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GATE Electrical Engineering Free Mock Test
Crack the GATE Electrical Engineering Mock Test 2026 with the help of an online Test series or a free mock test. Every sample paper in the GATE Electrical Engineering Exam has a designated weight, so do not miss out on any paper. Prepare for the GATE Electrical Engineering mock test and check your test scores.
GATE Electrical Syllabus 2027 & Exam Pattern
GATE Electrical Engineer Syllabus 2027, Exam Pattern, Exam Date 2027
Detail Information about GATE has published notification 2027 for the Notification of Electrical Engineering. Those Candidates who are Interested to the following vacancy and completed all Eligibility Criteria can read the Notification & Apply Online. In this page we provide the Complete Syllabus of this Notification with Latest Update Exam Pattern and the Exam Date also.
βGATE 2027 Exam Highlights
| Examination Name | Graduate Aptitude Test in Engineering (GATE) |
| Commonly Known As | GATE |
| GATE 2027 organising Institute | IIT Guwahati |
| Administered By | Jointly by IISc Bangalore and Seven IITs |
| Purpose of Examination | Qualifying Examination for M.E./ M.Tech/ Ph.D admissions and PSU Recruitment |
| Application Mode | Online |
| Mode of Examination | Computer-Based Mode |
| Examination Duration | 180 Minutes (3 Hours) |
| Exam Date 2027 | 06th, 7th, 13th, 14th, 20th, 21st February 2027 |
| Frequency of Examination | Annual |
| Number of GATE Papers | 29 |
| Validity of GATE Score/Grade | 3 Years |
| Official website | gate2027.iitg.ac.in |
GATE Electrical Engineering Syllabus 2027
General Aptitude :
Verbal Aptitude
1. Basic English grammar
2. Tenses
3. Articles
4. Adjectives
5. Prepositions
6. Conjunctions
7. Verb-noun agreement and other parts of speech
8. Basic vocabulary
9. Words
10. Idioms
11. Phrases in context
12. Reading and comprehension
13. Narrative sequencing
Quantitative Aptitude
1. Data interpretation
2. Data graphs (bar graphs, pie charts, and other graphs representing data)
3. 2- and 3-dimensional plots
4. Maps
5. Tables
6. Numerical computation and estimation
7. Ratios
8. Percentages
9. Powers
10. Exponents and logarithms
11. Permutations and combinations
12. Series
13. Mensuration and geometry
14. Elementary statistics
15. Probability
Analytical Aptitude
1. Logic: deduction and induction
2. Analogy
3. Numerical relations and reasoning
Spatial Aptitude
1. Transformation of shapes
3. Translation
4. Rotation
5. Scaling
6. Mirroring
7. Assembling
8. Grouping
9. Paper folding
10. Cutting
11. Patterns in 2 and 3 dimensions
1. Basic English grammar
2. Tenses
3. Articles
4. Adjectives
5. Prepositions
6. Conjunctions
7. Verb-noun agreement and other parts of speech
8. Basic vocabulary
9. Words
10. Idioms
11. Phrases in context
12. Reading and comprehension
13. Narrative sequencing
Quantitative Aptitude
1. Data interpretation
2. Data graphs (bar graphs, pie charts, and other graphs representing data)
3. 2- and 3-dimensional plots
4. Maps
5. Tables
6. Numerical computation and estimation
7. Ratios
8. Percentages
9. Powers
10. Exponents and logarithms
11. Permutations and combinations
12. Series
13. Mensuration and geometry
14. Elementary statistics
15. Probability
Analytical Aptitude
1. Logic: deduction and induction
2. Analogy
3. Numerical relations and reasoning
Spatial Aptitude
1. Transformation of shapes
3. Translation
4. Rotation
5. Scaling
6. Mirroring
7. Assembling
8. Grouping
9. Paper folding
10. Cutting
11. Patterns in 2 and 3 dimensions
A. Engineering Mathematics :
Linear Algebra: Systems of linear equations, Matrix Algebra, Eigenvectors, Eigenvalues.
Calculus: Theorems of integral calculus, Multiple integrals, Mean value theorems, Evaluation of definite and improper integrals, Partial Derivatives, Maxima and minima, Fourier series, Line integral, Surface integral, Directional derivatives, Gauss’s theorem, Vector identities, Volume integral, Stoke's theorem, Green’s theorem.
Differential Equations: Euler’s equation, First order equations (linear and nonlinear), Method of variation of parameters, Cauchy’s equation, Higher order linear differential equations with constant coefficients, Method of separation of variables, Initial, and boundary value problems, Euler’s equation, Initial and boundary value problem, partial differential equations.
Complex variables: Cauchy’s integral theorem, Cauchy’s integral formula, Residue theorem, Analytic functions, Taylor series, Laurent series, Solution integrals.
Probability and Statistics: Sampling theorems, Conditional probability, Mean, Median, Mode, Standard Deviation, Random variables, Discrete and Continuous distributions, Poisson distribution, Normal distribution, Binomial distribution, Correlation analysis, Regression analysis.
Calculus: Theorems of integral calculus, Multiple integrals, Mean value theorems, Evaluation of definite and improper integrals, Partial Derivatives, Maxima and minima, Fourier series, Line integral, Surface integral, Directional derivatives, Gauss’s theorem, Vector identities, Volume integral, Stoke's theorem, Green’s theorem.
Differential Equations: Euler’s equation, First order equations (linear and nonlinear), Method of variation of parameters, Cauchy’s equation, Higher order linear differential equations with constant coefficients, Method of separation of variables, Initial, and boundary value problems, Euler’s equation, Initial and boundary value problem, partial differential equations.
Complex variables: Cauchy’s integral theorem, Cauchy’s integral formula, Residue theorem, Analytic functions, Taylor series, Laurent series, Solution integrals.
Probability and Statistics: Sampling theorems, Conditional probability, Mean, Median, Mode, Standard Deviation, Random variables, Discrete and Continuous distributions, Poisson distribution, Normal distribution, Binomial distribution, Correlation analysis, Regression analysis.
Electrical Engineering :
B. Electric Circuits
1. Network elements: ideal voltage and current sources, dependent sources, R, L, C, M elements;
2. Network solution methods: KCL, KVL, Node and Mesh analysis;
3. Network Theorems: Thevenin’s, Norton’s, Superposition and Maximum Power Transfer theorem; Transient response of dc and ac networks, sinusoidal steady-state analysis, resonance, two-port networks, balanced three-phase circuits, star-delta transformation, complex power and power factor in ac circuits.
C. Electromagnetic Fields
1. Coulomb's Law, Electric Field Intensity, Electric Flux Density, Gauss's Law, Divergence, Electric field and potential due to point, line, plane and spherical charge distributions, Effect of the dielectric medium,
2. Capacitance of simple configurations, Biot-Savart's law, Ampere's law, Curl, Faraday's law, Lorentz force, Inductance,
3. Magnetomotive force, Reluctance, Magnetic circuits, Self and Mutual inductance of simple configurations.
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D. Signals and Systems
1. Representation of continuous and discrete-time signals, shifting and scaling properties, linear time-invariant and causal systems,
2. Fourier series representation of continuous and discrete-time periodic signals, sampling theorem, Applications of Fourier Transform for continuous and discrete-time signals,
3. Laplace Transform and Z transform. R.M.S. value, the average value the calculation for any general periodic waveform.
E. Electrical Machines
1. Single-Phase Transformer: equivalent circuit, phasor diagram, open circuit and short circuit tests, regulation and efficiency; Three-phase transformers: connections, vector groups, parallel operation; Auto-transformer,
2. Electromechanical energy conversion principles; DC machines: separately excited, series and shunt, motoring and generating mode of operation and their characteristics, speed control of dc motors;
3. Three-phase induction machines: the principle of operation, types, performance, torque-speed characteristics, no-load and blocked-rotor tests, equivalent circuit, starting and speed control; Operating principle of single-phase induction motors;
. Synchronous machines: cylindrical and salient pole machines, performance and characteristics, regulation and parallel operation of generators, starting of synchronous motors; Types of losses and efficiency calculations of electric machines
F. Power Systems
1. Basic concepts of electrical power generation, ac and dc transmission concepts, Models and performance of transmission lines and cables, Economic Load Dispatch (with and without considering transmission losses), Series and shunt compensation, Electric field distribution and insulators,
2. Distribution systems, Perβunit quantities, Bus admittance matrix, Gauss-Seidel and Newton-Raphson load flow methods,
3. Voltage and Frequency Control, Power factor correction, Symmetrical components, Symmetrical and unsymmetrical fault analysis, Principles of overcurrent, differential, directional and distance protection;
4. Circuit breakers, System stability concepts, Equal area criterion.
G. Control Systems
1. Mathematical modelling and representation of systems, Feedback principle, transfer function, Block diagrams and signal flow graphs, Transient and Steadyβstate analysis of linear time-invariant systems.
2. Stability analysis using Routh-Hurwitz and Nyquist criteria, Bode plots, root loci, Lag, Lead and LeadβLag compensators; P, PI and PID controllers; State-space model, Solution of state equations of LTI systems.
H. Electrical and Electronic Measurements
1. Bridges and Potentiometers, Measurement of voltage, current, power, energy and power factor; Instrument transformers,
2. Digital voltmeters and multimeters, Phase, Time and Frequency measurement; Oscilloscopes, Error analysis.
I. Analog and Digital Electronics
1. Simple diode circuits: clipping, clamping, rectifiers; Amplifiers: biasing, equivalent circuit and frequency response; oscillators and feedback amplifiers; operational amplifiers: characteristics and applications; single-stage active filters,
2. Active Filters: Sallen Key, Butterwoth, VCOs and timers, combinatorial and sequential logic circuits, multiplexers, demultiplexers, Schmitt triggers, sample and hold circuits, A/D and D/A converters.
J. Power Electronics
1. Static V-I characteristics and firing/gating circuits for Thyristor, MOSFET, IGBT; DC to DC conversion: Buck, Boost and Buck-Boost Converters; Single and three-phase configuration of uncontrolled rectifiers; Voltage and Current commutated Thyristor based converters;
2. Bidirectional ac to dc voltage source converters; Magnitude and Phase of line current harmonics for uncontrolled and thyristor-based converters; Power factor and Distortion Factor of ac to dc converters;
3. Single-phase and three-phase voltage and current source inverters, sinusoidal pulse width modulation.
1. Network elements: ideal voltage and current sources, dependent sources, R, L, C, M elements;
2. Network solution methods: KCL, KVL, Node and Mesh analysis;
3. Network Theorems: Thevenin’s, Norton’s, Superposition and Maximum Power Transfer theorem; Transient response of dc and ac networks, sinusoidal steady-state analysis, resonance, two-port networks, balanced three-phase circuits, star-delta transformation, complex power and power factor in ac circuits.
C. Electromagnetic Fields
1. Coulomb's Law, Electric Field Intensity, Electric Flux Density, Gauss's Law, Divergence, Electric field and potential due to point, line, plane and spherical charge distributions, Effect of the dielectric medium,
2. Capacitance of simple configurations, Biot-Savart's law, Ampere's law, Curl, Faraday's law, Lorentz force, Inductance,
3. Magnetomotive force, Reluctance, Magnetic circuits, Self and Mutual inductance of simple configurations.
Know the previous year GATE EE Cut off here in detail!
D. Signals and Systems
1. Representation of continuous and discrete-time signals, shifting and scaling properties, linear time-invariant and causal systems,
2. Fourier series representation of continuous and discrete-time periodic signals, sampling theorem, Applications of Fourier Transform for continuous and discrete-time signals,
3. Laplace Transform and Z transform. R.M.S. value, the average value the calculation for any general periodic waveform.
E. Electrical Machines
1. Single-Phase Transformer: equivalent circuit, phasor diagram, open circuit and short circuit tests, regulation and efficiency; Three-phase transformers: connections, vector groups, parallel operation; Auto-transformer,
2. Electromechanical energy conversion principles; DC machines: separately excited, series and shunt, motoring and generating mode of operation and their characteristics, speed control of dc motors;
3. Three-phase induction machines: the principle of operation, types, performance, torque-speed characteristics, no-load and blocked-rotor tests, equivalent circuit, starting and speed control; Operating principle of single-phase induction motors;
. Synchronous machines: cylindrical and salient pole machines, performance and characteristics, regulation and parallel operation of generators, starting of synchronous motors; Types of losses and efficiency calculations of electric machines
F. Power Systems
1. Basic concepts of electrical power generation, ac and dc transmission concepts, Models and performance of transmission lines and cables, Economic Load Dispatch (with and without considering transmission losses), Series and shunt compensation, Electric field distribution and insulators,
2. Distribution systems, Perβunit quantities, Bus admittance matrix, Gauss-Seidel and Newton-Raphson load flow methods,
3. Voltage and Frequency Control, Power factor correction, Symmetrical components, Symmetrical and unsymmetrical fault analysis, Principles of overcurrent, differential, directional and distance protection;
4. Circuit breakers, System stability concepts, Equal area criterion.
G. Control Systems
1. Mathematical modelling and representation of systems, Feedback principle, transfer function, Block diagrams and signal flow graphs, Transient and Steadyβstate analysis of linear time-invariant systems.
2. Stability analysis using Routh-Hurwitz and Nyquist criteria, Bode plots, root loci, Lag, Lead and LeadβLag compensators; P, PI and PID controllers; State-space model, Solution of state equations of LTI systems.
H. Electrical and Electronic Measurements
1. Bridges and Potentiometers, Measurement of voltage, current, power, energy and power factor; Instrument transformers,
2. Digital voltmeters and multimeters, Phase, Time and Frequency measurement; Oscilloscopes, Error analysis.
I. Analog and Digital Electronics
1. Simple diode circuits: clipping, clamping, rectifiers; Amplifiers: biasing, equivalent circuit and frequency response; oscillators and feedback amplifiers; operational amplifiers: characteristics and applications; single-stage active filters,
2. Active Filters: Sallen Key, Butterwoth, VCOs and timers, combinatorial and sequential logic circuits, multiplexers, demultiplexers, Schmitt triggers, sample and hold circuits, A/D and D/A converters.
J. Power Electronics
1. Static V-I characteristics and firing/gating circuits for Thyristor, MOSFET, IGBT; DC to DC conversion: Buck, Boost and Buck-Boost Converters; Single and three-phase configuration of uncontrolled rectifiers; Voltage and Current commutated Thyristor based converters;
2. Bidirectional ac to dc voltage source converters; Magnitude and Phase of line current harmonics for uncontrolled and thyristor-based converters; Power factor and Distortion Factor of ac to dc converters;
3. Single-phase and three-phase voltage and current source inverters, sinusoidal pulse width modulation.
GATE Electrical Engineering Exam Pattern 2027
GATE Exam Pattern 2027 : Highlights
| GATE Examination Mode | Computer-Based Test (CBT) |
| GATE Exam Language | English |
| GATE Duration | 3 Hours (180 Minutes) |
| GATE Sectional Time Limit | None |
| GATE Total Marks | 100 |
| GATE Total Number of questions | 65 |
| GATE Type of Questions | Multiple Choice Questions (MCQ)
Multiple Select Questions (MSQ);
Numerical Answer Type (NAT) Questions
|
| GATE Number of Sections | Two/ Three (depending on the paper) |
| GATE Section-wise Number of Questions |
General Aptitude- 10 questions,
Core Discipline- 55 questions
|
| GATE Section-wise Weightage |
General Aptitude- 15 marks,
Core Discipline- 85 marks
|
| GATE Marking Scheme | 1 or 2 marks for each correct answer |
| GATE Negative Marking |
For 1 mark MCQ, 1/3 mark will be deducted for a wrong answer;
For 2-mark MCQ, 2/3 mark will be deducted for a wrong answer;
No negative marking for MSQs and NATs
|
Duration : 180 Minutes
Negative Mark :
For 1 mark MCQ, 1/3 mark will be deducted for a wrong answer;
For 2-mark MCQ, 2/3 mark will be deducted for a wrong answer;
No negative marking for MSQs and NATs
| S.No | Subject | No.of Question | Marks |
| 1 | General Aptitude | 10 | 15 |
| 2 | Engineering Mathematics | 55 | 13 |
| Electrical Engineering | 72 | ||
| Total | 65 | 100 |
| Subject | No.of Question | Marks per Question | Marks |
Engineering Mathematics & Electrical Engineering |
25 | 1 | 25 |
| 30 | 2 | 60 | |
| Total | 55 | 85 |
GATE Exam Date 2026 : 06th, 7th, 13th, 14th, 20th, 21st February 2027
Starting Date of Application Form : 27th August 2026
Last Date of Application Form : 27th September 2026
GATE Electrical Engineering 2027 Free Mock Test
Crack GATE Electrical Mock Test 2027 with the help of GATE Electrical Engineer Free Mock Test or Question Paper. Every Sample Paper in GATE EE 2027 has a designated weightage so do not miss out any Paper. Preprare for GATE Electrical Mock Test 2027 and check your test scores.
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GATE Electrical Engineering Exam (Only MCQ) - English65 questions β’ 180 mins β’ 65 marks
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GATE Electrical Engineering Exam (Only MCQ) - English65 questions β’ 180 mins β’ 65 marks
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FAQs
GATE Electrical Engineering 2027 Free Mock Test Frequently Asked Questions (FAQ's)
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