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Schedule of Classes

 

Spring Semester 2020

 

Electrical & Computer Engineering
Yufeng Lu • BECC 4256 • 309-677-3564
ECE101Introduction to EE: DC Circuits (2 hours)
 01 MW3:00 PM -3:50 PM BEC4120 Brian D Huggins  
 02 MW4:00 PM -4:50 PM BEC4120 Brian D Huggins  
ECE102Intro to EE: Digital Systems (3 hours)
 01 MWF3:00 PM -3:50 PM BEC3160 Young Soo Kim  
 02 MWF4:00 PM -4:50 PM BEC3160 Young Soo Kim  
ECE200Engineering Co-Op (0 hours)
Prerequisite: Sophomore standing in the College of Engineering and Technology, 2.0 overall grade point average at Bradley, approval of engineering and technology Co-op coordinator and Co-op faculty advisor.
 01 *R* Arr     Julie Reyer  
ECE206Continuous-time Signals and Systems (3 hours)
Prerequisite: ECE 204 with a minimum grade of C.
 01 MWF9:00 AM -9:50 AM BEC4261 Yufeng Lu  
 02 MWF10:00 AM -10:50 AM BEC4261 Yufeng Lu  
ECE207Simulation and Analysis for Electrical Engineers (2 hours)
Prerequisite: ECE103 with a minimum grade of C.
Corequisite: Concurrent enrollment in MTH 207.
 01 MW10:00 AM -10:50 AM BEC2132 Mohammed Imtiaz  
 02 MW11:00 AM -11:50 AM BEC4261 Mohammed Imtiaz  
ECE208Transmission Lines and Electromagnetic Fields (3 hours)
Prerequisite: Concurrent enrollment in MTH 223
Prerequisite: ECE 204 with a minimum grade of C
 01 MWF9:00 AM -9:50 AM BEC4120 Prasad Shastry  
 02 MWF11:00 AM -11:50 AM BEC3160 Prasad Shastry  
ECE221AC Circuits and Systems Laboratory (2 hours)
Prerequisite: A minimum grade of C in ECE 204 and credit in ECE 205.
Corequisite: ECE 206.
 01 W3:00 PM -3:50 PM BEC4140 Steven D Gutschlag  
 A Th9:00 AM -11:30 AM BEC4242 Steven D Gutschlag  
 B Th2:00 PM -4:30 PM BEC4242 Steven D Gutschlag  
ECE227Electrical Engineering Fundamentals (4 hours)
Prerequisite: PHY 201
Corequisite: MTH 224
 01 MWF10:00 AM -10:50 AM BEC4242 Prasad Shastry  
 and W2:00 PM -4:00 PM     BEC4242     Scarlet M Daoud 
 02 MWF9:00 AM -9:50 AM BEC4242 Scarlet M Daoud  
 and F3:00 PM -5:00 PM     BEC4242      
ECE402Undergraduate Design Seminar II (1 hour)
Prerequisite: ECE401 with a minimum grade of C.
 01 W12:00 PM -12:50 PM BEC3160 Brian D HugginsCore: EL,WI 
ECE410Special Topics (1 to 6 hours)
Prerequisite: Consent of instructor.
 01 TT12:00 PM -1:15 PM BR026 Young Soo Kim  
 "Cyber Physical System"
ECE442Control System Theory II (3 hours)
Prerequisite: A minimum grade of C in: ECE 441 and ECE 301
 01 MWF9:00 AM -9:50 AM BEC4160 Jing Wang  
ECE443Cooperative Control of Multiagent Systems (3 hours)
Prerequisite: ECE 441.
 01 TT1:30 PM -2:45 PM BEC4140 Jing Wang  
ECE445Power Electronics Fundamentals (3 hours)
Prerequisite: ECE 303
 01 MTu5:00 PM -6:15 PM BEC1170 Joshua M. Williams  
ECE446Power Laboratory (3 hours)
Prerequisite: ECE 303
 01 M2:00 PM -2:50 PM BEC4160 Steven D Gutschlag  
 and Tu9:00 AM -11:50 AM     BEC3274      
 MONDAY CLASS MEETS IN BEC 4160B.
ECE460Digital Signal Processing (3 hours)
Prerequisite: ECE 301 with a minimum grade of C.
 01 TT9:00 AM -10:15 AM BEC4140 Yufeng Lu  
ECE465Engineering Applications of Machine Learning (3 hours)
Prerequisite: ECE 302 with a minimum grade of C.
 01 MWF12:00 PM -12:50 PM BEC4240 Mohammed Imtiaz  
ECE467Mobile Robotics Laboratory (3 hours)
Prerequisite: ECE 207 and ECE 322 with a minimum grade of C.
 01 MW1:00 PM -1:50 PM BEC3240 Suruz Miah  
 and Tu2:00 PM -4:30 PM     BEC3240     Suruz Miah 
ECE468Introduction to Mechatronics (3 hours)
Prerequisite: ECE 221 or ECE 227
 01 TT10:30 AM -11:45 AM BEC4160 Suruz Miah  
ECE471Real-time Operating Systems (3 hours)
Prerequisite: ECE 205 with minimum grade of C.
 01 MWF11:00 AM -11:50 AM BEC4160 Aleksander Malinowski  
 COURSE SECTION MEETING IN BECC 4160B
ECE472Embedded Microcontroller Linux (3 hours)
Prerequisite: ECE 205 with a minimum grade of C.
 01 MW4:30 PM -5:45 PM BEC4240 Aleksander Malinowski  
ECE473Embedded TCP/IP (3 hours)
Prerequisite: ECE 205 with minimum grade of C.
Crosslisted as ECE 573.
 01 MW3:00 PM -4:15 PM BEC4240 Aleksander Malinowski  
ECE482Digital Systems: High Level Synthesis and Codesign (3 hours)
Prerequisite: ECE 205 with a minimum of C.
 01 MWF2:00 PM -2:50 PM BEC3224 Young Soo Kim  
ECE497Capstone Project System Level Design (1 hour)
Prerequisite: A minimum grade of C in ECE 301, ECE 302, ECE 303, and ECE 322. Concurrent enrollment in two core courses.
 01 Arr     Aleksander Malinowski  
ECE498Senior Capstone Project I (2 hours)
Prerequisite: Concurrent enrollment in ECE 497.
 01 Arr     Aleksander Malinowski  
ECE499Senior Capstone Project II (3 hours)
Prerequisite: ECE 498 with a minimum grade of C.
 01 TT9:00 AM -11:50 AM BEC4281 Young Soo KimCore: WI 
 02 TT9:00 AM -11:50 AM BEC3274 Steven D GutschlagCore: WI 
 03 TT2:00 PM -4:50 PM BEC4281 Brian D HugginsCore: WI 
 04 TT9:00 AM -11:50 AM BEC4281 Mohammed ImtiazCore: WI 
 05 TT2:00 PM -4:50 PM BEC4281 Yufeng LuCore: WI 
 06 TT2:00 PM -4:50 PM BEC4281 Aleksander MalinowskiCore: WI 
 07 TT2:00 PM -4:50 PM BEC4241 Suruz MiahCore: WI 
 08 TT9:00 AM -11:50 AM BEC4260 Prasad ShastryCore: WI 
 09 TT9:00 AM -11:50 AM BEC4241 Jing WangCore: WI 
ECE543Cooperative Control of Multiagent Systems (3 hours)
Prerequisite: Not open to students with credit in ECE 443.
 01 TT1:30 PM -2:45 PM BEC4140 Jing Wang  
ECE545Power Electronics Fundamentals (3 hours)
 01 MTu5:00 PM -6:15 PM BEC1170 Joshua M. Williams  
ECE560Digital Signal Processing (3 hours)
Prerequisite: Graduate standing or a minimum grade of C in ECE 301 or equivalent. Not open to students with credit in ECE 460.
 01 TT9:00 AM -10:15 AM BEC4140 Yufeng Lu  
ECE565Engineering Applications of Machine Learning (3 hours)
Prerequisite: Graduate standing or a minimum grade of C in ECE 302 or equivalent. Not open to students with credit in ECE 465.
 01 MWF12:00 PM -12:50 PM BEC4240 Mohammed Imtiaz  
ECE568Introduction to Mechatronics (3 hours)
Prerequisite: ECE 221 or ECE 227
 01 TT10:30 AM -11:45 AM BEC4160 Suruz Miah  
ECE571Real-time Operating Systems (3 hours)
Prerequisite: Graduate standing or a minimum grade of C in ECE 205 or equivalent. Not open to students with credit in ECE 471.
 01 MWF11:00 AM -11:50 AM BEC4160 Aleksander Malinowski  
ECE572Embedded Microcontroller Linux (3 hours)
Prerequisite: Graduate standing or a minimum grade of C in ECE 205 or equivalent. Not open to students with credit in ECE 472.
 01 MW4:30 PM -5:45 PM BEC4240 Aleksander Malinowski  
ECE573Embedded TCP/IP (3 hours)
Prerequisite: Graduate standing or a minimum grade of C in ECE 205 or equivalent. Not open to students with credit in ECE 473.
Crosslisted as ECE 473.
 01 MW3:00 PM -4:15 PM BEC4240 Aleksander Malinowski  
ECE582Digital Systems: High Level Synthesis and Codesign (3 hours)
Prerequisite: ECE 205 with a minimum grade of C or equivalent, or graduate standing, or consent of the instructor. Not open to students with credit in ECE 482.
 01 MWF2:00 PM -2:50 PM BEC3224 Young Soo Kim  
ECE681Topics in Electrical Engineering (0 to 6 hours)
 01 Arr     Jing Wang  
 "Adv Dyn Sys&Control"
 02 MWF10:00 AM -10:50 AM BEC4160 Young Soo Kim  
 
Introduction to electrical engineering. Topics includes: voltage, current, resistance, power, and energy, fundamentals of DC circuit analysis using Ohm's and Kirchoff's laws, Thevenin and Norton equivalent circuits, superposition, DC analysis of operational amplifiers, and simulation and analysis of DC circuits using SPICE.
Introduction to logic design with focus on the following topics: fundamentals of Boolean algebra and minimization techniques, logic realizations of SOP and POS functions, multiple function synthesis using PLDs, combinational circuit design as it applies to computers, sequential circuit elements, flip flops, counters and shift-registers, clock generation circuits, algorithmic state machine method of designing sequential circuits, and VHDL design and synthesis. Course culminates with a design project that uses VHDL to implement a finite state machine.
Full-time cooperative education assignment for electrical engineering students who alternate periods of full-time school with periods of full-time academic or career-related work in industry. Satisfactory/Unsatisfactory.
The study of signals and systems using the continuous-time approach. Topics covered: Modeling of continuous time physical systems, sampling, transformation of continuous-time signals, Fourier series, Fourier transform, energy and power density spectra, filter design, stability, state variables for continuous-time systems, feedback, bandwidth, modulation. Simulation and analysis of systems using MATLAB and Simulink.
Numerical analysis and modeling techniques of real-world problems as pertinent to electrical engineers using MATLAB and Simulink.
Time-harmonic steady-state and transient analysis of radio frequency (RF) transmission lines (T Lines); impedance matching; the Smith chart and its applications; vector analysis; static electric fields and capacitance; steady currents and resistance; static magnetic fields and inductance; electrical and magnetic properties of materials; electric and magnetic boundary conditions; electric and magnetic energies.
The student is introduced to experimental implementation of topics covered in ECE 204, ECE 205, and ECE 206.
Introduce fundamentals of electrical engineering principles. Basic circuit theory, Operational Amplifiers, First and second order passive circuits, AC sinusoidal analysis, Frequency Responses, Digital logic circuits, DC motors and generators, and accompanying laboratory experiments and projects. Open to non-electrical engineering majors only.
Multidisciplinary team effort to identify a market need based on realistic constraints; propose an electrical or electronic product to meet the need; prepare and present a strategy for launching a business venture to design, develop, manufacture and sell the product.
Topics of special interest which may vary each time course is offered. Topic stated in current Schedule of Classes.
Frequency domain design of linear automatic control systems. Analysis and design of linear automatic control systems for sampled-data and discrete-time systems. Classical and modern control theory methods. Modeling of sampled-data and discrete-time systems.
The analysis and control of networked and autonomous multiagent systems, cooperative control issues in multiagent systems, introduction to nonlinear system analysis and control design, control of mobile agents with kinematic constraints, use of fundamental tools in modeling and control of linear multiagent systems and nonlinear multiagent systems, applications of multiagent systems through case studies on cooperative control. Cross-listed as ECE 543.
Fundamentals of power electronics. Covered topics: DC/DC converters, DC/AC converters (inverters), and AC/DC rectifiers, analysis, design, simulation and application of power electronic based systems. Cross-listed as ECE 545.
Experiments in transformers and rotating machines. Covered topics: electric machinery principles; brushed DC motor connections, operational characteristics, and applications; linear brushed DC motor model development, simulation, and verification; wound rotor and squirrel cage AC induction motor connections, operational characteristics, and applications; linear single-phase transformer model development and verification; power electronic H-bridge.
Design of digital filters and multirate systems. Topics include: review of discrete-time signals and systems, generalized linear phase, all-pass filters, minimum phase systems, inverse systems, FIR filter design, IIR filter design, resampling in time and frequency domain, half-band filters, polyphase filters, quadrature mirror filters and wavelets. Cross-listed as ECE 560.
This course covers the theory, design, and engineering applications of machine learning with the emphasis on computational intelligence. Embedded hardware platforms, high-performance libraries, and high-performance architectures are used for implementation. Variants such as Deep Neural Networks and Convolutional Neural Networks are examined. Cross-listed as ECE 565.
An explorative laboratory-based study of autonomous mobile robotics. Mobile robots utilizing sensors and microcontrollers to navigate using localization, motion control, and mapping algorithms.
Introduction to mechatronics: mechatronics overview, sensors and actuators modeling, interfacing sensors and actuators with digital systems.
Advanced programming of small microprocessor-based systems using high-level programming languages applied to real situations: data acquisition, control, communication, small real-time operating systems. Software development for devices from a family of microcontrollers that are relevant to industrial applications. Cross-listed as ECE 571.
Understanding of Linux and its adoption as an embedded OS platform, including process and thread management; communication, synchronization, and deadlocks; virtual memory and file systems; overview of methods and techniques to design and create embedded systems based on the Linux kernel. The essentials of the Linux operating system are discussed from the embedded system point of view, including selecting, configuring, cross-compiling, and installing a target-specific kernel, drivers, and subsystems; the GNU development tool chain; and tools used to build embedded Linux systems. Cross-listed as ECE 572.
Fundamental concepts of computer networks and network programming; computer network topologies; TCP/IP stack; IP routing and routing algorithms; client-server paradigm; lower-layers protocols: IP, UDP, and TCP; basic application-layer protocols: HTTP, SMTP, POP3, TIME, TFTP, and DHCP; Berkeley Socket API; examples of socket API for small 8-bit or 16-bit embedded microcontroller system; principles of network security. Cross-listed as ECE 573.
Topics covered: FPGA architecture; embedded development tool flow; introduction to SoC; shared/dedicated busses; customized IP design; HW/SW interface; system performance analysis and bottleneck identification for a given HW/SW architecture; software partition; transformation between HW/SW components; hardware acceleration, FPGA codesign applications. Cross-listed as ECE 582.
The primary goal of this course is to have the student (and partner) choose a senior project and use a top-down design approach prior to implementation in senior lab. In addition, the student will serve on a Design Review Team (DRT) that will analyze other senior projects.
Design and implementation of senior design capstone project. Requires an oral progress presentation.
Continuation of the design and implementation of the senior design capstone project. Culminates in an oral presentation and a written report.
The analysis and control of networked and autonomous multiagent systems, cooperative control issues in multiagent systems, introduction to nonlinear system analysis and control design, control of mobile agents with kinematic constraints, use of fundamental tools in modeling and control of linear multiagent systems and nonlinear multiagent systems, applications of multiagent systems through case studies on cooperative control. Cross-listed as ECE 443.
Fundamentals of power electronics. Covered topics: DC/DC converters, DC/AC converters (inverters), and AC/DC rectifiers, analysis, design, simulation and application of power electronic based systems. Cross-listed as ECE 445. Not open to students with credit in ECE 445.
Design of digital filters and multirate systems. Topics include: review of discrete-time signals and systems, generalized linear phase, all-pass filters, minimum phase systems, inverse systems, FIR filter design, IIR filter design, resampling in time and frequency domain, half-band filters, polyphase filters, quadrature mirror filters and wavelets. Cross-listed as ECE 460.
This course covers the theory, design, and engineering applications of machine learning with the emphasis on computational intelligence. Embedded hardware platforms, high-performance libraries, and high-performance architectures are used for implementation. Variants such as Deep Neural Networks and Convolutional Neural Networks are examined. Cross-listed as ECE 465.
Introduction to mechatronics: mechatronics overview, sensors and actuators modeling, interfacing sensors and actuators with digital systems. Cross-listed as ECE 468. Not open to students with credit in ECE 468.
Advanced programming of small microprocessor-based systems using high-level programming languages applied to real situations: data acquisition, control, communication, small real-time operating systems. Software development for devices from a family of microcontrollers that is relevant to industrial applications. Cross-listed as ECE 471.
Advanced programming of small microprocessor-based systems using high-level programming languages applied to real situations: data acquisition, control, communication, small real-time operating systems. Software development for devices from a family of microcontrollers that is relevant to industrial applications. Cross-listed as ECE 472.
Fundamental concepts of computer networks and network programming; computer network topologies; TCP/IP stack; IP routing and routing algorithms; client-server paradigm; lower-layers protocols: IP, UDP, and TCP; basic application-layer protocols: HTTP, SMTP, POP3, TIME, TFTP, and DHCP; Berkeley Socket API; examples of socket API for small 8-bit or 16-bit embedded microcontroller system; principles of network security. Cross-listed as ECE 473.
Provides an introduction to hardware/software (HW/SW) codesign. The codesign is a set of methodologies and techniques to support the concurrent design to effectively reduce multiple iteration and major redesigns in embedded systems. FPGA device is an innovative platform to conduct codesign for System-on-a-Chip (SoC). Topics covered: FPGA architecture; embedded development tool flow; introduction to SoC; shared/dedicated busses; customized IP design; HW/SW interface; system performance analysis and bottleneck identification for a given HW/SW architecture; software partition; transformation between HW/SW components; hardware acceleration, FPGA codesign applications. Cross-listed as ECE 482.
Topics of special interest which may vary each time course is offered. Topic stated in current Schedule of Classes. Repeatable to a maximum of 6 semester hours.
This course meets a Core Curriculum requirement.
OC - Communication - Oral Communication
W1 - Communication - Writing 1
W2 - Communication - Writing 2
FA - Fine Arts
GS - Global Perspective - Global Systems
WC - Global Perspective - World Cultures
HU - Humanities
NS - Knowledge and Reasoning in the Natural Sciences
SB - Knowledge and Reasoning in the Social and Behavioral Sciences
MI - Multidisciplinary Integration
QR - Quantitative Reasoning
This section meets a Core Curriculum requirement.
EL - Experiential Learning
IL - Integrative Learning
WI - Writing Intensive
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