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@@ -18,7 +18,7 @@ This reduction is achieved by the REAM method described in https://bknyaz.github
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  **Compared to other models obtained in this collection, more coding sequences used in the calibration data during pruning/merging
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  to better preserve original's model coding abilities. Specifically, the ratio between c4, math and coding data (see https://bknyaz.github.io/blog/2026/moe/) is 0.0, 0.7, 0.3.
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- The calibration data used here is the same as in our [Qwen3-Coder-Next-REAP](huggingface.co/SamsungSAILMontreal/Qwen3-Coder-Next-REAP).
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  Compared to other REAM models, here we used C=32 (number of experts in groups) instead of C=16, which we found to work better.**
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  The compressed model has 60B params (120GB) instead of 80B (160GB) of the original model,
 
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  **Compared to other models obtained in this collection, more coding sequences used in the calibration data during pruning/merging
20
  to better preserve original's model coding abilities. Specifically, the ratio between c4, math and coding data (see https://bknyaz.github.io/blog/2026/moe/) is 0.0, 0.7, 0.3.
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+ The calibration data used here is the same as in our [Qwen3-Coder-Next-REAP](https://huggingface.co/SamsungSAILMontreal/Qwen3-Coder-Next-REAP).
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  Compared to other REAM models, here we used C=32 (number of experts in groups) instead of C=16, which we found to work better.**
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  The compressed model has 60B params (120GB) instead of 80B (160GB) of the original model,