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Run-Time Mitigation of Power Budget Variations and Hardware Faults by Structural Adaptation of FPGA-Based Multi-Modal SoPC

机译:通过基于FPGA的多模态SoPC的结构调整来减少功率预算变化和硬件故障的运行时

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摘要

Systems for application domains like robotics, aerospace, defense, autonomous vehicles, etc. are usually developed on System-on-Programmable Chip (SoPC) platforms, capable of supporting several multi-modal computation-intensive tasks on their FPGAs. Since such systems are mostly autonomous and mobile, they have rechargeable power sources and therefore, varying power budgets. They may also develop hardware faults due to radiation, thermal cycling, aging, etc. Systems must be able to sustain the performance requirements of their multi-task multi-modal workload in the presence of variations in available power or occurrence of hardware faults. This paper presents an approach for mitigating power budget variations and hardware faults (transient and permanent) by run-time structural adaptation of the SoPC. The proposed method is based on dynamically allocating, relocating and re-integrating task-specific processing circuits inside the partially reconfigurable FPGA to accommodate the available power budget, satisfy tasks’ performances and hardware resource constraints, and/or to restore task functionality affected by hardware faults. The proposed method has been experimentally implemented on the ARM Cortex-A9 processor of Xilinx Zynq XC7Z020 FPGA. Results have shown that structural adaptation can be done in units of milliseconds since the worst-case decision-making process does not exceed the reconfiguration time of a partial bit-stream.
机译:用于应用领域的系统(例如机器人技术,航空航天,国防,自动驾驶汽车等)通常在可编程系统芯片(SoPC)平台上开发,能够在其FPGA上支持多个多模式计算密集型任务。由于此类系统大部分是自治的和可移动的,因此它们具有可充电电源,因此,电源预算也有所不同。他们还可能由于辐射,热循环,老化等原因而导致硬件故障。在可用功率变化或发生硬件故障的情况下,系统必须能够维持其多任务多模式工作负载的性能要求。本文提出了一种通过SoPC的运行时结构调整来缓解功耗预算变化和硬件故障(瞬态和永久性故障)的方法。所提出的方法基于在部分可重新配置的FPGA内部动态分配,重新定位和重新集成特定于任务的处理电路,以适应可用的功率预算,满足任务的性能和硬件资源限制,和/或恢复受硬件影响的任务功能故障。该方法已经在Xilinx Zynq XC7Z020 FPGA的ARM Cortex-A9处理器上进行了实验实现。结果表明,由于最坏情况的决策过程不会超过部分位流的重新配置时间,因此可以以毫秒为单位进行结构调整。

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