Showing posts with label ecesyllabus. Show all posts
Showing posts with label ecesyllabus. Show all posts

Monday, 27 October 2014

ANNA UNIVERSITY, CHENNAI

AFFILIATED INSTITUTIONS
REGULATION-2013
B.E. ELECTRONICS AND COMMUNICATION ENGINEERING
I – VIII SEMESTERS CURRICULUM AND SYLLABUS
ANNA UNIVERSITY ECE 1ST 2ND 3RD 4TH 5TH 6TH 7TH 8TH SEMESTER SYLLABUS FOR REGULATION 2013

SEMESTER I
ANNA UNIVERSITY 1ST SEMESTER SYLLABUS FOR ECE REGULATION 2013

THEORY  
1. HS6151 Technical English – I  
2. MA6151 Mathematics – I 
3. PH6151 Engineering Physics – I 
4. CY6151 Engineering Chemistry – I 
5. GE6151 Computer Programming  
6. GE6152 Engineering Graphics 

PRACTICALS
7. GE6161 Computer Practices Laboratory 
8. GE6162 Engineering Practices Laboratory
9. GE6163 Physics and Chemistry Laboratory - I 


SEMESTER II 
ANNA UNIVERSITY 2ND SEMESTER SYLLABUS FOR ECE REGULATION 2013
THEORY 
1. HS6251 Technical English – II  
2. MA6251 Mathematics – II 
3. PH6251 Engineering Physics – II 
4. CY6251 Engineering Chemistry – II 
5. EC6201 Electronic Devices
6. EE6201 Circuit Theory 

PRACTICALS
7. GE6262 Physics and Chemistry Laboratory - II 
8. EC6211 Circuits and Devices Laboratory 

SEMESTER III 
ANNA UNIVERSITY 3RD SEMESTER SYLLABUS FOR ECE REGULATION 2013
THEORY 
1. MA6351 Transforms and Partial Differential Equations 
2. EE6352 Electrical Engineering and Instrumentation 
3. EC6301 Object Oriented Programming and Data Structures  
4. EC6302 Digital Electronics 
5. EC6303 Signals and Systems 
6. EC6304  Electronic Circuits- I 

PRACTICAL
7. EC6311 Analog and Digital Circuits Laboratory 
8. EC6312  OOPS and Data Structures Laboratory

SEMESTER IV 
ANNA UNIVERSITY 4TH SEMESTER SYLLABUS FOR ECE REGULATION 2013
THEORY 
1. MA6451 Probability and Random Processes 
2. EC6401 Electronic Circuits II 
3. EC6402 Communication Theory 
4. EC6403 Electromagnetic Fields 
5. EC6404 Linear Integrated Circuits 
6. EC6405 Control System Engineering 
PRACTICAL 
7. EC6411 Circuit and Simulation Integrated Laboratory 
8. EC6412 Linear Integrated Circuit Laboratory  
9. EE6461 Electrical Engineering and Control System Laboratory

SEMESTER V
ANNA UNIVERSITY 5TH SEMESTER SYLLABUS FOR ECE REGULATION 2013
THEORY 
1. EC6501 Digital Communication 
2. EC6502  Principles of Digital Signal Processing 
3. EC6503 Transmission Lines and Wave Guides  
4. GE6351 Environmental Science and Engineering 
5. EC6504 Microprocessor and Microcontroller 

PRACTICAL 
7. EC6511 Digital Signal Processing Laboratory 
8. EC6512 Communication System Laboratory  
9. EC6513 Microprocessor and Microcontroller Laboratory 

SEMESTER VI
ANNA UNIVERSITY 6TH SEMESTER SYLLABUS FOR ECE REGULATION 2013

THEORY:
1. MG6851 Principles of Management 
2. CS6303 Computer Architecture 
3. CS6551 Computer Networks 
4. EC6601 VLSI Design 
5. EC6602 Antenna and Wave propagation 
6.  Elective I

PRACTICAL
7. EC6611 Computer Networks Laboratory  
8. EC6612 VLSI  Design Laboratory 
9. GE6674  Communication and Soft Skills - Laboratory Based


SEMESTER VII
ANNA UNIVERSITY 7TH SEMESTER SYLLABUS FOR ECE REGULATION 2013

THEORY 
1. EC6701 RF and Microwave Engineering 
2. EC6702 Optical Communication and Networks 
3. EC6703 Embedded and Real Time Systems 
4.  Elective II
5.  Elective III
6.  Elective IV

PRACTICAL
7. EC6711 Embedded  Laboratory  
8. EC6712 Optical and Microwave Laboratory 


SEMESTER VIII
ANNA UNIVERSITY 8TH SEMESTER SYLLABUS FOR ECE REGULATION 2013

THEORY 
1.EC6801 Wireless Communication 
2.EC6802 Wireless Networks 
3.Elective V
4.Elective VI 

PRACTICAL
5. EC6811 Project Work 


SEMESTER VI 


ELECTIVE – I

1.  EC6001 Medical Electronics
2.  EC6002 Advanced Digital Signal Processing
3.  CS6401 Operating Systems
4.  EC6003 Robotics and Automation 

SEMESTER VII
ELECTIVE– II 

5.  EC6004 Satellite Communication 
6.  EC6005 Electronic Testing 
7.  EC6006 Avionics 
8. CS6012 Soft Computing 
9.  IT6005 Digital Image Processing 

ELECTIVE– III 

10.  EC6007 Speech Processing 
11.  EC6008 Web Technology 
12.  EC6009 Advanced Computer Architecture  
13.  EC 6010 Electronics  Packaging 
14.  EC6011 Electro Magnetic Interference and  Compatibility 


ELECTIVE – IV

15.  EC6012 CMOS Analog IC Design
16.  EC6013 Advanced Microprocessors and Microcontrollers  
17.  EC6014 Cognitive Radio 
18.  EC6015 Radar and Navigational Aids 
19.  EC6016 Opto Electronic Devices 

SEMESTER VIII
ELECTIVE –V 

20.  EC6017 RF System Design 
21.  CS6003 Ad hoc and Sensors Networks 
22.  GE6082 Indian Constitution and Society 
23.  EC6018 Multimedia Compression and Communication 
24.  GE6075 Professional Ethics in  Engineering


ELECTIVE – VI 

25.  EC6019 Data Converters 
26.  CS6701 Cryptography and Network Security 
27.  GE6757 Total Quality Management 
28.  MG6071 Entrepreneurship Development 
29.  MG6088 Software Project Management 







PREVIEW                DOWNLOAD

Monday, 17 December 2012


ANNA UNIVERSITY CHENNAI : : CHENNAI – 600 025

AFFILIATED INSTITUTIONS

B.E. (8 SEMESTER) ELECTRONICS AND COMMUNICATION ENGINEERING

CURRICULUM – R 2008


SEMESTER VI


(Applicable to the students admitted from the Academic year 2008–2009 onwards)
THEORY

MG2351 Principles of Management 3 0 0 3  
EC2351 Measurements and Instrumentation 3 0 0 3 
EC2352 Computer Networks 3 0 0 3 
EC2353 Antenna and Wave Propagation 3 0 1 4 
EC2354 VLSI Design 3 0 0 3 

PRACTICAL
EC2356 Computer Networks Lab 0 0 3 2 
EC2357 VLSI Design Lab 0 0 3 2 
GE2321 Communication Skills Lab 0 0 4 2 

LIST OF ELECTIVES
Elective I
CODE NO. COURSE TITLE L T P C
EC2021 Medical Electronics 3 0 0 3 
EC2022 Operating Systems 3 0 0 3 
EC2023 Solid State Electronic Devices 3 0 0 3 
EC2024 Speech Processing 3 0 0 3 
MA2264 Numerical Methods 3 1 0 4 
CS2021 Multicore Programming 3 0 0 3 


MG2351 PRINCIPLES OF MANAGEMENT SYLLABUS L T P C

3 0 0 3

UNIT I OVERVIEW OF MANAGEMENT 9

Definition - Management - Role of managers - Evolution of Management thought -

Organization and the environmental factors – Trends and Challenges of Management in

Global Scenario.

UNIT II PLANNING 9

Nature and purpose of planning - Planning process - Types of plans – Objectives - -

Managing by objective (MBO) Strategies - Types of strategies - Policies - Decision

Making - Types of decision - Decision Making Process - Rational Decision Making

Process - Decision Making under different conditions.

UNIT III ORGANIZING 9

Nature and purpose of organizing - Organization structure - Formal and informal groups I

organization - Line and Staff authority - Departmentation - Span of control -

Centralization and Decentralization - Delegation of authority - Staffing - Selection and

Recruitment - Orientation - Career Development - Career stages – Training - -

Performance Appraisal.

UNIT IV DIRECTING 9

Creativity and Innovation - Motivation and Satisfaction - Motivation Theories -

Leadership Styles - Leadership theories - Communication - Barriers to effective

communication - Organization Culture - Elements and types of culture - Managing

cultural diversity.

UNIT V CONTROLLING 9

Process of controlling - Types of control - Budgetary and non-budgetary control

techniques - Managing Productivity - Cost Control - Purchase Control - Maintenance

Control - Quality Control - Planning operations.

TOTAL= 45 PERIODS

TEXT BOOKS:

1. Stephen P. Robbins and Mary Coulter, 'Management', Prentice Hall of India,

8th edition.

2. Charles W L Hill, Steven L McShane, 'Principles of Management', Mcgraw Hill

Education, Special Indian Edition, 2007.

REFERENCES:

1. Hellriegel, Slocum & Jackson, ' Management - A Competency Based Approach',

Thomson South Western, 10th edition, 2007.

2. Harold Koontz, Heinz Weihrich and Mark V Cannice, 'Management - A global

& Entrepreneurial Perspective', Tata Mcgraw Hill, 12th edition, 2007.

3. Andrew J. Dubrin, 'Essentials of Management', Thomson Southwestern, 7th

edition, 2007
2351


 MEASUREMENTS AND INSTRUMENTATION SYLLABUS  L T P C

3 0 0 3

UNIT I BASIC MEASUREMENT CONCEPTS 9

Measurement systems – Static and dynamic characteristics – units and standards of

measurements – error :- accuracy and precision, types, statistical analysis – moving coil,

moving iron meters – multimeters – Bridge measurements : – Maxwell, Hay, Schering,

Anderson and Wien bridge.

UNIT II BASIC ELECTRONIC MEASUREMENTS 9

Electronic multimeters – Cathode ray oscilloscopes – block schematic – applications –

special oscilloscopes :– delayed time base oscilloscopes, analog and digital storage

oscilloscope, sampling oscilloscope – Q meters – Vector meters – RF voltage and

power measurements – True RMS meters.

UNIT III SIGNAL GENERATORS AND ANALYZERS 9

Function generators – pulse and square wave generators, RF signal generators –

Sweep generators – Frequency synthesizer – wave analyzer – Harmonic distortion

analyzer – spectrum analyzer :- digital spectrum analyzer, Vector Network Analyzer –

Digital L,C,R measurements, Digital RLC meters.

UNIT IV DIGITAL INSTRUMENTS 9

Comparison of analog and digital techniques – digital voltmeter – multimeters –

frequency counters – measurement of frequency and time interval – extension of

frequency range – Automation in digital instruments, Automatic polarity indication,

automatic ranging, automatic zeroing, fully automatic digital instruments, Computer

controlled test systems, Virtual instruments.

UNIT V DATA ACQUISITION SYSTEMS AND FIBER

OPTIC MEASUREMENTS 9

Elements of a digital data acquisition system – interfacing of transducers – multiplexing –

data loggers –computer controlled instrumentation – IEEE 488 bus – fiber optic

measurements for power and system loss – optical time domains reflectometer.

TOTAL= 45 PERIODS

TEXT BOOKS:

1. Albert D.Helfrick and William D.Cooper – Modern Electronic Instrumentation and

Measurement Techniques, Pearson / Prentice Hall of India, 2007.

2. Ernest O. Doebelin, Measurement Systems- Application and Design, TMH, 2007.

REFERENCES:

1. Joseph J.Carr, Elements of Electronics Instrumentation and Measurement, Pearson

Education, 2003.

2. Alan. S. Morris, Principles of Measurements and Instrumentation, 2nd Edition,

Prentice Hall of India, 2003.

3. David A. Bell, Electronic Instrumentation and measurements, Prentice Hall of India

Pvt Ltd, 2003.

4. B.C. Nakra and K.K. Choudhry, Instrumentation, Meaurement and Analysis, 2nd

Edition, TMH, 2004.

5. James W. Dally, William F. Riley, Kenneth G. McConnell, Instrumentation for

Engineering Measurements, 2nd Edition, John Wiley, 2003


EC2352 COMPUTER NETWORKS SYLLABUS L T P C

3 0 0 3

UNIT I PHYSICAL LAYER 9

Data Communications – Networks - Networks models – OSI model – Layers in OSI

model – TCP / IP protocol suite – Addressing – Guided and Unguided Transmission

media

Switching: Circuit switched networks – Data gram Networks – Virtual circuit networks

Cable networks for Data transmission: Dialup modems – DSL – Cable TV – Cable TV for

Data transfer.

UNIT II DATA LINK LAYER 10

Data link control: Framing – Flow and error control –Protocols for Noiseless and Noisy

Channels – HDLC

Multiple access: Random access – Controlled access

Wired LANS : Ethernet – IEEE standards – standard Ethernet – changes in the standard

– Fast Ethernet – Gigabit Ethernet.

Wireless LANS : IEEE 802.11–Bluetooth.

Connecting LANS: Connecting devices - Backbone networks - Virtual LANS

Virtual circuit networks: Architecture and Layers of Frame Relay and ATM.

UNIT III NETWORK LAYER 9

Logical addressing: IPv4, IPv6 addresses

Internet Protocol: Internetworking – IPv4, IPv6 - Address mapping – ARP, RARP,

BOOTP, DHCP, ICMP, IGMP, Delivery - Forwarding - Routing – Unicast, Multicast

routing protocols.

UNIT IV TRANSPORT LAYER 8

Process-to-Process delivery - User Datagram Protocol (UDP) – Transmission Control

Protocol (TCP) – Congestion Control – Quality of services (QoS) – Techniques to

improve QoS.

UNIT V APPLICATION LAYER 9

Domain Name System (DNS) – E-mail – FTP – WWW – HTTP – Multimedia Network

Security: Cryptography – Symmetric key and Public Key algorithms - Digital signature –

Management of Public keys – Communication Security – Authentication Protocols.

TOTAL= 45 PERIODS

TEXT BOOKS

1. Behrouz A. Foruzan, “Data communication and Networking”, Tata McGraw-Hill,

2006: Unit I-IV

2. Andrew S. Tannenbaum, “Computer Networks”, Pearson Education, Fourth Edition,

2003: Unit V

REFERENCES

1. Wayne Tomasi, “Introduction to Data Communication and Networking”, 1/e, Pearson

Education.

2. James .F. Kurouse & W. Rouse, “Computer Networking: A Topdown Approach

Featuring”,3/e, Pearson Education.

3. C.Sivaram Murthy, B.S.Manoj, “Ad hoc Wireless Networks – Architecture and

Protocols”, Second Edition, Pearson Education

EC2353 ANTENNA AND WAVE PROPAGATION L T P C

3 1 0 4

UNIT I ELECTROMAGNETIC RADIATION AND ANTENNA FUNDAMENTALS

9

Review of electromagnetic theory: Vector potential, Solution of wave equation, retarded

case, Hertizian dipole. Antenna characteristics: Radiation pattern, Beam solid angle,

Directivity, Gain, Input impedance, Polarization, Bandwidth, Reciprocity, Equivalence of

Radiation patterns, Equivalence of Impedances, Effective aperture, Vector effective

length, Antenna temperature.

UNIT II WIRE ANTENNAS AND ANTENNA ARRAYS 9

Wire antennas: Short dipole, Radiation resistance and Directivity, Half wave Dipole,

Monopole, Small loop antennas. Antenna Arrays: Linear Array and Pattern Multiplication,

Two-element Array, Uniform Array, Polynomial representation, Array with non-uniform

Excitation-Binomial Array

UNIT III APERTURE ANTENNAS 9

Aperture Antennas: Magnetic Current and its fields, Uniqueness theorem, Field

equivalence principle, Duality principle, Method of Images, Pattern properties, Slot

antenna, Horn Antenna, Pyramidal Horn Antenna, Reflector Antenna-Flat reflector,

Corner Reflector, Common curved reflector shapes, Lens Antenna.

UNIT IV SPECIAL ANTENNAS AND ANTENNA MEASUREMENTS 9

Special Antennas: Long wire, V and Rhombic Antenna, Yagi-Uda Antenna, Turnstile

Antenna, Helical Antenna- Axial mode helix, Normal mode helix, Biconical Antenna, Log

periodic Dipole Array, Spiral Antenna, Microstrip Patch Antennas.

Antenna Measurements: Radiation Pattern measurement, Gain and Directivity

Measurements, Anechoic Chamber measurement.

UNIT V RADIO WAVE PROPAGATION 9

Calculation of Great Circle Distance between any two points on earth, Ground Wave

Propagation, Free-space Propagation, Ground Reflection, Surface waves, Diffraction,

Wave propagation in complex Environments, Tropospheric Propagation, Tropospheric

Scatter. Ionospheric propagation: Structure of ionosphere, Sky waves, skip distance,

Virtual height, Critical frequency, MUF, Electrical properties of ionosphere, Effects of

earth’s magnetic fields, Faraday rotation, Whistlers.

L: 45, T: 15, TOTAL= 60 PERIODS

TEXTBOOKS

1. E.C.Jordan and Balmain, “Electromagnetic waves and Radiating Systems”, Pearson

Education / PHI, 2006

2. A.R.Harish, M.Sachidanada, “Antennas and Wave propagation”, Oxford University

Press, 2007.

22

REFERENCES

1. John D.Kraus, Ronald J Marhefka and Ahmad S Khan, “Antennas for all

Applications”, Tata McGraw-Hill Book Company, 3 ed, 2007.

2. G.S.N.Raju, Antenna Wave Propagation, Pearson Education, 2004.

3. Constantine A. Balanis, Antenna Theory Analysis and Desin, John Wiley, 2nd Edition,

2007.

4. R.E.Collins, “Antenna and Radiowave propagation”,

5. W.L Stutzman and G.A. Thiele, “Antenna analysis and design”, John Wiley, 2000.

EC2354 VLSI DESIGN L T P C

3 0 0 3

UNIT I CMOS TECHNOLOGY 9

A brief History-MOS transistor, Ideal I-V characteristics, C-V characteristics, Non ideal IV

effects, DC transfer characteristics - CMOS technologies, Layout design Rules, CMOS

process enhancements, Technology related CAD issues, Manufacturing issues

UNIT II CIRCUIT CHARACTERIZATION AND SIMULATION 9

Delay estimation, Logical effort and Transistor sizing, Power dissipation, Interconnect,

Design margin, Reliability, Scaling- SPICE tutorial, Device models, Device

characterization, Circuit characterization, Interconnect simulation

UNIT III COMBINATIONAL AND SEQUENTIAL CIRCUIT DESIGN 9

Circuit families –Low power logic design – comparison of circuit families – Sequencing

static circuits, circuit design of latches and flip flops, Static sequencing element

methodology- sequencing dynamic circuits – synchronizers

UNIT IV CMOS TESTING 9

Need for testing- Testers, Text fixtures and test programs- Logic verification- Silicon

debug principles- Manufacturing test – Design for testability – Boundary scan

UNIT V SPECIFICATION USING VERILOG HDL 9

Basic concepts- identifiers- gate primitives, gate delays, operators, timing controls,

procedural assignments conditional statements, Data flow and RTL, structural gate level

switch level modeling, Design hierarchies, Behavioral and RTL modeling, Test benches,

Structural gate level description of decoder, equality detector, comparator, priority

encoder, half adder, full adder, Ripple carry adder, D latch and D flip flop.

TOTAL= 45 PERIODS

TEXTBOOKS:

1. Weste and Harris: CMOS VLSI DESIGN (Third edition) Pearson Education, 2005

2. Uyemura J.P: Introduction to VLSI circuits and systems, Wiley 2002.

REFERENCES:

1 D.A Pucknell & K.Eshraghian Basic VLSI Design, Third edition, PHI, 2003

2 Wayne Wolf, Modern VLSI design, Pearson Education, 2003

3 M.J.S.Smith: Application specific integrated circuits, Pearson Education, 1997

4 J.Bhasker: Verilog HDL primer, BS publication,2001

5 Ciletti Advanced Digital Design with the Verilog HDL, Prentice Hall of India, 2003


EC2356 COMPUTER NETWORKS LAB SYLLABUS  L T P C

0 0 3 2

1. PC to PC Communication

Parallel Communication using 8 bit parallel cable

Serial communication using RS 232C

2. Ethernet LAN protocol

To create scenario and study the performance of CSMA/CD protocol through

simulation

3. Token bus and token ring protocols

To create scenario and study the performance of token bus and token ring

protocols through simulation

4. Wireless LAN protocols

To create scenario and study the performance of network with CSMA / CA

protocol and compare with CSMA/CD protocols.

5. Implementation and study of stop and wait protocol

6. Implementation and study of Goback-N and selective repeat protocols

7. Implementation of distance vector routing algorithm

8. Implementation of Link state routing algorithm

9. Implementation of Data encryption and decryption

10. Transfer of files from PC to PC using Windows / Unix socket processing

TOTAL= 45 PERIODS

GE2321 COMMUNICATION SKILLS LAB SYLLABUS L T P C

(Fifth / Sixth Semester) 0 0 4 2

A. English Language Lab (18 Periods)

1. Listening Comprehension: (6)

Listening and typing – Listening and sequencing of sentences – Filling in the blanks -

Listening and answering questions.

2. Reading Comprehension: (6)

Filling in the blanks - Close exercises – Vocabulary building - Reading and answering

questions.

3. Speaking: (6)

Phonetics: Intonation – Ear training - Correct Pronunciation – Sound recognition

exercises – Common Errors in English.

Conversations: Face to Face Conversation – Telephone conversation – Role play

activities (Students take on roles and engage in conversation)

B. Discussion of audio-visual materials (6 periods)

(Samples are available to learn and practice)

1. Resume / Report Preparation / Letter Writing (1)

Structuring the resume / report - Letter writing / Email Communication - Samples.

2. Presentation skills: (1)

Elements of effective presentation – Structure of presentation - Presentation tools –

Voice Modulation – Audience analysis - Body language – Video samples

3. Soft Skills: (2)

Time management – Articulateness – Assertiveness – Psychometrics –

Innovation and Creativity - Stress Management & Poise - Video Samples

4. Group Discussion: (1)

Why is GD part of selection process ? - Structure of GD – Moderator – led and other

GDs - Strategies in GD – Team work - Body Language - Mock GD -Video samples

5. Interview Skills: (1)

Kinds of interviews – Required Key Skills – Corporate culture – Mock interviews-

Video samples.

I. PC based session (Weightage 40%) 24 periods

II. Practice Session (Weightage – 60%) 24 periods

26

1. Resume / Report Preparation / Letter writing: Students prepare their

own resume and report. (2)

2. Presentation Skills: Students make presentations on given topics. (8)

3. Group Discussion: Students participate in group discussions. (6)

4. Interview Skills: Students participate in Mock Interviews (8)

REFERENCES:

1. Anderson, P.V, Technical Communication, Thomson Wadsworth ,

Sixth Edition, New Delhi, 2007.

2. Prakash, P, Verbal and Non-Verbal Reasoning, Macmillan India Ltd., Second

Edition, New Delhi, 2004.

3. John Seely, The Oxford Guide to Writing and Speaking, Oxford University

Press, New Delhi, 2004.

4. Evans, D, Decisionmaker, Cambridge University Press, 1997.

5. Thorpe, E, and Thorpe, S, Objective English, Pearson Education,

Second Edition, New Delhi, 2007.

6. Turton, N.D and Heaton, J.B, Dictionary of Common Errors, Addision Wesley

Longman Ltd., Indian reprint 1998.

Lab Requirements:

1. Teacher console and systems for students.

2. English Language Lab Software

3. Career Lab Software

EC2357 VLSI DESIGN LAB SYLLABUS L T P C

0 0 3 2

1. Design Entry and simulation of combinational logic circuits (8 bit adders, 4 bit

multipliers, address decoders, multiplexers), Test bench creation, functional

verification, and concepts of concurrent and sequential execution to be highlighted.

2. Design Entry and simulation of sequential logic circuits (counters, PRBS generators,

accumulators). Test bench creation, functional verification, and concepts of

concurrent and sequential execution to be highlighted.

3. Synthesis, P&R and Post P&R simulation for all the blocks/codes developed in Expt.

No. 1 and No. 2 given above. Concepts of FPGA floor plan, critical path, design gate

count, I/O configuration and pin assignment to be taught in this experiment.

4. Generation of configuration/fuse files for all the blocks/codes developed as part of

Expt.1. and Expt. 2. FPGA devices must be configured and hardware tested for the

blocks/codes developed as part of Expt. 1. and Expt. 2. The correctness of the

inputs and outputs for each of the blocks must be demonstrated atleast on

oscilloscopes (logic analyzer preferred).

5. Schematic Entry and SPICE simulation of MOS differential amplifier. Determination

of gain, bandwidth, output impedance and CMRR.

6. Layout of a simple CMOS inverter, parasitic extraction and simulation.

7. Design of a 10 bit number controlled oscillator using standard cell approach,

simulation followed by study of synthesis reports.

8. Automatic layout generation followed by post layout extraction and simulation of the

circuit studied in Expt. No.7

Note 1. For Expt. 1 To 4 can be carried out using Altera (Quartus) / Xilinx (Alliance) /

ACTEL (Libero) tools.

Note 2. For expt. 5-8 introduce the student to basics of IC design. These have to be

carried out using atleast 0.5u CMOS technology libraries. The S/W tools needed

Cadence / MAGMA / Tanner.

TOTAL= 45 PERIODS

Sunday, 16 December 2012

Code No.

Course Title

L
T
P
C
THEORY
MA 2261

Probability and Random Processes

3
1
0
4
EC 2251

Electronic Circuits II 

3
1
0
4
EC 2252

Communication Theory

3
1
0
4
EC 2253

Electromagnetic Fields

3
1
0
4
EC 2254

Linear Integrated Circuits

3
0
0
3
EC 2255

Control Systems

3
0
0
3
PRACTICAL
EC 2257

Electronics circuits II and simulation lab

0
0
3
2
EC 2258

Linear Integrated Circuit Lab

0
0
3
2
EC 2259

Electrical Engineering and Control System Lab

0
0
3
2



MA2261                       PROBABILITY AND RANDOM PROCESSES               3   1   0   4
                                    (Common to ECE & Bio Medical Engineering)
                                                                                                                          
AIM
This course aims at providing the necessary basic concepts in random processes.    Knowledge of fundamentals and applications of random phenomena will greatly help in the understanding of topics such as signals & systems, pattern recognition, voice and image processing and filtering theory.

OBJECTIVES
At the end of the course, the students would
·                 Have a fundamental knowledge of the basic probability concepts.
·                 Have a well-founded knowledge of standard distributions which can describe real    life phenomena.
·                 Acquire skills in handling situations involving more than one random variable and  functions of random variables.
·                 Understand and characterize phenomena which evolve with respect to time in  probabilistic manner.
·                 Be able to analyze the response of random inputs to linear time invariant systems.

UNIT I              RANDOM VARIABLES                                                                                    9 + 3
Discrete and continuous random variables – Moments - Moment generating functions and their properties. Binomial, Poisson ,Geometric, Uniform, Exponential, Gamma and normal  distributions – Function of Random Variable.

UNIT II               TWO DIMENSIONAL RANDOM VARIBLES                                               9 + 3

Joint distributions - Marginal and conditional distributions – Covariance - Correlation and Regression - Transformation of random variables - Central limit theorem (for iid random variables)

UNIT III    Classification of RANDOM PROCESSES                                                   9 + 3

Definition and examples - first order, second order, strictly stationary, wide-sense stationary and ergodic processes - Markov process - Binomial, Poisson and Normal processes - Sine wave process – Random telegraph process.
UNIT IV   Correlation and spectral densities                                         9 + 3
Auto correlation - Cross correlation - Properties – Power spectral density – Cross spectral density - Properties – Wiener-Khintchine relation – Relationship between cross power spectrum and cross correlation function
UNIT V    LINEAR SYSTEMS WITH RANDOM INPUTS                                           9 + 3
Linear time invariant system - System transfer function – Linear systems with random inputs – Auto correlation and cross correlation functions of input and output – white noise.

          LECTURES : 45        TUTORIAL : 15       TOTAL : 60 PERIODS 

TEXT BOOKS
  1. Oliver C. Ibe,  “Fundamentals of Applied probability and Random processes”, Elsevier, First Indian Reprint ( 2007)  (For units 1 and 2)

  1. Peebles Jr. P.Z., “Probability Random Variables and Random Signal Principles”, Tata McGraw-Hill Publishers, Fourth Edition, New Delhi, 2002. (For units 3, 4 and 5).

REFERENCES
1.      Miller,S.L and Childers, S.L, “Probability and Random Processes with applications to Signal Processing and Communications”, Elsevier Inc., First Indian Reprint 2007.

2.      H. Stark and J.W. Woods, “Probability and Random Processes with     Applications to Signal Processing”, Pearson Education (Asia), 3rd Edition, 2002.

3.      Hwei Hsu, “Schaum’s Outline of Theory and Problems of Probability, Random Variables and Random Processes”, Tata McGraw-Hill edition, New Delhi, 2004.
4.      Leon-Garcia,A, “Probability and Random Processes for Electrical Engineering”, Pearson Education Asia, Second Edition, 2007.
5.      Yates and D.J. Goodman, “Probability and   Stochastic Processes”, John Wiley and Sons, Second edition, 2005.




EC 2251                                 ELECTRONIC CIRCUITS II                                  3  1  0  4


AIM
The aim of this course is to familiarize the student with the analysis and design of feed back amplifiers, oscillators, tuned amplifiers, wave shaping circuits, multivibrators and blocking oscillators.

OBJECTIVES
On completion of this course the student will understand
·         The advantages and method of analysis of feedback amplifiers
·         Analysis and design of LC and RC oscillators, tuned amplifiers, wave shaping circuits, multivibrators, blocking oscillators and time base generators.

UNIT 1            FEEDBACK AMPLIFIERS                                                                        9

Block diagram, Loop gain, Gain with feedback, Effects of negative feedback – Sensitivity and desensitivity of gain, Cut-off frequencies, distortion, noise, input impedance and output impedance with feedback, Four types of negative feedback connections – voltage series feedback, voltage shunt feedback, current series feedback and current shunt feedback, Method of identifying feedback topology and feedback factor, Nyquist criterion for stability of feedback amplifiers.

UNIT II            OSCILLATORS                                                                                         9

Classification, Barkhausen Criterion - Mechanism for start of oscillation and stabilization of amplitude, General form of an Oscillator, Analysis of LC oscillators - Hartley, Colpitts, Clapp, Franklin, Armstrong, Tuned collector oscillators, RC oscillators - phase shift – Wienbridge - Twin-T Oscillators, Frequency range of RC and LC Oscillators, Quartz Crystal Construction, Electrical equivalent circuit of Crystal, Miller and Pierce Crystal oscillators, frequency stability of oscillators.

UNIT III           TUNED AMPLIFIERS                                                                                            9

Coil losses, unloaded and loaded Q of tank circuits, small signal tuned amplifiers -  Analysis of capacitor coupled single tuned amplifier – double tuned amplifier -  effect of cascading single tuned and double tuned amplifiers on bandwidth – Stagger tuned amplifiers – large signal tuned amplifiers – Class C tuned amplifier – Efficiency and applications of Class C tuned amplifier - Stability of tuned amplifiers – Neutralization - Hazeltine neutralization method.

UNIT IV           WAVE SHAPING AND MULTIVIBRATOR CIRCUITS                            9

RC & RL Integrator and Differentiator circuits – Storage, Delay and Calculation of Transistor Switching Times – Speed-up Capaitor - Diode clippers, Diode comparator - Clampers. Collector coupled and Emitter coupled Astable multivibrator - Monostable multivibrator - Bistable multivibrators - Triggering methods for Bistable multivibrators -  Schmitt trigger circuit.

UNIT V            BLOCKING OSCILLATORS AND TIMEBASE GENERATORS              9

UJT sawtooth waveform generator, Pulse transformers – equivalent circuit – response - applications, Blocking Oscillator – Free running blocking oscillator - Astable Blocking Oscillators with base timing – Push-pull Astable blocking oscillator with emitter timing, Frequency control using core saturation, Triggered blocking oscillator – Monostable blocking oscillator with base timing – Monostable blocking oscillator with emitter timing, Time base circuits - Voltage-Time base circuit, Current-Time base circuit - Linearization through adjustment of driving waveform.

       TUTORIAL= 15                                                                                       TOTAL = 60

TEXT BOOKS
1.            Sedra / Smith, Micro Electronic Circuits Oxford University Press, 2004.
2.            S. Salivahanan, N. Suresh Kumar and A. Vallavaraj, Electronic Devices and Circuits, 2nd Edition, TMH, 2007.

REFERENCES
1.                  Millman J. and Taub H., Pulse Digital and Switching Waveforms, TMH, 2000.
2.                  Schilling and Belove, Electronic Circuits, 3rd Edition, TMH, 2002.
3.                  Robert L. Boylestad and Louis Nasheresky, Electronic Devices and Circuit Theory, 9th Edition, Pearson Education / PHI, 2002.
4.                  David A. Bell, Solid State Pulse Circuits, Prentice Hall of India, 1992.
5.                  Millman and Halkias. C., Integrated Electronics, TMH, 1991.




EC 2252                      COMMUNICATION  THEORY                                          3  1  0  4


AIM
To study the various analog communication fundamentals viz., Amplitude modulation and demodulation, angle modulation and demodulation. Noise performance of various receivers and information theory with source coding theorem are also dealt.

OBJECTIVE

  • To provide various Amplitude modulation and demodulation systems.
  • To provide various Angle modulation and demodulation systems.
  • To provide some depth analysis in noise performance of various receiver.
  • To study some basic information theory with some channel coding theorem.


1.                  AMPLITUDE MODULATION SYSTEMS                                                            10
Review of Spectral Characteristics of Periodic and Non-periodic signals; Generation and Demodulation of AM, DSBSC, SSB and VSB Signals; Comparison of Amplitude Modulation Systems; Frequency Translation; FDM; Non – Linear Distortion.

2.                  ANGLE MODULATION SYSTEMS                                                                      8
Phase and Frequency Modulation; Single tone, Narrow Band and Wideband FM; Transmission Bandwidth; Generation and Demodulation of FM Signal.

3.                  NOISE THEORY                                                                                                    8
Review of Probability, Random Variables and Random Process; Guassian Process; Noise – Shot noise, Thermal noise and white noise; Narrow band noise, Noise temperature; Noise Figure.

4.         PERFORMANCE OF CW MODULATION SYSTEMS                                       10                                           
Superheterodyne Radio receiver and its characteristic; SNR; Noise in DSBSC systems using coherent detection; Noise in AM system using envelope detection and its FM system; FM threshold effect; Pre-emphasis and De-emphasis in FM; Comparison of performances.

5.         INFORMATION THEORY                                                                                     9

Discrete Messages and Information Content, Concept of Amount of Information, Average information, Entropy, Information rate, Source coding to increase average information per bit, Shannon-Fano coding, Huffman coding, Lempel-Ziv (LZ) coding, Shannon’s Theorem, Channel Capacity, Bandwidth- S/N trade-off, Mutual information and channel capacity, rate  distortion theory,  Lossy Source coding.      


TUTORIAL     15                                                            TOTAL : 60



TEXT BOOKS

  1. Dennis Roddy & John Coolen - Electronic Communication (IV Ed.), Prentice Hall of       India.
  2. Herbert Taub & Donald L Schilling – Principles of Communication Systems ( 3rd Edition ) – Tata McGraw    Hill, 2008.

REFERENCE:

  1. Simon Haykin, Communication Systems,  John Wiley & sons, NY, 4th Edition, 2001.
  2. Bruce Carlson - Communication Systems. (III Ed.),  Mc Graw Hill.
  3. B.P.Lathi, Modern Digital and Analog Communication Systems, Third Edition, Oxfod Press,2007.
  4. R.P Singh and S.D.Sapre, “Communication Systems – Analog and Digital”, Tata McGraw Hill, 2nd Edition, 2007.
  5. John G. Proakis, Masoud Salehi, Fundamentals of Communication Systems, Pearson Education, 2006.

EC 2253                      ELECTROMAGNETIC FIELDS                                            3 1 0 4

AIM
To familiarize the student to the concepts, calculations and pertaining to electric, magnetic and electromagnetic fields so that an in depth understanding of antennas, electronic devices, Waveguides is possible.

OBJECTIVES
  • To analyze fields a potentials due to static changes
  • To evaluate static magnetic fields
  • To understand how materials affect electric and magnetic fields
  • To understand the relation between the fields under time varying situations
  • To understand principles of propagation of uniform plane waves.


UNIT I              STATIC ELECTRIC FIELDS                                                                       9

Introduction to Co-ordinate System – Rectangular – Cylindrical and Spherical Co-ordinate System – Introduction to line, Surface and Volume Integrals – Definition of Curl, Divergence and Gradient – Meaning of Stokes theorem and Divergence theorem 
Coulomb’s Law in Vector Form – Definition of Electric Field Intensity – Principle of Superposition – Electric Field due to discrete charges – Electric field due to continuous charge distribution - Electric Field due to charges distributed uniformly on an infinite and finite line – Electric Field on the axis of a uniformly charged circular disc – Electric Field due to an infinite uniformly charged sheet.
Electric Scalar Potential – Relationship between potential and electric field - Potential due to infinite uniformly charged line – Potential due to electrical dipole - Electric Flux Density – Gauss Law – Proof of Gauss Law – Applications.

UNIT II  STATIC MAGNETIC FIELD                                                                                      9

The Biot-Savart Law in vector form – Magnetic Field intensity due to a finite and infinite wire carrying a current I – Magnetic field intensity on the axis of a circular and rectangular loop carrying a current I – Ampere’s circuital law and simple applications.
Magnetic flux density – The Lorentz force equation for a moving charge and applications – Force on a wire carrying a current I placed in a magnetic field – Torque on a loop carrying a current I – Magnetic moment – Magnetic Vector Potential.

UNIT III             ELECTRIC AND MAGNETIC FIELDS IN MATERIALS                                9

Poisson’s and Laplace’s equation – Electric Polarization-Nature of dielectric materials- Definition of Capacitance – Capacitance of various geometries using Laplace’s equation – Electrostatic energy and energy density – Boundary conditions for electric fields – Electric current – Current density – point form of ohm’s law – continuity equation for current.
Definition of Inductance – Inductance of loops and solenoids – Definition of mutual inductance – simple examples. Energy density in magnetic fields – Nature of magnetic materials – magnetization and permeability - magnetic boundary conditions.

UNIT IV            TIME VARYING ELECTRIC AND MAGNETIC FIELDS                               9

Faraday’s law – Maxwell’s Second Equation in integral form from Faraday’s Law – Equation expressed in point form.
Displacement current – Ampere’s circuital law in integral form – Modified form of Ampere’s circuital law as Maxwell’s first equation in integral form – Equation expressed in point form. Maxwell’s four equations in integral form and differential form.
Poynting Vector and the flow of power – Power flow in a co-axial cable – Instantaneous Average and Complex Poynting Vector.

UNIT V ELECTROMAGNETIC WAVES                                                                   9

Derivation of Wave Equation – Uniform Plane Waves – Maxwell’s equation in Phasor form – Wave equation in Phasor form – Plane waves in free space and in a homogenous material.
Wave equation for a conducting medium – Plane waves in lossy dielectrics – Propagation in good conductors – Skin effect.
Linear, Elliptical and circular polarization – Reflection of Plane Wave from a conductor – normal incidence – Reflection of Plane Waves by a perfect dielectric – normal and oblique incidence. Dependence on Polarization.  Brewster angle.

TUTORIAL     15                                                                                                TOTAL : 60

TEXTBOOKS

  1. W H.Hayt & J A Buck : “Engineering Electromagnetics” TATA McGraw-Hill, 7th Edition 2007 (Unit I,II,III ).
  2. E.C. Jordan & K.G. Balmain  “Electromagnetic Waves and Radiating Systems.” Pearson Education/PHI 4nd edition 2006. (Unit IV, V).

REFERENCES

1.         Matthew N.O.Sadiku: “Elements of Engineering Electromagnetics” Oxford University Press, 4th edition, 2007
2.           Narayana Rao, N : “Elements of Engineering Electromagnetics” 6th edition, Pearson Education, New Delhi, 2006.
3.         Ramo, Whinnery and Van Duzer: “Fields and Waves in Communications Electronics” John Wiley & Sons ,3rd edition 2003.
4.         David K.Cheng: “Field and Wave Electromagnetics - Second Edition-Pearson Edition, 2004.
5.         G.S.N. Raju, Electromagnetic Field Theory & Transmission Lines, Pearson Education, 2006


EC 2254                         LINEAR INTEGRATED CIRCUITS                                3  0  0  3


AIM:

To teach the basic concepts in the design of electronic circuits using linear integrated circuits and their applications in the processing of analog signals.

OBJECTIVES

·         To introduce the basic building blocks of linear integrated circuits.
·         To teach the linear and non-linear applications of operational amplifiers.
·         To introduce the theory and applications of analog multipliers and PLL.
·         To teach the theory of ADC and DAC
·         To introduce the concepts of waveform generation and introduce some special function ICs.

UNIT - I           IC FABRICATION AND CIRCUIT CONFIGURATION FOR LINEAR ICs
                                                                                             9
Advantages of Ics over discrete components – Manufacturing process of monolithic Ics – Construction of monolithic bipolar transistor – Monolithic diodes – Integrated Resistors – Monolithic Capacitors – Inductors. Current mirror and current sources, Current sources as active loads, Voltage sources, Voltage References, BJT Differential amplifier with active loads, General operational amplifier stages -and internal circuit diagrams of IC 741, DC and AC performance characteristics, slew rate, Open and closed loop configurations.

UNIT - II          APPLICATIONS OF OPERATIONAL AMPLIFIERS                                 9

Sign Changer, Scale Changer, Phase Shift Circuits, Voltage Follower, V-to-I and I-to-V converters, adder, subtractor, Instrumentation amplifier, Integrator, Differentiator, Logarithmic amplifier, Antilogarithmic amplifier, Comparators, Schmitt trigger, Precision rectifier, peak detector, clipper and clamper, Low-pass, high-pass and band-pass Butterworth filters.

UNIT - III         ANALOG MULTIPLIER AND PLL                                                             9

Analog Multiplier using Emitter Coupled Transistor Pair - Gilbert Multiplier cell -  Variable transconductance technique, analog multiplier ICs and their applications, Operation of the basic PLL, Closed loop analysis, Voltage controlled oscillator, Monolithic PLL IC 565, application of PLL for AM detection, FM detection, FSK modulation and demodulation and Frequency synthesizing.

UNIT - IV         ANALOG TO DIGITAL AND DIGITAL TO ANALOG CONVERTERS     8

Analog and Digital Data Conversions, D/A converter – specifications - weighted resistor type, R-2R Ladder type, Voltage Mode and Current-Mode  Ladder types -  switches for D/A converters, high speed sample-and-hold circuits, A/D Converters – specifications - Flash type - Successive Approximation type - Single Slope type - Dual Slope type - A/D Converter using Voltage-to-Time Conversion - Over-sampling A/D Converters.

UNIT - V          WAVEFORM GENERATORS AND SPECIAL FUNCTION ICs               9

Sine-wave generators, Multivibrators and Triangular wave generator, Saw-tooth wave generator, ICL8038 function generator, Timer IC 555, IC Voltage regulators - Three terminal fixed and adjustable voltage regulators - IC 723 general purpose regulator -  Monolithic switching regulator, Switched capacitor filter IC MF10, Frequency to Voltage and Voltage to Frequency converters, Audio Power amplifier, Video Amplifier, Isolation Amplifier, Opto-couplers and fibre optic IC.
                                                                                                              
         TOTAL : 45  PERIODS

TEXT BOOKS:
1.      Sergio Franco, Design with operational amplifiers and analog integrated circuits, 3rd Edition, Tata McGraw-Hill, 2007.
2.      D.Roy Choudhry, Shail Jain,  Linear Integrated Circuits, New Age International Pvt. Ltd., 2000.

REFERENCES:
1.      B.S.Sonde, System design using Integrated Circuits , New Age Pub, 2nd  Edition, 2001
2.      Gray and Meyer, Analysis and Design of Analog Integrated Circuits, Wiley International, 2005.
3.      Ramakant A.Gayakwad, OP-AMP and Linear ICs, Prentice Hall / Pearson Education, 4th Edition, 2001.
4.      J.Michael Jacob, Applications and Design with Analog Integrated Circuits, Prentice Hall of India, 1996.
5.      William D.Stanley, Operational Amplifiers with Linear Integrated Circuits, Pearson Education, 2004.
6.      K Lal Kishore, Operational Amplifier and Linear Integrated Circuits, Pearson Education, 2006.
  1. S.Salivahanan & V.S. Kanchana Bhaskaran,  Linear Integrated Circuits, TMH,  2008.


EC 2255                                  CONTROL SYSTEMS                                           3  0  0  3

AIM
To familiarize the students with concepts related to the operation analysis and stabilization of control systems

OBJECTIVES
  • To understand the open loop and closed loop (feedback ) systems
  • To understand time domain and frequency domain analysis of control systems required for stability analysis.
  • To understand the compensation technique that can be used to stabilize control systems

1.         CONTROL SYSTEM MODELING                                                                       9
Basic Elements of Control System – Open loop and Closed loop systems - Differential equation - Transfer function, Modeling of Electric systems, Translational and rotational mechanical systems - Block diagram reduction Techniques - Signal flow graph

2.         TIME RESPONSE ANALYSIS                                                                              9 
Time response analysis - First Order Systems - Impulse and Step Response analysis of second order systems - Steady state errors – P, PI, PD and PID Compensation, Analysis using MATLAB

3. FREQUENCY RESPONSE ANALYSIS                                                                      9
Frequency Response - Bode Plot, Polar Plot, Nyquist Plot - Frequency Domain specifications from the plots - Constant M and N Circles - Nichol’s Chart - Use of Nichol’s Chart in Control System Analysis. Series, Parallel, series-parallel Compensators - Lead, Lag, and Lead Lag Compensators, Analysis using MATLAB.
               
4. STABILITY ANALYSIS                                                                                                  9
Stability, Routh-Hurwitz Criterion, Root Locus Technique, Construction of Root Locus, Stability, Dominant Poles, Application of Root Locus Diagram - Nyquist Stability Criterion - Relative Stability, Analysis using MATLAB

5. STATE VARIABLE ANALYSIS & DIGITAL CONTROL SYSTEMS                          9
State space representation of Continuous Time systems – State equations – Transfer function from State Variable Representation – Solutions of the state equations - Concepts of Controllability and Observability – State space representation  for Discrete time systems. Sampled Data control systems – Sampling Theorem – Sample & Hold – Open loop & Closed loop sampled data systems.
                                                                                                         TOTAL : 45  PERIODS



TEXTBOOK:

1.                  J.Nagrath and M.Gopal,” Control System Engineering”, New Age International Publishers, 5th Edition, 2007.
2.                  M.Gopal, “Control System – Principles and Design”, Tata McGraw Hill, 2nd Edition, 2002.

REFERENCES:

1.         Benjamin.C.Kuo, “Automatic control systems”, Prentice Hall of India, 7th Edition,1995.
2.         M.Gopal, Digital Control and State Variable Methods, 2nd Edition, TMH, 2007.
3.         Schaum’s Outline Series,’Feedback and Control Systems’ Tata McGraw-
Hill, 2007.
4.         John J.D’azzo & Constantine H.Houpis, ’Linear control system analysis and design’, Tata McGrow-Hill, Inc., 1995.
5.         Richard C. Dorf & Robert H. Bishop, “ Modern Control Systems”, Addidon – Wesley, 1999.



EC 2257          ELECTRONICS CIRCUITS II AND SIMULATION LAB           0  0  3  2
 
Design of following circuits
1.      Series and Shunt feedback amplifiers:
      Frequency response, Input and output impedance calculation
2.      RC Phase shift oscillator, Wien Bridge Oscillator
3.      Hartley Oscillator, Colpitts Oscillator
4.      Tuned Class C Amplifier
5.      Integrators, Differentiators, Clippers and Clampers
6.      Astable, Monostable and Bistable multivibrators

SIMULATION USING PSPICE:
1.      Differential amplifier
2.      Active filters : Butterworth 2nd order LPF, HPF (Magnitude & Phase Response)
3.      Astable, Monostable and Bistable multivibrator - Transistor bias
4.      D/A and A/D converters (Successive approximation)
5.      Analog multiplier
6.      CMOS Inverter, NAND and NOR

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