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metadata
language: en
license: mit
tags:
  - vision
  - image-to-text
  - video-to-text
  - image-captioning
  - video-captioning
  - visual-question-answering
pipeline_tag: image-to-text

VideoBLIP, Flan T5-xl, fine-tuned on Ego4D

VideoBLIP model, leveraging BLIP-2 with Flan T5-xl (a large language model with 2.7 billion parameters) as its LLM backbone.

Model description

VideoBLIP is an augmented BLIP-2 that can handle videos.

Bias, Risks, Limitations, and Ethical Considerations

VideoBLIP-OPT uses off-the-shelf Flan-T5 as the language model. It inherits the same risks and limitations from Flan-T5:

Language models, including Flan-T5, can potentially be used for language generation in a harmful way, according to Rae et al. (2021). Flan-T5 should not be used directly in any application, without a prior assessment of safety and fairness concerns specific to the application.

VideoBLIP has not been tested in real world applications. It should not be directly deployed in any applications. Researchers should first carefully assess the safety and fairness of the model in relation to the specific context they’re being deployed within.

How to use

For code examples, please refer to the official repository.