TY - CHAP A1 - Braun, Jürgen A1 - Mottok, Jürgen A1 - Miedl, Christian A1 - Geyer, Dirk A1 - Minas, Mark T1 - Overview and Evaluation of Fail-Safe and Fault-Tolerant Mechanisms for the Electromobility according to ISO26262 T2 - 1st International Electromobility Congress, 12. - 13. 5. 2011, Prague Y1 - 2011 ER - TY - CHAP A1 - Braun, Jürgen A1 - Mottok, Jürgen T1 - Fail-Safe and Fail-Operational Systems safeguarded with Coded Processing T2 - 2013 IEEE EUROCON - International Conference on Computer as a Tool, Zagreb, Croatia, July 1-4, 2013 N2 - Safety has the highest priority because it helps contribute to customer confidence and thereby ensures further growth of the new markets, like electromobility. Therefore in series production redundant hardware concepts like dual core microcontrollers running in lock-step-mode are used to reach for example ASIL D safety requirements given from the ISO 26262. Coded processing is capable of reducing redundancy in hardware by adding diverse redundancy in software, e.g. by specific coding of data and instructions. A system with two coded processing channels is considered. Both channels are active. When one channel fails, the service can be continued with the other channel. It is imaginable that the two channels with implemented coded processing are running with time redundancy on a single core or on a multi core system where for example different ASIL levels are partitioned on different cores. In this paper a redundancy concept based on coded processing will be taken into account. The improvement of the Mean Time To Failure by safeguarding the system with coded processing will be computed for fail-safe as well as for fail-operational systems. The use of the coded processing approach in safeguarding failsafe systems is proved. KW - fail-safe KW - fail-operational KW - fault-tolerant KW - failure probability KW - coded processing KW - Safely Embedded Software KW - SES KW - safety measure KW - ISO 26262 KW - electromobility KW - Mean Time To Failure KW - MTTF KW - reliability KW - diversity Y1 - 2013 SN - 978-1-4673-2231-7 U6 - https://doi.org/10.1109/EUROCON.2013.6625234 SP - 1878 EP - 1885 ER - TY - CHAP A1 - Braun, Jürgen A1 - Mottok, Jürgen A1 - Miedl, Christian A1 - Geyer, Dirk A1 - Minas, Mark T1 - Increasing the reliability of single and multicore systems with software rejuvenation and coded processing T2 - Automotive Safety & Security 2012, Sicherheit und Zuverlässigkeit für automobile Informationstechnik, 14.-15. Nov. 2012, Karlsruhe N2 - The safety of electric vehicles has the highest priority because it helps contribute to customer confidence and thereby ensures further growth of the electromobility market. Therefore in series production redundant hardware concepts like dual core microcontrollers running in lock-step-mode are used to reach ASIL D safety requirements given from the ISO 26262. Coded processing is capable of reducing redundancy in hardware by adding diverse redundancy in software, e.g. by specific coding of data and instructions. A system with two coded processing channels is considered. One channel is active and one is in cold standby. When the active channel fails, the service is switched from the active channel to the standby channel. It is imaginable that the two channels with implemented coded processing are running with time redundancy on a single core or on a multi core system where for example different ASIL levels are partitioned on different cores. In this paper a redundant concept based on coded processing and software rejuvenation will be taken into account. Y1 - 2012 UR - https://dl.gi.de/handle/20.500.12116/17555 SP - 163 EP - 178 ER - TY - CHAP A1 - Braun, Jürgen A1 - Mottok, Jürgen T1 - The Myths of Coded Processing T2 - IEEE International Conference on High Performance Computing and Communications (HPCC-ICESS-CSS 2015), 24-26 Aug. 2015, New York, USA N2 - Safety of embedded systems has the highest priority because it helps contribute to customer confidence and thereby ensures growth of the new markets, like electromobility. In series production fail-safe systems as well as fault-tolerant systems are realized with redundant hardware concepts like dual core microcontrollers running in lock-step-mode to reach highest safety requirements given by standards, like ISO 26262 or IEC 61508. In contrast to the hardware redundancy approach, there are also approaches available with information-, time-and/or software-redundancy since several years. One of them is known as coded processing or AN-codes. Coded processing is capable of reducing redundancy in hardware by adding diverse redundancy in software. But the breakthrough of coded processing never took place. One reason for this seem to be the myths which are widely propagated on this subject and the hereby associated uncertainties. In this paper some myths are busted, like the usage of prime numbers as transformation factor A, the myth that greater transformation factors are better or the myth about the residual error probability defined as 1/A. Some of them have been propagated since 1989. The aim of this paper is to provide more clarity and understanding for this technique, perhaps to pave the way for further functional safety concepts based on coded processing approaches. KW - Redundancy KW - Hamming distance KW - Safety KW - Encoding KW - Error probability Y1 - 2015 U6 - https://doi.org/10.1109/HPCC-CSS-ICESS.2015.24 SP - 1637 EP - 1644 ER -