NASA Logo

NTRS

NTRS - NASA Technical Reports Server

Back to Results
Localized Triple Modular Redundancy vs. Distributed Triple Modular Redundancy on a ProASIC3E Reprogrammable FPGAField programmable gate arrays (FPGA) are used in every space application. Currently, most space flight applications use radiation hardened (RH) FPGAs, which are very expensive. There is a desire to use cheaper, commercial off the shelf reprogrammable FPGAs, which are more susceptible to radiation effects known as single-event effects (SEE). The RH parts have SEE and total ionizing dose (TID) hardened elements pre-integrated into the part. This means that the designer does not need to implement any hardening techniques while configuring the device. The COTS parts on the other hand must be mitigated by design in order to insure any form of mitigation. The design techniques this project examines concern the use of localized triple modular redundancy (LTMR) and distributed triple modular redundancy (DTMR). LTMR triples every flip flop in the device architecture while DTMR triples everything except for the global routes (clocks, resets, and enables). The testing was performed on a ProASIC3E FPGA at the Texas A&M cyclotron facility. Two design architectures were used: shift registers and counters, both with LTMR and DTMR mitigation techniques. The test results prove that DTMR is more effective at reducing SEE than LTMR. We also determined that there was not a significant difference between the use of shift registers and counters for test purposes. More testing is required to obtain additional linear energy transfer values for each architecture and mitigation technique in order to determine the most cost-effective method of SEE mitigation.
Document ID
20180000010
Acquisition Source
Goddard Space Flight Center
Document Type
Other
Authors
McGuffey, Alex
(Valparaiso Univ. IN, United States)
Berg, Melanie
(MEI Technologies, Inc. Greenbelt, MD, United States)
Pellish, Jonathan
(NASA Goddard Space Flight Center Greenbelt, MD, United States)
Date Acquired
January 2, 2018
Publication Date
June 21, 2010
Subject Category
Computer Programming And Software
Electronics And Electrical Engineering
Report/Patent Number
LEGNEW-OLDGSFC-GSFC-LN-1014
Report Number: LEGNEW-OLDGSFC-GSFC-LN-1014
Distribution Limits
Public
Copyright
Public Use Permitted.
No Preview Available