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SOFTWARE-DEFINED RADIO FOR POSITIVE TRAIN CONTROL

机译:用于正火车控制的软件定义无线电

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United States (US) Freight and Passenger railroads and transit entities are preparing for the deployment of Positive Train Control (PTC) systems as soon as the end of 2012, and by Federal mandate, by the end of 2015. PTC depends on a reliable and robust wireless data link between train and wayside equipment, train and network access points, and waysides and network access points. While, for the wireless component, some spectrum has been acquired and initial functionality defined, there will be lessons learned and new expectations as systems are rolled out over this period and beyond. Since the average service life of radio equipment in rail and transit applications is in excess of 10-15 years, and a system design may remain in place for 20-25 years, the challenge is to ensure that wireless systems are flexible enough to adapt to technology changes that may occur during the radio system's long service life. Software-Defined Radio (SDR) is the appropriate approach to deal with this future uncertainty.The worldwide cellular communications standards are a great example: 3GPP established its first 3G specification, Release-99, in the year 2000; there have been 7 full specification releases since then, demonstrating the challenges of predicting future use based on current expectation. Deployment and long-term maintenance account for the majority of system cost: when system deployment is expensive and time-consuming, the needs for flexible design are crucial. The maintenance cost should be added and weighted higher in the calculation for total cost of ownership. One can argue that fixed design is cheaper; however, the total cost of ownership may end up much higher when changes are needed before the end of the product's expected service life. In Information Technology, the system performance doubles approximately every 18-24 months. Thoughtful radio design can leverage this generational improvement.To address the issue of broad interoperability and a forward-looking specification, radio experts, including transit systems integrators, Federal agencies, end device and chipset manufacturers, and researchers, from around the world have teamed up under the aegis of the Institute of Electrical and Electronic Engineers (IEEE) to establish a Positive Train Control group for the RF/PHY/MAC based upon the well adopted IEEE 802.15.4 standard. The outcome of this effort will ensure the maturity of a PTC specification and long term maintenance of this mission-critical PTC wireless interface protocol. With any new specification development, continuous vetting, modification and upgrade will occur over coming years to improve the functionality and stability. SDR architectures allow the radio system to follow the standard.SDR allows railroads to start system validation and hardware qualification now, in order to meet the required Federal deadline. Since SDR provides a continuous path for interoperability as radios can reprogram and reconfigure on the fly, the hardware can remain unchanged while interoperability and advances in standards can be met through software upgrade.
机译:美国货运铁路和客运铁路及过境实体正准备在2012年底之前并根据联邦政府的要求,在2015年底之前部署正列车控制(PTC)系统。火车和路边设备,火车和网络接入点以及路边和网络接入点之间的健壮的无线数据链路。虽然对于无线组件来说,已经获得了一些频谱并定义了初始功能,但随着系统在此期间及以后的推出,将会获得经验教训和新的期望。由于无线电设备在铁路和运输应用中的平均使用寿命超过10-15年,并且系统设计可能会保留20-25年,因此挑战在于确保无线系统具有足够的灵活性以适应无线电系统使用寿命长期间可能发生的技术变化。软件定义无线电(SDR)是应对这种未来不确定性的适当方法。全球蜂窝通信标准就是一个很好的例子:3GPP于2000年建立了其首个3G规范Release-99;从那时起,已经有7个完整的规范发布,展示了根据当前期望预测未来使用的挑战。部署和长期维护占了系统成本的大部分:当系统部署既昂贵又耗时时,灵活设计的需求就变得至关重要。在总拥有成本的计算中,应增加维护成本并对其进行加权计算。有人可以说固定设计便宜。但是,如果在产品的预期使用寿命到期之前需要进行更改,则总拥有成本可能最终要高得多。在信息技术领域,系统性能大约每18-24个月增加一倍。周到的无线电设计可以充分利用这一代技术的改进。为解决广泛的互操作性和前瞻性规范的问题,包括运输系统集成商,联邦机构,终端设备和芯片组制造商以及来自世界各地的研究人员在内的无线电专家已经联手在电气和电子工程师协会(IEEE)的主持下,根据公认的IEEE 802.15.4标准为RF / PHY / MAC建立了一个积极的列车控制组。这项工作的结果将确保PTC规范的成熟和对该任务关键PTC无线接口协议的长期维护。随着任何新规范的开发,未来几年将不断进行审核,修改和升级,以改善功能和稳定性。 SDR体系结构允许无线电系统遵循该标准。SDR允许铁路现在开始系统验证和硬件鉴定,以便满足要求的联邦期限。由于SDR提供了连续的互操作性,因为无线电可以即时进行重新编程和重新配置,因此硬件可以保持不变,而互操作性和标准的提高可以通过软件升级来满足。

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