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Resource and Throughput Aware Execution Trace Analysis for Efficient Run-Time Mapping on MPSoCs

机译:用于MPSoC上有效运行时映射的资源和吞吐量感知执行跟踪分析

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摘要

There have been several efforts on run-time mapping of applications on multiprocessor-systems-on-chip. These traditional efforts perform either on-the-fly processing or use design-time analyzed results. However, on-the-fly processing often leads to low-quality mappings, and design-time analysis becomes computationally costly for large-size problems and require huge storage for large number of applications. In this paper, we present a novel run-time mapping approach, where identification of an efficient mapping for a use-case is done by the online execution trace analysis of the active applications. The trace analysis facilitates for fast identification of the mapping while optimizing for the system resource usage and throughput of the active applications, leading to reduced energy consumption as well. By rapidly identifying the efficient mapping at run-time, the proposed approach overcomes the mappings’ exploration time bottleneck for large-size problems and their storage overhead problem when compared to the traditional approaches. Our experiments show that on average the exploration time to identify the mapping is reduced when compared to state-of-the-art approaches and storage overhead is reduced by 92%. Additionally, energy and resource savings are achieved along with identification of high-quality mapping.
机译:在片上多处理器系统上的应用程序的运行时映射方面已经进行了一些努力。这些传统的工作要么进行即时处理,要么使用设计时分析的结果。但是,即时处理通常会导致低质量的映射,并且设计时分析在处理大型问题时在计算上变得昂贵,并且需要大量存储才能用于大量应用程序。在本文中,我们提出了一种新颖的运行时映射方法,其中,通过对活动应用程序的在线执行跟踪分析来确定用例的有效映射。跟踪分析有助于快速识别映射,同时优化系统资源使用率和活动应用程序的吞吐量,从而也减少了能耗。通过在运行时快速识别有效的映射,与传统方法相比,提出的方法克服了大型问题及其存储开销问题的映射探索时间瓶颈。我们的实验表明,与最新方法相比,平均而言,用于识别映射的探索时间减少了,并且存储开销减少了92%。此外,还可以节省能源和资源,同时还能识别出高质量的地图。

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