DocumentCode :
745076
Title :
Differential current-sensing for on-chip interconnects
Author :
Maheshwari, Atul ; Burleson, Wayne
Author_Institution :
Interconnect Circuit Design Group, Univ. of Massachusetts, Amherst, MA, USA
Volume :
12
Issue :
12
fYear :
2004
Firstpage :
1321
Lastpage :
1329
Abstract :
This paper presents a differential current-sensing technique as an alternative to existing circuit techniques for on-chip interconnects. Using a novel receiver circuit, it is shown that, delay-optimal current-sensing is a faster (20% on an average) option as compared to the delay-optimal repeater insertion technique for single-cycle wires. Delay benefit for current-sensing increases with an increase in wire width. Unlike repeaters, current-sensing does not require placement of buffers along the wire, and hence, eliminates any placement constraints. Inductive effects are negligible in differential current-sensing. Current-sensing also provides a tighter bound on delay with respect to process variations. However, current-sensing has some drawbacks. It is power inefficient due to the presence of static-power dissipation. Current-sensing is essentially a low-swing signaling technique, and hence, it is sensitive to full swing aggressor noise.
Keywords :
delays; integrated circuit interconnections; integrated circuit noise; repeaters; delay-optimal current sensing; delay-optimal repeater insertion; differential current sensing; full swing aggressor noise; low swing signaling technique; onchip interconnects; receiver circuit; single cycle wires; static power dissipation; Capacitance; Delay; Energy consumption; Inductance; Integrated circuit interconnections; Power dissipation; Repeaters; Semiconductor device noise; Very large scale integration; Wire; Differential signaling; noise analysis; repeaters; wire;
fLanguage :
English
Journal_Title :
Very Large Scale Integration (VLSI) Systems, IEEE Transactions on
Publisher :
ieee
ISSN :
1063-8210
Type :
jour
DOI :
10.1109/TVLSI.2004.837987
Filename :
1407951
Link To Document :
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