Déjà Vu: Efficient Video-Language Query Engine with Learning-based Inter-Frame Computation Reuse

  • Hwang, Jinwoo; 
  • Kim, Daeun; 
  • Lee, Sangyeop; 
  • Kim, Yoonsung; 
  • Heo, Guseul; 
  • 외 6명
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초록

Recently, Video-Language Models (VideoLMs) have demonstrated remarkable capabilities, offering significant potential for flexible and powerful video query systems. These models typically rely on Vision Transformers (ViTs), which process video frames individually to extract visual embeddings. However, generating embeddings for large-scale videos requires ViT inferencing across numerous frames, posing a major hurdle to real-world deployment and necessitating solutions for integration into scalable video data management systems. This paper introduces D & eacute;j & agrave; Vu, a video-language query engine that accelerates ViT-based VideoLMs by reusing computations across consecutive frames. At its core is ReuseViT, a modified ViT model specifically designed for VideoLM tasks, which learns to detect inter-frame reuse opportunities, striking an effective balance between accuracy and reuse. Although ReuseViT significantly reduces computation, these savings do not directly translate into performance gains on GPUs. To overcome this, D & eacute;j & agrave; Vu integrates memory-compute joint compaction techniques that convert the FLOP savings into tangible performance gains. Evaluations on three VideoLM tasks show that D & eacute;j & agrave; Vu accelerates embedding generation by up to a 2.64x within a 2% error bound, dramatically enhancing the practicality of VideoLMs for large-scale video analytics.

제목
Déjà Vu: Efficient Video-Language Query Engine with Learning-based Inter-Frame Computation Reuse
저자
Hwang, Jinwoo; Kim, Daeun; Lee, Sangyeop; Kim, Yoonsung; Heo, Guseul; Kim, Hojoon; Jeong, Yunseok; Meaza, Tadiwos; Park, Eunhyeok; Ahn, Jeongseob; Park, Jongse
DOI
10.14778/3748191.3748195
발행일
2025-06
유형
Article
저널명
Proceedings of the VLDB Endowment
권
18
호
10
페이지
3284 ~ 3298