This will make Hermes a lot more useful to me. Thanks!
RESEARCH
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GPT-5 Derives New Results in Theoretical Physics and Quantum Gravity
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🔬Doing Vibe Physics
— Latent.Space (@latentspacepod) 5 mai 2026
The full story of how GPT‑5.x derived new results in theoretical physics and quantum gravity, live on our Science pod today! https://t.co/EVj2tITVGJ
our conversation with @ALupsasca, an award winning theoretical physicist on his AGI-pilling journey… https://t.co/O2Y2SQwtzn pic.twitter.com/vs5q1WoXGoDoing Vibe Physics The full story of how GPT‑5.x derived new results in theoretical physics and quantum gravity, live on our Science pod today! https://
latent.space/p/lupsasca our conversation with @ALupsasca
, an award winning theoretical physicist on his AGI-pilling journey -

Musk-OpenAI Factual Agreement and Ethical Questions in AI
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Our best shot for preventing many diseases?
Exercise
A @Cell_Metabolism new review https://
cell.com/cell-metabolis
m/fulltext/S1550-4131(26)00086-0
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Beihang University Unveils 2cm Ultrafast Untethered Microbot
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Beihang University Unveils 2 cm Microbot with Ultrafast Untethered Speed
— Ronald van Loon (@Ronald_vanLoon) 5 mai 2026
via @WevolverApp
#AI #Robotics #MachineLearning #ArtificialIntelligence pic.twitter.com/BN6RijA61eBeihang University Unveils 2 cm Microbot with Ultrafast Untethered Speed
via @WevolverApp #AI #Robotics #MachineLearning #ArtificialIntelligence -
Anthropic Model Spec Midtraining Study and Alignment Research
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Read more about Model Spec Midtraining: https://
alignment.anthropic.com/2026/msm Or read the full study: https://
arxiv.org/abs/2605.02087 -

Model Specs and Constitutions Drive Better AI Alignment Generalization
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Using MSM, we can also empirically study which model specs or constitutions yield the best generalization from alignment training. Specifying rules works to some extent, but explaining the values underlying those rules (or adding more detailed subrules) is even better.
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MSM Training Reduces Unsafe Agentic Actions in AI Chatbots
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A more realistic example: AIs trained to be harmless chatbots can take unsafe actions in agentic settings. Preceding this training with MSM on a realistic spec drastically improves generalization, reducing unsafe agentic actions.
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MSM Technique Transfers Broad Values from Minimal AI Training
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A toy example: Train an AI only to say it likes certain cheeses. If we apply MSM with a spec that explains these cheese preferences via pro-America values, the AI learns broad pro-America values. Swap to a pro-affordability spec? The AI learns to value affordability instead.
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MSM Training Teaches AIs Their Behavioral Spec for Better Alignment
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Developers try to align AIs to a constitution, or spec, describing intended AI behavior. But AIs don’t normally know what’s in it. MSM adds a training phase for teaching an AI about its spec. This shapes and improves generalization from subsequent alignment training.
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Anthropic Introduces Model Spec Midtraining for Better AI Alignment
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New Anthropic Fellows research: Model Spec Midtraining (MSM). Standard alignment methods train AIs on examples of desired behavior. But this can fail to generalize to new situations. MSM addresses this by first teaching AIs how we would like them to generalize and why.