Paper ID #16463Software Defined Radio Based Laboratories in Undergraduate Computer Net-working CoursesDr. Deng Cao, Central State University Dr. Deng Cao received his Ph.D in Computer Science from West Virginia University in 2013. He earned two master degrees in Statistics and Physics from West Virginia University, and his bachelor degree in Physics from Hunan Normal University in China. Dr. Cao joined Central State University in 2013 and currently serves as an assistant professor in the department of Mathematics and Computer Science. His re- search interests include advanced biometrics, computer vision, pattern recognition
Paper ID #15677WORK IN PROGRESS: An Integrated DSP and Embedded MicrocontrollerLaboratory CurriculumProf. Todd D. Morton, Western Washington University Todd Morton has been teaching the upper level embedded systems and senior project courses for West- ern Washington University’s Electrical Engineering and Electronics Engineering Technology program for 27 years. He is the author of the text ’Embedded Microcontrollers’, which covers assembly and C pro- gramming in small real-time embedded systems and has worked as a design engineer at Physio Control Corporation and at NASA’s Jet Propulsion Laboratory as an ASEE-NASA Summer
Paper ID #14874A Virtual Laboratory System with Biometric Authentication and RemoteProctoring Based on Facial RecognitionMr. Zhou Zhang, Stevens Institute of Technology (School of Engineering and Science) Ph.D Candidate, Mechanical Engineering Department, Stevens Institute of Technology, Hoboken, NJ, 07030. Email: zzhang11@stevens.eduMr. Mingshao Zhang, Stevens Institute of Technology (School of Engineering and Science) Mingshao Zhang is currently a Ph.D. student in Mechanical Engineering Department, Stevens Institute of Technology. Before joining Stevens, he received bachelor’s degrees from University of Science and Tech
Paper ID #15475WORK IN PROGRESS: A Study on Student Feedback Regarding the Us-ability of Online LaboratoriesMr. Christian Kreiter MSc, Carinthia University of Applied SciencesMr. Danilo Garbi Zutin P.E., Carinthia University of Applied Sciences Danilo G. Zutin is currently a Senior Researcher and team member of the Center of Competence in Online Laboratories and Open Learning (CCOL) at the Carinthia University of Applied Sciences (CUAS), Vil- lach, Austria, where he has been engaged in projects for the development of online laboratories, softtware architectures for online laboratories and online engineering in general. Danilo
FOR A BASIC IoT TRAINING MODULEAbstractThis paper presents a basic laboratory training module aimed at helping undergraduate studentsunderstand the interfacing and connectivity issues involved in the Internet of things (IoT). Thetraining module uses a sequential teaching approach to draft quasi-experiments for teaching basicIoT concepts. Interfacing includes identification, embedded sensing and embedded actuatingwhile connectivity includes wireless connectivity and web/ mobile services.An IoT function (control and/or measurement) is first selected by users based on the physicalvariable of interest and the action to be carried out. The user will also select a connectivity optionbased on network types and transmission technologies available for
Paper ID #15269WORK IN PROGRESS: Teaching Broadly-Applicable STEM Skills to HighSchool Sophomores Using Linux and SmartphonesProf. Daniel Brian Limbrick, North Carolina A&T State University Dr. Daniel Limbrick is an assistant professor in the Electrical and Computer Engineering Department at North Carolina Agricultural and Technical State University (NC A&T). As director of the Automated Design for Emerging Process Technologies (ADEPT) laboratory at NC A&T, he researches ways to make computers more reliable (i.e., radiation hardening) and scalable (e.g., three-dimensional integra- tion) through novel approaches
instructionalsoftware emphasized lower-level cognitive processes,9 but a larger number report learning gainswhen implementing technology in the classroom through virtual experiments or onlineinstruction.10-13 Additionally, incorporating simulations into the classroom can increasevisualization and problem-solving processes,14,15 as well as show positive gains in student self-efficacy with respect to engineering skills.16Virtual experiments offer an opportunity to provide students with valuable experience at a lowcost (no laboratory space or consumables, only computer facilities, required), high flexibility(can be performed outside of class, does not require direct supervision, safety is not a directconcern), and great breadth (some disciplines may have
Department of Education.Dr. Yonghui Wang, Prairie View A&M University Dr. Yonghui Wang received his B.S. in Optoelectronics from Xidian University in 1993, his M.S. in electrical engineering from Beijing Polytechnic University in 1999; and his Ph.D. in computer engineering from Mississippi State University in 2003. From 1993 to 1996, he was a Research Engineer with the 41st Electrical Research Institute in Bengbu, China. From July 1999 to December 1999, he worked as an IT Specialist in IBM China, Beijing, China. From 2000 to 2003, he was a research assistant with the Visualization, Analysis, and Imaging Laboratory (VAIL), the GeoResources Institute (GRI), Mississippi State University. He is currently an Associate
navigation features; however, it requires modification toallow for successful navigation.MethodsTwo electrical and computer engineering faculty members and a senior undergraduatemechanical engineering student developed the curriculum for the course. Our goal was toprovide enough theory to allow the students to progress rapidly in the laboratory exercises. Thecurriculum was divided into ten 2.25 contact hour sessions. We also planned a related session onsupercomputers and modeling. The session on supercomputers was taught by a Department ofMathematics faculty member. Also, a field trip was taken to the National Center forAtmospheric Research (NCAR) - Wyoming Supercomputing Center (NWSC) and a nearby hightechnology Walmart regional distribution center
Paper ID #17010A New Robotics Educational System for Teaching Advanced EngineeringConcepts to K-12 studentsDr. Fernando Garcia Gonzalez, Florida Gulf Coast University Dr. Fernando Gonzalez joined FGCU as an Assistant Professor in the Software Engineering Program in the fall of 2013. Previously he has worked at Texas A&M International University in Laredo, Texas, the U.S. Department of Energy at Los Alamos National Laboratory in Los Alamos, New Mexico and at the University of Central Florida in Orlando, Florida. Dr. Gonzalez graduated from the University of Illinois in 1997 with a Ph.D. in Electrical Engineering. He
Paper ID #15724Assessment of STEM e-Learning in an Immersive Virtual Reality (VR) Envi-ronmentDr. Hazim A El-Mounayri, Indiana University Purdue University, Indianapolis Dr. El-Mounayri received his PhD in 1997 from McMaster University (in Canada) in Mechanical En- gineering, He is currently an associate professor of Mechanical Engineering, the co-director of the Ad- vanced Engineering and Manufacturing Laboratory (AEML) at IUPUI, and a senior scientist for manu- facturing applications at Advanced Science and Automation Corp. Also, he is a leading member of INDI (Integrated Nanosystems Development Institute). He co-developed
NIH, NASA, NSF, FAA, DOE, and private companies. Currently, he and his students at the Advanced Tech- nology Systems Laboratory are pursuing cutting-edge research on the role of visualization and virtual reality in aviation maintenance, hybrid inspection and job-aiding, technology to support STEM education and, more practically, to address information technology and process design issues related to delivering quality health care. As the Department Chair, he has been involved in the initiation of programmatic initiatives that have resulted in significant growth in the Industrial Engineering Program, situating it in the forefront both nationally and internationally. These include the Online Master of Engineering in
National Research Council postdoctoral researcher at the Air Force Research Laboratory, he joined the faculty of the Department of Materials Science and Engineering at Univ. Illinois, Urbana-Champaign in 2006. He was a TMS Young Leader International Scholar in 2008, received the NSF/CAREER award in 2009, the Xerox Award for Faculty Research at Illinois in 2011, the AIME Robert Lansing Hardy Award in 2014, co-chaired the 2011 Physical Metallurgy Gordon Research conference, and became a Willett Faculty Scholar at Illinois in 2015. His research focuses on defects in materials using density-functional theory, and novel techniques to understand problems in mechanical behavior and transport.Prof. Andrew Ferguson, University of
his Ph.D. degree in Structural Engineering in the Department of Civil Engineer- ing at Auburn University, AL, USA in 2007. He obtained his master’s degree in Structural Engineering from Korea University, South Korea, in 2000 and his Bachelor’s degree was in Civil and Environmental Engineering from Korea University, South Korea, in 1998. Prior to entering PhD study, Dr. Kang worked as a Senior Civil Engineer in Hong Kong site and Seoul Headquarter of Hyundai Engineering and Con- struction Co., Ltd. during 2000- 2002. After his PhD study, he had taken many projects supported by ALDOT and Air Force Research Laboratory as a research associate at Auburn University during 2007 – 2011. Dr. Junsuk Kang has taught
] Northrup, S. G and Burke, J.R., “A Hybrid Approach to a Flipped Classroom for an Introductory Circuits Course for all Engineering Majors”, Proceedings of the 122nd ASEE Annual Conference & Exposition, Seattle, June 2015.[8] Zhao, Y. and Breslow, L., “Literature Review on Hybrid/Blended Learning ", Teaching and Learning Laboratory (TLL) (2013): 1-22.
body motion, impact, fluid flow, and fluid-solidinteraction.Though certainly not all, a significant percentage of students who complete the required FEAcourse express a strong interest in a continuation course. In addition, the university's industrialpartners, both advisory committee members and Capstone Design Program sponsors, havecommunicated the desire for graduates to have additional competencies in simulation. Finally,students in the senior level Capstone Design course frequently have the opportunity to performadvanced simulation as part of their senior project. A recent example is a project sponsored bythe NASA Jet Propulsion Laboratory that focused on their land-based 70m deep space antenna.They wanted to understand the phenomena
. c American Society for Engineering Education, 2016 A Low-Cost Robot Positioning System for a First-Year Engineering Cornerstone Design ProjectAbstractResearchers in autonomous robotic design have leveraged a variety of technologies to simulatethe Global Positioning System (GPS) on a smaller laboratory or commercial scale. In the interestof cost and accuracy, a system was developed for The Ohio State University Fundamentals ofEngineering for Honors (FEH) Program's "Cornerstone" Design Project. The system utilizes highdefinition commercial web cameras to accurately simulate a GPS for the autonomous robotscreated by students.For the past 21 years The Ohio State University has provided a "Cornerstone" Design
: DataExplorer and Assessment Resources for Faculty.References1 Hestenes, David, and Halloun, Ibrahim. "Interpreting the force concept inventory." The Physics Teacher 33.8, 1995, pp 502-506.a2 Thornton, Ronald K., and Sokoloff, David R. "Assessing student learning of Newton’s laws: The force and motion conceptual evaluation and the evaluation of active learning laboratory and lecture curricula." American Journal of Physics 66.4, 1998, pp 338-352.3 Ding, Lin, et al. "Evaluating an electricity and magnetism assessment tool: Brief electricity and magnetism assessment." Physical review special Topics-Physics education research 2.1, 2006.4 Keininger, Thomas G., “Table structure recognition based on robust block
) ● Demonstrate visualization, animations, and simulation applications related to GIS. ● Develop and demonstrate applications for GIS consulting. ● Facilitate PBL and AL in GIS curriculum ● Supplement departmental laboratories and augment current pedagogical practicesIn addition to the above mentioned factors, the researchers emphasize methods like Discovery-based Learning (DL) emphasize on intrinsic motivation, intuitive thought-process, and student-centered learning (Jian, Jing-xiang, Chang-hui, 2010). Founded on the above learning concepts,the proposed framework aids learning geospatial applications in domains like environmentalmodelling, land use planning ( Chandramouli, Huang, and Xue, 2009, Chandramouli & Huang,2012
this case, the novelty of theapproach compared to traditional methods is twofold: (1) the use of a computer game enables usto directly observe problem-solving process through action in the game and (2) because of thenaturally immersive game environment, we hope to see motivation and persistence in the face ofcomplex problems that might otherwise be difficult to achieve in a laboratory setting. As afeasibility study, we will present methods and data that we suggest should guide further researchbut should not be used to make specific claims. Before describing this exploratory study, webriefly review relevant literature of problems and problem-solving.Background on Problem Solving LiteratureOne characterizing difference between problems faced in
to provide insight and guide further development.The Start LabThe Solar Technology Applied Research and Testing (START) Laboratory, shown in Figure 1,is a pilot-scale CSP plant that is the first university-owned facility of its type and size in theUnited States [14]. It supports research on next-generation solar devices and provides outreachactivities to educate K-12 students about solar energy and other forms of renewable energy.Physical tours provide limited opportunities for educational experiences, because it is difficultfor many students to travel to the START Lab due to geographical or scheduling constraints. Forbroader delivery of educational experiences, we developed the VEC, also shown in Figure 1.Ritter and Chambers [1] described