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Exploring Power and Throughput for Dataflow Applications on Predictable NoC Multiprocessors

机译:探索可预测NoC多处理器上数据流应用程序的功能和吞吐量

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System level optimization for multiple mixed-criticality applications on shared networked multiprocessor platforms is extremely challenging. Substantial complexity arises from the interdependence between the multiple subproblems of mapping, scheduling and platform configuration under the consideration of several, potentially orthogonal, performance metrics and constraints. Instead of using heuristic algorithms and problem decomposition, novel unified design space exploration (DSE) approaches based on Constraint Programming (CP) have in the recent years shown promising results. The work in this paper takes advantage of the modularity of CP models, in order to support heterogeneous multiprocessor Network-on-Chip (NoC) with Temporally Disjoint Networks (TDNs) aware message injection. The DSE supports a range of design criteria, in particular the optimization and satisfaction of power and throughput. In addition, the DSE now provides a valid configuration for the TDNs that guarantees the performance required to fulfil the design goals. The experiments show the capability of the approach to find low-power and high-throughput designs, and validate a resulting design on a physical TDN-based NoC implementation.
机译:在共享的网络多处理器平台上针对多个混合关键性应用程序进行系统级优化是极具挑战性的。在考虑几个可能正交的性能指标和约束的情况下,大量复杂性来自于映射,调度和平台配置的多个子问题之间的相互依赖性。近年来,基于约束编程(CP)的新颖的统一设计空间探索(DSE)方法没有使用启发式算法和问题分解,而是显示出令人鼓舞的结果。本文的工作利用了CP模型的模块化,以支持具有临时不相交网络(TDN)感知消息注入功能的异构多处理器片上网络(NoC)。 DSE支持一系列设计标准,尤其是功率和吞吐量的优化和满意度。此外,DSE现在为TDN提供有效的配置,以保证实现设计目标所需的性能。实验表明,该方法具有查找低功耗和高吞吐量设计的能力,并可以在基于物理TDN的NoC实施中验证最终设计。

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