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Bibliographic Details
Main Authors: Eltahir, Mohamed, Sarraj, Osamah, Bremoo, Mohammed, Khurd, Mohammed, Alfrihidi, Abdulrahman, Alshatiri, Taha, Almatrafi, Mohammad, Hussain, Tanveer
Format: Preprint
Published: 2025
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Online Access:https://arxiv.org/abs/2504.04572
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Table of Contents:
  • Precise video retrieval requires multi-modal correlations to handle unseen vocabulary and scenes, becoming more complex for lengthy videos where models must perform effectively without prior training on a specific dataset. We introduce a unified framework that combines a visual matching stream and an aural matching stream with a unique subtitles-based video segmentation approach. Additionally, the aural stream includes a complementary audio-based two-stage retrieval mechanism that enhances performance on long-duration videos. Considering the complex nature of retrieval from lengthy videos and its corresponding evaluation, we introduce a new retrieval evaluation method specifically designed for long-video retrieval to support further research. We conducted experiments on the YouCook2 benchmark, showing promising retrieval performance.