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ECPR: Environment-and context-aware combined power and rate distributed congestion control for vehicular communications

机译:ECPR:用于车辆通信的环境和上下文相关的组合功率和速率分布式拥塞控制

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Safety and efficiency applications in vehicular networks rely on the exchange of periodic messages between vehicles. These messages contain position, speed, heading, and other vital information that makes the vehicles aware of their surroundings. The drawback of exchanging periodic cooperative messages is that they generate significant channel load. Decentralized Congestion Control (DCC) algorithms have been proposed to minimize the channel load. However, while the rationale for periodic message exchange is to improve awareness, existing DCC algorithms do not use awareness as a metric for deciding when, at what power, and at what rate the periodic messages need to be sent in order to make sure all vehicles are informed. We propose an environment- and context-aware DCC algorithm combines power and rate control in order to improve cooperative awareness by adapting to both specific propagation environments (e.g., urban intersections, open highways, suburban roads) as well as application requirements (e.g., different target cooperative awareness range). Studying various operational conditions (e.g., speed, direction, and application requirement), ECPR adjusts the transmit power of the messages in order to reach the desired awareness ratio at the target distance while at the same time controlling the channel load using an adaptive rate control algorithm. By performing extensive simulations, including realistic propagation as well as environment modeling and realistic vehicle operational environments (varying demand on both awareness range and rate), we show that ECPR can increase awareness by 20% while keeping the channel load and interference at almost the same level. When permitted by the awareness requirements, ECPR can improve the average message rate by 18% compared to algorithms that perform rate adaptation only. (C) 2016 Elsevier B.V. All rights reserved.
机译:车辆网络中的安全性和效率性应用依赖于车辆之间的定期消息交换。这些消息包含位置,速度,前进方向和其他重要信息,这些信息可以使车辆意识到周围的环境。交换周期性合作消息的缺点是它们会产生很大的信道负载。已经提出了分散式拥塞控制(DCC)算法以最小化信道负载。但是,虽然定期消息交换的基本原理是提高认知度,但是现有的DCC算法并未使用认知度作为确定何时,以何种功率和速率发送周期性消息以确保所有车辆的度量标准。被告知。我们提出了一种环境和上下文感知的DCC算法,将功率和速率控制相结合,以便通过适应特定的传播环境(例如,城市交叉路口,高速公路,郊区道路)以及应用需求(例如,不同的环境)来提高合作意识。目标合作意识范围)。研究各种操作条件(例如速度,方向和应用要求)后,ECPR会调整消息的发送功率,以便在目标距离处达到所需的感知率,同时使用自适应速率控制来控制信道负载算法。通过执行广泛的仿真,包括现实的传播以及环境建模和现实的车辆操作环境(对感知范围和速率的需求不断变化),我们表明ECPR可以将感知提高20%,同时保持信道负载和干扰几乎相同水平。如果意识要求允许,与仅执行速率自适应的算法相比,ECPR可以将平均消息速率提高18%。 (C)2016 Elsevier B.V.保留所有权利。

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