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README.md
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@@ -61,6 +61,64 @@ https://github.com/NVlabs/Eagle/issues
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**Output Format:** String
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**[Preferred/Supported] Operating System(s):** <br>
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Linux
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**Output Format:** String
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## Inference:
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```
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import os
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import torch
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import numpy as np
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from eagle import conversation as conversation_lib
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from eagle.constants import DEFAULT_IMAGE_TOKEN
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from eagle.constants import IMAGE_TOKEN_INDEX, DEFAULT_IMAGE_TOKEN, DEFAULT_IM_START_TOKEN, DEFAULT_IM_END_TOKEN
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from eagle.conversation import conv_templates, SeparatorStyle
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from eagle.model.builder import load_pretrained_model
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from eagle.utils import disable_torch_init
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from eagle.mm_utils import tokenizer_image_token, get_model_name_from_path, process_images, KeywordsStoppingCriteria
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from PIL import Image
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import argparse
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from transformers import TextIteratorStreamer
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from threading import Thread
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model_path = "NVEagle/Eagle-X5-13B-Chat"
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conv_mode = "vicuna_v1"
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image_path = "assets/georgia-tech.jpeg"
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input_prompt = "Describe this image."
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model_name = get_model_name_from_path(model_path)
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tokenizer, model, image_processor, context_len = load_pretrained_model(model_path,None,model_name,False,False)
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if model.config.mm_use_im_start_end:
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input_prompt = DEFAULT_IM_START_TOKEN + DEFAULT_IMAGE_TOKEN + DEFAULT_IM_END_TOKEN + '\n' + input_prompt
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else:
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input_prompt = DEFAULT_IMAGE_TOKEN + '\n' + input_prompt
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conv = conv_templates[conv_mode].copy()
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conv.append_message(conv.roles[0], input_prompt)
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conv.append_message(conv.roles[1], None)
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prompt = conv.get_prompt()
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image = Image.open(image_path).convert('RGB')
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image_tensor = process_images([image], image_processor, model.config)[0]
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input_ids = tokenizer_image_token(prompt, tokenizer, IMAGE_TOKEN_INDEX, return_tensors='pt')
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input_ids = input_ids.to(device='cuda', non_blocking=True)
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image_tensor = image_tensor.to(dtype=torch.float16, device='cuda', non_blocking=True)
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with torch.inference_mode():
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output_ids = model.generate(
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input_ids.unsqueeze(0),
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images=image_tensor.unsqueeze(0),
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image_sizes=[image.size],
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do_sample=True,
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temperature=0.2,
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top_p=0.5,
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num_beams=1,
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max_new_tokens=256,
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use_cache=True)
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outputs = tokenizer.batch_decode(output_ids, skip_special_tokens=True)[0].strip()
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print(f"Image:{image_path} \nPrompt:{input_prompt} \nOutput:{outputs}")
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```
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**[Preferred/Supported] Operating System(s):** <br>
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Linux
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