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Efficient and Exact Design Space Exploration for Heterogeneous and Multi-Bus Platforms

机译:异构和多总线平台的高效,精确的设计空间探索

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Design Space Exploration of data-flow Systems-on-Chip either focuses on classical shared bus or on complex network-on-chip (NoC) architectures. A lack of research work exists that targets segmented bus architectures. These offer performance improvements (latency, power consumption) with respect to a shared bus, while employing much simpler communication structures and algorithms than a NoC. Despite the lack in the research work, segmented buses are popular in multiprocessor systems and in FPGA interconnects. This paper fills this lack with two contributions. First, we propose a Satisfiability Modulo Theory (SMT) formulation. Secondly, we provide a technique to reduce the design-space explosion problem that is portable to other formulations (e.g., ILP, MILP) and to problems where the scheduling on units (e.g., bus, CPU) is multiplexed in time. We integrated these contributions in a state-of-the-art design tool that we employ for evaluation purposes with a set of streaming applications and a MPSoC platform. The resulting framework can study the performance of fixed interconnects as well as determine the optimal architecture among a set of candidates. Our reduction technique improves considerably the scalability of DSE. For our testbench, we reduce the SMT solver run-time from 20 up to 589 times.
机译:数据流片上系统的设计空间探索要么专注于经典共享总线,要么专注于复杂的片上网络(NoC)架构。缺乏针对分段总线体系结构的研究工作。这些都相对于共享总线提供了性能改进(延迟,功耗),同时采用了比NoC更简单的通信结构和算法。尽管缺乏研究工作,分段总线在多处理器系统和FPGA互连中仍很流行。本文通过两个方面弥补了这一不足。首先,我们提出了一种满意度模理论(SMT)的表述。其次,我们提供了一种减少设计空间爆炸问题的技术,该问题可移植到其他公式(例如ILP,MILP)以及单元(例如总线,CPU)的调度在时间上多路复用的问题。我们将这些贡献集成到了我们用于评估目的的最新设计工具中,该工具与一组流应用程序和一个MPSoC平台一起使用。由此产生的框架可以研究固定互连的性能,并确定一组候选对象之间的最佳架构。我们的简化技术极大地提高了DSE的可伸缩性。对于我们的测试平台,我们将SMT求解器的运行时间从20减少到589次。

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