Searching for "augmented reality"

Virtual reality training

Benefits of Virtual Reality Training

According to a 2021 report, 75% of business leaders anticipate using Augmented or Virtual Reality by 2023. VR Training solutions have become a powerful way to revamp traditional training methods, and it’s as cost-effective

Baylor study took 20 subjects and taught them a fire safety procedure. Half with traditional methods (video presentation and reading) and half with a VR training experience. A week after their training they were all given a memory test with mock scenarios, and 70% of the VR group performed the right sequence of steps compared to 20% of the video group.

With VR, virtual environments can house as many pieces of hardware at whatever scale you’d like all at the same cost. Especially once a framework has been developed, adding new procedures, objects, or environments to your training can be designed and deployed within a few days.

Another one of the benefits of VR training is the ability for trainees to learn what they need to at their pace. If a certain training scenario is a challenge, it’s easy to reset a scenario from the beginning. If a trainee is confident in a process, they can jump to a final procedure test.

Virtual Reality allows for a risk-free environment, allowing learners to prepare themselves and train in these stressful situations without the possibility of danger.

During a VR experience, trainees can be exposed to stressful situations in safe conditions. Over time, these experiences reduce the stress or fear response of that stimuli, allowing learners to gain confidence in real scenarios. The increased multi-sensory aspect of an immersive experience can be incredibly similar to real-life stressors. In addition, there exists the ability to have controlled exposure of these situations based on the learner’s own limits.

As more sophisticated data collecting methods are being developed, such as eye or facial tracking, more metrics can be used to understand how people are reacting to VR training. This is probably most sought after in soft skills training, where emotional input plays a larger role.

VR headsets can be implemented remotely, greatly reducing the requirement for in-person training.

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More on virtual reality training in this IMS blog
https://blog.stcloudstate.edu/ims?s=Virtual+reality+training

Cross Reality (XR)

Ziker, C., Truman, B., & Dodds, H. (2021). Cross Reality (XR): Challenges and Opportunities Across the Spectrum. Innovative Learning Environments in STEM Higher Education, 55–77. https://doi.org/10.1007/978-3-030-58948-6_4
https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7948004/

For the purpose of this chapter, Cross Reality or XR refers to technologies and applications that involve combinations of mixed reality (MR), augmented reality (AR), virtual reality (VR), and virtual worlds (VWs). These are technologies that connect computer technology (such as informational overlays) to the physical world for the purposes of augmenting or extending experiences beyond the real. Especially relevant to the definition of XR is the fact that this term encompasses a wide range of options for delivering learning experiences, from minimal technology and episodic experiences to deep immersion and persistent platforms. The preponderance of different terms for slightly different technologies indicate that this is a growth area within the field. Here we provide a few definitions of these technologies.

MR—Mixed reality refers to a blend of technologies used to influence the human perception of an experience. Motion sensors, body tracking, and eye tracking interplay with overlaid technology to give a rich and full version of reality displayed to the user. For example, technology could add sound or additional graphics to an experience in real time. Examples include the Magic Leap One and Microsoft HoloLens 2.0. MR and XR are often used interchangeably.

AR—Augmented reality refers to technology systems that overlay information onto the real world, but the technology might not allow for real-time feedback. As such, AR experiences can move or animate, but they might not interact with changes in depth of view or external light conditions. Currently, AR is considered the first generation of the newer and more interactive MR experiences.

VR—Virtual reality, as a technological product, traces its history to approximately 1960 and tends to encompass user experiences that are visually and auditorily different from the real world. Indeed, the real world is often blocked from interacting with the virtual one. Headsets, headphones, haptics, and haptic clothing might purposely cut off all input except that which is virtual. In general, VR is a widely recognizable term, often found in gaming and workplace training, where learners need to be transported to a different time and place. VR experiences in STEM often consist of virtual labs or short virtual field trips.

VW—Virtual worlds are frequently considered a subset of VR with the difference that VWs are inherently social and collaborative; VWs frequently contain multiple simultaneous users, while VRs are often solo experiences. Another discrimination between virtual reality and virtual worlds is the persistence of the virtual space. VR tends to be episodic, with the learner in the virtual experience for a few minutes and the reality created within the experience ends when the learner experience ends. VWs are persistent in that the worlds continue to exist on computer servers whether or not there are active avatars within the virtual space (Bell ). This discrimination between VR and VW, however, is dissolving. VR experiences can be created to exist for days, and some users have been known to wear headsets for extended periods of time. Additionally, more and more VR experiences are being designed to be for game play, socialization, or mental relaxation. The IEEE VR 2020 online conference and the Educators in VR International Summit 2020 offered participants opportunities to experience conference presentations in virtual rooms as avatars while interacting with presenters and conference attendees (see Sect. 2.5 for more information).

CVEs—Collaborative virtual environments are communication systems in which multiple interactants share the same three-dimensional digital space despite occupying remote physical locations (Yee and Bailenson ).

Embodiment—Embodiment is defined by Lindgren and Johnson-Glenberg () as the enactment of knowledge and concepts through the activity of our bodies within an MR (mixed reality) and physical environment

https://hyp.is/mBiunvx3EeudElMRwHm5dQ/www.ncbi.nlm.nih.gov/pmc/articles/PMC7948004/ 

Human-Centered Design philosophy that involves putting human needs, capabilities, and behavior first (Jerald 2018: 15). XR provides the opportunity to experience just-in-time immersive, experiential learning that uses concrete yet exploratory experiences involving senses that result in lasting memories. Here we discuss opportunities for social applications with XR. 

 

https://hyp.is/wJSoFPx3Eeu1mAPmeAp2tQ/www.ncbi.nlm.nih.gov/pmc/articles/PMC7948004/ 

XR learner activities are usually created for individual use, which may or may not need to be simultaneously experienced as a class together at the same time or place with the instructor. Activities can be designed into instruction with VR headsets, high-resolution screens, smartphones, or other solo technological devices for use inside and outside of the classroom. 

 

https://hyp.is/wJSoFPx3Eeu1mAPmeAp2tQ/www.ncbi.nlm.nih.gov/pmc/articles/PMC7948004/ 

Ready to go relationship between STEM courses and XR. In bullet points! 

 

https://hyp.is/wJSoFPx3Eeu1mAPmeAp2tQ/www.ncbi.nlm.nih.gov/pmc/articles/PMC7948004/ 

Do we address the challenges in the grant proposal? 

some learners will be held back from full XR activity by visual, physical, and social abilities such as stroke, vertigo, epilepsy, or age-related reaction time. It should also be noted that the encompassing nature of VR headsets might create some discomfort or danger for any learners as they can no longer fully see and control their body and body space. 

Augmented Scepticism

<Palermos, S. O. (2017). Augmented Skepticism: The Epistemological Design of Augmented Reality. https://www.academia.edu/28594152/Augmented_Skepticism_The_Epistemological_Design_of_Augmented_Reality

epistemology should play an active role in the design of future AR systems and practices.

its users may also be exposed to the serious danger of being unable to tell reality and augmented reality apart.

Most modern augmented reality systems combine the input from hardware
components such as digital cameras, accelerometers, global positioning systems (GPS),
gyroscopes, solid state compasses, and wireless sensors with simultaneous localization and
mapping (SLAM) software

The above examples make it obvious that AR has the potential to permeate and
enrich our everyday lives in a variety of ways. As AR technologies become less intrusive and
more transparent, moving from hand held devices, to AR glasses and finally to contact lenses,
AR will possibly not only penetrate every aspect of our lives but will become a constant,
additional layer to physical reality that users will be practically unable to disengage from.
Short films Sight (https://vimeo.com/46304267) and Hyper-Reality
(https://vimeo.com/166807261) provide good tasters of how the augmented future might
soon look like.

Contrary to other forms of extended
cognitive systems, AR is specifically designed to generate and operate on the basis of unreal
yet deceivingly truth-like mimicries of the external world in a way that users won’t be able to
distinguish augmented images from actual images of the world.

AR therefore has the potential to both extend and distract our organismic epistemic
capacities.

AR developers would have to make sure that all augmentations bear features that would allow them to clearly and immediately stand out from the physical elements in the world without the need of unrealistically burdensome checks on the part of the users. The design of future AR systems should not pose unrealistic demands on the users’ cognitively integrated nature. Reality augmentations should automatically stand out as such, leaving minimal room for confusion or misinterpretation.

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more on AR in this IMS blog
https://blog.stcloudstate.edu/ims?s=Augmented+reality

 

 

 

Epic Games and Digital Reality

Epic Games ‘Metaverse’ Completes $1B Funding with $200M from Sony—Developers to Build a Digital Reality

https://www.techtimes.com/articles/259056/20210413/epic-games-metaverse-completes-1b-funding-200m-sony-build-digital-reality.htm

According to Venture Beat, Epic Games has recently had a successful round of funding, raising a sum of $1 billion for its proposed digital reality world

The metaverse idea of connecting all of Epic Games’ titles is an ingenious way of integrating one game after the other, becoming the common ground for all games, each player with their avatars. This highly resembles “Ready Player One’s” OASIS metaverse, which is a digital, virtual, and augmented reality that leads to different online platforms.

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more on VR in this IMS blog
https://blog.stcloudstate.edu/ims?s=virtual+reality

Apple mixed-reality headset

Apple mixed reality headset to have two 8K displays, cost $3000 – The Information from r/gadgets

Apple mixed-reality headset to have two 8K displays, cost $3,000 – The Information

Apple’s known interest in this field has so far focused more on augmented reality (AR) than virtual reality (VR), but the recent reports point to a mixed-reality device, which would be mostly VR but including some real-world elements.

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more on Apple Glass in this IMS blog
https://blog.stcloudstate.edu/ims?s=apple+glass

Virtual Reality and artists

https://www.edsurge.com/news/2019-10-31-virtual-reality-experiences-can-be-violent-and-intrusive-they-need-an-artist-s-touch

Blended Reality, a cross-curricular applied research program through which they create interactive experiences using virtual reality, augmented reality and 3D printing tools. Yale is one of about 20 colleges participating in the HP/Educause Campus of the Future project investigating the use of this technology in higher education.

Interdisciplinary student and professor teams at Yale have developed projects that include using motion capture and artificial intelligence to generate dance choreography, converting museum exhibits into detailed digital replicas, and making an app that uses augmented reality to simulate injuries on the mannequins medical students use for training.

The perspectives and skills of art and humanities students have been critical to the success of these efforts, says Justin Berry, faculty member at the Yale Center for Collaborative Arts and Media and principal investigator for the HP Blended Reality grant.

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more on VR in this iMS blog
https://blog.stcloudstate.edu/ims?s=virtual+reality

Nursing mixed reality

 

View this post on Instagram

 

INSIGHT HEART on @magicleap allows you to explore anatomy in an interactive, visually stunning, and fun way 🔎 ♥️ 😮 . Stop by the Magic Leap booth at #UniteCopenhagen for a demo! @unitytechnologies . . #madewithunity #insightheart #magicleap #copenhagen #medicaleducation #patienteducation #spatialcomputing #anatomy #humananatomy #heartanatomy #medstudent #medizin #medizinstudent #anatomie #augmentedreality #mixedreality #virtualreality

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eXtended Reality XR

eXtended Reality (XR): The New World of Human/Machine Interaction

Wednesday, October 31 | 9:45am – 10:30am MT |
Session Type: Breakout Session
Delivery Format: Interactive Presentation

eXtended reality (XR) technologies present opportunities to advance the higher education mission and prepare students for a new world of human/machine interaction. In this interactive session, we will explore what is being done today and what is possible in four key areas of XR: use, technology, content development, and gamification.

Outcomes:
*Identify best-of-class tools and methods available for the design and support of XR in higher ed
* Explain to campus stakeholders the potential of XR to support pedagogy, research, and student success
* Understand the areas of focus of our growing XR community of practice and how you can participate

https://en.wikipedia.org/wiki/Extended_reality
 augmented reality (AR), augmented virtuality (AV) and virtual reality (VR)

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more on gamification in this IMS blog
https://blog.stcloudstate.edu/ims?s=gamification

https://blog.stcloudstate.edu/ims?s=virtual+reality

https://blog.stcloudstate.edu/ims?s=augmented+reality+education

https://blog.stcloudstate.edu/ims?s=mixed+reality

 

immersive reality education conference

Immerse Yourself in Learning

Realities360. The Enhanced Realities Conference

Augmented Reality

Augmented reality adds computer-generated content as a contextual overlay to the real world. This technology, often powered by devices we already carry, has enormous applications for training and development.

Virtual Reality

Virtual reality has existed for decades, but technology has finally emerged that makes it truly accessible. VR allows us to put learners in a truly immersive environment, creating entirely new opportunities for training and learning.

Expanded Realities

AR and VR are just the start of the alternate-reality conversation. There are additional technologies that we can use on their own or as part of a blend with AR and VR to increase the level of immersion in the experiences we create.

Sessions list: https://www.elearningguild.com/realities360/content/4900/2017-realities360-conference–home/?utm_campaign=r17early&utm_medium=social&utm_source=linkedin-el2#sessions-link

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more on VR, AR in this IMS blog
https://blog.stcloudstate.edu/ims?s=virtual+reality

New terms and issues: Virtual Reality, Sim Sickness, Postural Sway…

Virtual Reality’s Next Hurdle: Overcoming ‘Sim Sickness’

http://www.npr.org/blogs/alltechconsidered/2014/08/05/338015854/virtual-realitys-next-hurdle-overcoming-sim-sickness

One problem is the resulting “postural sway,” or postural instability and hand-eye coordination challenges.

Additional reading: http://www.augmentedrealitytrends.com/virtual-reality/sim-sickness.html

my note: similar issues with Google Glass. Here is some more info on the issue:

Rethinking Motion Sickness

http://well.blogs.nytimes.com/2013/09/23/rethinking-motion-sickness/

Pls have other IMS blog entries on Google Glass

https://blog.stcloudstate.edu/ims/?s=google+glass

 

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