SpaceSaving± An Optimal Algorithm for Frequency Estimation and Frequent items in the Bounded Deletion Model
Fuheng Zhao, Divy Agrawal, Amr El Abbadi, Ahmed Metwally
摘要
In this paper, we propose the first deterministic algorithms to solve the frequency estimation and frequent item problems in the bounded deletion model. We establish the space lower bound for solving the deterministic frequent items problem in the bounded deletion model, and propose the Lazy SpaceSaving ± and SpaceSaving ± algorithms with optimal space bound. We develop an efficient implementation of the SpaceSaving ± algorithm that minimizes the latency of update operations using novel data structures. The experimental evaluations testify that SpaceSaving ± has accurate frequency estimations and achieves very high recall and precision across different data distributions while using minimal space. Our analysis and experiments clearly demonstrate that SpaceSaving ± provides more accurate estimations using the same space as the state of the art protocols for applications with up to 𝑙𝑜𝑔𝑈 -1 𝑙𝑜𝑔𝑈 of items deleted, where 𝑈 is the input universe size. Moreover, motivated by prior work, we propose Dyadic SpaceSaving ± , the first deterministic quantile approximation sketch in the bounded deletion model.
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引用它的顶会 Paper5
- Differentially Private Linear Sketches: Efficient Implementations and ApplicationsFuheng Zhao, Dan Qiao, Rachel Redberg, Divyakant Agrawal 等NeurIPS 2022 · 被引用 40 次
- Panakos: Chasing the Tails for Multidimensional Data StreamsFuheng Zhao, Punnal Ismail Khan, Divyakant Agrawal, Amr El Abbadi 等VLDB 2023 · 被引用 18 次
- PrvTel: Lightweight Models for Private and Accurate Telemetry Data RetentionYajie Zhou, Fuheng Zhao, Eric S. Wang, Ayse K. Coskun 等NSDI 2026 · 被引用 1 次
- The SpaceSaving± Family of Algorithms for Data Streams with Bounded DeletionsFuheng Zhao, Divyakant Agrawal, Amr El Abbadi, Claire Mathieu 等ICDE 2025
- CrocSort: Resource-Efficient, Skew-Resilient Parallel External Merge SortRiki Otaki, Charles Benello, Fuheng Zhao, Aaron J. Elmore 等VLDB 2026
它引用的顶会 Paper4
- CocoSketch: high-performance sketch-based measurement over arbitrary partial key queryYinda Zhang, Zaoxing Liu, Ruixin Wang, Tong Yang 等SIGCOMM 2021 · 被引用 146 次
- KLL±: Approximate Quantile Sketches over Dynamic DatasetsFuheng Zhao, Sujaya Maiyya, Ryan Weiner, Divy Agrawal 等VLDB 2021 · 被引用 36 次
- The Coin Problem with Applications to Data StreamsMark Braverman, Sumegha Garg, David P. WoodruffFOCS 2020 · 被引用 14 次
- Separations and equivalences between turnstile streaming and linear sketchingJohn Kallaugher, Eric PriceSTOC 2020 · 被引用 1 次
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