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Note: This is the 2011–2012 edition of the eCalendar. Update the year in your browser's URL bar for the most recent version of this page, or click here to jump to the newest eCalendar.
Note: This is the 2011–2012 edition of the eCalendar. Update the year in your browser's URL bar for the most recent version of this page, or click here to jump to the newest eCalendar.
Electrical Engineering : Circuit variables, analysis of resistive circuits. Network theorems (Kirchhoff's law, Ohm's law, Norton and Thevenin equivalent). Ammeters, voltmeters, and ohmmeters. Analysis methods (nodal and mesh analysis, linearity, superposition). Dependent sources and OpAmps. Energy Storage elements. First-order circuits.
Terms: Fall 2011, Winter 2012, Summer 2012
Instructors: Szkopek, Thomas (Fall) Szkopek, Thomas (Winter) Safi-Harab, Mouna (Summer)
Electrical Engineering : Second-order circuits. Sinusoidal sources and phasors. AC steady-state analysis. AC steady-state power. Laplace transform. Circuit analysis in the s-Domain. Frequency response. Mutual inductance and transformers. Two-port circuits.
Terms: Fall 2011, Winter 2012, Summer 2012
Instructors: Levine, Martin D (Fall) Chodavarapu, Vamsy (Winter) Levine, Martin D (Summer)
(3-2-4)
Prerequisite: ECSE 200
For Fall Term: Limited to Electrical Honours and Computer Engineering students only.
For Winter Term: Limited to Regular Electrical Engineering students only.
Tutorials assigned by instructor.
Electrical Engineering : Elementary continuous and discrete-time signals, impulse functions, basic properties of discrete and continuous linear time-invariant (LTI) systems, Fourier representation of continuous-time periodic and aperiodic signals, the Laplance transform, time and frequency analysis of continuous-time LTI systems, application of transform techniques to electric circuit analysis.
Terms: Fall 2011, Winter 2012
Instructors: Bajcsy, Jan (Fall) Rochette, Martin (Winter)
Electrical Engineering : Introduction to electronic circuits using operational amplifiers, PN junction diodes, bipolar junction transistors (BJTs), and MOS field-effect transistors (MOSFETs), including: terminal characteristics, large- and small-signal models; configuration and frequency response of single-stage amplifiers with discrete biasing. Introduction to SPICE. Simulation experiments.
Terms: Fall 2011, Winter 2012
Instructors: Khazaka, Roni (Fall) Roberts, Gordon W (Winter)
(3-2-4)
Prerequisite: ECSE 210
Tutorials assigned by instructor.
3 credits from the following and 9 credits of ECSE courses at the 200, 300, or 400 level subject to approval by the Department of Electrical and Computer Engineering.
Electrical Engineering : The basic probability model, the heuristics of model-building and the additivity of probability; classical models; conditional probability and Bayes rule; random variables and vectors, distribution and density functions, expectation; statistical independence, laws of large numbers, central limit theorem; introduction to random processes and random signal analysis.
Terms: Fall 2011, Winter 2012
Instructors: Caines, Peter Edwin (Fall) Psaromiligkos, Ioannis (Winter)
Electrical Engineering : Single-stage integrated-circuit amplifiers; differential and multistage amplifiers, integrated-circuit biasing techniques; non-ideal characteristics, frequency response; feedback amplifiers, output stages; digital CMOS logic circuits.
Terms: Fall 2011, Winter 2012
Instructors: Wagner, Kenneth David (Fall) Hemati, Saied (Winter)