Provenance-Aware Physics-Guided Feasibility-Region Learning Pre-layout is a B.Tech project topic for Electrical Engineering. It gives students a clear starting point for research, implementation planning, and documentation.
Provenance-Aware Physics-Guided Feasibility-Region Learning Pre-layout Project Details
| Abstract |
Sizing an analog operational amplifier is a tough multiβgoal problem. You have to pick transistor sizes and bias points together so the circuit meets gain, bandwidth, slew rate, and stability targets. This project builds a provenanceβaware, physicsβguided workflow that learns the feasible region for a preβlayout twoβstage CMOS opβamp. It starts with schematicβlevel simulation data and tests several machineβlearning modelsβRidge regression, ExtraTrees, and multilayer perceptrons (MLP). Each model is enhanced with knowledge from the physical domain to predict whether a given design will work. The workflow runs LTspice simulations to check the modelsβ predictions against real physical limits for many design candidates. By turning the highβdimensional design space into a
classified feasible region, the method gives analog designers clear guidance during the preβlayout sizing step. The results show that mixing ML classifiers with physicsβbased constraints cuts the amount of time spent on traditional iterative SPICE runs. It provides a systematic way to do robust analog design, activeβsampling replay, and optimization.
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| Reference Paper |
Provenance-Aware Physics-Guided Feasibility-Region Learning for Pre-layout Two-Stage CMOS Op-Amp Sizing: A Calibration-Ready Workflow |
| Domain |
Electrical & Electronics Engineering |
| Sub-Domain |
Electrical & Electronics Engineering |
| PDF Download |
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| Get Help |
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