iSwap: A New Memory Page Swap Mechanism for Reducing Ineffective I/O Operations in Cloud Environments

IF 1.5 3区 计算机科学 Q4 COMPUTER SCIENCE, HARDWARE & ARCHITECTURE ACM Transactions on Architecture and Code Optimization Pub Date : 2024-03-23 DOI:10.1145/3653302
Zhuohao Wang, Lei Liu, Limin Xiao
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Abstract

This paper proposes iSwap, a new memory page swap mechanism that reduces the ineffective I/O swap operations and improves the QoS for applications with a high priority in the cloud environments. iSwap works in the OS kernel. iSwap accurately learns the reuse patterns for memory pages and makes the swap decisions accordingly to avoid ineffective operations. In the cases where memory pressure is high, iSwap compresses pages that belong to the latency-critical (LC) applications (or high-priority applications) and keeps them in main memory, avoiding I/O operations for these LC applications to ensure QoS; and iSwap evicts low-priority applications’ pages out of main memory. iSwap has a low overhead and works well for cloud applications with large memory footprints. We evaluate iSwap on Intel x86 and ARM platforms. The experimental results show that iSwap can significantly reduce ineffective swap operations (8.0% - 19.2%) and improve the QoS for LC applications (36.8% - 91.3%) in cases where memory pressure is high, compared with the latest LRU-based approach widely used in modern OSes.

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iSwap:减少云环境中无效 I/O 操作的新型内存页交换机制
iSwap 可在操作系统内核中工作。iSwap 可精确学习内存页的重用模式,并据此做出交换决定,以避免无效操作。在内存压力较大的情况下,iSwap 会压缩属于延迟关键型(LC)应用(或高优先级应用)的页面并将其保留在主内存中,避免这些 LC 应用的 I/O 操作,以确保 QoS;iSwap 会将低优先级应用的页面驱逐出主内存。我们在英特尔 x86 和 ARM 平台上对 iSwap 进行了评估。实验结果表明,与现代操作系统中广泛使用的基于 LRU 的最新方法相比,iSwap 可以显著减少无效交换操作(8.0% - 19.2%),并在内存压力较大的情况下提高 LC 应用程序的服务质量(36.8% - 91.3%)。
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来源期刊
ACM Transactions on Architecture and Code Optimization
ACM Transactions on Architecture and Code Optimization 工程技术-计算机:理论方法
CiteScore
3.60
自引率
6.20%
发文量
78
审稿时长
6-12 weeks
期刊介绍: ACM Transactions on Architecture and Code Optimization (TACO) focuses on hardware, software, and system research spanning the fields of computer architecture and code optimization. Articles that appear in TACO will either present new techniques and concepts or report on experiences and experiments with actual systems. Insights useful to architects, hardware or software developers, designers, builders, and users will be emphasized.
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