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Mechanism of Resource Virtualization in RCS for Multitask Stream Applications

机译:RCS中用于多任务流应用程序的资源虚拟化机制

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Virtualization of logic, routing, and communication resources in recent FPGA devices can provide a dramatic improvement in cost-efficiency for reconfigurable computing systems (RCSs). The presented work is “proof-of-concept” research for the virtualization of the above resources in partially reconfigurable FPGA devices with a tile-based architecture. The following aspects have been investigated, prototyped, tested, and analyzed: (i) platform architecture for hardware support of the dynamic allocation of Application Specific Virtual Processors (ASVPs), (ii) mechanisms for run-time on-chip ASVP assembling using virtual hardware Components (VHCs) as building blocks, and (iii) mechanisms for dynamic on-chip relocation of VHCs to predetermined slots in the target FPGA. All the above mechanisms and procedures have been implemented and tested on a prototype platform—MARS (multitask adaptive reconfigurable system) using a Xilinx Virtex-4 FPGA. The on-chip communication infrastructure has been developed and investigated in detail, and its timing and hardware overhead were analyzed. It was determined that component relocation can be done without affecting the ASVP pipeline cycle time and throughput. The hardware overhead was estimated as relatively small compared to the gain of other performance parameters. Finally, industrial applications associated with next generation space-borne platforms are discussed, where the proposed approach can be beneficial.
机译:近期的FPGA器件中的逻辑,路由和通信资源的虚拟化可以为可重构计算系统(RCS)的成本效率带来显着改善。提出的工作是“概念验证”研究,用于在具有基于图块的架构的部分可重新配置的FPGA器件中虚拟化上述资源。已对以下方面进行了研究,原型设计,测试和分析:(i)硬件支持的平台结构,用于动态分配专用虚拟处理器(ASVP),(ii)使用虚拟机运行时片上ASVP组装的机制硬件组件(VHC)作为构建块,以及(iii)将VHC动态在芯片上重新定位到目标FPGA中预定插槽的机制。以上所有机制和过程均已使用Xilinx Virtex-4 FPGA在原型平台MARS(多任务自适应可重配置系统)上实施和测试。已经开发并详细研究了片上通信基础架构,并分析了其时序和硬件开销。已确定可以完成组件重定位而不会影响ASVP管道周期时间和吞吐量。与其他性能参数的增益相比,估计硬件开销相对较小。最后,讨论了与下一代空间平台相关的工业应用,其中所提出的方法可能是有益的。

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