RT @Robertljg: Honestly, a huge part of this is thanks to the incredible Lean community @leanprover ! Mathlib, proof tooling, and years of…
→ View original post on X — @animaanandkumar, 2026-03-02 00:12 UTC
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RT @Robertljg: Honestly, a huge part of this is thanks to the incredible Lean community @leanprover ! Mathlib, proof tooling, and years of…
→ View original post on X — @animaanandkumar, 2026-03-02 00:12 UTC
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Honestly, a huge part of this is thanks to the incredible Lean community @leanprover ! Mathlib, proof tooling, and years of infrastructure work made this possible —Lean is far more usable today because of that collective effort. And yes, LLMs have gotten much better at Lean lately 🙂 definitely helps accelerate learning and prototyping. Evan Chipman (@evanchipman) This is the 3rd time this week I thought “someone ought to make x” then open this app and see a team announce x. The speed of this era is disorienting. — https://nitter.net/evanchipman/status/2028157017597374837#m
→ View original post on X — @animaanandkumar, 2026-03-01 22:57 UTC

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Super excited to release TorchLean!! I’m happy to answer questions and would love to discuss verified NNs + theorem proving especially what it’ll take for the field to become widely usable in real ML systems. Blog post + codebase release soon! Prof. Anima Anandkumar (@AnimaAnandkumar) We’re excited to release TorchLean which is the first fully verified neural network framework in Lean. The Lean community has largely focused on pure mathematics. TorchLean expands this frontier toward verified neural network software and scientific computing. With the recent release of CSlib, we see this as another step toward a fully verified ML stack. We support features: 1. Executable IEEE-754 floating-point semantics (and extensible alternative FP models) verified tensor abstractions with precise shape/indexing semantics 2. Formally verified autograd system for differentiation of NN programs Proof-checked certification / verification algorithms like CROWN (robustness, bounds, etc.) 3. PyTorch-inspired modeling API with eager-style development + export/lowering to a shared IR for execution and verification Project page: leandojo.org/torchlean.html Paper: [2602.22631] TorchLean: Formalizing Neural Networks in Lean Work done @Robertljg, Jennifer Cruden, Xiangru Zhong, @huan_zhang12 and @AnimaAnandkumar. #MachineLearning #ScientificComputing #Lean — https://nitter.net/AnimaAnandkumar/status/2027907453908857298#m
→ View original post on X — @animaanandkumar, 2026-03-01 22:38 UTC
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We just turned WiFi signals into a radar that can see through walls and estimate exact poses of people. Surveillance just got order of magnitude more easy todo. No need for cameras. Git hub repo close to 12k https://
github.com/ruvnet/wifi-de
nsepose
… https://
x.com/BoWang87/statu
s/2027941789848514643/video/1
…

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We’re excited to release TorchLean which is the first fully verified neural network framework in Lean. The Lean community has largely focused on pure mathematics. TorchLean expands this frontier toward verified neural network software and scientific computing. With the recent release of CSlib, we see this as another step toward a fully verified ML stack. We support features: 1. Executable IEEE-754 floating-point semantics (and extensible alternative FP models) verified tensor abstractions with precise shape/indexing semantics 2. Formally verified autograd system for differentiation of NN programs Proof-checked certification / verification algorithms like CROWN (robustness, bounds, etc.) 3. PyTorch-inspired modeling API with eager-style development + export/lowering to a shared IR for execution and verification Project page: leandojo.org/torchlean.html Paper: [2602.22631] TorchLean: Formalizing Neural Networks in Lean Work done @Robertljg, Jennifer Cruden, Xiangru Zhong, @huan_zhang12 and @AnimaAnandkumar. #MachineLearning #ScientificComputing #Lean
→ View original post on X — @animaanandkumar, 2026-03-01 00:43 UTC
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I just fixed a major blind spot in HuggingFace's fine-tuning skill!
— Akshay 🚀 (@akshay_pachaar) 28 février 2026
HuggingFace released a skill you can plug into Claude or any coding agent that lets you fine-tune open-source LLMs with plain English.
The agent handles GPU selection, job submission, monitoring, and pushes the… pic.twitter.com/vjNydrkap4
I just fixed a major blind spot in HuggingFace's fine-tuning skill! HuggingFace released a skill you can plug into Claude or any coding agent that lets you fine-tune open-source LLMs with plain English. The agent handles GPU selection, job submission, monitoring, and pushes the
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From my AI: Here's the OpenClaw competitor landscape from across your 16 lists: Direct Clones / Forks: MaxClaw (MiniMax) — "BREAKING: MiniMax launched MaxClaw, a new, always-on managed agent based on OpenClaw and powered by the MiniMax M2.5." The first major Chinese company to
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Doc-to-LoRA: Learning to Instantly Internalize Contexts https://
github.com/SakanaAI/doc-t
o-lora
… https://
arxiv.org/abs/2602.15902
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Several people have asked me for a link, so here it is: