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Exploring the Effectiveness and Moderators of Augmented Reality on Science Learning: A Meta-Analysis
Xu, Wen-Wen; Su, Chien-Yuan; Hu, Yue; Chen, Cheng-Huan – Journal of Science Education and Technology, 2022
The use of augmented reality (AR) technology in the science curriculum has the potential to assist students in comprehending abstract and complex concepts or unobservable phenomena, as well as to better explain knowledge regarding science content by superimposing virtual objects over genuine items or environments in a multidimensional approach.…
Descriptors: Computer Simulation, Educational Technology, Science Education, Science Achievement
Gianmarc Grazioli; Adam Ingwerson; David Santiago Jr.; Patrick Regan; Heekun Cho – Journal of Chemical Education, 2023
Computational chemistry instructional activities are often based around students running chemical simulations via a graphical user interface (GUI). GUI-based activities offer many advantages, as they enable students to run chemical simulations with a few mouse clicks. Although these activities are excellent for introducing students to the…
Descriptors: Computation, Chemistry, Teaching Methods, Science Education
Huynh, Trongnghia; Hou, Gene; Wang, Jin – American Journal of Engineering Education, 2016
We have conducted an education project to communicate the wave energy concept to high school students. A virtual reality system that combines both hardware and software is developed in this project to simulate the buoy-wave interaction. This first-of-its-kind wave energy unit is portable and physics-based, allowing students to conduct a number of…
Descriptors: Active Learning, Physics, Scientific Concepts, Science Careers
Smith, V. Anne; Duncan, Ishbel – Bioscience Education, 2011
Confidence is an important issue for biology students in handling computational concepts. This paper describes a practical in which honours-level bioscience students simulate complex animal behaviour using StarLogo TNG, a freely-available graphical programming environment. The practical consists of two sessions, the first of which guides students…
Descriptors: Computer Simulation, Computers, Biology, Programming
Bryan, J. A.; Slough, S. W. – Physics Education, 2009
While computer technology continues to enhance the teaching and learning of all science disciplines, computer simulations, in particular, have become exceptionally beneficial in physics education. In addition to the manner in which physics instructors integrate computer simulations into their instructional practices, the design of a simulation may…
Descriptors: Physics, Prediction, Computers, Teaching Methods
Mayes, Robert; Koballa, Thomas R., Jr. – Science and Children, 2012
The vision for science education set forth in "A Framework for K-12 Science Education" (NRC 2012) makes it clear that for today's students to become the scientifically literate citizens of tomorrow, their educational experiences must help them become mathematically proficient. "The focus here is on important practices, such as modeling, developing…
Descriptors: State Standards, Computers, Science Education, Scientific Literacy
Eskrootchi, Rogheyeh; Oskrochi, G. Reza – Educational Technology & Society, 2010
Incorporating computer-simulation modelling into project-based learning may be effective but requires careful planning and implementation. Teachers, especially, need pedagogical content knowledge which refers to knowledge about how students learn from materials infused with technology. This study suggests that students learn best by actively…
Descriptors: Males, Females, Science Projects, Student Projects
Price, Colin B. – Simulation & Gaming, 2008
Commercial computer games contain "physics engine" components, responsible for providing realistic interactions among game objects. The question naturally arises of whether these engines can be used to develop educational materials for high school and university physics education. To answer this question, the author's group recently conducted a…
Descriptors: Physics, Computers, Games, Science Education
Turinsky, Andrei L.; Fanea, Elena; Trinh, Quang; Wat, Stephen; Hallgrimsson, Benedikt; Dong, Xiaoli; Shu, Xueling; Stromer, Julie N.; Hill, Jonathan W.; Edwards, Carol; Grosenick, Brenda; Yajima, Masumi; Sensen, Christoph W. – Anatomical Sciences Education, 2008
The authors have created a software system called the CAVEman, for the visual integration and exploration of heterogeneous anatomical and biomedical data. The CAVEman can be applied for both education and research tasks. The main component of the system is a three-dimensional digital atlas of the adult male human anatomy, structured according to…
Descriptors: Workstations, Computer Software, Computers, Biomedicine

Kirkup, L. – Physics Education, 1986
Describes the implementation of a computer simulation of magnetic field lines. Discusses properties of magnetic fields and the calculation of magnetic fields at points. Provides a program listing (additional programs and teaching notes available from the author) and gives examples of several field plots. (JM)
Descriptors: College Science, Computer Simulation, Computer Software, Computers

Schultheisz, Daniel; Sommerfeld, Jude T. – Chemical Engineering Education, 1988
Gives examples, descriptions, and uses for various types of simulation systems, including the Flowtran, Process, Aspen Plus, Design II, GPSS, Simula, and Simscript. Explains similarities in simulators, terminology, and a batch chemical process. Tables and diagrams are included. (RT)
Descriptors: Chemical Engineering, College Science, Computer Simulation, Computer Uses in Education

The Weaver, 1986
Describes curriculum development aimed at increasing quantitative skills or demonstrating relevance of technological tools to studies in humanities. Included are simulations, research design, measurement, analytical techniques, computer software development, and a new laboratory course in social sciences. Also describes attempts to focus on…
Descriptors: Computer Simulation, Computers, Courseware, Curriculum Development
Gibson, David; Aldrich, Clark; Prensky, Marc – Information Science Publishing, 2007
Games and Simulations in Online Learning: Research and Development Frameworks examines the potential of games and simulations in online learning, and how the future could look as developers learn to use the emerging capabilities of the Semantic Web. It presents a general understanding of how the Semantic Web will impact education and how games and…
Descriptors: Electronic Learning, Educational Games, Computers, Computer Simulation
Bower, Bruce – Science News, 1988
Surveys current research on learning and memory and associated brain functions. Suggests several models of olfactory recognition and memory. Explains several computer models being evaluated and lists possible flaws. Differentiates between noise and chaos in brain functions. Describes a challenge to the theory of chaos called adaptive resonance…
Descriptors: Chaos Theory, Computer Simulation, Computers, Learning

Baxter, Gail P. – Journal of Science Education and Technology, 1995
Two methods of assessing student learning of a hands-on instructional unit are compared. One method involves manipulation of concrete materials, and the other method involves manipulation of icons on a computer to solve an electric circuits problem. Sixth-grade students in an inquiry-based science program completed both assignments. (LZ)
Descriptors: Computer Assisted Testing, Computer Simulation, Computer Uses in Education, Computers
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