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The solution is open source.
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DeepSeek-R1-Distill-Qwen-32B-ablated-Patched

AIOpsInSpace Official

DeepSeek-R1-Distill-Qwen-32B with ablated safety alignment and hard-patched reasoning loop termination.

🧠 32B Dense Model ⚡ Safety Layer Ablated 🛠️ Infinite Loop Patched

> What is this model and Why is it Needed?

DeepSeek-R1-Distill-Qwen-32B-ablated-Patched is built on top of deepseek-ai/DeepSeek-R1-Distill-Qwen-32B.

Why it is needed: Stock R1 Distill Qwen 32B often suffers from refusal behavior on security topics and infinite thinking loops in local engines. This release ablates alignment refusal vectors and fixes the tokenizer end-of-thought token.

> From the Parent Repository

"DeepSeek-R1-Distill-Qwen-32B represents the benchmark standard for open-weights reasoning."

— DeepSeek AI


🏗️ 2. Model Architecture & Merging

Architecture: DeepSeek-R1 Distilled Qwen 2.5 32B Transformer
Merging Technique: Refusal Direction Ablation & EOG Token Patching
Constituent Models: Methodology: Surgically ablated refusal directions in hidden states and patched special EOG IDs.

🚀 3. Technical Enhancements

> Key Upgrades Over Base Model:

  • Uncensored Reasoning: Performs deep mathematical, coding, and security reasoning without refusal triggers.
  • Loop Hang Fix: Guarantees clean transition from to final answer in local backends.

📊 4. Benchmark Competitiveness vs. Frontier Scores

> Evaluated Performance
Benchmark DeepSeek-R1-Distill-Qwen-32B-ablated-Patched 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: DeepSeek-R1-Distill-Qwen-32B-ablated-Patched 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 (deepseek-ai/DeepSeek-R1-Distill-Qwen-32B) and open-source AI community tools.
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