dotenv() # Load environment variables from .env file
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+
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+ genai.configure(api_key=os.environ["GOOGLE_API_KEY"])
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+
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+ input_prompt = """
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+ Extract the objects in the provided image and output them in a list in alphabetical order
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+ """
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+
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+ # Set up the model
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+ generation_config = {
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+ "temperature": 0,
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+ "top_p": 1,
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+ "top_k": 32,
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+ "max_output_tokens": 4096,
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+ }
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+
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+
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+ safety_settings = [
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+ {"category": "HARM_CATEGORY_HARASSMENT", "threshold": "BLOCK_MEDIUM_AND_ABOVE"},
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+ {"category": "HARM_CATEGORY_HATE_SPEECH", "threshold": "BLOCK_MEDIUM_AND_ABOVE"},
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+ {
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+ "category": "HARM_CATEGORY_SEXUALLY_EXPLICIT",
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+ "threshold": "BLOCK_MEDIUM_AND_ABOVE",
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+ },
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+ {
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+ "category": "HARM_CATEGORY_DANGEROUS_CONTENT",
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+ "threshold": "BLOCK_MEDIUM_AND_ABOVE",
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+ },
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+ ]
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+
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+ model = genai.GenerativeModel(
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+ model_name="gemini-pro-vision",
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+ generation_config=generation_config,
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+ safety_settings=safety_settings,
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+ )
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+
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+
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+ def input_image_setup(file_loc):
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+ if not (img := Path(file_loc)).exists():
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+ raise FileNotFoundError(f"Could not find image: {img}")
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+
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+ image_parts = [{"mime_type": "image/jpeg", "data": Path(file_loc).read_bytes()}]
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+ return image_parts
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+
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+
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+ def generate_gemini_response(input_prompt, image_loc):
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+ image_prompt = input_image_setup(image_loc)
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+ prompt_parts = [input_prompt, image_prompt[0]]
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+ response = model.generate_content(prompt_parts)
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+ output = "The objects in the image are: \n" + response.text
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+ # print(response.text)
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+ return output
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+
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+
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+ def upload_file(file_path):
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+ # print(file_path)
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+ output = generate_gemini_response(input_prompt, file_path)
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+ return file_path, output
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+
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+
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+ with gr.Blocks() as demo:
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+ header = gr.Label("Gemini Pro Vision testing")
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+ image_output = gr.Image()
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+ submit = gr.UploadButton(label="Click to upload the image to be studied", file_count="single", file_types=["image"])
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+ output = gr.Textbox(label="Output")
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+ print("here")
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+ combined_output = [image_output, output]
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+ submit.upload(upload_file, submit, combined_output)
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+
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+
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+ demo.launch(debug=True)
requirements.txt ADDED
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+ gradio==4.31.5
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+ google-generativeai==0.5.4