Autonomous Delivery Solutions for Last-Mile Logistics Operations: A Literature Review and Research Agenda
暂无分享,去创建一个
[1] Olja Čokorilo,et al. The The Application of Drones in City Logistics Concepts , 2021, Promet - Traffic&Transportation.
[2] Weitiao Wu,et al. A hybrid metaheuristic algorithm for location inventory routing problem with time windows and fuel consumption , 2021, Expert Syst. Appl..
[3] Yvon Savaria,et al. Autonomous Last-Mile Delivery Based on the Cooperation of Multiple Heterogeneous Unmanned Ground Vehicles , 2021 .
[4] Kangyin Dong,et al. Have electric vehicles effectively addressed CO2 emissions? Analysis of eight leading countries using quantile-on-quantile regression approach , 2021, Sustainable Production and Consumption.
[5] W. Vermeulen,et al. Sustainability assessment in circular inter-firm networks: An integrated framework of industrial ecology and circular supply chain management approaches , 2020, Journal of Cleaner Production.
[6] Sabyasachee Mishra,et al. Evaluating public acceptance of autonomous delivery robots during COVID-19 pandemic , 2020, Transportation Research Part D: Transport and Environment.
[7] Gilbert Laporte,et al. Drone-aided routing: A literature review , 2020 .
[8] F. Cavallaro,et al. The integration of passenger and freight transport for first-last mile operations , 2020, Transport Policy.
[9] Chase C. Murray,et al. The multiple flying sidekicks traveling salesman problem with variable drone speeds , 2020 .
[10] M. Figliozzi. Carbon emissions reductions in last mile and grocery deliveries utilizing air and ground autonomous vehicles , 2020, Transportation Research Part D: Transport and Environment.
[11] L. Tavasszy. Predicting the effects of logistics innovations on freight systems: Directions for research , 2020, Transport Policy.
[12] Emmanouil Chaniotakis,et al. Shared autonomous vehicle services: A comprehensive review , 2020, Transportation Research Part C: Emerging Technologies.
[13] Man Yu,et al. Pricing Strategy and Carbon Emission Abatement under Cap-and-Trade Regulation Considering Social Learning , 2019 .
[14] Yang Song,et al. A Contract Coordination Model of Dual-Channel Delivery between UAVs and Couriers Considering the Uncertainty of Delivery for Last Mile , 2019 .
[15] Moritz Poeting,et al. A Comprehensive Case Study in Last-Mile Delivery Concepts for Parcel Robots , 2019, 2019 Winter Simulation Conference (WSC).
[16] K. Ding,et al. Technology Development and Applying Scenary of UAV: A Patentometric Survey , 2019, 2019 IEEE International Symposium on Innovation and Entrepreneurship (TEMS-ISIE).
[17] Miguel Figliozzi,et al. Study of Sidewalk Autonomous Delivery Robots and Their Potential Impacts on Freight Efficiency and Travel , 2019, Transportation Research Record: Journal of the Transportation Research Board.
[18] Michael H. Breitner,et al. Autonomous Unmanned Ground Vehicles for Urban Logistics: Optimization of Last Mile Delivery Operations , 2019, HICSS.
[19] P. Daugherty,et al. Logistics and distribution innovation in China , 2018, International Journal of Physical Distribution & Logistics Management.
[20] Jaemin Jung,et al. Drone delivery: Factors affecting the public's attitude and intention to adopt , 2018, Telematics Informatics.
[21] Gunnar Prause,et al. On the Regulatory Framework for Last-Mile Delivery Robots , 2018, Machines.
[22] Kyo Suh,et al. A Comparative Analysis of the Environmental Benefits of Drone-Based Delivery Services in Urban and Rural Areas , 2018 .
[23] M. Roccotelli,et al. A Review of Last Mile Logistics Innovations in an Externalities Cost Reduction Vision , 2018 .
[24] P. Chhetri,et al. Estimating transportation network impedance to last-mile delivery a case study of Maribyrnong City in Melbourne , 2018 .
[25] Kay W. Axhausen,et al. Autonomous Vehicle Fleet Sizes Required to Serve Different Levels of Demand , 2016 .
[26] Qing Liu,et al. Towards enhancing the last-mile delivery: An effective crowd-tasking model with scalable solutions , 2016 .
[27] Daniel J. Fagnant,et al. Dynamic ride-sharing and fleet sizing for a system of shared autonomous vehicles in Austin, Texas , 2016, Transportation.
[28] Liesje De Boeck,et al. Introducing autonomous vehicles in logistics: a review from a broad perspective , 2016 .
[29] Walid Klibi,et al. Planning and operating a shared goods and passengers on-demand rapid transit system for sustainable city-logistics , 2015 .
[30] Daniel J. Fagnant,et al. Preparing a Nation for Autonomous Vehicles: Opportunities, Barriers and Policy Recommendations , 2015 .
[31] Chase C. Murray,et al. The flying sidekick traveling salesman problem: Optimization of drone-assisted parcel delivery , 2015 .
[32] Claes Wohlin,et al. Guidelines for snowballing in systematic literature studies and a replication in software engineering , 2014, EASE '14.
[33] Martin W. P. Savelsbergh,et al. Optimization for dynamic ride-sharing: A review , 2012, Eur. J. Oper. Res..
[34] Emilio Frazzoli,et al. Robotic load balancing for mobility-on-demand systems , 2012, Int. J. Robotics Res..
[35] Anna Trentini,et al. Toward a Shared Urban Transport System Ensuring Passengers & Goods Cohabitation , 2010 .
[36] A. Booth,et al. A typology of reviews: an analysis of 14 review types and associated methodologies. , 2009, Health information and libraries journal.
[37] Richard T. Watson,et al. Analyzing the Past to Prepare for the Future: Writing a Literature Review , 2002, MIS Q..
[38] Konstantina Anastasiadou,et al. Sustainable Mobility Driven Prioritization of New Vehicle Technologies, Based on a New Decision-Aiding Methodology , 2021, Sustainability.
[39] Henning Strubelt,et al. State of the art - Automated micro-vehicles for urban logistics , 2019, IFAC-PapersOnLine.
[40] J.H.R. van Duin,et al. Evaluating new participative city logistics concepts: The case of cargo hitching , 2019, Transportation Research Procedia.
[41] Andrii Galkin,et al. Investigating using Urban Public Transport For Freight Deliveries , 2019, Transportation Research Procedia.
[42] Frederik Schulte,et al. Integrating People and Freight Transportation Using Shared Autonomous Vehicles with Compartments , 2018 .
[43] Ron van Duin,et al. Robotisation of urban freight transport , 2018 .
[44] Kara M. Kockelman,et al. Dynamic ride-sharing and fleet sizing for a system of shared autonomous vehicles in Austin, Texas , 2018 .
[45] Gabriel Fedorko,et al. Comparison of the Traditional and Autonomous AGV Systems , 2017 .
[46] Gabriel Fedorko,et al. Simulation of the Supply of Workplaces by the AGV in the Digital Factory , 2017 .
[47] Cathy Macharis,et al. Does a Mobile Depot Make Urban Deliveries Faster, More Sustainable and More Economically Viable: Results of a Pilot Test in Brussels , 2014 .
[48] Pradip M. Jawandhiya,et al. Review of Unmanned Aircraft System (UAS) , 2013 .