Title :
Self-Healing Circuits for Space-Applications
Author :
Panhofer, Thomas ; Delvai, Martin
Author_Institution :
Vienna Univ. of Technol., Vienna
Abstract :
In particular for applications where no repair is possible, e.g. space missions, high reliability is usually an important requirement. Long mission times and harsh environment are a challenge for electronic circuits, and particular error mitigation techniques have to be implemented in order to be able to cope with the expected error effects. Our approach instead is based on delay-insensitive asynchronous logic, more precisely on the four state logic (FSL) design style and partial reconfiguration. Compared to synchronous circuits, FSL implies a considerable area overhead, but also provides some hidden and usually unused features. In this paper an overview is presented, how these features can be utilized in order to implement self-healing circuits in a very efficient way. As the FSL design style plays a central role in the presented concept, first an introduction to FSL is provided. Subsequently the self-healing approach will be explained showing how the above mentioned tasks to achieve self-healing are realized. The paper concludes with the current implementation status and open problems.
Keywords :
asynchronous circuits; avionics; logic design; FSL design style; FSL partial reconfiguration; delay-insensitive asynchronous logic; electronic circuits; error mitigation techniques; four state logic; self-healing circuits; space missions; space-applications; Circuit faults; Delay; Detectors; Embedded computing; Field programmable gate arrays; Latches; Logic design; Phase detection; Reconfigurable logic; Space technology;
Conference_Titel :
Field Programmable Logic and Applications, 2007. FPL 2007. International Conference on
Conference_Location :
Amsterdam
Print_ISBN :
978-1-4244-1060-6
Electronic_ISBN :
978-1-4244-1060-6
DOI :
10.1109/FPL.2007.4380701