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Analytical modeling of garbage collection algorithms in hotness-aware flash-based solid state drives

机译:垃圾收集算法的分析建模在闪存的基于闪存的固态驱动器中的垃圾收集算法

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Garbage collection plays a central role of flash-based solid state drive performance, in particular, its endurance. Analytical modeling is an indispensable instrument for design improvement as it demonstrates the relationship between SSD endurance, manifested as write amplification, and the algorithmic design variables, as well as workload characteristics. In this paper, we improve recent advances in using the mean field analysis as a tool for performance analysis and target hotness-aware flash management algorithms. We show that even under a generic workload model, the system dynamics can be captured by a system of ordinary differential equations, and the steady-state write amplification can be predicted for a variety of practical garbage collection algorithms, including the d-Choice algorithm. Furthermore, the analytical model is validated by a large collection of real and synthetic traces, and prediction errors against these simulations are shown to be within 5%.
机译:垃圾收集在闪存的固态驱动性能方面发挥着核心作用,特别是其耐力。分析建模是设计改进的不可或缺的仪器,因为它展示了SSD耐久性之间的关系,表现为写入放大以及算法设计变量以及工作量特性。在本文中,我们改善了最近利用平均场分析作为绩效分析和目标热情感知闪存算法的工具的进步。我们表明,即使在通用工作负载模型下,系统动态也可以通过普通微分方程的系统捕获,并且可以预测各种实用的垃圾收集算法,包括D-Clice算法的稳态写放大器。此外,通过大集合的实际和合成迹线验证分析模型,并且对这些模拟的预测误差显示在5%以内。

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