DocumentCode :
1922381
Title :
A Micro-FT-UART for Safety-Critical SoC-Based Applications
Author :
Razmkhah, Mohammad-Hamed ; Miremadi, Seyed Ghassem ; Ejlali, Alireza
Author_Institution :
Dept. of Comput. Eng., Sharif Univ. of Technol., Tehran
fYear :
2009
fDate :
16-19 March 2009
Firstpage :
316
Lastpage :
321
Abstract :
This paper presents the design of a fault-tolerant universal asynchronous receiver transmitter (UART) called micro-FT-UART for safety-critical SoC-based applications. This UART exploits advantages of three fault-tolerant techniques to tolerate soft errors. The three techniques are triple modular redundancy (TMR), Hamming code and a new technique called correction by parity storing (CPS). An VHDL model of a micro-UART is simulated by the ModelSim v.6.0 and synthesized by the Synopsys Design Compiler v.X-2005.09-SP2. About 1000 single-bit errors and 1000 multiple-bit errors are injected into different parts of the micro-UART to find out the error sensitivity of each specific part. Considering tradeoff between reliability and power consumption, an optimum fault-tolerant technique is assigned to each part to design the micro-FT-UART. This UART corrects all single-bit errors and on average 24% of multiple-bit errors with about 81% power consumption overhead and 152% area overhead.
Keywords :
Hamming codes; data communication equipment; fault tolerance; hardware description languages; system-on-chip; Hamming code; ModelSim v.6.0; Synopsys Design Compiler v.X-2005.09-SP2; VHDL; correction by parity storing; error sensitivity; fault tolerance; micro-FT-UART; power consumption; reliability; safety-critical SoC-based application; triple modular redundancy; universal asynchronous receiver transmitter; Application software; Circuit faults; Energy consumption; Error correction; Fault tolerance; Fault tolerant systems; Power system transients; Redundancy; System-on-a-chip; Transmitters; Experimental Study; Fault Tolerance; Low Power; SoC; UART;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Availability, Reliability and Security, 2009. ARES '09. International Conference on
Conference_Location :
Fukuoka
Print_ISBN :
978-1-4244-3572-2
Electronic_ISBN :
978-0-7695-3564-7
Type :
conf
DOI :
10.1109/ARES.2009.43
Filename :
5066488
Link To Document :
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