sandz7 commited on
Commit
5659ce7
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1 Parent(s): 30132a4

added chat functionality with the model from UI

Browse files
Files changed (1) hide show
  1. app.py +36 -7
app.py CHANGED
@@ -2,7 +2,6 @@ import torch
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  import gradio as gr
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  from transformers import TextIteratorStreamer, AutoProcessor, LlavaForConditionalGeneration
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  from PIL import Image
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- import requests
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  import threading
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  import spaces
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  import accelerate
@@ -23,12 +22,39 @@ model = LlavaForConditionalGeneration.from_pretrained(
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  processor = AutoProcessor.from_pretrained(model_id)
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  @spaces.GPU(duration=120)
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- def krypton(input_image):
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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- pil_image = Image.fromarray(input_image.astype('uint8'), 'RGB')
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  # image = Image.open(requests.get(url, stream=True).raw)
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- prompt = ("<|start_header_id|>user<|end_header_id|>\n\n<image>\nWhat are these?<|eot_id|>"
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  "<|start_header_id|>assistant<|end_header_id|>\n\n")
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  inputs = processor(prompt, pil_image, return_tensors='pt').to('cuda', torch.float16)
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  outputs = model.generate(**inputs, max_new_tokens=200, do_sample=False)
@@ -36,12 +62,15 @@ def krypton(input_image):
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  print(output_text)
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  return output_text
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  with gr.Blocks(fill_height=True) as demo:
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  gr.Markdown(DESCRIPTION)
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- gr.Interface(
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  fn=krypton,
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- inputs="image",
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- outputs="text",
 
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  fill_height=True
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  )
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  import gradio as gr
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  from transformers import TextIteratorStreamer, AutoProcessor, LlavaForConditionalGeneration
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  from PIL import Image
 
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  import threading
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  import spaces
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  import accelerate
 
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  processor = AutoProcessor.from_pretrained(model_id)
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+ model.generation_config.eos_token_id = 128009
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+
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  @spaces.GPU(duration=120)
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+ def krypton(input,
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+ history):
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+ """
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+ Recieves inputs (prompts with images if they were added),
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+ the image is formated for pil and prompt is formated for the model,
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+ to place it's output to the user, these prompts and images are passed in
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+ the processor and generation of the model, than the output is decoded from the processor,
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+ onto the UI.
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+ """
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+ if input["files"]:
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+ if type(input["files"][-1]) == dict:
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+ image = input["files"][-1]["path"]
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+ else:
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+ image = input["files"][-1]
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+ else:
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+ # If no images were passed now, look at the past images to keep up as reference still to the prompts
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+ # kept inside in tuples, the last one
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+ for hist in history:
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+ if type(hist[0]) == tuple:
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+ image = hist[0][0]
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+ try:
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+ if image is None:
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+ gr.Error("You need to upload an image please for krypton to work.")
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+ except NameError:
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+ # Image is not defined at all
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+ gr.Error("Uplaod an image for Krypton to work")
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+ pil_image = Image.fromarray(image.astype('uint8'), 'RGB')
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  # image = Image.open(requests.get(url, stream=True).raw)
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+ prompt = ("<|start_header_id|>user<|end_header_id|>\n\n<image>\n{input['text']}<|eot_id|>"
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  "<|start_header_id|>assistant<|end_header_id|>\n\n")
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  inputs = processor(prompt, pil_image, return_tensors='pt').to('cuda', torch.float16)
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  outputs = model.generate(**inputs, max_new_tokens=200, do_sample=False)
 
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  print(output_text)
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  return output_text
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+ chatbot=gr.Chatbot(fill_height=600, label="Krypt AI")
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+ chat_input = gr.MultimodalTextbox(Interactive=True, file_types=["image"], placeholder="Enter your question or upload an image.", show_label=False)
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  with gr.Blocks(fill_height=True) as demo:
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  gr.Markdown(DESCRIPTION)
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+ gr.ChatInterface(
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  fn=krypton,
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+ chatbot=chatbot,
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+ multimodal=True,
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+ textbox=chat_input,
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  fill_height=True
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  )
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