DocumentCode :
2508254
Title :
Task sequencing for optimizing the computation cycle in a timed computation model
Author :
Fischmeister, Sebastian ; Menkhaus, Guido
Author_Institution :
Univ. of Salzburg, Austria
Volume :
2
fYear :
2004
fDate :
24-28 Oct. 2004
Abstract :
Recent developments in embedded control systems promote the timed computation model following the principles of logical execution time (LET). Resulting control applications are time deterministic, value deterministic, and their properties may be subject to formal verification against a mathematical model of the control design. However, the timed computation model introduces inefficiencies to computation cycles. As the LET of a real-time control task requires being greater than its worst-case execution time and computed values are always propagated at the end of the LET, actuator updates are unnecessarily delayed. This makes the control cycle less responsive. In this paper, we present an approach that allows the definition of task sequences for a timed computation model implemented by the timing definition language (TDL). Task sequences help minimizing timing delays between sensor readings and actuator updates (e.g., in estimator-based control systems), managing startup and shutdown phases of control systems, and providing mechanisms for error-detection in fault-tolerant systems.
Keywords :
aircraft control; control system synthesis; delays; embedded systems; error detection; fault tolerant computing; optimisation; task analysis; actuator updates; computation cycle optimization; control design; embedded control systems; error detection; estimator based control systems; fault tolerant systems; logical execution time; mathematical model; real time control task; sensor readings; task sequences; timed computation model; timing definition language; timing delay minimization; worst case execution time; Actuators; Computational modeling; Control design; Control system synthesis; Control systems; Delay estimation; Embedded computing; Formal verification; Mathematical model; Timing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Digital Avionics Systems Conference, 2004. DASC 04. The 23rd
Print_ISBN :
0-7803-8539-X
Type :
conf
DOI :
10.1109/DASC.2004.1390783
Filename :
1390783
Link To Document :
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