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Neuralink just released a major new update on how it is training brain-computer interfaces Participants have now generated more than 50,000 HOURS of unlabeled neural data Neuralink is now pretraining neural encoders on thousands of hours of each participant’s brain activity before using them for cursor control And the...

18,574 görüntüleme • 2 gün önce •via X (Twitter)

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daniel warren profil fotoğrafı
daniel warren2 gün önce

On the motor-cortex implants, some participants map imagined finger movements to keys and have reached about 40 words per minute. That is spelled output from movement intent, not overheard inner speech.

FluxGravitas profil fotoğrafı
FluxGravitas2 gün önce

Same playbook as LLMs: pretrain on everything, fine tune for the task. Calibration collapsing from 55 minutes to 10 is few shot learning for brains. The mind is becoming just another modality.

Wesley Parker profil fotoğrafı
Wesley Parker2 gün önce

Give them LSD and watch the magic

Mukeesh ML profil fotoğrafı
Mukeesh ML2 gün önce

The speed is massive

Jory Bicknell profil fotoğrafı
Jory Bicknell2 gün önce

I'm excited to test this!

Alp Urungu profil fotoğrafı
Alp Urungu2 gün önce

!

Somto 🃏 profil fotoğrafı
Somto 🃏2 gün önce

This is insane. 50k hours of brain data is like building ChatGPT but for the mind

Gereksiz profil fotoğrafı
Gereksiz2 gün önce

Fifty thousand hours of unlabeled data pretrains the encoder on each person’s own signals before cursor control. Cutting calibration from 55 to 10 minutes shows stability. 11.32 bits/s is a new speed record; cross-person generalization is still a goal, not a result.

BraveTom profil fotoğrafı
BraveTom2 gün önce

This is very interesting 🤔

Macro Bombastic profil fotoğrafı
Macro Bombastic2 gün önce

tbh the calibration drop is the real story here

Benzer Videolar

The Mathematics of Moving a Cursor with Neural Signals What might Neuralink Neuralink be doing Mathematically? Consider the task of moving a cursor without touching it. The machine is not looking for a full thought, a sentence, or an image. For this Control problem, the useful object is an intended movement state. sₜ = (pₜ, vₜ) Here, pₜ is the cursor position at time t, and vₜ is the velocity the user is trying to express. The implant records neural activity through many electrode channels, then the decoder tries to estimate vₜ from that activity. Neuralink’s PRIME material describes the N1 Implant as recording and transmitting brain activity with the goal of enabling computer control. For channel i, a simple population model is rᵢ(t) ≈ bᵢ + aᵢ max(0, dᵢ · vₜ) + ηᵢ(t) where rᵢ(t) is the measured activity, bᵢ is baseline activity, aᵢ is channel gain, dᵢ is the channel’s preferred movement direction, and ηᵢ(t) is noise. One channel is not the command. The useful signal is the pattern across many channels: rₜ = (r₁(t), r₂(t), …, rₙ(t)) The decoder subtracts the baseline vector b and applies a learned map W: v̂ₜ = W(rₜ − b) This gives an estimate of the intended velocity. The cursor then updates by pₜ₊₁ = pₜ + Δt v̂ₜ This is the loop shown in the render: neural activity -> decoded velocity -> cursor motion The cortical network and electrode threads show the measurement side. The N1 Implant is described as using 1,024 electrodes distributed across 64 flexible threads, each thinner than a human hair. The decoder panel shows the computational side with activity rₜ, decoded velocity v̂ₜ, and the cursor state pₜ changing over time. A noisy biological pattern becomes a state estimate. That estimate becomes motion on a screen. Therefore, the first lesson is not that Neuralink makes the brain a screen. For cursor control, the Mathematics is more precise: A small piece of intention is represented as a hidden state, measured through neural activity, decoded as a vector, and turned into action. #Neuralink #BrainComputerInterface #NeuralEngineering #Mathematics #StateEstimation #Neuroscience #MachineLearning #BiomedicalEngineering

Mathelirium

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