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A Probability-Based Data Allocation Strategy for Hybrid DRAM/NVM Memory in Real-Time Embedded Systems

机译:实时嵌入式系统中的混合DRAM / NVM内存的基于概率的数据分配策略

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Non-volatile memory (NVM)has emerged as a promising DRAM alternative due to its high density, and zero leakage power. Nevertheless, it suffers from higher write energy. According to a given data-access frequencies, the previous studies focus on data allocation technique for utilizing the benefits of both NVM and DRAM. However, data-access frequencies is often obtained with probability, which could not be effectively applied on the previous techniques. To address this issue, this paper proposes a probability-based data allocation strategy for hybrid DRAM/NVM memory in real-time embedded systems. The basic idea is first to obtain the probability-based data-access frequencies of a given embedded program by exploiting its application-specific feature. Combining with the maximum data-access frequencies and the data-access frequency expectations of each data in a given program, this paper proposes a novel and simple data allocation algorithm, named PBDA, to minimize the energy consumption of real-time embedded system. Finally, compared to the Greedy algorithm and an existing optimal data allocation algorithm, the experiments show that our technology can reduce energy consumption by 45.01% and 10.49% on average.
机译:由于其高密度和零漏电,非易失性存储器(NVM)作为有前途的DRAM替代品。然而,它遭受了更高的写作能量。根据给定的数据访问频率,之前的研究侧重于利用NVM和DRAM的益处的数据分配技术。然而,通常以概率获得数据访问频率,可能无法有效地应用于以前的技术。为解决此问题,本文提出了一种基于概率的混合DRAM / NVM内存在实时嵌入式系统中的数据分配策略。首先,基本思想首先通过利用其特定于应用程序特征来获得给定嵌入式程序的基于概率的数据访问频率。结合了给定程序中每个数据的最大数据访问频率和数据访问频率期望,本文提出了一种名为PBDA的新颖和简单的数据分配算法,以最大限度地减少实时嵌入式系统的能耗。最后,与贪婪算法和现有的最优数据分配算法相比,实验表明,我们的技术可以平均将能耗降低45.01%和10.49 %。

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