动态可重构异构实时分布式嵌入式系统的硬件/软件协同合成

Bharat P. Dave
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引用次数: 37

摘要

动态可重构嵌入式系统提供了更高性能的潜力,以及以低成本适应不断变化的系统需求。这种系统采用运行时可重构的硬件组件,如现场可编程门阵列(fpga)和复杂可编程逻辑器件(cpld)。本文主要研究动态可重构嵌入式系统的软硬件协同合成问题。我们的协同合成系统CRUSADE以具有速率约束的周期性非循环任务图作为嵌入式系统规范的输入,在最小化系统硬件成本的同时,生成满足实时约束的动态可重构异构分布式软硬件架构。我们确定了可编程器件动态重构的任务组,并综合了可编程器件动态重构的高效编程接口。实时系统要求有效地管理映射到可重新编程设备的任务的执行时间,这样就不会超过实时截止日期。为了解决这个问题,我们提出了一种有效管理可重构器件延迟的技术。我们的方法保证实时任务的最后期限总是被满足。据我们所知,这是第一个针对动态可重构嵌入式系统的协同合成算法。我们还展示了我们的协同合成算法如何可以很容易地扩展到考虑故障检测和容错。CRUSADE- ft及其容错扩展在移动通信网络基站、视频分发路由器、多媒体系统以及基于同步光网络(SONET)和异步传输模式(ATM)的电信系统中的几个实际大型示例(多达7400个任务)中的应用表明,可以实现高达56%的系统成本节约。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
CRUSADE: hardware/software co-synthesis of dynamically reconfigurable heterogeneous real-time distributed embedded systems
Dynamically reconfigurable embedded systems offer potential for higher performance as well as adaptability to changing system requirements at low cost. Such systems employ run-time reconfigurable hardware components such as field programmable gate arrays (FPGAs) and complex programmable logic devices (CPLDs). In this paper, we address the problem of hardware/ software co-synthesis of dynamically reconfigurable embedded systems. Our co-synthesis system, CRUSADE, takes as an input embedded system specifications in terms periodic acyclic task graphs with rate constraints and generates dynamically reconfigurable heterogeneous distributed hardware and software architecture meeting real-time constraints while minimizing the system hardware cost. We identify the group of tasks for dynamic reconfiguration of programmable devices and synthesize an efficient programming interface for reconfiguring reprogrammable devices. Real-time systems require that the execution time for tasks mapped to reprogrammable devices are managed effectively such that real-time deadlines are not exceeded. To address this, we propose a technique to effectively manage delay in reconfigurable devices. Our approach guarantees that the real-time task deadlines are always met. To the best of our knowledge, this is the first co-synthesis algorithm which targets dynamically reconfigurable embedded systems. We also show how our co-synthesis algorithm can be easily extended to consider fault-detection and fault-tolerance. Application of CRUSADE and its fault tolerance extension, CRUSADE-FT to several real-life large examples (up to 7400 tasks) from mobile communication network base station, video distribution router, a multi-media system, and synchronous optical network (SONET) and asynchronous transfer mode (ATM) based telecom systems shows that up to 56% system cost savings can be realized.
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