DocumentCode :
2293718
Title :
Minimizing the search space for computing exact worst-case delays of AFDX periodic flows
Author :
Adnan, Muhammad ; Scharbarg, Jean-Luc ; Fraboul, Christian
Author_Institution :
IRIT, Univ. de Toulouse, Toulouse, France
fYear :
2011
fDate :
15-17 June 2011
Firstpage :
294
Lastpage :
301
Abstract :
AFDX (Avionics Full Duplex Switched Ethernet) standardized as ARINC 664 is a major upgrade for avionics systems. Guarantees on worst case end-to-end communication delays are required for certification purposes. These guarantees are obtained thanks to safe upper bounds computed by Network Calculus and Trajectory Approaches. Indeed, up to now, the computation of an exact worst case delay is intractable, except for very small configurations (less than 10 virtual links (VLs)). This paper proposes an algorithm which significantly increases the size of the configuration for which an exact worst case delay can be obtained (up to 50 VLs). This is achieved, thanks to a drastic reduction of the search space. For larger configurations (up to 100 VLs) the algorithm can be adapted to obtain reachable values for the end-to-end delay which are close to the exact worst case. Generalization to industrial configurations (more than 1000 flows) is under way.
Keywords :
avionics; delays; local area networks; multi-access systems; search problems; switching networks; AFDX periodic flow; ARINC 664 standard; avionics full duplex switched Ethernet; search space minimization; virtual links; worst case end-to-end communication delay; Aerospace electronics; Calculus; Computational modeling; Context; Delay; Silicon; Upper bound; AFDX network; Guided simulation; Schedulability analysis; Worst case delay analysis;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Industrial Embedded Systems (SIES), 2011 6th IEEE International Symposium on
Conference_Location :
Vasteras
Print_ISBN :
978-1-61284-818-1
Electronic_ISBN :
978-1-61284-819-8
Type :
conf
DOI :
10.1109/SIES.2011.5953673
Filename :
5953673
Link To Document :
بازگشت