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Mar 19, 2024

Ferroelectric compute-in-memory annealer for combinatorial optimization problems

Posted by in categories: computing, information science

Yin et al. realize a FeFET based compute-in-memory annealer as an efficient combinatorial optimization solver through algorithm-hardware co-design with a FeFET chip, matrix lossless compression, and a multi-epoch simulated annealing algorithm.

Mar 19, 2024

New Idea Solves Three Physics Mysteries at Once: Post Quantum Gravity

Posted by in category: quantum physics

💰Special Offer!💰 Use our link https://joinnautilus.com/SABINE to get 15% off your membership!For the first time in 4 decades, physicists have found a new a


Mar 19, 2024

Scientists Say There Could Be a ‘Mirror Universe’ Reflecting a Parallel Realm

Posted by in category: cosmology

Is this where dark matter is hiding in plain sight?

Mar 19, 2024

Secrets of Quantum Physics, “Einstein’s Nightmare” 4k

Posted by in categories: particle physics, quantum physics

Quantum physics starts with the 20th century as scientists try to understand light bulbs. This simple quest led scientists on a deep journey.

Professor Jim Al-Khalili reveals how Einstein thought he’d found a fatal flaw in quantum physics that implies that subatomic particles can communicate faster than light. The host of \.

Mar 19, 2024

Jensen Huang unveils new Nvidia super-chip before robots come onstage: ‘Everything that moves in the future will be robotic’

Posted by in categories: futurism, robotics/AI

Nvidia, the $2 trillion AI giant, is moving to lap the market once again.

Mar 19, 2024

Voyager 1 Breaks Silence: A Signal from the Depths of Space!

Posted by in category: space

In this thrilling episode, we dive into the heart of cosmic mystery as Voyager 1 sends back a groundbreaking signal after months of silence. Discover how NASA’s quick thinking and a simple \.

Mar 19, 2024

Natural language instructions induce compositional generalization in networks of neurons

Posted by in categories: biological, robotics/AI

In this study, we use the latest advances in natural language processing to build tractable models of the ability to interpret instructions to guide actions in novel settings and the ability to produce a description of a task once it has been learned. RNNs can learn to perform a set of psychophysical tasks simultaneously using a pretrained language transformer to embed a natural language instruction for the current task. Our best-performing models can leverage these embeddings to perform a brand-new model with an average performance of 83% correct. Instructed models that generalize performance do so by leveraging the shared compositional structure of instruction embeddings and task representations, such that an inference about the relations between practiced and novel instructions leads to a good inference about what sensorimotor transformation is required for the unseen task. Finally, we show a network can invert this information and provide a linguistic description for a task based only on the sensorimotor contingency it observes.

Our models make several predictions for what neural representations to expect in brain areas that integrate linguistic information in order to exert control over sensorimotor areas. Firstly, the CCGP analysis of our model hierarchy suggests that when humans must generalize across (or switch between) a set of related tasks based on instructions, the neural geometry observed among sensorimotor mappings should also be present in semantic representations of instructions. This prediction is well grounded in the existing experimental literature where multiple studies have observed the type of abstract structure we find in our sensorimotor-RNNs also exists in sensorimotor areas of biological brains3,36,37. Our models theorize that the emergence of an equivalent task-related structure in language areas is essential to instructed action in humans. One intriguing candidate for an area that may support such representations is the language selective subregion of the left inferior frontal gyrus. This area is sensitive to both lexico-semantic and syntactic aspects of sentence comprehension, is implicated in tasks that require semantic control and lies anatomically adjacent to another functional subregion of the left inferior frontal gyrus, which is implicated in flexible cognition38,39,40,41. We also predict that individual units involved in implementing sensorimotor mappings should modulate their tuning properties on a trial-by-trial basis according to the semantics of the input instructions, and that failure to modulate tuning in the expected way should lead to poor generalization. This prediction may be especially useful to interpret multiunit recordings in humans. Finally, given that grounding linguistic knowledge in the sensorimotor demands of the task set improved performance across models (Fig. 2e), we predict that during learning the highest level of the language processing hierarchy should likewise be shaped by the embodied processes that accompany linguistic inputs, for example, motor planning or affordance evaluation42.

One notable negative result of our study is the relatively poor generalization performance of GPTNET (XL), which used at least an order of magnitude more parameters than other models. This is particularly striking given that activity in these models is predictive of many behavioral and neural signatures of human language processing10,11. Given this, future imaging studies may be guided by the representations in both autoregressive models and our best-performing models to delineate a full gradient of brain areas involved in each stage of instruction following, from low-level next-word prediction to higher-level structured-sentence representations to the sensorimotor control that language informs.

Mar 19, 2024

Older Than Time? Speck of light glimpsed by Hubble is truly an enormous old galaxy, JWST reveals

Posted by in category: cosmology

Dive into the captivating story of Gz9p3, an ancient galaxy that’s challenging our understanding of the cosmos. Revealed by the James Webb Space Telescope, this galactic giant, observed just 510 million years after the Big Bang, is reshaping our views on early universe galactic formation. Join us as we explore the mysteries and wonders of Gz9p3, a window into the universe’s dawn.

Chapters:
00:00 Introduction.
00:54 Unveiling Gz9p3: A Glimpse into the Past.
03:16 Cosmic Collisions: Sculpting Galaxies.
05:03 Rethinking Early Universe Cosmology.
06:25 Outro.
07:13 Enjoy.

Continue reading “Older Than Time? Speck of light glimpsed by Hubble is truly an enormous old galaxy, JWST reveals” »

Mar 19, 2024

Largest-ever map of universe’s active supermassive black holes released

Posted by in category: cosmology

Astronomers have charted the largest-ever volume of the universe with a new map of active supermassive black holes living at the centers of galaxies. Called quasars, the gas-gobbling black holes are, ironically, some of the universe’s brightest objects.

Mar 19, 2024

The Next Generation of Tiny AI: Quantum Computing, Neuromorphic Chips, and Beyond

Posted by in categories: biotech/medical, information science, quantum physics, robotics/AI

Amidst rapid technological advancements, Tiny AI is emerging as a silent powerhouse. Imagine algorithms compressed to fit microchips yet capable of recognizing faces, translating languages, and predicting market trends. Tiny AI operates discreetly within our devices, orchestrating smart homes and propelling advancements in personalized medicine.

Tiny AI excels in efficiency, adaptability, and impact by utilizing compact neural networks, streamlined algorithms, and edge computing capabilities. It represents a form of artificial intelligence that is lightweight, efficient, and positioned to revolutionize various aspects of our daily lives.

Looking into the future, quantum computing and neuromorphic chips are new technologies taking us into unexplored areas. Quantum computing works differently than regular computers, allowing for faster problem-solving, realistic simulation of molecular interactions, and quicker decryption of codes. It is not just a sci-fi idea anymore; it’s becoming a real possibility.

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