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Supporting non-contiguous processor allocation in mesh-based chip multiprocessors using virtual point-to-point links

机译:使用虚拟点对点链接支持基于网格的芯片多处理器中的非连续处理器分配

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In this study, the authors propose a processor allocation mechanism for run-time assignment of a set of communicating tasks of input applications onto the processing nodes of a chip multiprocessor, when the arrival order and execution lifetime of the input applications are not known a priori. This mechanism targets the on-chip communication and aims to reduce the power and latency of the network-on-chip employed as the communication infrastructure. In this work, the authors benefit from the advantages of non-contiguous processor allocation mechanisms, by allowing the tasks of the input application mapped onto disjoint regions (submeshes) and then virtually connecting them by bypassing the router pipeline stages of the inter-region routers. Among different existing contiguous and non-contiguous processor allocation techniques, the authors have chosen and implemented four efficient schemes for the comparison purpose: the best fit and stack-based allocation algorithms as contiguous techniques and the greedy-available-busy-list algorithm and run-time incremental mapping as non-contiguous techniques. Experimental results show considerable improvements over all selected contiguous and non-contiguous methods.
机译:在这项研究中,作者提出了一种处理器分配机制,用于在输入应用程序的到达顺序和执行寿命未知的情况下,将一组输入应用程序的通信任务运行时分配到芯片多处理器的处理节点上。 。该机制以片上通信为目标,旨在减少用作通信基础架构的片上网络的功耗和等待时间。在这项工作中,作者可以通过允许将输入应用程序的任务映射到不相交的区域(子网格),然后通过绕过区域间路由器的路由器管道阶段来虚拟连接它们,从而受益于非连续处理器分配机制的优势。 。在不同的现有连续和非连续处理器分配技术中,作者已选择并实现了四个有效方案以进行比较:最佳拟合和基于堆栈的分配算法(作为连续技术)和贪婪可用忙列表算法并运行时间增量映射作为非连续技术。实验结果表明,与所有选定的连续方法和非连续方法相比,都取得了显着改进。

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