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Performance Characterization of Hadoop and Data MPI Based on Amdahl's Second Law

机译:基于Amdahl第二定律的Hadoop和数据MPI的性能表征

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Amdahl's second law has been seen as a useful guideline for designing and evaluating balanced computer systems for decades. This law has been mainly used for hardware systems and peak capacities. This paper utilizes Amdahl's second law from a new angle, i.e., Evaluating the influence on systems performance and balance of the application framework software, a key component of big data systems. We compare two big data application framework software systems, Apache Hadoop and Data MPI, with three representative application benchmarks and various data sizes. System monitors and hardware performance counters are used to record the resource utilization, characteristics of instructions execution, memory accesses, and I/O rates. These numbers are used to reveal the three runtime metrics of Amdahl's second law: CPU speed (GIPS), memory capacity (GB), and I/O rate (Gbps). The experiment and evaluation results show that a Data MPI-based big data system has better performance and is more balanced than a Hadoop-based system.
机译:几十年来,阿姆达尔的第二定律一直被视为设计和评估平衡计算机系统的有用指南。该法则主要用于硬件系统和峰值容量。本文从新的角度利用了阿姆达尔定律,即评估了对系统性能的影响以及应用框架软件(大数据系统的关键组成部分)的平衡。我们将两个大数据应用程序框架软件系统Apache Hadoop和Data MPI与三个具有代表性的应用程序基准和各种数据大小进行了比较。系统监视器和硬件性能计数器用于记录资源利用率,指令执行的特征,内存访问和I / O速率。这些数字用于揭示Amdahl第二定律的三个运行时间指标:CPU速度(GIPS),内存容量(GB)和I / O速率(Gbps)。实验和评估结果表明,与基于Hadoop的系统相比,基于Data MPI的大数据系统具有更好的性能并且更加平衡。

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