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Krause, Kayla J.; Mullins, Drew D.; Kist, Madison N.; Goldman, Evan M. – Anatomical Sciences Education, 2023
Virtual reality (VR) is an increasingly available resource with numerous applications to medical education, and as a teaching tool has been widely validated in the literature. Photogrammetry, the process of overlapping two-dimensional (2D) photographic images of three-dimensional (3D) objects to create a 3D image or "model," can be used…
Descriptors: Computer Simulation, Photography, Models, Medical Education
Jones, David Gareth – Anatomical Sciences Education, 2023
Concerns have recently been expressed about the continuing availability of human bones from India, obtained originally for educational purposes but lacking the requisite informed consent that would be expected today. More generally, a broader claim is being made, namely, that the practice of using any unconsented bones in educational settings is…
Descriptors: Anatomy, Human Body, Ethics, Undergraduate Study
Ethan P. McNaughton; Liam Bilbie; Matea Zuljevic; Lauren K. Allen; Daiana-Roxana Pur; Roy Eagleson; Sandrine Ribaupierre – Anatomical Sciences Education, 2025
In this article, we introduce a new virtual application that offers an interactive model of the brain for neuroanatomy education. Through a dual-platform architecture, the application can be downloaded on both desktop and mobile devices, with the mobile app leveraging unique capacities of modern handheld systems to deploy the brain model in…
Descriptors: Undergraduate Students, Anatomy, Brain, Science Instruction
Bogomolova, Katerina; Sam, Amir H.; Misky, Adam T.; Gupte, Chinmay M.; Strutton, Paul H.; Hurkxkens, Thomas J.; Hierck, Beerend P. – Anatomical Sciences Education, 2021
In anatomical education three-dimensional (3D) visualization technology allows for active and stereoscopic exploration of anatomy and can easily be adopted into medical curricula along with traditional 3D teaching methods. However, most often knowledge is still assessed with two-dimensional (2D) paper-and-pencil tests. To address the growing…
Descriptors: Anatomy, Science Education, Teaching Methods, Educational Technology
Dreimane, Santa; Daniela, Linda – Technology, Knowledge and Learning, 2021
The use of different technologies and technological solutions for learning purposes is no longer a novelty in the educational environment. Digital teaching materials are being developed that can be used both in classroom activities and for providing students with opportunities for independent learning. However, alongside these materials, there are…
Descriptors: Computer Simulation, Electronic Learning, Anatomy, Human Body
Oliveira, André de Sá Braga; Leonel, Luciano César P. C.; LaHood, Edward R.; Hallak, Hana; Link, Michael J.; Maleszewski, Joseph J.; Pinheiro-Neto, Carlos D.; Morris, Jonathan M.; Peris-Celda, Maria – Anatomical Sciences Education, 2023
Hands-on dissections using cadaveric tissues for neuroanatomical education are not easily available in many educational institutions due to financial, safety, and ethical factors. Supplementary pedagogical tools, for instance, 3D models of anatomical specimens acquired with photogrammetry are an efficient alternative to democratize the 3D…
Descriptors: Guidelines, Anatomy, Computer Simulation, Models
Sander, Ian M.; McGoldrick, Matthew T.; Helms, My N.; Betts, Aislinn; van Avermaete, Anthony; Owers, Elizabeth; Doney, Evan; Liepert, Taimi; Niebur, Glen; Liepert, Douglas; Leevy, W. Matthew – Anatomical Sciences Education, 2017
Advances in three-dimensional (3D) printing allow for digital files to be turned into a "printed" physical product. For example, complex anatomical models derived from clinical or pre-clinical X-ray computed tomography (CT) data of patients or research specimens can be constructed using various printable materials. Although 3D printing…
Descriptors: Radiology, Computer Simulation, Anatomy, Computer Uses in Education
Lee, Lisa M. J.; Goldman, Haviva M.; Hortsch, Michael – Anatomical Sciences Education, 2018
Over the last 20 years, virtual microscopy has become the predominant modus of teaching the structural organization of cells, tissues, and organs, replacing the use of optical microscopes and glass slides in a traditional histology or pathology laboratory setting. Although virtual microscopy image files can easily be duplicated, creating them…
Descriptors: Teaching Methods, Science Instruction, Computer Simulation, Anatomy
Berney, Sandra; Bétrancourt, Mireille; Molinari, Gaëlle; Hoyek, Nady – Anatomical Sciences Education, 2015
The emergence of dynamic visualizations of three-dimensional (3D) models in anatomy curricula may be an adequate solution for spatial difficulties encountered with traditional static learning, as they provide direct visualization of change throughout the viewpoints. However, little research has explored the interplay between learning material…
Descriptors: Spatial Ability, Visualization, Computer Simulation, Models
Barneva, Reneta P.; Kanev, Kamen; Kapralos, Bill; Jenkin, Michael; Brimkov, Boris – Journal of Educational Technology Systems, 2017
We place collaborative student engagement in a nontraditional perspective by considering a novel, more interactive educational environment and explaining how to employ it to enhance student learning. To this end, we explore modern technological classroom enhancements as well as novel pedagogical techniques which facilitate collaborative learning.…
Descriptors: Teaching Methods, Learner Engagement, Cooperative Learning, Technology Uses in Education
Puzziferro, Maria; McGee, Elisabeth – Online Journal of Distance Learning Administration, 2021
The COVID-19 pandemic has led to an unprecedented shift in how health science education is delivered (Sandars et al., 2020). With face-to-face learning, such as lab and classroom interactions, largely unavailable during the pandemic, institutions have been required to quickly shift the learning environment to a fully virtual format. While…
Descriptors: COVID-19, Pandemics, Health Sciences, Laboratories
Trelease, Robert B.; Nieder, Gary L. – Anatomical Sciences Education, 2013
Web deployable anatomical simulations or "virtual reality learning objects" can easily be produced with QuickTime VR software, but their use for online and mobile learning is being limited by the declining support for web browser plug-ins for personal computers and unavailability on popular mobile devices like Apple iPad and Android…
Descriptors: Anatomy, Computer Simulation, Electronic Learning, Handheld Devices
Tam, Matthew D. B. S. – Anatomical Sciences Education, 2010
Radiology and radiologists are recognized as increasingly valuable resources for the teaching and learning of anatomy. State-of-the-art radiology department workstations with industry-standard software applications can provide exquisite demonstrations of anatomy, pathology, and more recently, physiology. Similar advances in personal computers and…
Descriptors: Radiology, Visual Aids, Models, Computer Simulation
Trelease, Robert B.; Rosset, Antoine – Anatomical Sciences Education, 2008
Advances in anatomical informatics, three-dimensional (3D) modeling, and virtual reality (VR) methods have made computer-based structural visualization a practical tool for education. In this article, the authors describe streamlined methods for producing VR "learning objects," standardized interactive software modules for anatomical sciences…
Descriptors: Computer Simulation, Computer Software, Anatomy, Information Science
Perry, Jamie; Kuehn, David; Langlois, Rick – Journal of College Science Teaching, 2007
Learning real three-dimensional (3D) anatomy for the first time can be challenging. Two-dimensional drawings and plastic models tend to over-simplify the complexity of anatomy. The approach described uses stereoscopy to create 3D images of the process of cadaver dissection and to demonstrate the underlying anatomy related to the speech mechanisms.…
Descriptors: Physiology, Anatomy, Visual Aids, Computer Simulation
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