Control Systems
Learn Control Systems the exam way—clear concepts, worked examples, and 137 focused lessons in electrical engineering.
This course includes
- — on-demand video
- Access on mobile & desktop
- Full lifetime access
- Certificate of completion
Course content
10 sections · 137 lectures · 29.3 total hours
- Lec-01: Open Loop & Closed Loop Preview
- Lec-02: Advantages & Disadvantages of OLCS & CLCS
- Lec-03: Laplace Transform
- Lec-04: Transfer Function
- Lec-05: Transfer Function Properties
- Lec-06: Closed Loop Transfer Function
- Lec-07: Test Signals
- Lec-08: Mason's Gain Block Diagram Preview
- Lec-09: SFG Terminology
- Lec-10: SFG Examples
- Lec-11: Block Diagram Examples
- Lec-12: Transfer Function, Block Diagram & SFG
- Lec-13: Transient & Steady State Time Response
- Lec-14: 1st Order System Time Response
- Lec-15: Impulse Response of 1st Order System Preview
- Lec-16: Step Response of 1st Order System
- Lec-17: Sinusoidal Response for LTI System
- Lec-18: Time Response of 2nd Order System
- Lec-19: Damping Ratio of 2nd Order System
- Lec-20: Damping Ratio Less than 1 of 2nd Order System
- Lec-21: Zero Damping Ratio of 2nd Order System
- Lec-22: Critical & Over Damped Systems
- Lec-23: Comparison of Control Systems
- Lec-24: Unit Step input for 2nd Order System
- Lec-25: Time Response Specifications - Part 1
- Lec-26: Time Response Specifications - Part 2
- Lec-27: Unit Step response of System Example - 1
- Lec-28: Unit Step response of System Example - 2
- Lec-29: Steady State Error Preview
- Lec-30: SSE Type of System
- Lec-31: Types of SSE
- Lec-32: SSE Examples
- Lec-33: SSE Example, Unity Feedback System
- Lec-34: SSE, OLTF Examples
- Lec-35: SSE, 1st Order System Examples
- Lec-36: Percentage Overshoot Examples
- Lec-37: SSE, Non Unity Feedback System
- Lec-38: SSE Unit Step Input
- Lec-39: 2nd Order System, Unit Step Input
- Lec-40: Unity Feedback System Example
- Lec-41: 2nd Order System, Step Response
- Lec-42: Stability, BIBO
- Lec-43: RH Criteria, Closed Loop Stability Part 1 Preview
- Lec-44: RH Criteria, Closed Loop Stability Part 2
- Lec-45: RH Criteria, Stability Example
- Lec-46: RH Criteria, Row of Zeros
- Lec-47: RH Criteria, Repeated Row of Zeros
- Lec-48: RH Criteria, S-Plane Example 1
- Lec-49: RH Criteria, S-Plane Example 2
- Lec-50: Stability of a System, Conditional Example
- Lec-51: Stability of a System, Frequency of Oscillation Example
- Lec-52: Stability of a System, Marginally Stable Example
- Lec-53: Stability of a System, Range, RH Table
- Lec-54: Stability of a System, Range, SFG & RH Table
- Lec-55: Relative Stability, S-Plane
- Lec-56: Root Locus Introduction Preview
- Lec-57: Root Locus, Poles & Zeros Relation OLTF & CLTF
- Lec-58: Root Locus - Angle & Magnitude
- Lec-59: Root Locus Construction Rules
- Lec-60: Root Locus Asymptotes
- Lec-61: Root Locus Centroid
- Lec-62: Root Locus Break Points
- Lec-63: Root Locus-Intersection with imaginary Axis
- Lec-64: Root Locus - Angle of Arrival & Departure
- Lec-65: Root Locus - How to Draw Example 1
- Lec-66: Root Locus - How to Draw Example 2
- Lec-67: Root Locus - How to Draw Example 3
- Lec-68: Root Locus - Stability System Example 1
- Lec-69: Root Locus - Stability System Example 2
- Lec-70: Point Lies on Root Locus
- Lec-71: Root Locus - OLTF Example
- Lec-72: Root Locus - Angle of Arrival for OLTF Example 1
- Lec-73: Root Locus - Angle of Arrival for OLTF Example 2
- Lec-74: Bode Plot Introduction Preview
- Lec-75: How to Draw Bode Plot Example
- Lec-76: Bode Plot - Poles at Origin Example
- Lec-77: Bode Plot - Zeroes at Origin Example
- Lec-78: Bode Plot - Finite Poles & Zeroes
- Lec-79: Bode Plot - Finite Poles & Zeroes Example
- Lec-80: Bode Plot - Corner Frequency Example
- Lec-81: Transfer Function from Magnitude Plot
- Lec-82: Bode Plot - Transfer Function Example 1
- Lec-83: Bode Plot - Transfer Function Example 2
- Lec-84: Bode Plot - Finding w1, w2 & TF
- Lec-85: Classification of Systems
- Lec-86: Bode Plot - Stability Analysis
- Lec-87: Gain Margin & Phase Margin
- Lec-88: Stability Analysis by GM & PM
- Lec-89: Stability Analysis by GM & PM Example 1
- Lec-90: Stability Analysis by GM & PM Example 2
- Lec-91: Finding Phase Margin Example
- Lec-92: Find k, if GM & PM is given
- Lec-93: GM & Transfer Function Example
- Lec-94: TF & pwc Example
- Lec-95: How to draw Polar Plot Example 1 Preview
- Lec-96: How to draw Polar Plot Example 2
- Lec-97: Find the value w in Polar Plot
- Lec-98: How to draw Polar Plot Example 3
- Lec-99: Different Poles System Example
- Lec-100: Polar Plot Example 1
- Lec-101: Polar Plot Example 2
- Lec-102: Polar Plot Example 3
- Lec-103: Polar Plot Example 4
- Lec-104: Nyquist Plot Introduction
- Lec-105: Nyquist Plot - Poles & Zeroes Configuration
- Lec-106: Nyquist Plot Example
- Lec-107: Nyquist Plot Stability Example
- Lec-108: Nyquist Plot Range of k for Stability Example
- Lec-109: Polar Plot Conditional Stability
- Lec-110: Right hand closed loops Example
- Lec-111: RH Plane Roots Example
- Lec-112: State Space Analysis Introduction Preview
- Lec-113: State Space Model - Standard Form
- Lec-114: Sate model Differential Equation Example 1
- Lec-115: Sate model Differential Equation Example 2
- Lec-116: State model - TF - CCF & OCF
- Lec-117: State model - TF - Diagonal Method
- Lec-118: State model - SFG Method
- Lec-119: Finding TF of State Model
- Lec-120: Solution for State Model
- Lec-121: State Transition Matrix Properties
- Lec-122: State Space Analysis Example
- Lec-123: State Space Analysis ZIR - Unit Step i/p Part 1
- Lec-124: State Space Analysis ZIR - Unit Step i/p Part 1
- Lec-125: Controllability & Observability Introduction
- Lec-126: Controllability Example
- Lec-127: Controllability & Observability Example
- Lec-128: Solution for State Equations
- Lec-129: Compensators & Controllers Introduction Preview
- Lec-130: Compensators Introduction
- Lec-131: Lead Compensators Effects
- Lec-132: Lag Compensator Effects
- Lec-133: Lead Compensator Example
- Lec-134: Lead - Lag Compensator Example
- Lec-135: Types of Controllers
- Lec-136: Integral, Derivative & PI Controllers
- Lec-137: PD & PID Controllers
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Description
Control Systems is an exam-focused electrical engineering programme designed for electrical engineering students targeting university exams and GATE-style practice (all levels). Lessons are paced for semester revision and competitive practice, with clear explanations you can replay anytime.
You will strengthen circuit intuition and numerical methods for Control Systems, with diagrams and steps that match how examiners expect answers. Syllabus highlights include Introduction, Block Diagrams & SFG, Time Response, Steady State Errors, RH Criteria, and Root Locus. Across 137 lessons, you will move from foundations to problem-solving patterns that show up in university papers and placement tests.
Taught by DAKALA SREENIVASULU, this course keeps theory short and practice heavy—so you can revise faster, spot examiner cues, and build confidence before mocks and finals.
Instructor
Course director · Semester exams
Faculty lead for Education4U exam-focused programmes across aptitude, reasoning, computer science, electrical and electronics.
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