GLM-5.3-Flash vs Xing4.0-29B-A4B

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GLM-5.3-Flash has 321B parameters (16.7B active per token) and takes 328 GB on disk; Xing4.0-29B-A4B has 31.2B (3.93B active) and takes 62.4 GB. Compare them layer by layer.

At a glance

zai-org/GLM-5.3-FlashXingChen-AGI/Xing4.0-29B-A4B
Repo createdAug 25, 2026updated Sep 7, 2026Sep 16, 2026updated Sep 18, 2026
Model typeMixture of expertsHybrid attention: 34 linear + 12 full (MLA)Mixture of expertsFull attention (MLA)
InputsText + images564M vision encoderText
Total parameters321B10× more31.2B10× less
Active per token16.7B4.3× more5.2% of the model3.93B4.3× less13% of the model
Experts8 of 288 activeplus 1 shared, always on4 of 64 activeplus 1 shared, always on
Max context (from config)1M tokens4.0× more256K tokens4.0× less
Layers451.1× more34 linear + 12 full attention · plus 1 extra prediction layer401.1× lessplus 1 extra prediction layer
On disk328 GB5.3× more62 files62.4 GB5.3× less41 files
PrecisionFP8 E4M3 (96%), BF16 (4.2%)BF16 (100%)
QuantizationFP8 E4M3blocks of 128×128 · 98% of parameters · attention, embeddings & output head and vision encoder kept in BF16Noneoriginal precision (BF16)
Fewest GPUs5× NVIDIA H100fits in one 8-GPU server · weights only1× NVIDIA H100a single 80 GB card · weights only
Licensemitapache-2.0
GitHubNot linkedXingChen-AGI/Xing4.0-29B-A4B