Updates

  • 06/15/2026: I've updated the Q3_K_L quant, it wasn't imatrixed (oops) and the new upload is. The PPL and KLD are slightly improved. Working on smaller quants still.

Model

This is a text-and-image-only GGUF quantization of moonshotai/Kimi-K2.7-Code. This means that video input is not present in this GGUF, and will not be available until support is added upstream in llama.cpp. MMPROJ files for image vision input have been provided.

This Q4_X quant is the "full quality" equivalent since the conditional experts are natively INT4 quantized directly from the original model, and the rest of the model is Q8_0.

Quant Size Mixture PPL 1-(Mean PPL(Q)/PPL(base)) KLD
Q4_X 543.62 GiB (4.55 BPW) Q8_0 / Q4_0 / Q4_0 / Q4_0 2.009155 ยฑ 0.008931 +0% 0
Q3_K_L 459.94 GiB (3.85 BPW) Q8_0 / Q3_K / Q3_K / Q4_0 2.085207 ยฑ 0.009398 +3.9167% 0.063007 ยฑ 0.000544
IQ3_S 377.54 GiB (3.16 BPW) Q8_0 / varies 2.310321 ยฑ 0.010823 +15.1353% 0.178673 ยฑ 0.001326
IQ2_S 311.80 GiB (2.61 BPW) Q8_0 / varies 2.690751 ยฑ 0.013248 +34.0941% 0.343187 ยฑ 0.002100
IQ2_XXS 262.78 GiB (2.20 BPW) Q8_0 / varies 3.420305 ยฑ 0.018189 +70.4515% 0.587342 ยฑ 0.002980

The mixtures with varies in them were produced by @eaddario 's llama.cpp branches for imatrix and quantize respectively:

kld_graph ppl_graph

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