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Fun interactive science app ideas | Part 3 Played around with generating 3D biological structures and made an app to explore them interactively UI Design GPT Images 2 Code Gemini 3.1 Pro More demos β https://t.co/j0tZl5kicO
This is just mindblowing stuff! I couldn't resist replicating this workflow to generate 3D biological structures. In a few minutes, I designed an artifact specifically built to generate these for any topic. Stack: - HTML Artifact to view diagrams - Gemini Nano Pro for concept generation - Tripo for generative 3D - Codex for assembling everything AI will exponentially accelerate learning and democratize high-quality education. Stay tuned! We have a few releases on this front.
Fun interactive science app ideas | Part 3 Played around with generating 3D biological structures and made an app to explore them interactively UI Design GPT Images 2 Code Gemini 3.1 Pro More demos β https://t.co/j0tZl5kicO
Great essay by Tobi. Building an AI-native company? Go read it now. I couldn't resist visualizing it with my artifact generator. Biggest takeaway for me: "The risk isn't that AI does the work. It's that nobody learns from it." https://t.co/a10o06cTfd
https://t.co/5MJ7u1VHwf
// The Memory Curse in LLM Agents // (bookmark it) Long histories apparently degrades agents as they become increasingly history-following and risk-minimizing. Across 7 LLMs and 4 social dilemma games over 500 rounds, expanding accessible history degraded cooperation in 18 of 28 modelβgame combinations. They call it the memory curse. Lexical analysis of 378,000 reasoning traces shows the mechanism: it's not that agents become paranoid, it's that forward-looking intent erodes. Long histories pull the model into reasoning about past slights instead of future payoffs. A LoRA adapter trained only on forward-looking traces mitigates the decay and transfers zero-shot to new games. Memory sanitization, keeping prompt length fixed but swapping in synthetic cooperative records, restores cooperation, proving the trigger is content, not length. And ablating explicit Chain-of-Thought often reduces the collapse, meaning deliberation actively amplifies the curse. Paper: https://t.co/aHLDZ9kmlJ Learn to build effective AI agents in our academy: https://t.co/1e8RZKs4uX
Cool paper from PwC. "Earlier is always better" is the default intuition for agent clarification. New paper claims that's mostly wrong. Goal clarification loses nearly all of its value after just 10% of execution. The team built a forced-injection framework that drops ground-truth clarifications at controlled points along a long-horizon agent's trajectory, across 4 information dimensions (goal, input, constraint, context), 3 benchmarks, and 4 frontier models. 84 task variants, 6,000+ runs. Pass@3 falls from 0.78 back to baseline. Input clarification keeps value through roughly 50%. Past mid-trajectory, asking any clarification at all performs worse than never asking. A complementary study of 300 unscripted sessions shows no current frontier model asks within the empirically optimal window. 52% of sessions over-ask. Others never ask at all. Why it matters: clarification has been treated as a binary capability, does the agent ask or not. This is the first quantitative demand curve for *when* the question is worth asking. Paper: https://t.co/U4prpHjKgP Learn to build effective AI agents in our academy: https://t.co/LRnpZN7L4c
HERE WE GOOOO https://t.co/hPOyyJPxn3
codex rewrote uv in typescript https://t.co/IbBYtmB19O
Daytona Launch Week #1 2026 Much awaited releases finally GA https://t.co/c3l1gAcchG
Daytona Launch Week #1 2026 Much awaited releases finally GA https://t.co/c3l1gAcchG
not enough people know about /side and it's underrated. Think claude's /btw but add: - multiple message followups allowed - you can spin up > 1 /side chats ask questions while the agent is working on your main session, or ask questions to explore other directions, and it won't affect your session's context!
@Dimillian /side !
Codex can now help you build AI apps and agents faster with OpenAI APIs using the OpenAI Developers plugin. https://t.co/KxG14rL8lS
WHAT JUST HAPPENED? Anthropicβs pre-IPO valuation just erased $200 billion in value in ONE HOUR. https://t.co/yYco0zPGjO
MARBLE Multi-Aspect Reward Balance for Diffusion RL paper: https://t.co/7QCvgCHPQp https://t.co/O0ThdMdiZx
Apple presents TIDE Every Layer Knows the Token Beneath the Context paper: https://t.co/fVdyf8ySks https://t.co/UofoPE6r0K
Continuous-Time Distribution Matching for Few-Step Diffusion Distillation paper: https://t.co/ckiuCWIVLx https://t.co/gcy2WFIjZr
SkillOS Learning Skill Curation for Self-Evolving Agents paper: https://t.co/C6yKe6Kuou https://t.co/ZEFjJJHrAe
Hello everyone, we're working on making local AI viable for real work. To do that we need to understand where it's falling short. When was your first time trying local AI? Were you surprised or disappointed? https://t.co/UUSDhTaz38
Open source isn't just good for developers, it's one of America's strongest tools for AI security. More models means more defenders and more front doors protected. Earlier this week at the @MilkenInstitute Global Conference, Jensen sat down with @beckyquick to explain why π https://t.co/J8SQYDK9MP
New friend just arrived! Been counting the days π€ͺ Hello World Reachy Mini π¦Ύ As easy & cool as Lego, seriously promising. Shipped an app to the Reachy Mini App Store in just a few hours! πhttps://t.co/DDquk5aKUR Congrats @pollenrobotics @huggingface @ClementDelangue and the team!
Stable-GFlowNet: Toward Diverse and Robust LLM Red-Teaming via Contrastive Trajectory Balance Naver AI eliminates unstable partition function estimation in Generative Flow Networks via pairwise comparisons and robust masking, preventing mode collapse while maintaining diverse attack generation.
MiniCPM-o 4.5 Towards Real-Time Full-Duplex Omni-Modal Interaction paper: https://t.co/wO3yzw0c2o https://t.co/VmxJh8qfl0
Just added 2 new model compressions: Hy3-FP8 & NVFP4 I recommend trying this model it's very strong and fits on 256gb of vram with full context https://t.co/UQI63BCFiJ
Someone just chatted with their reachy mini for over 15h π€― I love seeing him become part of your homes. Thank you for trusting this project! https://t.co/RqYySXgDkX
Long-running agents shouldnβt pay frontier-model prices for every turn. Weβve been quietly building our agent with content-aware model routing, memory consolidation, and adaptive token compression. Today, it goes public as OpenSquilla β an open-source Python agent. Public benchmark: up to 60%-80% lower model cost on mixed long-running tasks. Open source. Local first. Python based. https://t.co/aWLGOqfIRD Donβt take our word for it β Verify the savings yourself. #10M Token Bill Challenge: post side-by-side bills vs. any agent (the best performing models). 30 winners Γ 10M OpenRouter credits each, Three categories: π₯ 10 Faithful Reproduction Β· π° 10 Best Savings Case Β· π 10 Quality Bug Report #10MTokenChallenge
MACE-Dance Motion-Appearance Cascaded Experts for Music-Driven Dance Video Generation https://t.co/YBPquzBPFd
paper: https://t.co/eG6d4D9oEF
Weekend project: A tiny CLI extension to measure your download speeds from the HF CDN β‘οΈ How to run it: hf extensions install julien-c/hf-speedtest hf speedtest If you run it, share your output here β€΅οΈ https://t.co/nc23XuFeYV
Local AI is having its moment! Below is the number of new GGUF models created each month over the past 8 months & insights from our HF internal agent (May is partial): - 176,000 total public GGUF models on HF - Two distinct regimes: OctβFeb averaged ~5.1K new GGUF models/month. Then MarchβApril jumped to ~9.2K/month β nearly double the previous rate. - March was the inflection point (+55% MoM) β likely driven by a wave of new open-weight model releases being quantized to GGUF. - April sustained the momentum at 9.7K, suggesting this isn't a one-off spike but a new baseline. - The GGUF ecosystem is accelerating β the community is quantizing models faster than ever, likely thanks to better tooling (llama.cpp improvements, automated quantization pipelines, and more models supporting GGUF natively). Let's go!
TRL v1.4 is out! two things I'm excited about: β chunked NLL loss for SFT. Way less VRAM, same loss, often faster. Qwen3-14B @ 16k seq: 58.9 β 38.9 GB. β first-class @OpenReward integration. One line wires up an env into GRPO. Plus: more chat templates, MFU helpers... https://t.co/PyEdTYNxxf
The UFOs are on HF thanks to @MTSlive! Whoβs going to train the first computer vision model? https://t.co/Ida8rHfOpV https://t.co/hs3BK6CGcW

The UFOs are on HF thanks to @MTSlive! Whoβs going to train the first computer vision model? https://t.co/Ida8rHfOpV https://t.co/hs3BK6CGcW
C'est l'anniversaire de Reachy mini. C'est un produit incroyable pour l'interface homme machine. Regarder comment il transmets dΓ¨s Γ©motions. Tout est open source sur mon GitHub. C'est ce que le Homepod d'Apple aurait dΓ» Γͺtre. https://t.co/cKk5IQOJhz