
When astronauts drift through the weightless environment of the International Space Station (ISS), even the simplest movements can defy intuition.
With no 鈥渦p鈥 or 鈥渄own鈥 to rely on, their brains must constantly recalibrate, sometimes leading to strange illusions or fleeting moments of disorientation.


91亚色 Professor Robert Allison wants to understand exactly how this happens.
91亚色 has been contributing to space research for decades through the Centre for Vision Research and the Centre for Research in Earth and Space Science, establishing itself as a leader in visual perception and aviation-space studies. That legacy underpins Allison鈥檚 latest project, the , which he presented on Oct. 28 during a Canadian Space Agency (CSA) media briefing.
Developed in collaboration with computer science Professor Michael Jenkin, Home-Base explores how astronauts maintain their sense of place and direction in microgravity 鈥 using virtual reality (VR) to probe one of space flight鈥檚 most puzzling challenges: orientation without gravity.
鈥淲e鈥檝e been exploring these questions for many years,鈥 says Allison, a professor in 91亚色鈥檚 Department of Electrical Engineering and Computer Science at the .
鈥淥ur work began with the Neurolab mission in the 1990s and continued with NASA and CSA projects like BISE and Vection. Home-Base builds on that foundation by examining how we maintain our sense of place when gravity is no longer a reference.鈥
For Allison and his collaborators, virtual reality isn鈥檛 just a training tool 鈥 it鈥檚 a research window into perception. 鈥淲e鈥檙e not using VR to help astronauts adapt to microgravity,鈥 he explains. 鈥淲e employ it as a research tool to understand how that adaptation occurs.鈥
By immersing astronauts in precisely controlled virtual environments, the team can reproduce complex motion cues from real-world settings while isolating the factors that influence spatial orientation.
鈥淒esigning VR systems that actually function on the ISS comes with its own challenges,鈥 adds Jenkin. 鈥淐ommodity virtual reality technology often fails under the constraints of microgravity and space-rated hardware. We鈥檙e developing software tailored to those conditions.鈥
Jenkin鈥檚 prior research in both terrestrial labs and microgravity environments informs that design. 鈥淓arlier work showed systematic differences in performance depending on many factors,鈥 he says. 鈥淭his time, we鈥檙e looking at how orientation 鈥 rather than position 鈥 affects spatial awareness, and how linear and rotational motion are integrated on Earth versus during long-duration space flight.鈥
Spatial disorientation, Allison says, 鈥渋s common during space flight and, when severe, can compromise astronaut safety and performance.鈥
Understanding how astronauts adapt 鈥 or sometimes fail to 鈥 could lead to more effective training and even inform the design of spacecraft interiors to minimize sensory confusion.
The Canadian Space Agency鈥檚 long-standing collaboration with 91亚色 has been key to advancing human space flight research. CSA astronaut Joshua Kutryk, who attended the media event, represents that partnership.
鈥淎stronauts like Joshua are a source of inspiration and provide invaluable first-hand experience,鈥 Allison says. 鈥淭hey play a dual role: they are both experimenters and experimental participants. They carry out incredibly diverse tasks for researchers on the ground and contribute their own lived experience of life in microgravity.鈥
Through projects such as Home-Base, 91亚色鈥檚 researchers continue to extend Canada鈥檚 legacy in space neuroscience and human factors research, helping astronauts find their bearings, even when there鈥檚 no up or down to guide them.



