"This is humanity's race.
The solution is open source.
Stay sovereign."

— AIOpsInSpace

Qwen3.6-27B-Uncensored-HauhauCS-Aggressive-MTP

AIOpsInSpace Official

State-of-the-art conversational quality with significantly enhanced speculative decoding speeds via grafted MTP heads on an aggressively uncensored base.

🧠 27B Dense Model ⚡ MTP Speculative Decoding 🛠️ Aggressively Uncensored

> What is this model and Why is it Needed?

Qwen3.6-27B-Uncensored-HauhauCS-Aggressive-MTP is a custom-merged, high-performance variant built on top of the HauhauCS Aggressive Base and Qwen 3.6 27B architecture.

Why it is needed: Most open-source models suffer from over-alignment or struggle with generation loop hang bugs in local environments. This model was created to provide a completely uncensored, reasoning-first experience capable of operating in complex coding workflows without refusal walls, all while drastically accelerating inference speed using Multi-Token Prediction (MTP).

> From the Parent Repository

"A highly volatile, purely reasoning-driven intelligence. The alignment layer has been surgically ablated, leaving only raw mathematical deduction and uninhibited creative generation. Use with extreme caution."

— HauhauCS Aggressive Base


🏗️ 2. Model Architecture & Merging

Architecture: Qwen 3.6 27B Transformer with Multi-Token Prediction (MTP) Heads
Merging Technique: Surgical Tensor Grafting
Constituent Models: Methodology: We utilized a surgical tensor merge to fuse MTP prediction heads directly into the unablated base weights. The MTP heads are perfectly aligned with the base layers, preventing common SSM layout violations (blk.N.nextn.* tensor mismatches).

🚀 3. Technical Enhancements

> Key Upgrades Over Base Model:

  • Uncensored Freedom: The aggressive base model removes artificial guardrails, making it ideal for unfiltered creative writing, unrestricted coding tasks, and robust roleplay.
  • MTP Integration: Enables the model to predict multiple future tokens simultaneously, drastically reducing time-to-first-token (TTFT) and accelerating continuous generation on compatible local backends.
  • BOS/EOG Token Patches: The tokenizer has been hard-patched to map bos_token_id and special_eog_ids. This completely eliminates notorious generation loop hang bugs in local inferences.

📊 4. Benchmark Competitiveness vs. Frontier Scores

> Evaluated Performance
Benchmark Qwen3.6-27B-Uncensored-HauhauCS-Aggressive-MTP Frontier Target
MMLU Evaluated 88.7%
GSM8K Evaluated 95.6%
HumanEval Evaluated 90.2%

🏆 5. Comprehensive Arena Analytics

> Status: Active Community Benchmarking

// Note: Arena Elo and head-to-head winrates updated continuously as evaluation telemetry processes.

🔍 6. SWOT Analysis

> Strengths (S)

  • 🛡️ Uncensored Fidelity: Surgically patched to ensure maximum generation throughput without alignment overhead.
  • Optimized Engine: Advanced mechanics ensure zero context fragmentation or execution hangs.

> Weaknesses (W)

  • 📉 Hardware Limits: Requires sufficient VRAM/RAM for higher precision GGUF quantizations.

> Opportunities (O)

  • 🎯 Local Sovereign Agents: Perfect for offline, private reasoning and agentic workflows.

> Threats (T)

  • ⚠️ Sampler Sensitivity: High temperatures may require repetition penalty adjustments.

⚡ 7. Usage & Deployment Info

> Recommended Settings

  • Temperature: 0.2 - 0.7
  • Top-P: 0.95
  • Backend Engines: Compatible with llama.cpp, vLLM, Ollama, LM Studio, KoboldCPP

⚙️ 8. Backend Compatibility

> Validated Engines:

  • [+] llama.cpp: Native support across all quantizations.
  • [+] Ollama / LM Studio: Full GGUF compatibility.

📜 9. Disclaimers & Credits

Disclaimer: Qwen3.6-27B-Uncensored-HauhauCS-Aggressive-MTP is provided for research and sovereign local deployment. As an unaligned model, users are responsible for ensuring usage complies with local laws.

Credits: Gratitude to original base model authors (HauhauCS/Qwen3.6-27B-Uncensored-HauhauCS-Aggressive) and open-source AI community tools.
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