. His research interests are in Robotics, Computer Vision, and their applications, as well as Engineering Education. He is PI of an education grant on Engineering Design from National Science Foundation, which expires in 2016.Dr. Ali Zilouchian, Florida Atlantic University Ali Zilouchian is currently the Associate Dean for Academic Affairs and a professor in the College of Engineering and Computer Science at Florida Atlantic University. He is also currently the Director of ”CAPTURE” program which is related to increasing pipeline, graduation rate as well as future jobs in the State of Florida related to STEM graduates especially Computer Science and Engineering fields. His recent projects have been funded by DOE
development of newteaching material and activities (courses, student design projects, and research) related to mixed-signal embedded system design11,12. The developed material includes the following: • Complete course material for a one-semester course on embedded mixed-signal systems. The course is designed for senior undergraduate students and first-year graduate students in Electrical and Computer Engineering (ECE). This material is due to be published as a textbook and is available at www.cypress.com . For an evaluation copy please contact cuap@cypress.com. Page 13.927.3 • Related laboratory material was
excellence in engineering education and positioning itself for ABET accreditation,the College of Engineering (CoEng) at the University of Tabuk (UT), Tabuk located in SaudiArabia has integrated a strong engineering practice component into its educational programcurricula. This component relies on a series of courses that foster a variety of soft skills wrappedaround four design project courses and two four-week practical training periods at a company orresearch facility. Furthermore, students at the senior level are strongly encouraged to undertakerealistic projects. In this paper, we describe our experience with three groups of students fromthe Electrical Engineering (EE) Department who undertook projects sponsored by the SensorNetworks and
are given table thatlists various costs such labor rates, use of the lab space, and an overhead rate. Thecreation of the budget is a pre-lab task. A post-lab task that is included in the lab report acost report. The cost report details the actual cost of performing the experiment andcomparing the actual costs with the predicted costs.The lecture-based courses all have at least one design project. Modifications were madeto the current design project to include the components that would typically be found in abusiness setting (for example, cost proposals). Students are required to bid on theproject. Students must submit a final report which includes the cost report – including ananalysis of the bid cost versus the actual cost. The professor
chair of the Electrical and Computer Engineering Department at the California State University, Chico in 2017. She is actively involved in the development of mobile hands-on pedagogy as well as research on other topics in STEM education, the synthesis and characterization of nanoscale materials, and fermentation processes. c American Society for Engineering Education, 2019 Enhancing Control Systems Design Course by Using Experiential Learning ModelIn this paper, authors present the outcomes of implementing an experiential learning model toexplore innovative teaching pedagogy in CSU Chico EECE 482 Control Systems Design course.To reach this goal, multiple projects and
and supporting software for teaching digitalsignal processing (DSP) concepts to undergraduate electrical and computer engineering students.The proposed approach creates an interactive learning environment based on mobile studiopedagogy. A series of studio projects have been developed, each of which requiresimplementation and testing of DSP algorithms on data received by student-owned SDRs. Datasources include signals of opportunity as well as instructor-generated test signals. The result is amobile learning environment in which students can visualize and apply abstract theoreticalconcepts, implement real-time algorithms, and rapidly test their designs using real-world data.IntroductionSoftware-defined radio (SDR) technology has transformed
enrolledin the class of “Digital Signal Processing (DSP).” Two undergraduate students who have takenthe course of “Signals and Systems” but have not yet taken or finished “Digital Signal Processing”were invited to test laboratory exercises developed in this project. The goal of this project is todevelop laboratory exercises to demonstrate theories covered in fundamental signal processingcourses. Such courses are mathematically orientated and students often feel challenged in theseclasses. We believe that experimental exercises with real-life application examples can motivatestudents and help them to develop a better understanding of signal processing theories.IntroductionOne of major issues an electrical engineering undergraduate student encounters
teaching practice and scholarship across campus. She teaches graduate and undergraduate courses in research, leadership, and teaching. She is currently involved in several research studies on best practices in teaching in higher education, and is leading two groups of faculty scholars who are investigating research projects regarding teaching in their disciplines. Page 11.777.1Rohit Verma, University of Utah Rohit Verma joined the David Eccles School of Business in 2001 as an Associate Professor of Operations Management and is the School’s Thayne Robson Fellow. From 1995 to 2001 he was
(ECE) Department at the United States Air Force Academy created a breadth-first introductory course to give students this view as a starting point in their education. A thorough review of the curriculum revealed primary knowledge areas that the students need early in their education in order to better prepare them for the depth of a rigorous ECE curriculum. This knowledge includes, but is not limited to, Radio Frequency (RF) communications, RADAR and electronic warfare, analog circuits including power generation and distribution and digital circuits and systems. These topics were selected due to their extensive use in senior capstone projects and needs the industry of the program constituents? The solution proposed here is to
communications systems in aircraft, including intra-vehicle MIMO performance. She has been involved in the Society of Women Engineers and the Institute for Electrical and Electronics Engineers chapter government and activities. She is presently involved in the TA Scholar Program at the University of Utah working on a project to improve teaching and learning in her department.Cynthia Furse, University of Utah Dr. Cynthia Furse is a Professor of Electrical and Computer Engineering at the University of Utah and the Associate Chair for Undergraduate Studies. She is the PI of an NSF DLR project – Integrated System Level Design -- and an NSF STEP program -- Utah’s Engineers: A Statewide Initiative
required for the course areprogramming using a high level language such as C/C++ or Java and an understanding of logicdesign, both which a typical undergraduate computer engineering student acquires at thesophomore or the junior level. An associated laboratory component was also developed, whereweekly hands-on laboratory sessions serve to reinforce the ideas learned in the lecture. Thecourse projects are drawn from a variety of disciplines which use high performance computingincluding bioinformatics, scientific computing, and signal processing. The course was assessedthrough pre and post tests, focus groups, and external evaluators drawn from faculty from otherdepartments. Our assessments indicate that the course has had a significant impact on
, among others. Several examples are deviceimplants, optical devices, micro and nanomachining, embedded systems and integratednano sensor systems. The recent Electrical and Computer Engineering (ECE) andMechanical Engineering (ME) curricula lacked inclusion of these elements within theirprograms. Close scrutiny to the need of local industry from engineering graduates hasemphasized the motivation to develop these materials into the engineering curricula.Within the ECE curriculum, a new senior course was developed to cover MEMS/NEMSdevices as well as wearable and IoT devices with Bluetooth and wireless features. TheMEMS/NEMS module of the new course integrates software CAD tools and hardwareimplementations. It is a project-based course where
Paper ID #19299Evolution of an Introductory Electrical Engineering and Programming CourseProf. Branimir Pejcinovic, Portland State University Branimir Pejcinovic received his Ph.D. degree from University of Massachusetts, Amherst. He is a Pro- fessor and former Associate Chair for Undergraduate Education at Portland State University, Electrical and Computer Engineering department. In this role he has led department-wide changes in curriculum with emphasis on project- and lab-based instruction and learning. His research interests are in the areas of engineering education, semiconductor device characterization, design and
AC 2009-566: INTEGRATION OF AN INNOVATIVE ENGINEERING PROGRAMIN A SUNY COLLEGERachid Manseur, State University of New York, OswegoAdrian Ieta, State University of New York, Oswego Adrian Ieta holds a Ph.D. in Electrical Engineering (2004) from The University of Western Ontario, Canada. He also holds a B.Sc. in Physics from the University of Timisoara, Romania (1984), a B.E.Sc. in Electrical Engineering from the Polytechnical University of Timisoara (1992), and an M.E.Sc. from The University of Western Ontario (1999). He worked on industrial projects within the Applied Electrostatics Research Centre and the Digital Electronics Research Group at the University of Western Ontario and is an IEEE
, Ryan Coyne, Lei Zhang, Ibibia Dabipi University of Maryland Eastern ShoreAbstract Social networking apps have penetrated every aspect of students’ daily life. However, manystudents are experiencing communication difficulties in their learning process. In this paper, wepresent our work, 'UMES-Chat', a mobile social network application that serves mainly for educationpurposes. It is developed with Xcode© on the iOS platform and utilizes XMPP protocol tocommunicate with the phone. By the use of the app, college students can effectively communicatewith each other and faculty, to discuss, share information, solve learning issues, and work in teamson course projects. In addition, the mobile application is being
engineering faculty/student partnership involved exposing theundergraduate to a small scale research project designed to reflect typical activities experiencedby graduate students. The student went through the entire cycle of design, simulation,fabrication, and test of a working device prototype. Through this approach, the studentexperienced a microcosm of graduate school while interacting with graduate students,experiencing the difference between laboratory and simulation work, and developing technicalwriting skills through the development of the electronic portfolio.IntroductionA program referred to as "Research on Research" has been developed to expose undergraduatestudents to academic research. The program is instituted through the Technology
teamwork and communication, and is not effectively taughtby lecture, cookbook labs, or emphasizing analytical solution techniques. To communicateconcepts and skills requires students to both develop an understanding of concepts and to testthat understanding by applying the concepts and skills. Application serves as formative Page 11.1424.2 1 This work is funded by the National Science Foundation under grants: 0230695 & 0311257.evaluation. VECTOR is a project-based approach to EM in which student teams develop andevaluate their grasp of concepts through application in a complete project design-build-test cycle.The introductory EM
concludes with some lessons learned through the Senior Design Capstone experiencefrom which this multi-threaded software was designed, written, debugged, revised and releasedfor experimentation in DLD. CedarLogic's 10,000+ lines of code is written in C++ and utilizesthe wxWidgets GUI library and OpenGL to render the graphics. CedarLogic can be freelydownloaded at http://sourceforge.net/projects/cedarlogic .Background and NeedDigital Logic Design is a foundational course for many engineering and computer sciencestudents. The first author has been teaching a freshman level Digital Logic Design course forover twelve years. The course includes laboratory projects in which students physically wire upTTL gates on a breadboard, use the CedarLogic software
FPGAsAbstractState-of-the-art Field Programmable Gate Arrays (FPGAs) can now implement designs withmillions of logic gates at speeds and power dissipation that rival custom integrated circuitdesigns for many applications, but at a fraction of the development cost. This paper will discussrecent experiences on working with undergraduate researchers in the area of FPGA design at theUniversity of Texas at Tyler. Criteria for the selection of appropriate research projects will begiven. Issues such as methods for supervision, motivation, and funding will also be discussed.Assessment of using undergraduate student researchers in the area of FPGA design are carriedout through faculty observations, generation of conference paper submissions and posterpresentations
underrepresented groups of undergraduate engineering studentsto pursue an engineering career path, academic or otherwise.In this paper, we describe a pilot of an on-going, multiple-year research project, carried out byundergraduate female students incorporating research and education in computer science andengineering (CS&E). Many-core processors are becoming increasingly popular ingeneral-purpose computing. While most researchers agree that this requires introduction ofparallelism to mainstream CS&E practice, and hence education, parallel programming difficultiesremain obstacles that are yet to be overcome. For concreteness, the research project involves acertain many-core framework, called eXplicit Multi-Threading (XMT). The XMT
special focus on adaptive approaches, and techniques for level-of-detail that allowrendering and visualization of massive datasets. Students must implement a project in which theymodel and visualize a 3-D implicit object. This task is embarrassingly parallel, and special focusis put on parallel implementation. Rendering is the last topic and students discuss it within thecontext of real-time photorealistic imagining on the GPU.We report on the students’ perceptions of their general experience related to the relevance of thecourse and its content. Overall, the students were positive in their responses of considering totake this course as a positive experience ( , 3.26, 0.45), even though they were neutral intheir perceptions of finding
projects in industry and academia for more than 15 years.Dr. Nicholas B. Conklin, Gannon University Nicholas B. Conklin received a B.S. in applied physics from Grove City College in 2001, and a Ph.D. in physics from Penn State University in 2009. He is currently an associate professor and chair of the Physics Department at Gannon University, Erie, PA. c American Society for Engineering Education, 2017 Solar Eclipse Ballooning with a Multiband Tracking Subsystem for Undergraduate Research ExperienceAbstractThis paper discusses an on-going research project that offers an undergraduate research platform inelectrical and computer engineering (ECE), especially for high-altitude
cutting-edgeNASA-related research into the undergraduate curriculum. Cal Poly Pomona chose toincorporate the Jet Propulsion Laboratories (JPL) robotic technology research into theundergraduate curricula of the Electrical and Computer Engineering Department, theEngineering Technology Department, Mechanical Engineering Department, and the ComputerScience Department. We proposed to conduct an interdisciplinary project, "Deep SpaceExploration using Smart Robotic Rovers", and develop an autonomous robotic rover.During the last three years, students and faculty participating in this program have developed arobotic rover that has successfully accomplished the initial goals of the project: (1) semi-autonomous navigation systems for remote robots, (2
desired level of technical analysis required of this junior level course offering,numerous methods for extending learning beyond the classroom and encouraging studentengagement with the material have been explored. Over the past five years, active learninginstructional techniques inspired by the Process Oriented Guided Inquiry Learning (POGIL)approach and project based laboratory learning have been intermixed with traditional lecturesand the flipped classroom method in an attempt to improve student learning.This paper reports on the variety of methods used, how each instructional method is integratedinto the classroom environment, the rationale behind implementing the various techniques, andthe observations and impacts on student outcomes
the Center for Research on Learning and Teaching in Engineering at U-M in 2003 and served as its Director for 12 years. Prior to joining U-M, Dr. Finelli was the Richard L. Terrell Professor of Excellence in Teaching, founding director of the Center for Excellence in Teaching and Learning, and associate professor of electrical engineering at Kettering University. Dr. Finelli’s current research interests include student resistance to active learning, faculty adoption of evidence-based teaching practices, the use of technology and innovative pedagogies on student learning and success, and the impact of a flexible classroom space on faculty teaching and student learning. She also led a project to develop a taxonomy
systemsengineering methodologies, design architecture, and hardware issues. The SoftwareCommunications Architecture (SCA), a military SDR design standard, is used as anillustrative example of smart systems engineering through establishment of a well-definedarchitecture. Software topics include software architectures, object oriented programming,the SCA and other relevant software standards, multi-rate signal processing, and softwareengineering. Hardware topics include the radio frequency front end, analog-to-digital anddigital-to-analog converters, microprocessors, digital signal processors, and fieldprogrammable gate arrays. Hands-on SDR laboratories undergird project-based learning.Laboratories include development of SCA-based modular signal processing
experiences and results in developing and delivering two coreElectrical and Computer Engineering (ECE) courses with laboratory components completelyonline using an internet based distance learning delivery system and the Mobile Studiotechnology and pedagogy. The challenge in offering ECE courses online is the fact they have avery intensive hands-on component, such as design and laboratory experiments, that requirestudents to use expensive laboratory equipment to complete and demonstrate their projects. Thisimplied that until now, institutions offering ECE laboratory courses had to have students attendthe laboratory courses on their campuses. Our ECE department is in the process of redesigningand delivering all 200-level and 300-level electrical
on thefaculty members involved. In this work, we propose to apply traditional project managementtechniques to the accreditation process. Project management is a field that has been studiedextensively but it is usually applied to large scale projects with well-defined product deliverables(e.g. software or hardware systems). We argue that the principles of project management can bereused and applied to a process where the deliverable or end product is less tangible, but thestakes are as high – the successful attainment of ABET accreditation status. One of the most challenging aspects of establishing and forming a program that is ready foraccreditation is faculty buy-in. Take for example one of the most important areas of programcontinuous
projectwould be to create a simulated electrical schematic of the PLC sorting by height layout. Communication between ladder logicsystem in operation using LabVIEW. This schematic would and a simulation such as Factory IO is easy to do, so the newsimulate ladder logic from Siemens TIA Portal and a physical part we are bringing into this communication is with an addedsimulation with Factory I/O. This would create a full simulation communication with National Instruments LabVIEW.with all three phases of the PLC. Overall this project would LabVIEW will be used to create a fully simulated electricalprovide a basis for others to recreate what we will do for their schematic of the system. When all
signal. The majority ofthe time is spent constructing and troubleshooting a simple model for a traffic light controller,consisting of a 1 Hz oscillator, a two-bit counter, and a binary decoder to produce a four-statemachine. Red, yellow and green LEDs are connected to appropriate outputs so that the LEDsflash in the sequence produced by a two-way traffic signal. This project provides a way toconnect the abstract ideas of digital circuits and multi-state systems with an example fromeveryday life.The project has been conducted on an annual basis for over ten years. Key to the success of thisactivity is the support provided by faculty and students in the ECE department. Undergraduateand graduate students assist in construction and troubleshooting