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87966a5
1
Parent(s):
0c2f001
qwen2-VL
Browse files- app.py +58 -5
- requirements.txt +9 -2
app.py
CHANGED
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@@ -9,8 +9,9 @@ from huggingface_hub import InferenceClient
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import subprocess
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import torch
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from PIL import Image
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from transformers import AutoProcessor, AutoModelForCausalLM
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import
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subprocess.run('pip install flash-attn --no-build-isolation', env={'FLASH_ATTENTION_SKIP_CUDA_BUILD': "TRUE"}, shell=True)
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@@ -21,6 +22,10 @@ device = "cuda" if torch.cuda.is_available() else "cpu"
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florence_model = AutoModelForCausalLM.from_pretrained('microsoft/Florence-2-large', trust_remote_code=True).to(device).eval()
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florence_processor = AutoProcessor.from_pretrained('microsoft/Florence-2-large', trust_remote_code=True)
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# Florence caption function
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@spaces.GPU
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def florence_caption(image):
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@@ -44,6 +49,50 @@ def florence_caption(image):
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return parsed_answer["<MORE_DETAILED_CAPTION>"]
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# Load JSON files
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def load_json_file(file_name):
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file_path = os.path.join("data", file_name)
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@@ -469,6 +518,7 @@ def create_interface():
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with gr.Accordion("Image and Caption", open=False):
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input_image = gr.Image(label="Input Image (optional)")
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caption_output = gr.Textbox(label="Generated Caption", lines=3)
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create_caption_button = gr.Button("Create Caption")
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add_caption_button = gr.Button("Add Caption to Prompt")
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@@ -488,14 +538,17 @@ def create_interface():
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generate_text_button = gr.Button("Generate Prompt with LLM (Llama 3.1 70B)")
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text_output = gr.Textbox(label="Generated Text", lines=10)
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def create_caption(image):
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if image is not None:
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return ""
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create_caption_button.click(
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create_caption,
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inputs=[input_image],
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outputs=[caption_output]
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)
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import subprocess
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import torch
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from PIL import Image
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from transformers import AutoProcessor, AutoModelForCausalLM, Qwen2VLForConditionalGeneration
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from qwen_vl_utils import process_vision_info
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import numpy as np
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subprocess.run('pip install flash-attn --no-build-isolation', env={'FLASH_ATTENTION_SKIP_CUDA_BUILD': "TRUE"}, shell=True)
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florence_model = AutoModelForCausalLM.from_pretrained('microsoft/Florence-2-large', trust_remote_code=True).to(device).eval()
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florence_processor = AutoProcessor.from_pretrained('microsoft/Florence-2-large', trust_remote_code=True)
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# Initialize Qwen2-VL-2B model
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qwen_model = Qwen2VLForConditionalGeneration.from_pretrained("Qwen/Qwen2-VL-2B-Instruct", trust_remote_code=True, torch_dtype="auto").to(device).eval()
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qwen_processor = AutoProcessor.from_pretrained("Qwen/Qwen2-VL-2B-Instruct", trust_remote_code=True)
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# Florence caption function
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@spaces.GPU
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def florence_caption(image):
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)
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return parsed_answer["<MORE_DETAILED_CAPTION>"]
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# Qwen2-VL-2B caption function
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@spaces.GPU
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def qwen_caption(image):
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if not isinstance(image, Image.Image):
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image = Image.fromarray(image)
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image_path = array_to_image_path(np.array(image))
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messages = [
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{
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"role": "user",
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"content": [
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{
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"type": "image",
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"image": image_path,
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},
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{"type": "text", "text": "Describe this image in detail."},
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],
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}
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]
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text = qwen_processor.apply_chat_template(
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messages, tokenize=False, add_generation_prompt=True
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)
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image_inputs, video_inputs = process_vision_info(messages)
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inputs = qwen_processor(
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text=[text],
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images=image_inputs,
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videos=video_inputs,
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padding=True,
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return_tensors="pt",
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)
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inputs = inputs.to(device)
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generated_ids = qwen_model.generate(**inputs, max_new_tokens=256)
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generated_ids_trimmed = [
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out_ids[len(in_ids):] for in_ids, out_ids in zip(inputs.input_ids, generated_ids)
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]
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output_text = qwen_processor.batch_decode(
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generated_ids_trimmed, skip_special_tokens=True, clean_up_tokenization_spaces=False
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)
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return output_text[0]
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# Load JSON files
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def load_json_file(file_name):
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file_path = os.path.join("data", file_name)
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with gr.Accordion("Image and Caption", open=False):
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input_image = gr.Image(label="Input Image (optional)")
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caption_output = gr.Textbox(label="Generated Caption", lines=3)
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caption_model = gr.Radio(["Florence", "Qwen"], label="Caption Model", value="Florence")
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create_caption_button = gr.Button("Create Caption")
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add_caption_button = gr.Button("Add Caption to Prompt")
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generate_text_button = gr.Button("Generate Prompt with LLM (Llama 3.1 70B)")
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text_output = gr.Textbox(label="Generated Text", lines=10)
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def create_caption(image, model):
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if image is not None:
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if model == "Florence":
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return florence_caption(image)
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elif model == "Qwen":
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return qwen_caption(image)
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return ""
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create_caption_button.click(
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create_caption,
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inputs=[input_image, caption_model],
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outputs=[caption_output]
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)
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requirements.txt
CHANGED
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@@ -1,4 +1,11 @@
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spaces
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transformers
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timm
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openai==1.37.0
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spaces
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timm
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openai==1.37.0
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numpy==1.24.4
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Pillow==10.3.0
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Requests==2.31.0
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torch
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torchvision
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git+https://github.com/huggingface/transformers.git
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accelerate
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qwen-vl-utils
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