DocumentCode
1817578
Title
On transistor level gate sizing for increased robustness to transient faults
Author
Cazeaux, J.M. ; Rossi, D. ; Omana, M. ; Metra, C. ; Chatterjee, A.
Author_Institution
D.E.I.S., Bologna Univ., Italy
fYear
2005
fDate
6-8 July 2005
Firstpage
23
Lastpage
28
Abstract
In this paper we present a detailed analysis on how the critical charge (Qcrit) of a circuit node, usually employed to evaluate the probability of transient fault (TF) occurrence as a consequence of a particle hit, depends on transistors´ sizing. We derive an analytical model allowing us to calculate a node´s Qcrit given the size of the node´s driving gate and fan-out gate(s), thus avoiding time costly electrical level simulations. We verified that such a model features an accuracy of the 97% with respect to electrical level simulations performed by HSPICE. Our proposed model shows that Qcrit depends much more on the strength (conductance) of the gate driving the node, than on the node total capacitance. We also evaluated the impact of increasing the conductance of the driving gate on TFs´ propagation, hence on soft error susceptibility (SES). We found that such a conductance increase not only improves the TF robustness of the hardened node, but also that of the whole circuit.
Keywords
SPICE; circuit simulation; fault simulation; integrated circuit modelling; transistor circuits; HSPICE; capacitance; circuit node; conductance; critical charge; electrical level simulations; particle hit; soft error susceptibility; transient faults; transistor level gate sizing; Aerospace electronics; Analytical models; Circuit faults; Combinational circuits; Electromagnetic interference; Power supplies; Robustness; Sampling methods; Transient analysis; Voltage;
fLanguage
English
Publisher
ieee
Conference_Titel
On-Line Testing Symposium, 2005. IOLTS 2005. 11th IEEE International
Print_ISBN
0-7695-2406-0
Type
conf
DOI
10.1109/IOLTS.2005.49
Filename
1498124
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