Decision support system for the irregular flight recovery problem

被引:4
作者
Pei, Shan [1 ]
He, Yuehuan [2 ]
Fan, Zheng [3 ]
Zhang, Boyu [1 ]
机构
[1] Beijing Normal Univ, Sch Math Sci, Beijing, Peoples R China
[2] Univ Toronto, Dept Mech & Ind Engn, Toronto, ON, Canada
[3] Boeing Co, Boeing Global Serv, Digital Solut & Analyt, Chicago, IL USA
基金
美国国家科学基金会;
关键词
Air transportation; Irregular flight recovery; Decision support system; INTEGRATED AIRCRAFT; PASSENGER RECOVERY; SCHEDULE RECOVERY; AIRLINE; COMPETITIVENESS; MODEL; SELECTION; SERVICES;
D O I
10.1016/j.rtbm.2020.100501
中图分类号
F [经济];
学科分类号
02 ;
摘要
In this paper, we describe a data-driven approach to the irregular flight recovery problem. By imitating the decision process of dispatchers, we develop a quantitative mechanism to evaluate the disrupted flight and to provide easily adopted recovery suggestions. Our method consists of two steps. The first step is to establish a scoring system based on interviews, questionnaires, and operational data. Specifically, an irregular flight will be assigned a real-time score representing the importance of the flight and the impact of its current status. This score is also used to evaluate the necessity of the immediate recovery of the irregular flight. The second step is to generate feasible adjustment plan, which decrease the total scores of the related flights. Having validated by 306 manually recorded recovery actions, the scoring system successfully explains most of the recovery actions from dispatchers, meaning that the scoring system is consistent with the airline recovery strategy. To further demonstrate the recovery method's feasibility and response time, we also conducted tests based on one-day flight schedule simulation containing 92 flights and 7 historical cases from one Chinese airline. These tests prove the feasible adjustment plans can be generated in real-time, help airlines mitigate disruption effects to the network and reduce their decision process by 5-10 min in each delay scenario.
引用
收藏
页数:9
相关论文
共 38 条
[1]   An integrated decision support tool for airlines schedule recovery during irregular operations [J].
Abdelghany, Khaled F. ;
Abdelghany, Ahmed F. ;
Ekollu, Goutham .
EUROPEAN JOURNAL OF OPERATIONAL RESEARCH, 2008, 185 (02) :825-848
[2]   Aircraft Rescheduling with Cruise Speed Control [J].
Akturk, M. Selim ;
Atamturk, Alper ;
Gurel, Sinan .
OPERATIONS RESEARCH, 2014, 62 (04) :829-845
[3]   Flight Network-Based Approach for Integrated Airline Recovery with Cruise Speed Control [J].
Arikan, Ugur ;
Gurel, Sinan ;
Akturk, M. Selim .
TRANSPORTATION SCIENCE, 2017, 51 (04) :1259-1287
[4]   Integrated aircraft and passenger recovery with cruise time controllability [J].
Arikan, Ugur ;
Gurel, Sinan ;
Akturk, M. Selim .
ANNALS OF OPERATIONS RESEARCH, 2016, 236 (02) :295-317
[5]   An analytic hierarchy process for ranking operating costs of low cost and full service airlines [J].
Berrittella, Maria ;
La Franca, Luigi ;
Zito, Pietro .
JOURNAL OF AIR TRANSPORT MANAGEMENT, 2009, 15 (05) :249-255
[6]   Flight operations recovery: New approaches considering passenger recovery [J].
Bratu, S ;
Barnhart, C .
JOURNAL OF SCHEDULING, 2006, 9 (03) :279-298
[7]   A model for aircraft evaluation to support strategic decisions [J].
Bruno, Giuseppe ;
Esposito, Emilio ;
Genovese, Andrea .
EXPERT SYSTEMS WITH APPLICATIONS, 2015, 42 (13) :5580-5590
[8]  
Clarke M.D., 1998, J AIR TRANSP MANAG, V4, P67, DOI DOI 10.1016/S0969-6997(98)00012-X
[9]   Disruption management in the airline industry-Concepts, models and methods [J].
Clausen, Jens ;
Larsen, Allan ;
Larsen, Jesper ;
Rezanova, Natalia J. .
COMPUTERS & OPERATIONS RESEARCH, 2010, 37 (05) :809-821
[10]   Benders decomposition for simultaneous aircraft routing and crew scheduling [J].
Cordeau, JF ;
Stojkovic, G ;
Soumis, F ;
Desrosiers, J .
TRANSPORTATION SCIENCE, 2001, 35 (04) :375-388