Similarity Caching: Theory and Algorithms
Michele Garetto, Emilio Leonardi, Giovanni Neglia
摘要
This paper focuses on similarity caching systems, in which a user request for an object o that is not in the cache can be (partially) satisfied by a similar stored object o', at the cost of a loss of user utility. Similarity caching systems can be effectively employed in several application areas, like multimedia retrieval, recommender systems, genome study, and machine learning training/serving. However, despite their relevance, the behavior of such systems is far from being well understood. In this paper, we provide a first comprehensive analysis of similarity caching in the offline, adversarial, and stochastic settings. We show that similarity caching raises significant new challenges, for which we propose the first dynamic policies with some optimality guarantees. We evaluate the performance of our schemes under both synthetic and real request traces.
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引用它的顶会 Paper3
- GRADES: Gradient Descent for Similarity CachingAnirudh Sabnis, Tareq Si Salem, Giovanni Neglia, Michele Garetto 等INFOCOM 2021 · 被引用 14 次
- Semantic Caching for Low-Cost LLM Serving: From Offline Learning to Online AdaptationXutong Liu, Baran Atalar, Xiangxiang Dai, Jinhang Zuo 等INFOCOM 2026 · 被引用 2 次
- Accelerating Deep Learning Classification with Error-controlled Approximate-key CachingAlessandro Finamore, James Roberts, Massimo Gallo, Dario RossiINFOCOM 2022
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