Title :
A 144-configuration context MEMS optically reconfigurable gate array
Author :
Yamaji, Yuichiro ; Watanabe, Minoru
Author_Institution :
Electr. & Electron. Eng., Shizuoka Univ., Shizuoka, Japan
Abstract :
Demand for space uses of FPGAs is increasing to support hardware repair and hardware update functions in addition to software repair and update functions in spacecraft, satellites, space stations, and other applications. However, under a space radiation environment, the incidence of high-energy charged particles causes single or multi-event latch-up (S/MEL)-associated troubles and single or multi-event upset (S/MEU)-associated temporary failures. Although an FPGA, because of its programmability, presents the advantageous capabilities of recovering from and updating after S/MEL-associated troubles, the FPGA can not guard itself completely from S/MEU-associated temporary failures that might arise on its configuration SRAM. This paper therefore presents a proposal for a 144-configuration context MEMS optically reconfigurable gate array that can support a remotely updatable hardware function, can quickly repair S/MEL-associated permanent failures, and can perfectly guard itself from S/MEU-associated temporary failures that can occur in a space radiation environment.
Keywords :
failure analysis; field programmable gate arrays; micro-optomechanical devices; optical arrays; optical logic; 144-configuration context MEMS optically reconfigurable gate array; FPGA; S-MEL-associated troubles; S-MEU-associated temporary failures; hardware update functions; high-energy charged particles; multievent latch-up; multievent upset; software repair; space radiation environment; Lighting; Logic gates; Micromechanical devices; Ultraviolet sources;
Conference_Titel :
SOC Conference (SOCC), 2011 IEEE International
Conference_Location :
Taipei
Print_ISBN :
978-1-4577-1616-4
Electronic_ISBN :
2164-1676
DOI :
10.1109/SOCC.2011.6085083