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Collaborative Mapping with IoE-based Heterogeneous Vehicles for Enhanced Situational Awareness

机译:利用基于IOE的异构车辆的协作映射,以增强情境意识

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The development of autonomous vehicles or advanced driving assistance platforms has had a great leap forward to get closer to human daily life over the last decade. Nevertheless, it is still challenging to achieve an efficient and fully autonomous vehicle or driving assistance platform due to many strict requirements and complex situations or unknown environments. One of the main remaining challenges is a robust situation awareness in autonomous vehicles when the environment is unknoen. An autonomous system with a poor situation awareness due to low quantity or quality of data may directly or indirectly cause serious consequences. For instance, a person's life might be at risk due to a delay caused by a long or incorrect path planning of an autonomous ambulance. Internet of Everything (IoE) is currently becoming a prominent technology for many applications such as automation. In this paper, we propose an IoE-based architecture consisting of a heterogeneous team of cars and drones for enhancing situational awareness in autonomous cars, especially when dealing with critical cases of natural disasters. In particular, we show how an autonomous car can plan in advance the possible paths to a given destination, and send orders to other vehicles. These, in turn, perform terrain reconnaissance for avoiding obstacles and dealing with difficult situations. Together with a map merging algorithm deployed into the team autonomous vehicles, the proposed architecture can help to save traveling distance and time significantly in case of complex scenarios.
机译:自主车辆或先进的驾驶援助平台的发展已经在过去十年中越来越靠近人类日常生活。尽管如此,由于许多严格的要求和复杂的情况或未知的环境,实现了高效和完全自主的车辆或驾驶辅助平台仍然具有挑战性。其中一个主要挑战是当环境未揭露时自治车辆的强大局势意识。由于数量低或数据质量而具有较差的自治系统,可能直接或间接地造成严重后果。例如,由于自主救护车的长期或不正确的路径规划造成的延迟,一个人的生命可能存在风险。一切(IOE)的互联网目前正在成为自动化等许多应用的突出技术。在本文中,我们提出了一种基于IOE的架构,包括一个由异构的汽车和无人机团队组成,以提高自治车的情境意识,特别是在处理自然灾害的关键案例时。特别是,我们展示了自主课程如何提前计划给定目的地的可能路径,并将订单发送到其他车辆。反过来,这些是为了避免障碍和处理困难情况而表现地形侦察。与部署到团队自治车辆的地图合并算法一起,建议的架构可以帮助在复杂场景的情况下显着节省旅行距离和时间。

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