This message comes from Memorial Sloan Kettering Cancer Center.
Help advance new cures and treatments for cancer.
This MSK Giving Day, every donation will be triple matched.
Give now at msk .org slash give.
You're listening to Shortwave from NPR.
When Susana Martinez -Gondé was around 10, she was on a school trip near her hometown of Ocorruña, Spain, when she found herself by a river just staring at the water.
but then she noticed something weird as she stared at the river and shifted her gaze to stationary objects nearby like a rock or a riverbed it almost looked like those objects were moving too but in the opposite direction so i thought that that was something that i had noticed for the first time ever and uh no it's a it's a very old illusion in fact aristotle was was the first person to describe this waterfall illusion or motion after effect.
And as a scientist, Susanna now understands why this happens.
Neurons in your visual cortex are sensitive to specific motion directions.
So if you look at water flowing in one direction, those specific neurons that are sensitive to that direction stop firing as much. They almost adapt to the flow.
And when you look elsewhere...
The neurons that are responsive to the opposite direction of motion, those are going to become a lot more prominent in your perception.
So that's why you see motion in the opposite direction to the direction that your visual system is adapted to.
Susanna is a professor of ophthalmology, neurology, physiology, and pharmacology at SUNY Downstate Health Sciences University.
And she loves illusions because illusions are perceptual experiences that do not match physical reality.
How we see the world is driven entirely by our brains and illusions really reveal that.
She and her collaborator, now husband, neuroscientist Stephen Maknik, made a game of spotting illusions whenever they went to professional vision conferences.
They always wanted to know what new illusions had been discovered by other vision scientists.
Back in 2005, they had this idea.
Wouldn't it be cool to have an event where we can have all the new illusions come together?
And we thought, let's have an illusion contest. Susanna and Stephen developed the Illusion of the Year contest. Artists, magicians, any illusion creators can upload a one -minute video sharing some kind of novel illusion.
And Susanna has been genuinely shocked that 20 years later, new illusions are still coming in.
Illusions appear to be a fundamental feature of how our brains work, almost like the curtain falling down to reveal the Wizard of Oz.
And they're not the situations in which the brain gets it wrong, so to speak.
but illusions are intrinsic to how we construct our perception of the world.
Today on the show, we get lost, or maybe found, in the brain magic of visual illusions and reveal the most recent first place winner in the Illusion of the Year contest. I'm Emily Kwong and you're listening to Shortwave from NPR.
This message comes from Memorial Sloan Kettering Cancer Center.
100 % of participants in a recent colorectal cancer trial saw their tumors completely disappear.
That breakthrough happened at Memorial Sloan Kettering Cancer Center, and it's giving new hope to people with cancer.
This MSK Giving Day, be part of the next groundbreaking discovery and help raise $1 million.
Donate at msk .org slash give, and your gift will be triple matched.
This message comes from NPR sponsor Holiday Inn by IHG.
It's a new day for a new stay at Holiday Inn for business travelers.
With modern spaces for meeting and working, plus delicious dining from breakfast to happy hour and dinner, you have everything you need to get work done.
Give your everyday business travel an upgrade.
Book your next business trip at Holiday Inn by IHG.
Visit HolidayInn .com to book your stay.
All right, Susanna, so today we are going to get lost in the world of illusions.
You were saying earlier how this is not a bug, but is in fact just a fundamental fact about how our brains work.
Why? Exactly. From the very beginning of the visual pathway, we're talking about the retina at the back of the eye.
And there you already have neurons that are specialized on detecting contrast. So, the brain never cares about absolute terms. There is no black, there is no white, there is no big or small.
Everything depends on what you're comparing it with.
And so, this inevitably gives rise to illusions.
And so, in fact, I would go beyond to say that we never have 100 % correspondence between reality and perception.
What we call illusions are those cases in which the discrepancy is most spectacular that we can no longer ignore it.
And in some cases, really important cognitive dissonance because we can be in situations in which we know for a fact that what we're seeing is different from what's there, but we cannot force ourselves to see it any differently.
All reality is perceptual, you're saying.
It's all filtered by what our brain is telling us.
You never have a direct experience of reality.
you've always been inside of your simulation.
And your brain structure is so critical to the simulation that your view of the world, your sense of the world is going to be just so different depending on what kind of brain you have. And I'm not just talking about individual differences, but your experience of the world is going to be different from your cat's experience of the world or a bee's experience of the world and so on.
These are different brains and different realities.
Alright. Well, let's talk about two visual illusions.
The first one I want to discuss is an image you studied called rotating snakes.
It's an example of what's called peripheral drift. It's a still photo that your mind thinks is moving.
And I'm looking at it now, rotating snakes.
And to describe it, it's like six kaleidoscopic -looking circles that are made up of smaller, overlapping different colored circles.
And I know they're not moving, but as I focus on one, it looks like the others are moving.
What is happening? Yes, so the rotating snake solution was created by one of the most famous illusion creators, Akiyoshi Kitaoka.
And as you change your gaze around the image, these snakes appear to rotate when in reality, the image is perfectly stationary.
These color patches, what's critical to them is not the color itself, but the luminance, so their brightness.
And in the proper order, this sequence of patches tricks, again, the motion -sensitive neurons in your brain into, quote -unquote, believing that there is motion.
And what we discovered in my laboratory some years ago was the specific type of eye movement that you need to trigger this illusion.
and that is the sort of transient eye movements such as eye jumps.
All of our eyes jump.
They jump every second of every waking hour.
So by the time you go to bed, you will have made about 200 ,000 of these eye jumps in a given day.
And you're only aware of maybe a dozen of them, if I were to guess.
So you cannot make more jumps on purpose.
But what you can do is you can briefly suppress them.
And so if you are looking at the rotating snake's illusion and you choose a single point like the center of one of the snakes and try to keep your eyes there as precisely as you can, just fix your eyes as much as you can, you're going to get the snakes to slow down or even stop completely.
But if you relax your gaze again, the motion will come right back.
So you announced the winners of the Illusion of the Year contest recently, this month.
And I wanted to talk about the winner.
And this is a static spin by Salida Kadir and Bernard Egger out of Germany.
So this is a ballerina, an illustration of a ballerina.
And she's rendered entirely in grayscale.
She seems to be spinning, right?
She's not. And it's like the edges of her are almost blinking.
It's inspired by the paper Motion Without Movement.
The edges of her are being adjusted through computer programming.
We've taken this 2D illusion into the third dimension by first estimating the depth of the image and then calculating the speed per pixel for a dynamic light -like effect.
And there you have it, a mesmerizing blend of art and science.
That is so cool. What did you think when you first saw this submission?
Well, I thought that it was a beautiful illusion.
I still do. And I think that it brings together so well the science and the art because you're not just watching the implementation of a brain principle, of a perception principle, but you're actually watching art.
And I think that that's what makes illusions so captivating in a way.
Why study illusions at all?
As scientists, what is the value in studying them and for these early career scientists to take time to do it?
The definition of an illusion is a disconnect between objective reality and subjective perception.
Because of this disconnect in illusions between perception and reality, We can, as scientists, go in and analyze the neurons and the brain circuits that support activity, neural activity that matches perception.
And those could be part of the neural basis of consciousness, whereas if you have neurons and circuits that have activity that matches reality rather than perception, those would not be part of the circuit that underlies consciousness.
The contest will presumably continue next year, so people can submit from anywhere in the world?
Yes, absolutely. Anybody can participate.
You can be an illusion creator and you can participate as a contestant and you can also participate by voting for the best illusions.
Susana Martinez Conde, it was so good to talk to you.
Thank you so much for coming on Short Wave. Thank you for having me.
Troyvers, I like to think of every episode of our show as a combination of science and magic, just like an illusion.
So if you never want to miss another one, subscribe, follow, like, whatever app you're listening to.
And that way you'll never miss out.
This episode was produced by Burley McCoy.
It was edited by our showrunner, Rebecca Ramirez, and fact -checked by Tyler Jones.
The audio engineer was Maggie Luthar.
Beth Donovan is our Senior Director, and Colin Campbell is our Senior Vice President of Podcasting Strategy.
I'm Emily Kwong. Thank you for listening to Shortwave from NPR.
This message comes from Ritual.
What makes Ritual vitamins different?
Ritual Vitamins are made with bioavailable, clinically studied key ingredients and a patented nutrient delivery system that aims to help your body use the nutrients you're getting.
Ritual's essential multivitamins are made with you and your body in mind and backed by scientific research. Filled with key ingredients as well as the essence of mint, so you can enjoy taking your vitamins.
Get 25 % off your first purchase when you visit ritual .com slash NPR.
Federal funding for public media has been eliminated That means decades of bipartisan support for public radio and television is ending To be clear, NPR isn't going anywhere But we do need your support Please give today to help keep rigorous, independent, and irreplaceable news coverage available to everybody Free of charge You can make your gift at donate .npr .org And thank you