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COMPUTING
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GLM-5 Open Weights Model Beats Gemini-3-Pro
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GLM-5: A new SoTA open weights, that BEATS Gemini-3-Pro!? A big push from vibe coding -> agentic engineering, with it being able to plan, act, and iterate over long workflows, not just spit out code. GLM-5 scales to 744B params (40B active MoE) and targets 200k contexts, with
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Embedded World 2026: Edge AI Innovation Partnerships Showcase
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Heading to Nuremberg for Embedded World? Visit us in Hall 5, Booth 5-237 to see what is next for edge AI. We are proud to highlight the incredible work of our partners. Stop by to see how we are collaborating with @ultralytics
, Vintecc, Micro-IP, and many more to bring powerful -
Small team builds AI-powered OS in a weekend at Stanford
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A small team created an AI made operating system in a weekend at Stanford University. Now do you get why @hackwithtrees was so epic?
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AI Capabilities Redefine Enterprise Cloud Competition Landscape
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How AI Is Redefining Enterprise Cloud Competition #Cloud competition has fundamentally shifted from #infrastructure costs to #AI capabilities, with companies like #ByteDance and partnerships between #OpenAI and #Snowflake proving that AI-first platforms are now the
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Cerebras Advances Fast Inference with Fire Horse Year
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Happy Lunar New Year! It's the Year of the Fire Horse. In 2026, Cerebras charges forward — blazing-fast inference, full throttle. Let’s ride.
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Mistral AI Acquires Serverless Platform Koyeb to Boost Compute Offering
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BREAKING : Mistral AI acquired Koyeb , a serverless platform for running AI applications across CPUs, GPUs, and accelerators. “Koyeb will bring its platform, technology, and team to accelerate Mistral Compute offering.” The first M acquisition
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Elon Musk announces V8 small foundation model with 500B params
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This is just our V8 small foundation model, so 500B params
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GPU Task Preemption and Scheduling for Research Clusters
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The glory work of GPU scheduling is in the frontier data centers with hundreds of thousands of GPUs, but a lot of research work is done with single GPU jobs on modest clusters, and the scheduling leaves much to be desired. I wish there were a clean way to preempt GPU tasks, so long running tasks could be transparently paused to allow higher priority tasks to get the minimum time-to-results. Manual checkpointing and cooperative multitasking is an option, but it complicates codebases and is fertile ground for bugs. It feels like most of the pieces are present: Everything goes through page tables on the GPUs already, Nvidia UVM (Unified Virtual Memory) allows demand paging to host memory, and MPS (Multi-Process Service) could act as a CUDA shim to force everything to use a different memory allocator. Memory page thrashing would be catastrophic for GPU tasks, but the idea would be to pause the host task of the low priority process, then let the high priority process force only the necessary pages out (or maybe none at all, if the memory pressure wasn’t high enough) while it is running, then resume the low priority task on completion, allowing it to page everything back in. Task switching at the level of tens of seconds, not milliseconds. Even if it didn’t handle absolutely all memory (kernel allocations and such) and had some overhead, that would be quite useful. Of course, Nvidia would prefer you to Just Buy More GPUs!
→ View original post on X — @id_aa_carmack, 2026-02-17 17:03 UTC
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OpenAI Recruiting Infrastructure and Security Engineers
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If you’re an infrastructure or security engineer, now is the best time to join OpenAI. It’s hard not to be inspired by what today’s coding tools are capable of, and we have line of sight to making them much better. While our core ML infrastructure problems remain much the same
