Welcome to the Heliox Podcast! Today, we’re in for a mind-bending journey into the future of AI with Ramin Hasani, CEO of Liquid AI. Prepare to be amazed as we explore how a tiny worm’s nervous system could revolutionize artificial intelligence. Hasani shares his vision for smaller, more intelligent AI that might change everything — from healthcare to scientific discovery. We’ll dive into this groundbreaking technology’s exciting possibilities and essential ethical considerations. Get ready for a fascinating glimpse into a future where AI and human potential intertwine in ways we’re only beginning to imagine!
“Through our simulated impacts, we found that the pure water froze too quickly in a vacuum to effect meaningful change, but salt and water mixtures, or brines, stayed liquid and flowing for a minimum of one hour,” said Dr. Michael J. Poston.
How does extra salty water, also known as briny water, form and evolve on worlds without atmospheres, such as asteroids and moons? This is what a recent study published in The Planetary Science Journal hopes to address as a team of researchers investigated how briny water could still flow for a period of time on the asteroid Vesta after large impacts resulted in the melting of subsurface ice. This study holds the potential to help researchers better understand the geological and chemical processes on planetary bodies without atmospheres and what this could mean for finding life as we know it.
“We wanted to investigate our previously proposed idea that ice underneath the surface of an airless world could be excavated and melted by an impact and then flow along the walls of the impact crater to form distinct surface features,” said Dr. Jennifer Scully, who is a planetary geologist at NASA’s Jet Propulsion Laboratory (JPL) and a co-author on the study.
For the study, the researchers used a JPL test chamber to analyze how liquid samples responded to rapid drops in atmospheric pressure on the asteroid Vesta, thus simulating the conditions of a high-speed impact, which also includes the very brief creation of an atmosphere resulting from that impact. In the end, the researchers made some intriguing findings that could help scientists better understand the geological and chemical processes that occur on planetary bodies without atmospheres.
Whether we’re staring at our phones, the page of a book, or the person across the table, the objects of our focus never stand in isolation; there are always other objects or people in our field of vision. How that visual “clutter” affects visual processing in the brain, however, is not well understood.
In a new study published Oct. 22 in the journal Neuron, Yale researchers show that this clutter alters how information flows in the brain, as does the precise location of that clutter within the wider field of vision. The findings help clarify the neural basis of perception and offer a deeper understanding of the visual cortex in the brain.
Octopus arms may literally have a mind of their own. Each limb contains its own version of a spinal cord, called an axial nerve cord, and these cords collectively harbor most of the animal’s neurons.
The datasets provide “a very nice reference” for future functional studies.
Thanks for watching Matter!
🔔 Hit the bell next to Subscribe so you never miss a video!
❤️ Like, Comment and Subscribe if you are new to the channel!
Scientists FINALLY FOUND a new way to travel faster than light!
The idea of using “warp drive” technology, which used to be just a fantasy, is now becoming a real scientific topic. This is a big shift in how we think about exploring space. Think about it: right now, space travel is super slow. For example, Voyager one, a spacecraft launched in nineteen seventy-seven, took thirty-five years just to leave our solar system. But if we could travel faster than light, the possibilities for exploration would skyrocket. We could go from being stuck on Earth to becoming explorers of the whole universe. But we have to ask ourselves: are the same laws of physics that hold us back also hiding the secret to breaking free?
This concept could change the game for space travel, showing us that the physicist’s speed limit might not be as final as we thought. If we stop thinking about speed in the traditional way and focus on bending space itself, we might be able to do what once seemed impossible. The potential is mind-blowing. If we could actually make this work, it would transform our relationship with space. Suddenly, interstellar travel wouldn’t be just a dream—it could become a reality. We could visit distant galaxies, study planets far from our solar system, and even start colonies on other worlds.
Humanoid robots are on the cusp of mass adoption. And Elon Musk’s Tesla bots aren’t the only game in town.
There are ways of cooling the planet, and then there are cool ways of cooling the planet. Spending decades grinding up something approaching a quadrillion dollars worth of diamonds into dust, and then dispersing the powdered gemstones into our atmosphere? That falls into the latter. Contrary to what you might…
Sweden’s Alight and Finland’s 3Flash have entered into a joint development agreement to build a 120 MW solar park in Loviisa, a town in southeastern Finland.
Construction is expected to begin early next year, with commissioning currently scheduled for 2027. Once completed, it is expected to generate 155 GWh, equivalent to the annual electricity needs of 31,000 households.
A team of scientists has discovered surprising connections among gene activity, genome packing, and genome-wide motions, revealing aspects of the genome’s organization that directly affect gene regulation and expression.