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A Comprehensive Approach to On-board Autonomy Verification and Validation

机译:一种综合的主管自主验证和验证方法

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Deep space missions are characterized by severely constrained communication links. To meet the needs of future missions and increase their scientific return, future space systems will require an increased level of autonomy on-board. In this work, we propose a comprehensive approach to on-board autonomy. We rely on model-based reasoning, and we consider many important (on-line and off-line) reasoning capabilities such as plan generation, validation, execution and monitoring, runtime diagnosis, and fault detection, identification, and recovery. The controlled platform is represented symbolically, and the reasoning capabilities are seen as symbolic manipulation of such formal model. We have developed a prototype of our framework, and we have integrated it within an on-board Autonomous Reasoning Engine. Finally, we have evaluated our approach on three case-studies inspired by real-world projects and characterized it in terms of reliability, availability, and performance.
机译:深度空间任务的特点是受严格限制的通信链接。 为满足未来任务的需求并增加科学回报,未来的空间系统将需要增加的自治水平。 在这项工作中,我们提出了一种全面的载入自治方式。 我们依靠基于模型的推理,我们考虑了许多重要(在线和离线)推理能力,如计划生成,验证,执行和监控,运行时诊断和故障检测,识别和恢复。 受控平台象征性地表示,并且推理能力被视为这种形式模型的象征性操纵。 我们已经开发了一个框架的原型,我们在载入的自主推理引擎内集成了它。 最后,我们在三个案例研究中评估了我们的方法,这是由现实世界项目的启发,并在可靠性,可用性和性能方面表征。

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