SALI: A Scalable Adaptive Learned Index Framework based on Probability Models
Jiake Ge, Huanchen Zhang, Boyu Shi, Yuanhui Luo, Yunda Guo, Yunpeng Chai, Yuxing Chen, Anqun Pan
摘要
The growth in data storage capacity and the increasing demands for high performance have created several challenges for concurrent indexing structures. One promising solution is the learned index, which uses a learning-based approach to fit the distribution of stored data and predictively locate target keys, significantly improving lookup performance. Despite their advantages, prevailing learned indexes exhibit constraints and encounter issues of scalability on multi-core data storage. This paper introduces SALI, the Scalable Adaptive Learned Index framework, which incorporates two strategies aimed at achieving high scalability, improving efficiency, and enhancing the robustness of the learned index. Firstly, a set of node-evolving strategies is defined to enable the learned index to adapt to various workload skews and enhance its concurrency performance in such scenarios. Secondly, a lightweight strategy is proposed to maintain statistical information within the learned index, with the goal of further improving the scalability of the index. Furthermore, to validate their effectiveness, SALI applied the two strategies mentioned above to the learned index structure that utilizes fine-grained write locks, known as LIPP. The experimental results have demonstrated that SALI significantly enhances the insertion throughput with 64 threads by an average of 2.04x compared to the second-best learned index. Furthermore, SALI accomplishes a lookup throughput similar to that of LIPP+.
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引用它的顶会 Paper7
- PIMLex: A High-Performance Learned Index with Processing-in-MemoryLixiao Cui, Kedi Yang, Yusen Li, Gang Wang 等FAST 2025 · 被引用 11 次
- A Fully On-Disk Updatable Learned IndexHai Lan, Zhifeng Bao, J. Shane Culpepper, Renata Borovica-Gajic 等ICDE 2024 · 被引用 10 次
- Chameleon: Towards Update-Efficient Learned Indexing for Locally Skewed DataNa Guo, Yaqi Wang, Wenli Sun, Yu Gu 等ICDE 2024 · 被引用 6 次
- HIRE: A Hybrid Learned Index for Robust and Efficient Performance under Mixed WorkloadsXinyi Zhang, Liang Liang, Anastasia Ailamaki, Jianliang XuSIGMOD 2026 · 被引用 2 次
- Understanding Robustness Issues of Updatable Learned Indexes: [Experiments & Analysis]Yuanhui Luo, Minhui Xie, Yiheng Tong, Shichao Jiang 等SIGMOD 2026 · 被引用 1 次
它引用的顶会 Paper19
- ALEX: An Updatable Adaptive Learned IndexJialin Ding, Umar Farooq Minhas, Jia Yu, Chi Wang 等SIGMOD 2020 · 被引用 274 次
- Benchmarking Learned IndexesRyan Marcus, Andreas Kipf, Alexander van Renen, Mihail Stoian 等VLDB 2021 · 被引用 185 次
- Learning Multi-Dimensional IndexesVikram Nathan, Jialin Ding, Mohammad Alizadeh, Tim KraskaSIGMOD 2020 · 被引用 180 次
- Tsunami: A Learned Multi-dimensional Index for Correlated Data and Skewed WorkloadsJialin Ding, Vikram Nathan, Mohammad Alizadeh, Tim KraskaVLDB 2021 · 被引用 178 次
- The PGM-index: a fully-dynamic compressed learned index with provable worst-case boundsPaolo Ferragina, Giorgio VinciguerraVLDB 2020 · 被引用 178 次
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