DocumentCode :
2545499
Title :
A framework for probabilistic evaluation of interval management tolerence in the terminal radar control area
Author :
Herencia-Zapana, Heber ; Hagen, G. ; Neogi, N.
Author_Institution :
Nat. Inst. of Aerosp., Hampton, VA, USA
fYear :
2012
fDate :
14-18 Oct. 2012
Abstract :
Projections of future traffic in the national airspace show that most of the hub airports and their attendant airspace will need to undergo significant redevelopment and redesign in order to accommodate any significant increase in traffic volume. Even though closely spaced parallel approaches increase throughput into a given airport, controller workload in oversubscribed metroplexes is further taxed by these approaches that require stringent monitoring in a saturated environment. The interval management (IM) concept in the TRACON area is designed to shift some of the operational burden from the control tower to the flight deck, placing the flight crew in charge of implementing the required speed changes to maintain a relative spacing interval. The interval management tolerance is a measure of the allowable deviation from the desired spacing interval for the IM aircraft (and its target aircraft). For this complex task, Formal Methods can help to ensure better design and system implementation. In this paper, we propose a probabilistic framework to quantify the uncertainty and performance associated with the major components of the IM tolerance. The analytical basis for this framework may be used to formalize both correctness and probabilistic system safety claims in a modular fashion at the algorithmic level in a way compatible with several Formal Methods tools.
Keywords :
air safety; air traffic control; airports; probability; IM aircraft; IM concept; TRACON area; analytical basis; attendant airspace; closely spaced parallel approaches; control tower; controller workload; flight crew; flight deck; formal methods; hub airports; interval management concept; interval management tolerance; interval management tolerence; modular fashion; national airspace; operational burden; oversubscribed metroplexes; probabilistic evaluation; probabilistic framework; probabilistic system safety claims; saturated environment; spacing interval; target aircraft; terminal radar control area; traffic volume; Aerospace control; Aircraft; Algorithm design and analysis; Heuristic algorithms; Probabilistic logic; Safety; Velocity control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Avionics Systems Conference (DASC), 2012 IEEE/AIAA 31st
Conference_Location :
Williamsburg, VA
ISSN :
2155-7195
Print_ISBN :
978-1-4673-1699-6
Type :
conf
DOI :
10.1109/DASC.2012.6382886
Filename :
6382886
Link To Document :
بازگشت