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Archive for the ‘robotics/AI’ category: Page 2

Feb 21, 2024

Adobe launches AI assistant that can search and summarize PDFs

Posted by in category: robotics/AI

The company plans to release a subscription plan for the tool after it is out of beta.


Adobe’s new AI Assistant instantly generates summaries and insights from long documents, answers questions and formats information for sharing in emails, reports and presentations.

Feb 21, 2024

AI to forecast real-time plasma instabilities in nuclear fusion reactor

Posted by in categories: nuclear energy, robotics/AI

Fusion powers the Sun, and, by extension, makes life on Earth possible.


Researchers use AI to predict and prevent plasma instabilities in fusion reactors, averting reaction disruptions. Experiments show AI forecasts issues 300 milliseconds early, allowing real-time adjustments for stability.

Feb 21, 2024

MIT unveils adaptive smart glove that makes touch the teacher

Posted by in categories: education, robotics/AI, virtual reality

MIT researchers unveil a revolutionary smart glove integrating tactile feedback for enhanced learning, robotics, and virtual reality interactions.


Discover how MIT’s new smart glove is transforming education, robotics, and virtual reality experiences with personalized tactile feedback.

Feb 21, 2024

Let’s build the GPT Tokenizer

Posted by in categories: health, information science, robotics/AI

W/ Andrej Karpathy


The Tokenizer is a necessary and pervasive component of Large Language Models (LLMs), where it translates between strings and tokens (text chunks). Tokenizers are a completely separate stage of the LLM pipeline: they have their own training sets, training algorithms (Byte Pair Encoding), and after training implement two fundamental functions: encode() from strings to tokens, and decode() back from tokens to strings. In this lecture we build from scratch the Tokenizer used in the GPT series from OpenAI. In the process, we will see that a lot of weird behaviors and problems of LLMs actually trace back to tokenization. We’ll go through a number of these issues, discuss why tokenization is at fault, and why someone out there ideally finds a way to delete this stage entirely.

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Feb 21, 2024

The Brain Of Colonel Barham

Posted by in categories: robotics/AI, space

“With the world growing more crowded, the great powers strive to conquer other planets. The race is on. The interplanetary sea has been charted; the first caravelle of space is being constructed. Who will get there first? Who will be the new Columbus?” A robot probe is being readied to explore the secrets of the red planet, Mars. The only component lacking: a human brain. No body. Just the brain. It is needed to deal with unexpected crises in the cold, dark depths of space. The perfect volunteer is found in Colonel Barham, a brilliant but hot-tempered astronaut dying of leukemia. But all goes awry as, stripped of his mortal flesh, Barham — or rather his disembodied brain — is consumed with a newly-found power to control…or destroy. Project psychiatrist Major McKinnon (Grant Williams) diagnoses the brain as having delusions of grandeur…but, just perhaps, Col. Barham has achieved grandeur.

Feb 21, 2024

A new AI model called Morpheus-1 claims to induce lucid dreaming

Posted by in categories: education, robotics/AI

‘Inception’ is about to become a documentary — or are we all just dreaming?

Feb 21, 2024

From Sci-Fi to Reality: Scientists Develop Unbreakable, Bendable Optical Sensor

Posted by in categories: nanotechnology, robotics/AI, wearables

Researchers at Osaka University have developed a groundbreaking flexible optical sensor that works even when crumpled. Using carbon nanotube photodetectors and wireless Bluetooth technology, this sensor enables non-invasive analysis and holds promise for advancements in imaging, wearable technology, and soft robotics. Credit: SciTechDaily.com.

Researchers at Osaka University have created a soft, pliable, and wireless optical sensor using carbon nanotubes and organic transistors on an ultra-thin polymer film. This innovation is poised to open new possibilities in imaging technologies and non-destructive analysis techniques.

Recent years have brought remarkable progress in imaging technology, ranging from high-speed optical sensors capable of capturing more than two million frames per second to compact, lensless cameras that can capture images with just a single pixel.

Feb 21, 2024

AI Generated Videos Just Changed Forever

Posted by in categories: food, robotics/AI

Reminder: It’s only been 1 YEAR since the Will Smith eating spaghetti videoOpenAI Sora: https://openai.com/sora#researchThumbnail character: BasedAFMKBHD Mer…

Feb 21, 2024

Predibase (Predibase)

Posted by in category: robotics/AI

LoRA Land: 25 fine-tuned #Mistral 7b #LLM that outperform #gpt4 on task-specific applications ranging from sentiment detection to question answering.


Predibase is the fastest way to productionize open-source AI. It enables easy fine-tuning and serving of LLM or deep learning models on cloud infrastructure, promising scalability and cost-effectiveness and is currently used by Fortune 500 and high-growth companies. Try for free: https://predibase.com/free-trial.

Feb 21, 2024

Neuromorphic Computing from the Computer Science Perspective: Algorithms and Applications

Posted by in categories: information science, robotics/AI, science, transportation

Speaker’s Bio: Catherine (Katie) Schuman is a research scientist at Oak Ridge National Laboratory (ORNL). She received her Ph.D. in Computer Science from the University of Tennessee (UT) in 2015, where she completed her dissertation on the use of evolutionary algorithms to train spiking neural networks for neuromorphic systems. She is continuing her study of algorithms for neuromorphic computing at ORNL. Katie has an adjunct faculty appointment with the Department of Electrical Engineering and Computer Science at UT, where she co-leads the TENNLab neuromorphic computing research group. Katie received the U.S. Department of Energy Early Career Award in 2019.

Talk Abstract: Neuromorphic computing is a popular technology for the future of computing. Much of the focus in neuromorphic computing research and development has focused on new architectures, devices, and materials, rather than in the software, algorithms, and applications of these systems. In this talk, I will overview the field of neuromorphic from the computer science perspective. I will give an introduction to spiking neural networks, as well as some of the most common algorithms used in the field. Finally, I will discuss the potential for using neuromorphic systems in real-world applications from scientific data analysis to autonomous vehicles.

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