impact scientific research results. Dr. Jariwala has participated and led several research projects from funded by NSF, the State of Georgia and Industry sponsors. At Georgia Tech, he is responsible for enhancing corporate support for design courses, managing design and fabrication/prototyping facilities, coordinating the design competitions/expo and teaching design courses, with a strong focus on creating and enabling multidisciplinary educational experiences. c American Society for Engineering Education, 2017 Web-based Tools For Supporting Student-driven Capstone Design Team Formation Varun Agrawal
process of designing, building, and flying an unmanned aerialvehicle (UAV) capable of assisting first responders. As students engaged in design activities, asecond goal was to develop an instrumentation methodology and data architecture needed tofully characterize industry relevant engineering design behaviors as manifested in the digitalenvironments. Multi-disciplinary, multi-university teams consisting of students from 5 major USuniversities participated in a two semesters, year-long capstone project. These courses have beeneffectively offered starting 2013. The third cohort of student teams is now experiencing thiscapstone course. This enables us to gather a significant amount of data related to designbehaviors that form the basis for many of
with specificprograming fundamentals. This would help inform future project decisions.References 1. Baibak, T, and Agrawal, R., “Programming Games To Learn Algorithms”, Proceedings of the 2007 American Society of Engineering Education Annual Conference, Honolulu, HI, June 2007. 2. Maxim, B., “Serious Games as Software Engineering Capstone Projects,” Proceedings of the 2008 American Society of Engineering Education Annual Conference, Pittsburgh, Pennsylvania, June 2008. 3. Estell, J.K., “Writing Card Games: An Early Excursion into Software Engineering Principles”, Proceedings of the 2005 American Society of Engineering Education Annual Conference, Portland, Oregon, June 2005. 4. Helber, E., Brockman, M., and Kajfez, R
universal serial bus (usb), connecting to the Internet via Ethernet port or WiFi. Theseexamples are the basis to help us design course projects. Students have shown great interests inthese new course topics and are capable of developing IoT relevant capstone projects for homeautomation by the end of the course.This paper presents our ongoing work of teaching advanced IoT technologies to electrical andcomputer engineering students, with the emphasis of how we develop the lab projects by usingTI’s latest Connected Launchpad EK-TMC1294XL and its associated software packages. Anoverview of IoT technologies including its evolution is first briefly introduced. Then, the coursedescription including the learning outcomes and lecture and lab contents is
implementation response analysis. #4 IIR filter IIR filter implementation and frequency Filter implementation response analysis.Table 4: Summary of existing Lab coursework using the dedicated TMS320C6713DSK boardThe new proposed labs that use the MCU-based platform would facilitate students to attain morecontent and practice DSP topics with more depth and complexity.IV: Senior capstone project improvement goals and assessment measuresThe Electrical Engineering program at Western Washington University is in the process oftransitioning from an ABET-ETAC Electronics Engineering Technology (EET) program to anABET-EAC Electrical Engineering (EE) program. All aspects of the curriculum are
inspired by theneeds of creating meaningful hands-on DSP lab experiments in the allotted one term period (tenweeks) and by the goal of improving student success in implementing DSP-based culminatingprojects that meet desired goals within realistic constraints. The benefits of integrating the MCUtools in the DSP course are very promising. It permits more practical DSP laboratories and DSP-based capstone projects that render richer design experiences and makes meeting realistic designconstraints feasible. Furthermore, it provides an integrated laboratory curriculum structurebetween embedded microcontroller and DSP courses which reduces students’ unnecessary effortof learning new tools in different courses. Consequently, students can focus more on
across campus. Not only are expenses incurred inhardware costs but also in manpower hours setting up and tearing down computing labs, installingsoftware and maintaining images.In [1], the authors provide excellent survey of the opportunities of using Cloud Computing ineducational environment. We also believe that the problems identified above can be solved byintegrating a private cloud computing environment into James Madison University’s educationalresources. This challenge became the topic of a senior capstone project at James Madison Uni-versity. Two students and their advisor proposed to address these issues by utilizing VMwarevSphere [2] and Horizon View software [3] suites. Horizon View is a cloud computing solutionthat provides access to
the Executive Committee for the Computing Accreditation Commission of ABET, and also serves as a program evaluator for the Engineering Accreditation Commission. He is also a founding member and serves as Vice President of The Pledge of the Computing Professional, an organization dedicated to the promotion of ethics in the computing professions through a standardized rite-of-passage ceremony. c American Society for Engineering Education, 2018 Partnering to Develop Educational Software Applications: A Four-Year Retrospective StudyIntroductionSeveral years ago, a project was added to the first-year programming sequence at Ohio NorthernUniversity that focused on
Science and Engineer- ing at the University of Illinois at Urbana-Champaign. He obtained his Diploma and Ph.D. at Friedrich- Schiller-University in Jena, Germany for his theoretical work on transparent conducting oxides. Before he started at UIUC he worked as a Postdoctoral Researcher at Lawrence Livermore National Laboratory on a project that aimed at a description of non-adiabatic electron ion dynamics. His research revolves around excited electronic states and their dynamics in various materials using accurate computational methods and making use of modern super computers in order to understand, for instance, how light is absorbed in photo-voltaic materials. c American Society for
project that the students may be involved with in theirfuture careers. Capstone team projects which have become a standard part of (nearly) every en-gineering and computing program have been especially successful in helping to achieve this goal.The second intended goal of such activities is to help students learn the technical, conceptual mate-rial by engaging in suitable activities with their fellow-students rather than just listening passivelyto lectures. At the same time, many engineering and computing faculty have serious concernsabout introducing such activities to any serious extent in their courses; primary among these con-cerns is the potential negative impact of such activities on topic coverage. Trying to arrange suchactivities outside