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Real-Time Application Processing for FPGA-Based Resilient Embedded Systems in Harsh Environments

机译:恶劣环境中基于FPGA的弹性嵌入式系统的实时应用处理

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Real-time embedded systems nowadays get employed in harsh environments such as space, nuclear sites to carry out critical operations. Along with the traditional software based (CPU) execution, FPGAs are now also emerging as a bright prospect to accomplish such routines. However, these platforms are often get plagued by faults generated due to the high radiations in such environments. As a result, the real-time applications running on the platform could also get jeopardized. Thus, efficient execution of a set of hard real-time applications on reconfigurable systems with anomaly detection and recovery mechanism is inevitable. This work aims at tackling such problem with a “healing” approach for extreme environments. Initially, the applications are intelligently partitioned for hardware and software execution, then attempts have been made to schedule hardware applications with intermittent preemption point. Upon detecting any abnormality on such distinct points, our approach orchestrates a healing mechanism to remediate the scenario without hampering the pre-determined schedule. Experimental validation of our proposed method reveals its effectiveness.
机译:现在,实时嵌入式系统在诸如空间,核网站等严苛的环境中使用,以执行关键业务。随着传统的基于软件(CPU)执行,FPGA现在也被涌现为实现此类常规的明亮前景。然而,这些平台通常由于这种环境中的高辐射而产生的故障受到困扰。因此,在平台上运行的实时应用程序也可能被危及。因此,有效地执行具有异常检测和恢复机制的可重新配置系统上的一组硬实时应用程序是不可避免的。这项工作旨在解决极端环境的“愈合”方法解决此类问题。最初,应用程序是智能地分区的硬件和软件执行,然后已经尝试使用间歇抢占点计划硬件应用程序。在检测到这种不同点的任何异常时,我们的方法在不妨碍预先确定的时间表的情况下,我们的方法编制了一个治疗机制来修复方案。我们提出的方法的实验验证揭示了其有效性。

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