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Day 23: November 3, 2010 Driving Large Capacitive Loads
ESE370: Circuit-Level Modeling, Design, and Optimization for Digital Systems Day 23: November 3, 2010 Driving Large Capacitive Loads Penn ESE370 Fall DeHon
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Today How do we drive a large load? Stages and buffer sizing
Minimum delay Penn ESE370 Fall DeHon
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Start Cdiff=0 Penn ESE370 Fall DeHon
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One Stage How size to minimize delay? Penn ESE370 Fall DeHon
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One Stage Delay equation? Penn ESE370 Fall DeHon
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Minimize Differentiate and set to zero. What’s WN?
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Solving for size Penn ESE370 Fall DeHon
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N-stage Penn ESE370 Fall DeHon
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N-stage Delay Penn ESE370 Fall DeHon
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Size WNi to minimize delay
Take partial derivative wrt WNi Penn ESE370 Fall DeHon
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Solving for WNi Penn ESE370 Fall DeHon
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Delay Penn ESE370 Fall DeHon
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Stage Delay Penn ESE370 Fall DeHon
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Stage Delay Penn ESE370 Fall DeHon
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Stage Delay Penn ESE370 Fall DeHon
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Total Delay Penn ESE370 Fall DeHon
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Minimize Penn ESE370 Fall DeHon
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Solve Penn ESE370 Fall DeHon
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Optimum Scale Up Penn ESE370 Fall DeHon
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Delay at Optimum Penn ESE370 Fall DeHon
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Cdiff=gCgate Penn ESE370 Fall DeHon
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N-stage Delay Penn ESE370 Fall DeHon
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N-stage Delay Penn ESE370 Fall DeHon
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Impact on Min Wni ? Partial Derivative unchanged
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Total Delay Penn ESE370 Fall DeHon
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Stage Delay: N=7 N+1=8 Penn ESE370 Fall DeHon
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Stage Delay, g=0.5 N+1=8 Penn ESE370 Fall DeHon
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Stage Delay: N=6, g=0.5 N+1=7 Penn ESE370 Fall DeHon
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Stage Delay: N=5, g=0.5 N+1=6 Penn ESE370 Fall DeHon
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Stage Delay: N=4, g=0.5 N+1=5 Penn ESE370 Fall DeHon
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Optimal Staging g≠0 Penn ESE370 Fall DeHon
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Admin Friday Lecture HW5 due Proj2 out Penn ESE370 Fall DeHon
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Idea Drive large loads with geometrically sized buffer chain
There is an optimal buffer ratio Technology/gate dependent Depends on self-loading Penn ESE370 Fall DeHon
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