0
Your cart

Your cart is empty

Browse All Departments
  • All Departments
Price
  • R2,500 - R5,000 (2)
  • -
Status
Brand

Showing 1 - 2 of 2 matches in All Departments

Simultaneous Switching Noise of CMOS Devices and Systems (Hardcover, 1994 ed.): Ramesh Senthinathan, John L. Prince Simultaneous Switching Noise of CMOS Devices and Systems (Hardcover, 1994 ed.)
Ramesh Senthinathan, John L. Prince
R3,059 Discovery Miles 30 590 Ships in 10 - 15 working days

This monograph presents our recent research on Simultaneous Switching Noise (SSN) and related issues for CMOS based systems. Although some SSN related work was previously reported in the literature, it were mainly for Emitter Coupled Logic (ECL) gates using Bipolar Junction Transistors (BJTs). This present work covers in-depth analysis on estimating SSN and its impact for CMOS based devices and systems. At present semiconductor industries are moving towards scaled CMOS devices and reduced supply voltage. SSN together with coupled noise may limit the packing density, and thereby the frequency of operation of packaged systems. Our goal is to provide efficient and yet reliable methodologies and algorithms to estimate the overall noise containment in single chip and multi-chip package assemblies. We hope that the techniques and results described in this book will be useful as guides for design, package, and system engineers and academia working in this area. Through this monograph, we hope that we have shown the necessity of interactions that are essential between chip design, system design and package design engineers to design and manufacture optimal packaged systems. Work reported in this monograph was partially supported by the grant from Semiconductor Research Corporation (SRC Contract No. 92-MP-086).

Simultaneous Switching Noise of CMOS Devices and Systems (Paperback, Softcover reprint of the original 1st ed. 1994): Ramesh... Simultaneous Switching Noise of CMOS Devices and Systems (Paperback, Softcover reprint of the original 1st ed. 1994)
Ramesh Senthinathan, John L. Prince
R2,908 Discovery Miles 29 080 Ships in 10 - 15 working days

This monograph presents our recent research on Simultaneous Switching Noise (SSN) and related issues for CMOS based systems. Although some SSN related work was previously reported in the literature, it were mainly for Emitter Coupled Logic (ECL) gates using Bipolar Junction Transistors (BJTs). This present work covers in-depth analysis on estimating SSN and its impact for CMOS based devices and systems. At present semiconductor industries are moving towards scaled CMOS devices and reduced supply voltage. SSN together with coupled noise may limit the packing density, and thereby the frequency of operation of packaged systems. Our goal is to provide efficient and yet reliable methodologies and algorithms to estimate the overall noise containment in single chip and multi-chip package assemblies. We hope that the techniques and results described in this book will be useful as guides for design, package, and system engineers and academia working in this area. Through this monograph, we hope that we have shown the necessity of interactions that are essential between chip design, system design and package design engineers to design and manufacture optimal packaged systems. Work reported in this monograph was partially supported by the grant from Semiconductor Research Corporation (SRC Contract No. 92-MP-086).

Free Delivery
Pinterest Twitter Facebook Google+
You may like...
1 Litre Unicorn Waterbottle
R99 R70 Discovery Miles 700
Casio LW-200-7AV Watch with 10-Year…
R999 R884 Discovery Miles 8 840
Bostik Clear on Blister Card (25ml)
R38 Discovery Miles 380
Baby Dove Body Wash 200ml
R50 Discovery Miles 500
Scruffs Chester Box Bed (Granite)
R796 Discovery Miles 7 960
Arcwave Voy
R2,099 R1,589 Discovery Miles 15 890
Anamino Beef Protein (250g)
R289 R189 Discovery Miles 1 890
Townhouse - DVD - Confidence in…
R958 Discovery Miles 9 580
Zap! Air Dry Pottery Kit
Kit R250 R195 Discovery Miles 1 950
Sluggem Pellets (500g)
R129 Discovery Miles 1 290

 

Partners