DocumentCode :
181084
Title :
Safety analysis and optimization for networked avionics system
Author :
Chao Zhang ; Xiaomu Shi ; Dong Chen
Author_Institution :
Sch. of Aerosp. Eng., Tsinghua Univ. Beijing, Beijing, China
fYear :
2014
fDate :
5-9 Oct. 2014
Abstract :
Traditional safety analysis of the avionics systems covers two aspects, i.e., the safety of the process and the safety of the current state. The mandatory analysis methodologies are the process safety analysis and Fault Tree Analysis (FTA), which meets the requirement of the Function Hazard Analysis (FHA). However, in the Integrated Modular Avionics (IMA) and Distributed Integrated Modular Avionics (DIMA), especially the networked IMA, the safety analysis method evolves into the Zachman framework analysis. Due to the increased complexity of the IMA and DIMA, the optimization algorithms should be developed. In this paper, based on the Cyber-Physical System (CPS), two optimization algorithms are revealed. One is the utility optimization algorithm subject to the safety requirement, another one is the direct optimization algorithm with the objective function of the safety. The proposed optimization schemes consolidate the methodology of the safety analysis and design of the avionics systems, especially in the IMA, DIMA, and the networked IMA.
Keywords :
air safety; avionics; fault trees; hazards; optimisation; CPS; DIMA; FHA; FTA; IMA; Zachman framework analysis; cyber-physical system; direct optimization algorithm; distributed integrated modular avionics; fault tree analysis; function hazard analysis; integrated modular avionics; networked avionics system; objective function; process safety analysis; utility optimization algorithm; Aerospace electronics; Complexity theory; Mathematical model; Optimization; Organizations; Resource management; Safety;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Avionics Systems Conference (DASC), 2014 IEEE/AIAA 33rd
Conference_Location :
Colorado Springs, CO
Print_ISBN :
978-1-4799-5002-7
Type :
conf
DOI :
10.1109/DASC.2014.6979471
Filename :
6979471
Link To Document :
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