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๐๏ธ
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Michael @ The Kozu Group
Michael-Kozu
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๐งฌ Darwin-180B-RSI โ an AI that learns from itself and knows when it's right ๐ https://huggingface.co/FINAL-Bench/Darwin-180B-RSI ๐งฌ Darwin โ crossbreed and evolve the parent Darwin diagnoses strong parent models like an MRI, inherits only their best parts, and evolves the weak spots โ producing a child stronger than its parents. Father model: Qwen3.8-Flash-Next (180B MoE). ๐ง Rewired paths ๐น 12 full-attention layers ยท ๐น 36 linear-attention layers ยท ๐น 48 shared-expert layers โ precision-strengthened ๐ 512 routed experts ยท router ยท vision encoder โ untouched โ Only 0.02% of the weights changed. ๐ RSI ร ๐๏ธ ZTC RSI (recursive self-improvement): solve โ verify against real answers โ learn only the correct reasoning โ repeat. ZTC (Zero-Token Confidence): reads the model's internal state once, before answering, and returns the probability the answer is right โ zero extra tokens. Returns answer + confidence as JSON. {"answer": "...", "confidence": 0.97, "truncated": false} โจ Synergy: ZTC finds where the model wavers โ RSI learns exactly there โ confidence gets sharper. Low confidence = stop, so agents don't act on wrong answers. โก Same accuracy, 11% shorter reasoning โ faster and cheaper. ๐ https://arxiv.org/abs/2605.14386 ๐ค https://huggingface.co/FINAL-Bench/Darwin-180B-RSI ๐๏ธ https://huggingface.co/collections/FINAL-Bench/ztc-models-jev-ecosystems ๐ The result โ #1 on five Hugging Face official leaderboards ๐ฅ AIME 2026 100% (first perfect score on the board) ๐ฅ HMMT Feb 2026 100% (first perfect score on the board) ๐ฅ GPQA Diamond 94.44% ๐ฅ MMLU-Pro 88.12% ๐ฅ MMMU-Pro 79.48% ๐ 131K-token thinking budget ยท bf16 ยท samples per benchmark listed on the model card. ๐ #Darwin #RSI #ZTC #AIME #HMMT #GPQA #MMLUPro #MMMUPro #OpenSource
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about 2 months ago
mradermacher/model_requests:
Quant Request: Michael-Kozu/Deimos-R1, Michael-Kozu/Ganymede-A1, Michael-Kozu/Europa-B1
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Michael-Kozu/kozu-reasoning-v1.1
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Michael-Kozu/Quark
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Michael-Kozu/system-prompt-reasoning-traces
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