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Replace model-specific Occamy failure example with generic checkpoint fidelity notice

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  1. README.md +1 -1
README.md CHANGED
@@ -185,5 +185,5 @@ Official sampling configuration recommended by [nex-agi](https://huggingface.co/
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  > [!IMPORTANT]
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  > <a id="quantization-fidelity"></a>
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  > ### 🔍 Model Inherent Behavior vs. Quantization Fidelity Notice
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- > Any behavioral limitations, stylistic habits, or syntactic oversights (such as occasional omitted standard library imports in automated zero-shot scripts, e.g., missing `from decimal import ROUND_HALF_UP` or `@dataclass`) **stem entirely from the original unquantized base model weights and pre-training distribution, NOT from the APEX-I quantization process.**
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  > Handcrafted APEX-I-MiniPlus strictly preserves mathematical tensor fidelity—keeping 100% of expert routing matrices (`gate_inp`) in uncompressed `F32` (zero router drift), armoring the token output head in `Q6_K`, and safeguarding attention gates in `Q8_0`. Empirical verification confirms near-zero perplexity loss (ΔPPL ≈ +0.07), ensuring that token logits, routing decisions, and reasoning trajectories are mathematically faithful to the original base model.
 
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  > [!IMPORTANT]
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  > <a id="quantization-fidelity"></a>
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  > ### 🔍 Model Inherent Behavior vs. Quantization Fidelity Notice
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+ > Any behavioral nuances, stylistic tendencies, domain-specific habits, or zero-shot edge-case oversights **stem entirely from the original unquantized checkpoint weights and fine-tuning distribution, NOT from the APEX-I quantization process.**
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  > Handcrafted APEX-I-MiniPlus strictly preserves mathematical tensor fidelity—keeping 100% of expert routing matrices (`gate_inp`) in uncompressed `F32` (zero router drift), armoring the token output head in `Q6_K`, and safeguarding attention gates in `Q8_0`. Empirical verification confirms near-zero perplexity loss (ΔPPL ≈ +0.07), ensuring that token logits, routing decisions, and reasoning trajectories are mathematically faithful to the original base model.