Qwen3.5-4B vs jina-ocr-v1

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Qwen3.5-4B has 4.66B parameters (4.33B active per token) and takes 9.32 GB on disk; jina-ocr-v1 has 3.37B (708M active) and takes 6.74 GB. Compare them layer by layer.

At a glance

Qwen/Qwen3.5-4Bjinaai/jina-ocr-v1
Repo createdFeb 27, 2026updated Mar 2, 2026Sep 1, 2026updated Sep 18, 2026
Model typeDenseHybrid attention: 24 linear + 8 full (GQA)Mixture of expertsFull attention (MHA)
InputsText + images334M vision encoderText + images303M vision encoder
Total parameters4.66B1.4× more3.37B1.4× less
Active per token4.33B6.1× more93% of the model708M6.1× less21% of the model
ExpertsNone (dense)6 of 64 activeplus 2 shared, always on
Max context (from config)256K tokens8.0× more32K tokens8.0× less
Layers322.7× more24 linear + 8 full attention122.7× less
On disk9.32 GB1.4× more2 files6.74 GB1.4× less2 files
PrecisionBF16 (100%)BF16 (100%)
QuantizationNoneoriginal precision (BF16)Noneoriginal precision (BF16)
Fewest GPUs1× RTX 3060 12 GBa single 12 GB card · weights only1× RTX 4060a single 8 GB card · weights only
Licenseapache-2.0cc-by-nc-4.0
GitHubNot linkedNot linked