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An extremely cool application of large language models in combination with other AI tools such as models for text-to-speech and speech-to-text, image recognition and captioning, etc.


We created a robot tour guide using Spot integrated with Chat GPT and other AI models to explore the robotics applications of foundational models.

Joscha Bach meets with Ben Goertzel to discuss cognitive architectures, AGI, and conscious computers in another theolocution on TOE.

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LINKS MENTIONED:
- OpenCog (Ben’s AI company): https://opencog.org.
- SingularityNET (Ben’s Decentralized AI company): https://singularitynet.io.
- Podcast w/ Joscha Bach on TOE: • Joscha Bach: Time, Simulation Hypothe…
- Podcast w/ Ben Goertzel on TOE: • Ben Goertzel: The Unstoppable Rise of…
- Podcast w/ Michael Levin and Joscha on TOE: • Michael Levin Λ Joscha Bach: Collecti…
- Podcast w/ John Vervaeke and Joscha on TOE: • Joscha Bach Λ John Vervaeke: Mind, Id…
- Podcast w/ Donald Hoffman and Joscha on TOE: • Donald Hoffman Λ Joscha Bach: Conscio…
- Mindfest Playlist on TOE (Ai and Consciousness): • Mindfest (Ai \& Consciousness Conference)

TIMESTAMPS:

The “super premium” segment here implies a driving range of around 600 miles per charge. In addition, Samsung will be introducing high-nickel NCS products for the premium segment.

Samsung’s oxide solid-state battery technology boasts an energy density of 500 Wh/kg, nearly double the 270 Wh/kg density of mainstream EV batteries.

This increased density could potentially double the driving range of current electric vehicles.

This could be the road to quantum computation.


“In contrast, solid-state emitters embedded in a photonic circuit are hardly ‘the same’ due to slightly different surroundings influencing each emitter. It is much harder for many solid-state emitters to build up phase coherence and collectively interact with photons like cold atoms. We could use cold atoms trapped on the circuit to study new collective effects,” Hung continues.

The platform demonstrated in this research could provide a photonic link for future distributed quantum computing based on neutral atoms. It could also serve as a new experimental platform for studying collective light-matter interactions and for synthesizing quantum degenerate trapped gases or ultracold molecules.

“Unlike electronic transistors used in daily life, our atom-coupled integrated photonic circuit obeys the principles of quantum superposition,” explains Hung. “This allows us to manipulate and store quantum information in trapped atoms, which are quantum bits known as qubits. Our circuit may also efficiently transfer stored quantum information into photons that could ‘fly’ through the photonic wire and a fiber network to communicate with other atom-coupled integrated circuits or atom-photon interfaces. Our research demonstrates a potential to build a based on cold-atom integrated nanophotonic circuits.”