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Gemma 4 26B A4B vs Qwen3 VL 30B A3B Instruct

Compare Gemma 4 26B A4B and Qwen3 VL 30B A3B Instruct side-by-side. See how these vision models stack up in Image Captioning, OCR, and Open Prompt.

Compare Gemma 4 26B A4B vs Qwen3 VL 30B A3B Instruct live

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GoogleGemma 4 26B A4B
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QwenQwen3 VL 30B A3B Instruct
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Models in this comparison

Gemma 4 26B A4B vs Qwen3 VL 30B A3B Instruct Comparison Table

Evals updated September 22, 2026Pricing updated September 24, 2026

PropertyGemma 4 26B A4BQwen3 VL 30B A3B Instruct
OrganizationGoogleQwen
Categoryopenopen
Modalitymultimodalmultimodal
Release DateApr 2026Oct 2025
Context Window256K262K
Parameters25.2B31B
LicenseApache 2.0Apache 2.0
Pricing per 1M tokens
Input $/1M$0.090$0.130
Output $/1M$0.300$0.520
Vision Tasks
CaptioningDemoDemo
Chart Question Answering
ClassificationDemo
Document Question Answering
Image Tagging
Multi-Label Classification
Object DetectionDemo
OCRDemoDemo
Vision Language
Visual Question AnsweringDemoDemo
Model Features
Foundation Vision
LLMs with Vision Capabilities
Multimodal Vision
Vision Evalsground-truth scores across 6 vision tasks
Overall
63.6%
Not evaluated
Quantizationsself-hosted
BF1661.9%FP863.6%AWQ-INT461.6%hardware →
Avg cost / sample$0.0019–
Avg speed / sample27.84s–
By task
Object Detection
44.2%
±0.7, Mean of 3 runs, range 43.5 to 44.8
$0
–
Counting
43.2%
±2.0, Mean of 3 runs, range 41.9 to 46.0
$0
–
Identification
81.3%
±3.1, Mean of 3 runs, range 78.1 to 84.4
$0
–
OCR
88.7%
±1.3, Mean of 3 runs, range 87.6 to 90.2
$0
–
Data Extraction
76.6%
±0.5, Mean of 3 runs, range 76.3 to 77.3
$0
–
Reasoning
47.7%
±2.0, Mean of 3 runs, range 45.0 to 49.0
$0
–

Gemma 4 26B A4B vs Qwen3 VL 30B A3B Instruct: Overview

Gemma 4 26B A4B

Gemma 4 26B A4B is the Mixture-of-Experts variant in Google's Gemma 4 family, with 25.2B total parameters but only 3.8B active per token. Built from the same Gemini 3 research as the 31B dense sibling and released as open weights under the Apache 2.0 license, it supports a 256K token context window with text and image input and configurable thinking mode. The "A4B" in the name refers to its approximately 4B active parameters. The MoE design makes it significantly faster at inference than the dense 31B, running nearly as fast as a 4B-parameter model while delivering roughly 97% of the dense model's quality.

For vision tasks, the 26B A4B shares the same multimodal capabilities as the 31B image understanding with variable aspect ratios and resolutions, and structured bounding box output for UI element detection. The tradeoff versus the 31B dense model is a small quality reduction in exchange for much faster inference and lower hardware requirements, fitting in 18GB of VRAM at 4-bit quantization. It ranked #6 among open models on the Arena AI text leaderboard at launch.

Qwen3 VL 30B A3B Instruct

Qwen3 VL 30B A3B Instruct is an open-weight multimodal large language model developed by Alibaba as part of the Qwen family, built for instruction-following tasks that unify text generation with visual and video understanding. Released around October 2025 under the Apache-2.0 license, it targets efficient, high-fidelity vision-language reasoning across very long contexts.

The model accepts text and image inputs and produces text outputs, with strong performance in OCR, spatial reasoning, long-video understanding, and agentic or GUI-centric visual tasks. It uses a Mixture-of-Experts (A3B) design with ~31.1B total parameters and ~3B active per token, paired with Qwen3-VL’s unified multimodal stack (including Interleaved-MRoPE and DeepStack fusion) to process text, images, and video in a single architecture. OCR support expands to 32 languages, enhancing document workflows. With a native ~262K token context window (extendable further), it stands out today for its balance of scale, efficiency, long-context support, and open accessibility in multimodal systems.

Frequently Asked Questions

Qwen3 VL 30B A3B Instruct has not yet been evaluated on Roboflow's current Vision Evals, so this comparison shows specs, licensing, and pricing rather than benchmark scores.

Yes. The comparison demo on this page runs both models on the same image side by side for image captioning and OCR in the free Roboflow Playground. You can try it instantly, and a free account unlocks unlimited runs.