Qwen3.8-27B-Uncensored-Cyber-agentic-imatrix-GGUF vs Agnes-3.0-Flash

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Qwen3.8-27B-Uncensored-Cyber-agentic-imatrix-GGUF has 27.3B parameters (25.6B active per token) and takes 16.5 GB on disk; Agnes-3.0-Flash has 33.1B and takes 66.2 GB. Compare them layer by layer.

At a glance

cyjin-yl/Qwen3.8-27B-Uncensored-Cyber-agentic-imatrix-GGUFAgnes-AI/Agnes-3.0-Flash
Repo createdAug 19, 2026updated Aug 20, 2026Sep 11, 2026updated Sep 16, 2026
Model typeDenseHybrid attention: 48 linear + 17 full (GQA)Not shown: breakdown incomplete
InputsTextText + images461M vision encoder
Total parameters27.3B1.2× less33.1B1.2× more
Active per token25.6B94% of the modelNot shown: breakdown incomplete
ExpertsNone (dense)Not shown: breakdown incomplete
Max context (from config)256K tokenssame256K tokenssame
Layers641.1× less48 linear + 17 full attention · plus 1 extra prediction layer721.1× more
On disk16.5 GB4.0× less1 file66.2 GB4.0× more20 files
PrecisionIQ4_XS (70%), Q8_0 (19%), Q5_K (11%)BF16 (100%)
QuantizationIQ4_XS (GGUF)mix of IQ4_XS, Q8_0, Q5_K · blocks of 256 / blocks of 32 · 100% of parametersNoneoriginal precision (BF16)
Fewest GPUs1× RTX 4090a single 24 GB card · weights only1× NVIDIA H100a single 80 GB card · weights only
Licenseapache-2.0apache-2.0
GitHubNot linkedNot linked