与Uam集成的多式联运运营场景及概念数据模型

Sarasina Tuchen
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To date, the FAA has succeeded in establishing a robust data exchange architecture to support traditional air transportation, but to facilitate this evolution of the public airspace system with respect to UAM and other emerging air vehicle systems, new and revised data exchange models are necessary. Existing data exchange models in need of revision include the International Civil Aviation Organization’s (ICAO) Flight Information Exchange Model (FIXM) and the General Transit Feed Specification (GTFS) [2], [3]. New data exchange models in need of creation include the Passenger Information Exchange Model (PIXM), the Operation Information Exchange Model (OIXM), and Vehicle Information Exchange Model (VIXM) [1]. The research here explored these data models, identifying and defining preliminary conceptual data elements necessary to support seamless, end-to-end mobility. 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New aviation market entrants, such as UAM, will likely not operate entirely within a traditional gate to gate model and are eventually likely to use a model similar to on-demand surface transportation such as ride share. Uber Elevate has already been proposing this type of application for their future air taxis [4]. Accommodating these new aviation market entrants will require further extensions to the FIXM (a second package for Unmanned Aircraft System (UAS) is already planned by the FIXM committee), adoption and enhancement of existing industry data exchange models, and entirely new data models. GTFS is the industry-leading and international de facto public transportation data exchange standard and has an extension called \"flex\" for supporting on-demand mobility, though has been limited to surface applications thus far [3], [5]. Alongside FIXM and GTFS, new models are necessary to facilitate seamless, end-to-end mobility. 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引用次数: 3

摘要

随着城市空中交通(UAM)车辆等新的航空市场进入者,航空在无缝、端到端多式联运中所扮演的角色正在不断发展。在不久的将来,旅客很可能可以通过空中出租车要求按需、点对点的交通。以前的多式联运研究工作主要集中在城市地面交通上,即多种地面交通方式相互竞争和互补,而忽视了航空在未来将发挥的日益重要的作用。同样,现有的公共交通数据交换模型,为各自的系统量身定制,还没有考虑到这种迫在眉睫的交通转型,也没有考虑到广泛的多式联运端到端无缝运输。到目前为止,美国联邦航空局已经成功地建立了一个强大的数据交换架构来支持传统的航空运输,但为了促进公共空域系统在UAM和其他新兴飞行器系统方面的发展,需要新的和修订的数据交换模型。现有需要修订的数据交换模型包括国际民用航空组织(ICAO)的飞行信息交换模型(FIXM)和通用过境馈电规范(GTFS)[2],[3]。需要创建的新的数据交换模型包括乘客信息交换模型(PIXM)、运营信息交换模型(OIXM)和车辆信息交换模型(VIXM)[1]。本研究探讨了这些数据模型,确定并定义了支持无缝端到端移动性所需的初步概念数据元素。本文提出的概念模型是整体性的,考虑了所有的交通方式——步行、汽车、公共汽车、铁路、轮船、飞机等——并希望从这些交通系统中纳入最有前途的交通数据交换模型。为了确定必要的数据交换,以减少破坏性事件对旅行者的影响,开发了一个受破坏性事件(如恶劣天气)影响的现实的多式联运场景。这项工作有助于为项目的后续步骤、多式联运数据交换模型的定义和相应的多式联运概念数据模型的开发提供信息。该方案包括城市空中交通(UAM)车辆,旨在作为在拥挤的城市地铁环境中运行的短途供应商,以绕过地面交通拥堵。新的航空市场进入者,如UAM,可能不会完全采用传统的门到门模式,最终可能会使用类似于按需地面运输的模式,如拼车。Uber Elevate已经为他们未来的空中出租车提出了这类应用[4]。适应这些新的航空市场进入者将需要进一步扩展FIXM(无人机系统(UAS)的第二个包已经由FIXM委员会计划),采用和增强现有的行业数据交换模型,以及全新的数据模型。GTFS是业界领先的国际公共交通数据交换标准,并有一个名为“flex”的扩展,用于支持按需移动,尽管迄今为止仅限于地面应用[3],[5]。除了FIXM和GTFS之外,还需要新的模型来促进无缝的端到端移动性。提出的模型包括车辆信息交换模型(VIXM)、乘客信息交换模型(PIXM)和运营商信息交换模型(OIXM)[1]。本文是对未来交通数据交换模型的初步探索。作者设想了一个未来,旅行者可以轻松地计划,动态地重新计划,并通过智能手机应用程序跟踪多模式旅行的实时进度。作者包括对未来智能手机应用程序的描述,以帮助说明这一概念(第5节)。第6节提供了多模式数据交换计划的简史。第7节包括对后续步骤的简要讨论和对继续研究的建议。
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Multimodal Transportation Operational Scenario And Conceptual Data Model For Integration With Uam
With new aviation market entrants such as Urban Air Mobility (UAM) vehicles, the role aviation will take in seamless, end-to-end multimodal transportation is evolving. Travelers will likely be able to request on-demand, point-to-point transportation through air taxis in the not-to-distant future. Previous multimodal research efforts have focused on surface urban mobility, where multiple modes of ground transportation compete with and complement each other, ignoring the growing role that aviation will play going forward. Existing public transportation data exchange models, tailored for their respective systems, likewise, have not yet accounted for this looming transportation transformation nor for widespread multimodal end-to-end, seamless transporting. To date, the FAA has succeeded in establishing a robust data exchange architecture to support traditional air transportation, but to facilitate this evolution of the public airspace system with respect to UAM and other emerging air vehicle systems, new and revised data exchange models are necessary. Existing data exchange models in need of revision include the International Civil Aviation Organization’s (ICAO) Flight Information Exchange Model (FIXM) and the General Transit Feed Specification (GTFS) [2], [3]. New data exchange models in need of creation include the Passenger Information Exchange Model (PIXM), the Operation Information Exchange Model (OIXM), and Vehicle Information Exchange Model (VIXM) [1]. The research here explored these data models, identifying and defining preliminary conceptual data elements necessary to support seamless, end-to-end mobility. The conceptual model herein proposed is holistic and considers all modes of transportation – walk, car, bus, rail, boat, air, etc. - and looks to incorporate the most promising transportation data exchange models from among these transportation systems.A realistic multimodal travel scenario subject to disruptive events (such as severe weather) was developed for the purpose of identifying the necessary exchange of data to reduce the impact of the disruptive events on the traveler. This work helped inform the next steps in the project, the definition of multimodal data exchange models and the development of a corresponding multimodal transportation conceptual data model. The scenario includes Urban Air Mobility (UAM) vehicles that are intended to serve as short haul providers operating in a congested urban metro environment to bypass surface traffic congestion. New aviation market entrants, such as UAM, will likely not operate entirely within a traditional gate to gate model and are eventually likely to use a model similar to on-demand surface transportation such as ride share. Uber Elevate has already been proposing this type of application for their future air taxis [4]. Accommodating these new aviation market entrants will require further extensions to the FIXM (a second package for Unmanned Aircraft System (UAS) is already planned by the FIXM committee), adoption and enhancement of existing industry data exchange models, and entirely new data models. GTFS is the industry-leading and international de facto public transportation data exchange standard and has an extension called "flex" for supporting on-demand mobility, though has been limited to surface applications thus far [3], [5]. Alongside FIXM and GTFS, new models are necessary to facilitate seamless, end-to-end mobility. Proposed models include the Vehicle Information Exchange Model (VIXM), the Passenger Information Exchange Model (PIXM), and the Operator Information Exchange Model (OIXM) [1].This paper serves as an initial exploration of a data exchange model for future of transportation. The authors envision a future where a traveler can easily plan, dynamically re-plan, and track the real-time progress of a multimodal trip from the convenience of a smartphone application. The authors include a description of a future smartphone application to help illustrate the concept (Section 5). Section 6 provides a brief history of multimodal data exchange initiatives. Section 7 includes a brief discussion of next steps and recommendations for continued research.
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