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A multi-sensor fusion framework for improving situational awareness in demanding maritime training

机译:一种多传感器融合框架,用于在要求严格的海事训练中提高态势感知能力

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摘要

Real offshore operational scenarios can involve a considerable amount of risk. Sophisticated training programmes involving specially designed simulator environments constitute a promising approach for improving an individual's perception and assessment of dangerous situations in real applications. One of the world's most advanced providers of simulators for such demanding offshore operations is the Offshore Simulator Centre AS (OSC). However, even though the OSC provides powerful simulation tools, techniques for visualising operational procedures that can be used to further improve Situational awareness (SA), are still lacking.Providing the OSC with an integrated multi-sensor fusion framework is the goal of this work. The proposed framework is designed to improve planning, execution and assessment of demanding maritime operations by adopting newly-designed risk-evaluation tools. Different information from the simulator scene and from the real world can be collected, such as audio, video, bio-metric data from eye-trackers, other sensor data and annotations. This integration is the base for research on novel SA assessment methodologies. This will serve the industry for the purpose of improving operational effectiveness and safety through the use of simulators.In this work, a training methodology based on the concept of briefing/debriefing is adopted based on previous literature. By using this methodology borrowed from similarly demanding applications, the efficiency of the proposed framework is validated in a conceptual case study. In particular, the training procedure, which was previously performed by Statoil and partners, for the world's first sub-sea gas compression plant, in Aasgard, Norway, is considered and reviewed highlighting the potentials of the proposed framework.
机译:实际的海上作业场景可能会涉及大量风险。涉及特别设计的模拟器环境的复杂培训计划构成了一种有前途的方法,可以改善个人在实际应用中对危险情况的感知和评估。 Offshore Simulator Center AS(OSC)是用于此类苛刻海上作业的世界上最先进的模拟器提供商之一。然而,尽管OSC提供了强大的仿真工具,但仍缺乏可用于可视化操作程序以进一步提高态势感知(SA)的技术。此项工作的目标是为OSC提供集成的多传感器融合框架。 。拟议的框架旨在通过采用新设计的风险评估工具来改善对海上作业的计划,执行和评估。可以收集来自模拟器场景和真实世界的不同信息,例如音频,视频,来自眼动仪的生物识别数据,其他传感器数据和注释。这种集成是研究新的SA评估方法的基础。这将为行业提供服务,以通过使用模拟器来提高运营效率和安全性。在这项工作中,基于以前的文献,采用了基于简报/汇报概念的培训方法。通过使用从类似要求苛刻的应用程序中借用的这种方法,在概念上的案例研究中验证了所提出框架的效率。尤其是,考虑并审查了之前由挪威国家石油公司(Statoil)及其合作伙伴为世界上第一个海底天然气压缩工厂在挪威阿斯加德(Aasgard)进行的培训程序,突出了该框架的潜力。

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    Sanfilippo, Filippo;

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  • 年度 2017
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