Granite Vision
This model was released on 2024-12-18 and added to Hugging Face Transformers on 2025-01-23.
Granite Vision
Section titled “Granite Vision”Overview
Section titled “Overview”The Granite Vision model is a variant of LLaVA-NeXT, leveraging a Granite language model alongside a SigLIP visual encoder. It utilizes multiple concatenated vision hidden states as its image features, similar to VipLlava. It also uses a larger set of image grid pinpoints than the original LlaVa-NeXT models to support additional aspect ratios.
Tips:
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This model is loaded into Transformers as an instance of LlaVA-Next. The usage and tips from LLaVA-NeXT apply to this model as well.
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You can apply the chat template on the tokenizer / processor in the same way as well. Example chat format:
"<|user|>\nWhat’s shown in this image?\n<|assistant|>\nThis image shows a red stop sign.<|end_of_text|><|user|>\nDescribe the image in more details.\n<|assistant|>\n"Sample inference:
from transformers import LlavaNextProcessor, LlavaNextForConditionalGenerationfrom accelerate import Accelerator
device = Accelerator().device
model_path = "ibm-granite/granite-vision-3.1-2b-preview"processor = LlavaNextProcessor.from_pretrained(model_path)
model = LlavaNextForConditionalGeneration.from_pretrained(model_path).to(device)
# prepare image and text prompt, using the appropriate prompt templateurl = "https://github.com/haotian-liu/LLaVA/blob/1a91fc274d7c35a9b50b3cb29c4247ae5837ce39/images/llava_v1_5_radar.jpg?raw=true"
conversation = [ { "role": "user", "content": [ {"type": "image", "url": url}, {"type": "text", "text": "What is shown in this image?"}, ], },]inputs = processor.apply_chat_template( conversation, add_generation_prompt=True, tokenize=True, return_dict=True, return_tensors="pt").to(model.device)
# autoregressively complete promptoutput = model.generate(**inputs, max_new_tokens=100)
print(processor.decode(output[0], skip_special_tokens=True))This model was contributed by Alexander Brooks.
LlavaNextConfig
Section titled “LlavaNextConfig”[[autodoc]] LlavaNextConfig
LlavaNextImageProcessor
Section titled “LlavaNextImageProcessor”[[autodoc]] LlavaNextImageProcessor - preprocess
LlavaNextProcessor
Section titled “LlavaNextProcessor”[[autodoc]] LlavaNextProcessor
LlavaNextForConditionalGeneration
Section titled “LlavaNextForConditionalGeneration”[[autodoc]] LlavaNextForConditionalGeneration - forward