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Adaptive Time-Triggered Multi-Core Architecture

机译:自适应时间触发的多核架构

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摘要

The static resource allocation in time-triggered systems offers significant benefits for the safety arguments of dependable systems. However, adaptation is a key factor for energy efficiency and fault recovery in Cyber-Physical System (CPS). This paper introduces the Adaptive Time-Triggered Multi-Core Architecture (ATMA), which supports adaptation using multi-schedule graphs while preserving the key properties of time-triggered systems including implicit synchronization, temporal predictability and avoidance of resource conflicts. ATMA is an overall architecture for safety-critical CPS based on a network-on-a-chip with building blocks for context agreement and adaptation. Context information is established in a globally consistent manner, providing the foundation for the temporally aligned switching of schedules in the network interfaces. A meta-scheduling algorithm computes schedule graphs and avoids state explosion with reconvergence horizons for events. For each tile, the relevant part of the schedule graph is efficiently stored using difference encodings and interpreted by the adaptation logic. The architecture was evaluated using an FPGA-based implementation and example scenarios employing adaptation for improved energy efficiency. The evaluation demonstrated the benefits of adaptation while showing the overhead and the trade-off between the degree of adaptation and the memory consumption for multi-schedule graphs.
机译:时间触发系统中的静态资源分配为可靠系统的安全参数提供了显着的好处。然而,适应是网络物理系统(CPS)中能效和故障恢复的关键因素。本文介绍了自适应时间触发的多核架构(ATMA),其支持使用多时序图的适应,同时保留时间触发系统的关键属性,包括隐式同步,时间可预测性和避免资源冲突。 ATMA是基于网络上的安全关键CPS的整体架构,具有用于上下文协议和适应的构建块。上下文信息以全局一致的方式建立,为网络接口中的时间对齐时间表的时间对齐的基础。元调度算法计算计划图并避免具有事件的重新验化视野的状态爆炸。对于每个图块,计划图的相关部分使用差异编码有效地存储并由自适应逻辑解释。使用基于FPGA的实现和采用适应性的示例场景来评估该架构,以提高能量效率。评估展示了适应的好处,同时显示了适应程度与多时间表图的内存消耗之间的开销和权衡。

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