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Model details

Qwen3.5 9B

Qwen3.5 9B is a dense, 9-billion-parameter multimodal model built to combine reasoning, coding, and visual understanding in a relatively compact architecture. Its unified vision-language design uses early fusion, so visual tokens are incorporated alongside text rather than handled as a separate pipeline. This makes the model especially relevant for applications that must reason over documents, diagrams, screenshots, or other visual material while retaining language-based problem solving.

The model is designed for tool-oriented and reasoning-enabled workflows, with a native context of 262,144 tokens that supports substantial conversational or project context. Its long-context design and visual-language integration suit coding assistants, document analysis, visual question answering, and agent-like tasks that combine images with instructions. Benchmarks reported for the model show strong graduate-level science reasoning, but more mixed results on long-context and agentic evaluations, so it is best viewed as a balanced compact multimodal option rather than a specialist in every reasoning task.

PioneerQwen/Qwen3.5-9Bqwen

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Provider
Pioneer
Model key
Qwen/Qwen3.5-9B
Release date
Feb 23, 2026
Last updated
Feb 23, 2026
Input modalities
Output modalities
Capabilities

Cost

Input token cost
$0.30
Output token cost
$0.30

Limits

Output tokens
32,768 tokens
Context window
32,768 tokens

Transparent token rates

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Rates are shown per one million tokens. Combined means one million input plus one million output tokens.

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Latest news about Qwen3.5 9B

TensorX

CoverageBenchmark

The BenchmarkList page for Qwen3.5-9B lists 101 benchmark rows and prices the model at $0.10 per 1M input tokens and $0.15 per 1M output tokens, situating it alongside comparison rows for Qwen Fable 5.1, Claude Fable 5.1, Claude Opus 5, Kimi K3, Qwen3.8-Flash-Next, Qwen3.8-2.4T-A95B, GLM 5.3, and GLM 5.3 Flash. In the The page distinguishes Qwen3.5-9B from sibling and successor variants by tagging the exact slug qwen-qwen3.5-9b and listing it next to Qwen3.8-Flash-Next and Qwen3.8-2.4T-A95B, allowing direct comparison against newer Qwen3.8 releases on the same benchmark rows. It functions as a model-focused benchmark hub rather than

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