Skip to content
Tech News
← Back to articles

Big Tech Wants to Harvest Your Thoughts

read original more articles
Why This Matters

This article highlights advancements in neuroscience that enable decoding and even manipulating brain activity, raising important ethical and privacy concerns for the tech industry and consumers. As brain-computer interfaces become more sophisticated, understanding their potential impact on personal autonomy and data security becomes crucial.

Key Takeaways

Rafael Yuste is in his early sixties and bears a more than passing resemblance to Pablo Picasso—if Picasso had worn glasses and had a trim white goatee. Speaking succinctly and methodically, his accent rich with Spanish inflections, he told me about an experiment he had carried out in his lab at Columbia on the brains of mice, and specifically on that part of the cortex that responds to vision. His mentor had been the Swedish neuroscientist Torsten Wiesel, who won a Nobel Prize for his research into how our visual systems process information.

“He discovered by chance that the strongest stimulus is a pattern of high-contrast dark and light bars.” He held up one hand and waved his fingers back and forth. “If you imagine my fingers were bars of light surrounded by complete blackness—if I move my fingers in front of your eyes, that fires up your whole visual cortex.”

Courtesy of Bloomsbury Buy this book at: Amazon

Bookshop.org

Target If you buy something using links in our stories, we may earn a commission. This helps support our journalism. Learn more.

To begin with, they used these moving images to train the mice. The bars were projected onto a computer screen in front of them, and when they moved up and down, it was a cue to take a drink from a tube of water. When they moved from side to side, they were to stop drinking. The researchers used a sophisticated laser system to monitor brain activity through the mouse’s skull—identifying exactly which neurons were firing when it was looking at the projected images. “We can see the neurons that are encoding the visual stimulus,” Yuste explains.

Having cracked this neuronal code, Yuste’s group used a second holographic laser system to project a series of points inside the mouse’s brain, with each point activating the very same neurons that represented vertical or horizontal moving bars. “The killer experiment was to turn off the screen,” Yuste says. “Just like when you are playing the piano, you use different fingers on particular keys. So, we are playing the images on the cortex. And when we play them, we make the mouse behave in the way we want it to.” When the team implanted images of bars moving up and down, the mice licked the water. When they implanted images of bars moving side to side, they stopped licking.

In effect, they had read the mind of the mouse, identified exactly what was happening in its brain when it viewed the images—and then used that data to make it see things that were not there.

“The way that the mouse licks the spout when he sees the image that we implanted is identical to when he sees the image with his own eyes. And I mean the same number of licks, the same duration of each lick, the same delay until he starts licking. So, as far as we know, he cannot tell the difference. He thinks that these things are real in front of him.”

It was a clear demonstration, Yuste said, of the power of this new technology—­that they could “manipulate the mouse like a puppet” and make it do one thing, or do another, depending on which image they put into its brain.

... continue reading