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David Hendrickson
@TeksEdge
CEO & Founder | PhD | Startup Advisor | @Columbia | Author Generative Software Engineering | ๐Ÿ”” Follow for AI & Vibe Coding Tips ๐Ÿ‘‡
๊ฐ€์ž… July 2023
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๐Ÿคฏ This is like having Jev at home, a AI reflex system running locally. Someone is turning Google's open DiffusionGemma 26B-A4B into a local version of the new โ€œSystem Oneโ€ AI idea inside vLLM. Remember Jev? It is a decision LLM. Instead of asking an LLM to generate paragraphs, System One models are designed to make FAST structured decisions: ๐ŸŽฏ yes / no ๐Ÿงญ route A / B / C ๐Ÿ› ๏ธ which tool to call ๐Ÿšจ severity 1โ€“4 ๐Ÿ“Š classify / score / choose And DiffusionGemma has an important role because a normal autoregressive LLM takes Prompt โ†“ token โ†“ answer DiffusionGemma is Prompt โ†“ predefined answer slots โ†“ fill multiple decisions in parallel Because it operates over a token canvas with bidirectional attention instead of being forced to generate everything strictly left-to-right. The vLLM patch lets it return โœ… bounded choices โœ… probabilities โœ… confidence / uncertainty โœ… multiple decisions simultaneously And it runs locally. On ONE DGX Spark the developer reports โšก 1 request: ~120 ms ๐Ÿš€ concurrency 32: ~54 requests/sec ๐Ÿง  3 decisions/request ๐Ÿ”ฅ ~162 decisions/sec Then the developer found each question can require only around 3 canvas tokens: ๐Ÿ”ข index โ“ placeholder โœ‚๏ธ separator Meaning as many as ~85 questions could fit into 1 diffusion canvas. And subsequent optimization reportedly cut decision time another: โšก ~20โ€“40% with no change in decision quality. The model stats ... ๐Ÿง  25.2B total parameters โšก 3.8B active ๐Ÿ’พ NVIDIA NVFP4: ~18.9GB ๐ŸŽฎ Can fit on a 24GB NVIDIA GPU ๐Ÿ“œ Open weights โš ๏ธ vLLM PR #57250# is still OPEN ๐Ÿ‘‰ not merged. And this is Jev-like functionality. It is NOT evidence that DiffusionGemma matches Jev's intelligence or calibration. ๐Ÿ”— /vllm-project/vllm/pull/57250
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