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Linear Circuits 1: DC Analysis

Course Overview

  • Institution: Georgia Institute of Technology
  • Course code: Linear Circuits 1
  • Track: Circuit Analysis
  • Tier: A
  • Role: Alternative
  • Level: Not standardized by provider (use prerequisites)
  • Last reviewed: 2026-07-28

Georgia Institute of Technology's Linear Circuits 1: DC Analysis strengthens DC circuit analysis through videos and more than one hundred drills, while lacking a true home-lab loop.

Why choose this course

Alternative course. A reliable option that can serve as a main course or strong alternative.

Before you start

  • Recommended foundation: Engineering Mathematics
  • Recommended foundation: Physics Foundations

Verifiable learning outcomes

  • Explain the core models in Circuit Analysis, including their assumptions and limits
  • Solve representative derivations and problems, checking units, limiting cases, or numerical results
  • Complete a reproducible experiment or implementation with raw data, parameters, versions, and verification

Workload and pacing

11 weeks at 7 hours/week. This maintainer planning estimate is derived from course role and the density of public practice and labs; it is not a provider workload promise. Pilot two weeks while logging instruction, practice, lab, and review time, then adjust the remaining plan when actual effort differs by more than 25%.

Safety level

Low energy. Keep work isolated, current-limited, and low energy; verify ratings, grounding, short-circuit risk, and emergency shutdown before power-up.

Course Resources

Software, hardware, and cost

Software

  • Maintainer-suggested open-source/free verification path: Qucs-S, ngspice, Python 3, and Jupyter
  • The resource inventory does not list public code coverage; the tools above are only a maintainer-suggested independent check, not a provider requirement

Hardware

  • The resource inventory lists lab coverage; prefer borrowing or sharing the following equipment: a current-limited low-voltage supply, breadboard, digital multimeter, oscilloscope, and function generator. Verify ratings, authorization, and safety conditions only after the provider lab manual explicitly calls for them

Cost note

The suggested software stack is available open source or free; this is not a provider requirement or bill of materials. The actual boards, components, fabrication, and instruments—and their costs—depend on the provider lab manual, region, and local availability; prefer simulation, borrowing, or sharing before purchase.

Public resource coverage

Resource type Completeness
Video Complete
Notes Partial
Practice Complete
Labs Partial
Exams Partial
Code No public material

Resources and access

Resource Access License Status Verified
Course home Registration required Coursera Terms of Use Listed by official page 2026-07-28

“Listed by official page” means the link was discovered on a successfully fetched official source on the verification date; it does not guarantee that every region or account can open the target directly. Access does not grant redistribution rights. Re-check the provider page, target link, and third-party notices before downloading, adapting, or publishing material.

Practice and Verification

Practice loop

Linear Circuits 1: DC Analysis · Georgia Institute of Technology Linear Circuits 1: Dynamic Network Model and Tolerance Validation

This is a maintainer-suggested self-study project for Linear Circuits 1: DC Analysis · Georgia Institute of Technology Linear Circuits 1, not an official course assignment. Design a low-voltage resistive, capacitive, and optionally op-amp network for Circuit Analysis; compare hand analysis, SPICE, and current-limited measurements while studying tolerance and saturation failures.

Origin: Maintainer-suggested project

Deliverables

  • A schematic and analytic calculation with named nodes, ratings, supplies, and test points
  • An executable SPICE netlist containing DC, AC, transient, and Monte Carlo analyses
  • Raw simulation data at at least 20 frequencies or time points and optional low-voltage measurement data
  • A report comparing the three evidence paths and explaining tolerance, noise, loading, and saturation

Verification

  • Keep nominal DC node voltages within 2% of hand analysis and AC cutoff frequency within 5%
  • Check open-circuit, short-circuit, zero-frequency, and high-frequency limits against equivalent-circuit expectations
  • Cross-check every operating point with KCL or KVL residual below 1e-6 after normalization
  • Inject ±10% component tolerance and one output-saturation case and report the worst metric and recovery condition

Reproducibility

  • Commit schematics, netlists, calculation sources, data-analysis scripts, and a README
  • Pin SPICE version, model files, analysis parameters, and optional instrument settings
  • Preserve unprocessed waveforms, export logs, photos or wiring diagrams, and the generated report

Safety boundary: Low energy — Use only isolated, current-limited circuits at or below 12 V; verify power ratings and polarity, wire with power removed, and never use mains or unknown supplies.

Risks, gaps, and boundaries

More than one hundred drills but no true home-lab loop; Coursera subscription, trial, or preview access can change.

Completion evidence

  • Weekly learning log with time, questions, corrected errors, decisions, next steps, and links to that week's reproducible artifacts
  • Theory dossier with explicit assumptions, notation, derivation, units, and boundary conditions, checked by at least one independent method
  • Simulation package with model or netlist, inputs, solver and version, parameter-sweep script, benchmark comparison, expected results, and one rerun command
  • Experiment package with schematic/setup, calibration record, raw data, uncertainty, safety checks, failed runs, and steps to rebuild plots from raw data