Introspection-Based Fault Tolerance for COTS-Based High-Capability Computation in Space

M. James, A. Shapiro, P. Springer, H. Zima
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引用次数: 2

Abstract

Future missions of deep space exploration face the challenge of designing, building,and operating progressively more capable autonomous spacecraft and planetary rovers. Given the communication latencies and bandwidth limitations for such missions, the need for increased autonomy becomes mandatory, along with the requirement for enhanced on-board computational capabilities while in deep space or time-critical situations. This will result in dramatic changes in the way missions will be conducted and supported by on-board computing systems. Specifically, the traditional approach of relying exclusively on radiation-hardened hardware and modular redundancy will not be able to deliver the required computational power. As a consequence, such systems are expected to include high-capability low-power components based on emerging Commercial-Off-The-Shelf (COTS) multi-core technology. This paper describes the design of a generic framework for introspection that supports runtime monitoring and analysis of program execution as well as a feedback-oriented recovery from faults. One of the first applications of this framework will be to provide flexible software fault tolerance matched to the requirements and properties of applications by exploiting knowledge that is either contained in an application knowledge base, provided by users, or automatically derived from specifications. A prototype implementation is currently in progress at the Jet Propulsion Laboratory, California Institute of Technology, targeting a cluster of Cell Broadband Engines.
基于自省的空间高容量计算容错
未来的深空探测任务面临着设计、建造和操作能力越来越强的自主航天器和行星探测器的挑战。考虑到此类任务的通信延迟和带宽限制,增加自主性的需求变得势在必行,同时在深空或时间紧迫的情况下,也需要增强机载计算能力。这将导致执行任务和机载计算系统支助任务的方式发生巨大变化。具体来说,传统方法完全依赖于抗辐射硬件和模块化冗余将无法提供所需的计算能力。因此,这样的系统预计将包括基于新兴商用现货(COTS)多核技术的高性能低功耗组件。本文描述了一个用于内省的通用框架的设计,该框架支持运行时监控和程序执行分析,以及面向错误的反馈恢复。该框架的首批应用之一将是通过利用应用程序知识库中包含的、由用户提供的或从规范中自动派生的知识,提供与应用程序的需求和属性相匹配的灵活的软件容错能力。目前,加州理工学院喷气推进实验室正在进行一个原型实现,目标是蜂窝宽带引擎集群。
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