OFA-Sys / ofa-large

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Total runs: 3.4K
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Model's Last Updated: November 09 2022

Introduction of ofa-large

Model Details of ofa-large

OFA-large

Introduction

This is the large version of OFA pretrained model. OFA is a unified multimodal pretrained model that unifies modalities (i.e., cross-modality, vision, language) and tasks (e.g., image generation, visual grounding, image captioning, image classification, text generation, etc.) to a simple sequence-to-sequence learning framework.

The directory includes 4 files, namely config.json which consists of model configuration, vocab.json and merge.txt for our OFA tokenizer, and lastly pytorch_model.bin which consists of model weights. There is no need to worry about the mismatch between Fairseq and transformers, since we have addressed the issue yet.

How to use

To use it in transformers, please refer to https://github.com/OFA-Sys/OFA/tree/feature/add_transformers . Install the transformers and download the models as shown below.

git clone --single-branch --branch feature/add_transformers https://github.com/OFA-Sys/OFA.git
pip install OFA/transformers/
git clone https://huggingface.co/OFA-Sys/OFA-large

After, refer the path to OFA-large to ckpt_dir , and prepare an image for the testing example below. Also, ensure that you have pillow and torchvision in your environment.

>>> from PIL import Image
>>> from torchvision import transforms
>>> from transformers import OFATokenizer, OFAModel
>>> from generate import sequence_generator

>>> mean, std = [0.5, 0.5, 0.5], [0.5, 0.5, 0.5]
>>> resolution = 480
>>> patch_resize_transform = transforms.Compose([
        lambda image: image.convert("RGB"),
        transforms.Resize((resolution, resolution), interpolation=Image.BICUBIC),
        transforms.ToTensor(), 
        transforms.Normalize(mean=mean, std=std)
    ])


>>> tokenizer = OFATokenizer.from_pretrained(ckpt_dir)

>>> txt = " what does the image describe?"
>>> inputs = tokenizer([txt], return_tensors="pt").input_ids
>>> img = Image.open(path_to_image)
>>> patch_img = patch_resize_transform(img).unsqueeze(0)


# using the generator of fairseq version
>>> model = OFAModel.from_pretrained(ckpt_dir, use_cache=True)
>>> generator = sequence_generator.SequenceGenerator(
                    tokenizer=tokenizer,
                    beam_size=5,
                    max_len_b=16, 
                    min_len=0,
                    no_repeat_ngram_size=3,
                )
>>> data = {}
>>> data["net_input"] = {"input_ids": inputs, 'patch_images': patch_img, 'patch_masks':torch.tensor([True])}
>>> gen_output = generator.generate([model], data)
>>> gen = [gen_output[i][0]["tokens"] for i in range(len(gen_output))]

# using the generator of huggingface version
>>> model = OFAModel.from_pretrained(ckpt_dir, use_cache=False)
>>> gen = model.generate(inputs, patch_images=patch_img, num_beams=5, no_repeat_ngram_size=3) 

>>> print(tokenizer.batch_decode(gen, skip_special_tokens=True))

Runs of OFA-Sys ofa-large on huggingface.co

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More Information About ofa-large huggingface.co Model

More ofa-large license Visit here:

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ofa-large huggingface.co

ofa-large huggingface.co is an AI model on huggingface.co that provides ofa-large's model effect (), which can be used instantly with this OFA-Sys ofa-large model. huggingface.co supports a free trial of the ofa-large model, and also provides paid use of the ofa-large. Support call ofa-large model through api, including Node.js, Python, http.

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https://huggingface.co/OFA-Sys/ofa-large

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OFA-Sys ofa-large online free url in huggingface.co:

https://huggingface.co/OFA-Sys/ofa-large

ofa-large install

ofa-large is an open source model from GitHub that offers a free installation service, and any user can find ofa-large on GitHub to install. At the same time, huggingface.co provides the effect of ofa-large install, users can directly use ofa-large installed effect in huggingface.co for debugging and trial. It also supports api for free installation.

ofa-large install url in huggingface.co:

https://huggingface.co/OFA-Sys/ofa-large

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