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首页> 外文期刊>International Journal of Systems Engineering >Comparing Simulation with Physical Verification and Validation in a Maritime Test Field
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Comparing Simulation with Physical Verification and Validation in a Maritime Test Field

机译:在海上测试字段中使用物理验证和验证进行比较

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The steadily increasing complexity of maritime systems substantially raised the need for advanced verification and validation (V&V) as well as certification methods. Extensive simulation-based certification adds new opportunities to existing physical testing. Compared with simulation, field tests are extremely time-consuming and therefore expensive. Furthermore, relevant close-range situations between ships or environmental impacts (e.g. certain types of bad weather situation) are impossible to perform in the field for safety reasons and the uncontrollability of the environment or simply the amount of experiments needed. Systems in the maritime domain (like products for navigation assistance, sensors, communication equipment etc.) are typically not used isolated but as part of a complex setup. More and more sensors and actuators are integrated to provide data for various systems or information services on board a ship and ashore. Since such systems are typically continuously evolving during their service lifetime, the development and maintenance of maritime systems (e.g. bridge systems) need to considered in its usage context that includes interconnected systems and external services, sensors and actuators. CPSoS (Cyber-Physical System of Systems) demand innovative approaches for distributed optimization, novel distributed management and control methodologies that can also deal with partially autonomous systems, and must be resilient to faults or cyber-attacks. In addition, CPSoS engineering no longer maintains the former strict separation between the engineering phases and actual operation. Instead, integrated approaches for the design- and operation- phase are required to cover the full lifecycle by modelling, simulation, validation, and verification (V&V). Thus, prospectively, it will be necessary to monitor the system formation and to conduct a final assessment of the system by means of a suitable application of test cases in a controlled and comprehensible manner. These systems have an emerging behavior and cannot entirely defined during the design phase. At this point it becomes apparent that conventional unit, integration and system tests are no longer sufficient to fully cover and validate the functional limits of Cyber-Physical System of Systems. An acceptable test coverage cannot be achieved with these methods for such systems. In this paper the authors present a use case of collision-regulation compliance checker to compare virtual (i.e. simulation-based) V&V, physical (i.e. in-situ testing) V&V and hybrid, mixed-reality V&V.
机译:稳步提高海洋系统的复杂性大大提高了对先进验证和验证(V&V)以及认证方法的需求。基于广泛的仿真认证为现有物理测试增加了新的机会。与仿真相比,现场测试非常耗时,因此昂贵。此外,出于安全原因和环境的无法控制性或仅仅是所需的实验量,不可能在现场进行相关的近距离情况(例如某些类型的恶劣天气情况)。海上域中的系统(如用于导航辅助,传感器,通信设备等的产品)通常不会被隔离使用,而是作为复杂设置的一部分。越来越多的传感器和执行器被集成,为船上和岸上的各种系统或信息服务提供数据。由于这种系统通常在其使用寿命期间连续地发展,因此在其使用环境中需要考虑的海洋系统(例如桥梁系统)的开发和维护,其包括互联系统和外部服务,传感器和执行器。 CPSOS(系统系统系统)需要创新的分布式优化方法,新的分布式管理和控制方法,也可以处理部分自主系统,并且必须适应故障或网络攻击。此外,CPSOS工程不再维持工程阶段与实际操作之间的前者严格分离。相反,设计和操作的集成方法是通过建模,仿真,验证和验证(V&V)来覆盖完整的生命周期。因此,前瞻性地,有必要通过适当应用测试用例以受控和理解的方式来监测系统形成,并对系统进行最终评估。这些系统具有新出现的行为,在设计阶段不能完全定义。此时,显而易见的是,传统的单元,集成和系统测试不再足以完全覆盖和验证系统的网络物理系统的功能限制。通过这些系统的这些方法无法实现可接受的测试覆盖。在本文中,作者呈现了碰撞调节顺应性检查器的用例,以比较虚拟(即,基于模拟的)V&V,物理(即原位测试)V&V和混合,混合现实V&v。

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