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Path Category
Guided learning journeys that build knowledge step by step.
category · Learning · slug · learning · 7812 Paths
7812 Paths · page 335 / 782
This path guides senior engineering students through the fundamental concepts and practical techniques for designing controllers using frequency-domain methods. It covers system modeling, stability analysis, and the design of PID and lead-lag compensators, culminating in a comprehensive design project.
This learning path guides senior engineering students through the core concepts of power system operation, starting with fundamental circuit and power system basics, progressing through load flow analysis, and culminating in fault analysis and system stability. It emphasizes the mathematical and conceptual foundations necessary for analyzing steady-state and transient behavior of power systems.
This path guides senior engineering students through advanced circuit analysis, starting with AC phasor analysis and progressing to network theorems, two-port parameters, network functions, and frequency response. It culminates in the design and analysis of passive filters, integrating signals and systems concepts for a comprehensive understanding.
This path introduces sophomore engineering students to the principles and practice of electrical measurement and instrumentation. It covers fundamental circuit analysis, analog and digital meters, sensors and transducers, bridges, and oscilloscopes, emphasizing how these instruments operate and their applications in engineering.
This learning path covers the fundamental principles and applications of power electronics, focusing on power semiconductor devices and converter topologies. It progresses from basic circuit analysis and analog electronics to advanced concepts in rectifiers, inverters, and DC-DC converters, emphasizing control and practical design considerations.
This learning path introduces junior engineering students to the core principles of feedback control. It covers open-loop and closed-loop systems, transfer functions, block diagrams, and stability analysis, building from signals and systems fundamentals.
This advanced learning path guides junior engineering students through the foundational theory of electromagnetics, from vector calculus and Maxwell's equations to practical applications in plane waves, transmission lines, waveguides, and antennas. It emphasizes the physical meaning and mathematical derivation of key concepts, ensuring a systematic understanding of how electromagnetic fields propagate and are guided.
This path guides junior engineering students through the analysis of continuous-time and discrete-time signals and systems, covering time-domain methods, convolution, Fourier series, Fourier transform, and Laplace transform. It builds from mathematical prerequisites to foundational concepts and progresses to advanced transforms, ensuring a systematic understanding.
A structured learning path for sophomore engineering students to understand digital logic from Boolean algebra fundamentals through sequential circuit design. It covers logic gates, combinational circuits, flip-flops, and sequential circuits, emphasizing the mathematical foundations and practical implementation.
A systematic learning path for sophomore engineering students to understand the operation and application of analog electronic devices, focusing on diodes, BJTs, FETs, and amplifiers, with necessary circuit analysis prerequisites.