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Description
Qwen-Image 3.0 represents the third iteration of the foundational image generation model in the Qwen-Image lineup, designed to enhance the transition from visually attractive outputs to practical, information-dense creations. This model is focused on achieving three primary objectives: producing rich content, ensuring authentic details, and harnessing deep knowledge. It allows users to submit prompts of up to 4.5K tokens, enabling detailed descriptions of intricate layouts, precise text, hierarchical structures, relationships, styles, and multiple sections within a single request. Notably, it excels at generating complex content types such as multi-panel infographics, newspaper layouts, storyboards, examination papers, presentation grids, academic documents, nested interfaces, posters, and other structured visuals all in one go, instead of requiring the assembly of separate images. Furthermore, Qwen-Image 3.0 enhances text rendering capabilities, accommodating legible characters as small as 10 pixels, supporting twelve different languages, and proficiently reproducing intricate LaTeX formulas, labels, paragraphs, handwritten notes, and mixed-language formats. This combination of features allows for a seamless and versatile approach to image generation, making it a powerful tool for various creative and academic applications.
Description
Qwen3.5 represents a major advancement in open-weight multimodal AI models, engineered to function as a native vision-language agent system. Its flagship model, Qwen3.5-397B-A17B, leverages a hybrid architecture that fuses Gated DeltaNet linear attention with a high-sparsity mixture-of-experts framework, allowing only 17 billion parameters to activate during inference for improved speed and cost efficiency. Despite its sparse activation, the full 397-billion-parameter model achieves competitive performance across reasoning, coding, multilingual benchmarks, and complex agent evaluations. The hosted Qwen3.5-Plus version supports a one-million-token context window and includes built-in tool use for search, code interpretation, and adaptive reasoning. The model significantly expands multilingual coverage to 201 languages and dialects while improving encoding efficiency with a larger vocabulary. Native multimodal training enables strong performance in image understanding, video processing, document analysis, and spatial reasoning tasks. Its infrastructure includes FP8 precision pipelines and heterogeneous parallelism to boost throughput and reduce memory consumption. Reinforcement learning at scale enhances multi-step planning and general agent behavior across text and multimodal environments. Overall, Qwen3.5 positions itself as a high-efficiency foundation for autonomous digital agents capable of reasoning, searching, coding, and interacting with complex environments.
API Access
Has API
Yes
API Access
Has API
Yes
Integrations
Qwen
Yes
APIFree
No
Alibaba Cloud Model Studio
No
BaseRT
No
Claw Code
No
Happy Shrimp 1.0
Yes
Ollama
No
OpenClaw
No
Qwen Studio
Yes
Qwen3.5-Plus
No
Integrations
Qwen
Yes
APIFree
Yes
Alibaba Cloud Model Studio
Yes
BaseRT
Yes
Claw Code
Yes
Happy Shrimp 1.0
No
Ollama
Yes
OpenClaw
Yes
Qwen Studio
No
Qwen3.5-Plus
Yes
Pricing Details
Free
Free Trial
Yes
Free Version
Yes
Pricing Details
Free
Open source
Free Trial
No
Free Version
Yes
Deployment
Web-Based
Yes
On-Premises
No
iPhone App
No
iPad App
No
Android App
No
Windows
No
Mac
No
Linux
No
Chromebook
No
Deployment
Web-Based
Yes
On-Premises
Yes
iPhone App
No
iPad App
No
Android App
No
Windows
Yes
Mac
Yes
Linux
Yes
Chromebook
No
Customer Support
Business Hours
Yes
Live Rep (24/7)
Yes
Online Support
Yes
Customer Support
Business Hours
No
Live Rep (24/7)
No
Online Support
No
Types of Training
Training Docs
Yes
Webinars
No
Live Training (Online)
No
In Person
No
Types of Training
Training Docs
Yes
Webinars
No
Live Training (Online)
No
In Person
No
Vendor Details
Company Name
Alibaba
Founded
1999
Country
China
Website
qwen.ai/blog
Vendor Details
Company Name
Alibaba
Founded
1999
Country
China
Website
qwen.ai