EvenDB: optimizing key-value storage for spatial locality
Eran Gilad, Edward Bortnikov, Anastasia Braginsky, Yonatan Gottesman, Eshcar Hillel, Idit Keidar, Nurit Moscovici, Rana Shahout
摘要
Applications of key-value (KV-)storage often exhibit high spatial locality, such as when many data items have identical composite key prefixes. This prevalent access pattern is underused by the ubiquitous LSM design underlying highthroughput KV-stores today.
We present EvenDB, a general-purpose persistent KVstore optimized for spatially-local workloads. EvenDB combines spatial data partitioning with LSM-like batch I/O. It achieves high throughput, ensures consistency under multithreaded access, and reduces write amplification.
In experiments with real-world data from a large analytics platform, EvenDB outperforms the state-of-the-art. E.g., on a 256GB production dataset, EvenDB ingests data 4.4× faster than RocksDB and reduces write amplification by nearly 4×. In traditional YCSB workloads lacking spatial locality, EvenDB is on par with RocksDB and significantly better than other open-source solutions we explored.
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引用它的顶会 Paper7
- AC-Key: Adaptive Caching for LSM-based Key-Value StoresFenggang Wu, Ming-Hong Yang, Baoquan Zhang, David H. C. DuUSENIX ATC 2020 · 被引用 81 次
- REMIX: Efficient Range Query for LSM-treesWenshao Zhong, Chen Chen, Xingbo Wu, Song JiangFAST 2021 · 被引用 67 次
- Efficient Compactions between Storage Tiers with PrismDBAshwini Raina, Jianan Lu, Asaf Cidon, Michael J. FreedmanASPLOS 2023 · 被引用 10 次
- Hardware-Based Address-Centric Acceleration of Key-Value StoreChencheng Ye, Yuanchao Xu, Xipeng Shen, Xiaofei Liao 等HPCA 2021 · 被引用 6 次
- Disco: A Compact Index for LSM-treesWenshao Zhong, Chen Chen, Xingbo Wu, Jakob ErikssonSIGMOD 2025 · 被引用 2 次
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