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FitCLIP: Refining Large-Scale Pretrained Image-Text Models for Zero-Shot Video Understanding Tasks

24 Mar 2022arXiv:2203.13371archive 2025-07-28

Santiago Castro, Fabian Caba Heilbron

Large-scale pretrained image-text models have shown incredible zero-shot performance in a handful of tasks, including video ones such as action recognition and text-to-video retrieval. However, these models have not been adapted to video, mainly because they do not account for the time dimension but also because video frames are different from the typical images (e.g., containing motion blur, and less sharpness). In this paper, we present a fine-tuning strategy to refine these large-scale pretrained image-text models for zero-shot video understanding tasks. We show that by carefully adapting these models we obtain considerable improvements on two zero-shot Action Recognition tasks and three zero-shot Text-to-video Retrieval tasks. The code is available at https://github.com/bryant1410/fitclip

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nce_loss bryant1410/fitclip/aligner/loss.py official repository unverified MIT (permissive) · c72545d9dfb70811 · report
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Tasks

Action RecognitionRetrievalText to Video RetrievalVideo RetrievalVideo UnderstandingZero-Shot Action Recognition

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