Adaptive dynamic memory allocators by estimating application workloads

Ioannis Koutras, A. Bartzas, D. Soudris
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引用次数: 3

Abstract

Modern applications are becoming more complex and dynamic and try to efficiently utilize the amount of available resources on the computing platforms. Efficient memory utilization is a key challenge for application developers, especially since memory is a scarce resource and often becomes systems bottleneck. Thus, the developers can resort to dynamic memory management, i.e., dynamic memory allocation and de-allocation, to efficiently utilize the memory resources. A high-performance adaptive memory allocator is presented in this paper. A memory allocator helps applications to manage more efficiently the memory space that operating systems bestow to them. In our approach, we tune the memory allocator at runtime by predicting the amount of memory to be requested. Experimental results obtained using applications from the PARSEC benchmark suite and dmmlib, a memory allocator framework written in C. Results show that adaptive memory allocators can improve the fragmentation problems leading to a more efficient memory usage.
通过估计应用程序工作负载来自适应动态内存分配器
现代应用程序正变得越来越复杂和动态,并试图有效地利用计算平台上的可用资源。有效的内存利用是应用程序开发人员面临的一个关键挑战,特别是因为内存是一种稀缺资源,经常成为系统瓶颈。因此,开发人员可以求助于动态内存管理,即动态内存分配和回收,以有效地利用内存资源。提出了一种高性能的自适应内存分配器。内存分配器帮助应用程序更有效地管理操作系统赋予它们的内存空间。在我们的方法中,我们在运行时通过预测需要请求的内存量来调优内存分配器。使用PARSEC基准测试套件和dmmlib(用c编写的内存分配器框架)的应用程序获得的实验结果表明,自适应内存分配器可以改善碎片问题,从而更有效地使用内存。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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