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Qwen
Qwen3.8 Max 0902
$ 
Access Alibaba Qwen's September 2 coding and cowork upgrade through one GPTProto API key. Run complex engineering, research, and enterprise agents with a shared balance across 200+ models and token rates 10% below QwenCloud international pricing.

模態

輸入: 文字輸入: 圖像輸入: 影片輸入: 文件輸入: 音訊
輸出: 文字

/

Qwen3.8 Max 0902 pricing

Estimate a request with real work scenarios. GPTProto token pricing is 10% below official rates.

用量數量單價小計
tokens
$1.8/1M$0.0027
tokens
$5.4/1M$0.0043
tokens
$2.25/1M$0.0067
tokens
$0.225/1M$0.0056
單次請求費用$0.0193
請求次數
儲值金額

儲值 $100 你將獲得:

1、

儲值額度永久有效。你總共會收到 $100.00。

2、

額外 10% 模型折扣,相較官方 Qwen API 可節省 $11.0902。

相關模型
所有模型
Qwen3.8 Max 0902
目前
$ 
byQwen$1.8/M input$5.4/M output
GLM 5.3 Flash
$ 
byZ-AI1.31M context$0.15/M input$0.5/M output
DeepSeek v4 Flash Vision Exp
$ 
byDeepSeek1.05M context$0.44/M input$1.32/M output
GLM 5.3
$ 
byZ-AI1.31M context$1.26/M input$3.96/M output
Gemini 3.7 Flash
$ 
byGoogle1.05M context$0.45/M input$2.25/M output
Grok 4.6
$ 
byGrok500K context$1.2/M input$3.6/M output
Qwen3.8 Max
$ 
byQwen1M context$1.8/M input$5.4/M output
Claude Opus 5
$ 
byClaude1M context$4.5/M input$22.5/M output
Gemini 3.6 Flash
$ 
byGoogle1.05M context$0.45/M input$2.25/M output
Gemini 3.5 Flash Lite
$ 
byGoogle1.05M context$0.18/M input$1.5/M output
Kimi K3
$ 
byMoonshotAI1.05M context$2.7/M input$13.5/M output
GPT 5.6 Luna
$ 
byOpenAI1.05M context$0.16/M input$0.96/M output
GPT 5.6 Terra
$ 
byOpenAI1.05M context$1.6/M input$9.6/M output
GPT 5.6 Sol
$ 
byOpenAI1.05M context$3.2/M input$16/M output
Grok 4.5
$ 
byGrok500K context$1.2/M input$3.6/M output
Claude Sonnet 5
$ 
byClaude1M context$1.8/M input$9/M output
MiniMax M3
$ 
byMiniMax1.05M context$0.48/M input$0.96/M output
GLM 5.2
$ 
byZ-AI1.05M context$1.26/M input$3.96/M output
Claude Fable 5
$ 
byClaude1M context$9/M input$45/M output
Qwen3.7 Max
$ 
byQwen1M context$0.36/M input$1.44/M output
DeepSeek v4 Flash
$ 
byDeepSeek1.05M context$0.44/M input$1.32/M output
DeepSeek v4 Pro
$ 
byDeepSeek1.05M context$1.32/M input$3.96/M output
Grok 4.3
$ 
byGrok1M context$0.75/M input$1.5/M output
Kimi K2.6
$ 
byMoonshotAI262K context$0.855/M input$3.6/M output
MiniMax M2.5
$ 
byMiniMax205K context$0.24/M input$0.96/M output
Kimi K2.5
$ 
byMoonshotAI262K context$0.54/M input$2.7/M output
Qwen Turbo
$ 
byQwen$0.045/M input$0.18/M output
Qwen Plus
$ 
byQwen1M context$0.36/M input$1.08/M output
Qwen3 Max
$ 
byQwen262K context$1.08/M input$5.4/M output
Doubao Seed 1.6 Thinking (Build 250715)
$ 
byBytedance262K context$0.0971/M input$0.9714/M output
Doubao Seed 1.6 Thinking (Build 250615)
$ 
byBytedance262K context$0.0971/M input$0.9714/M output
Doubao Seed 1.6 Flash (Build 250615)
$ 
byBytedance262K context$0.0182/M input$0.1821/M output
模型輸入 → 輸出
Qwen3.8 Max 0902目前
$ 
—$1.80 / $5.40 每 1M$2.25 / $0.23 每 1M
輸入: 文字輸入: 圖像輸入: 影片輸入: 文件輸入: 音訊
輸出: 文字
GLM 5.3 Flash
$ 
—1.31M$0.15 / $0.50 每 1M— / $0.03 每 1M
輸入: 文字輸入: 圖像輸入: 影片輸入: 文件
輸出: 文字
DeepSeek v4 Flash Vision Exp
$ 
—1.05M$0.44 / $1.32 每 1M— / $0.01 每 1M
輸入: 文字輸入: 圖像
輸出: 文字
GLM 5.3
$ 
1.31M$1.26 / $3.96 每 1M— / $0.23 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Gemini 3.7 Flash
$ 
1.05M$0.45 / $2.25 每 1M— / $0.04 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Grok 4.6
$ 
500K$1.20 / $3.60 每 1M— / $0.30 每 1M
輸入: 文字輸入: 圖像
輸出: 文字
Qwen3.8 Max
$ 
1M$1.80 / $5.40 每 1M$2.25 / $0.23 每 1M
輸入: 文字輸入: 圖像輸入: 影片輸入: 文件
輸出: 文字
Claude Opus 5
$ 
1M$4.50 / $22.50 每 1M$5.63 / $0.45 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Gemini 3.6 Flash
$ 
1.05M$0.45 / $2.25 每 1M— / $0.04 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Gemini 3.5 Flash Lite
$ 
1.05M$0.18 / $1.50 每 1M$0.02 / $0.02 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Kimi K3
$ 
1.05M$2.70 / $13.50 每 1M$0.27 / $0.27 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
GPT 5.6 Luna
$ 
1.05M$0.16 / $0.96 每 1M$0.20 / $0.02 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
GPT 5.6 Terra
$ 
1.05M$1.60 / $9.60 每 1M$2.00 / $0.16 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
GPT 5.6 Sol
$ 
1.05M$3.20 / $16.00 每 1M$4.00 / $0.32 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Grok 4.5
$ 
500K$1.20 / $3.60 每 1M$0.30 / $0.30 每 1M
輸入: 文字輸入: 圖像
輸出: 文字
Claude Sonnet 5
$ 
1M$1.80 / $9.00 每 1M$2.25 / $0.18 每 1M
輸入: 文字輸入: 文件
輸出: 文字
MiniMax M3
$ 
1.05M$0.48 / $0.96 每 1M$0.10 / $0.10 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
GLM 5.2
$ 
1.05M$1.26 / $3.96 每 1M$0.23 / $0.23 每 1M
輸入: 文字輸入: 圖像輸入: 文件
輸出: 文字
Claude Fable 5
$ 
1M$9.00 / $45.00 每 1M$11.25 / $0.90 每 1M
輸入: 文字輸入: 文件
輸出: 文字
Qwen3.7 Max
$ 
1M$0.36 / $1.44 每 1M$0.07 / $0.07 每 1M
輸入: 文字輸入: 文件
輸出: 文字
DeepSeek v4 Flash
$ 
—1.05M$0.44 / $1.32 每 1M— / $0.01 每 1M
輸入: 文字
輸出: 文字
DeepSeek v4 Pro
$ 
—1.05M$1.32 / $3.96 每 1M— / $0.04 每 1M
輸入: 文字
輸出: 文字
Grok 4.3
$ 
1M$0.75 / $1.50 每 1M$0.12 / $0.12 每 1M
輸入: 文字輸入: 圖像
輸出: 文字
Kimi K2.6
$ 
262K$0.85 / $3.60 每 1M$0.14 / $0.14 每 1M
輸入: 文字輸入: 文件
輸出: 文字
MiniMax M2.5
$ 
205K$0.24 / $0.96 每 1M$0.30 / $0.02 每 1M
輸入: 文字輸入: 文件
輸出: 文字
Kimi K2.5
$ 
262K$0.54 / $2.70 每 1M$0.09 / $0.09 每 1M
輸入: 文字輸入: 文件
輸出: 文字
Qwen Turbo
$ 
—$0.04 / $0.18 每 1M$0.009 / $0.009 每 1M
輸入: 文字
輸出: 文字
Qwen Plus
$ 
1M$0.36 / $1.08 每 1M$0.07 / $0.07 每 1M
輸入: 文字
輸出: 文字
Qwen3 Max
$ 
262K$1.08 / $5.40 每 1M$0.22 / $0.22 每 1M
輸入: 文字
輸出: 文字
Doubao Seed 1.6 Thinking (Build 250715)
$ 
262K$0.10 / $0.97 每 1M—
輸入: 文字輸入: 圖像
輸出: 文字
Doubao Seed 1.6 Thinking (Build 250615)
$ 
262K$0.10 / $0.97 每 1M—
輸入: 文字輸入: 圖像
輸出: 文字
Doubao Seed 1.6 Flash (Build 250615)
$ 
262K$0.02 / $0.18 每 1M—
輸入: 文字輸入: 圖像
輸出: 文字

Qwen3.8-Max-0902 API

Use Qwen3.8-Max-0902 for repository-scale coding, scientific research, professional knowledge work, and long-horizon agents. The revision retains the Qwen3.8-Max family's 1M-token context and multimodal input while adding further post-training for coding and cowork tasks.

Coding and Cowork Upgrade

Further post-training targets complex software engineering, scientific research, professional work, and multi-stage tasks that must continue from planning through delivery.

1M Context and 131K Output

Process large repositories, long documents, tool history, and mixed source material within a 1,000,000-token context window, with up to 131,072 output tokens.

Multimodal Input, Text Output

Combine text, images, and video for interface review, document analysis, chart reasoning, and recorded workflow inspection. The model returns text rather than generated media.

Tools, JSON, and Context Cache

Connect external functions, request schema-constrained output, stream responses, and reuse cached context in agent workflows. Provider-managed tool availability can vary by endpoint.

What Is the Qwen3.8-Max-0902 API?

Qwen3.8-Max-0902 is Alibaba Qwen's September 2, 2026 revision of Qwen3.8-Max. It is not a newly announced architecture or a larger successor. Qwen describes it as the existing 2.4-trillion-parameter mixture-of-experts model after additional post-training for coding and cowork, with the goal of improving complex enterprise tasks, scientific research, and long-horizon workflows.

The hosted model retains the Qwen3.8-Max family's documented operating envelope: text, image, and video input; text output; function calling; structured outputs; context caching; and thinking or non-thinking operation. Alibaba lists a nominal 1,000,000-token context window, with up to 991,808 input tokens in standard mode, 983,616 input tokens in thinking mode, and 131,072 output tokens.

The page name and request identifier require a careful distinction. Qwen announced the revision as Qwen3.8-Max-0902, while Alibaba's public Model Studio documentation still lists the general API model ID as qwen3.8-max. An API provider may expose the update through the standard alias or a dated snapshot. For GPTProto calls, use the exact model string displayed in Quick Start instead of constructing one from the page title.

Specification Confirmed Detail
Provider Alibaba Qwen
Revision date September 2, 2026
Update type Further post-training for coding and cowork
Published family size 2.4T total parameters, mixture-of-experts architecture
Input modalities Text, image, and video
Output modality Text
Context window 1,000,000 tokens
Maximum standard input 991,808 tokens
Maximum thinking-mode input 983,616 tokens
Maximum output 131,072 tokens
Function calling Supported
Structured outputs Supported
Context caching Supported
Fine-tuning Not currently supported
Open-weight status No separately labeled 0902 checkpoint has been identified

What Changed from Qwen3.8-Max to Qwen3.8-Max-0902?

The 0902 release is a behavioral upgrade rather than a specification reset. The parameter count, 1M context window, output ceiling, and supported input modalities remain within the published Qwen3.8-Max family envelope. The main change is further post-training aimed at better coding, cowork, tool use, and sustained task completion.

Decision Factor Original Qwen3.8-Max Qwen3.8-Max-0902
Model foundation 2.4T MoE flagship Same published family foundation
Context and output 1M context; up to 131,072 output tokens Unchanged published limits
Training focus Coding, professional work, research, and agents Additional post-training for coding and cowork
Code Arena: WebDev 1,669 in Qwen's reported comparison 1,691 at launch, a 22-point increase
Public API naming Alibaba documents qwen3.8-max Use the provider's displayed alias or snapshot ID
Open weights Separate Qwen3.8 family checkpoints exist No separate 0902-labeled checkpoint confirmed

The Code Arena result is a useful signal for frontend and agentic coding, but it does not prove that every repository or tool workflow will improve. Test the old and new routes with the same prompts, repository state, tool permissions, reasoning settings, and acceptance criteria before switching production traffic.

Qwen3.8-Max-0902 Applications

Repository-Scale Coding

Inspect module boundaries, connect requirements to existing code, plan multi-file changes, call development tools, and review test output. The 1M context can hold source, configuration, documentation, and agent history, but executable tests and checkpoints are still required.

Long-Horizon Agents

Use Qwen3.8-Max-0902 for migration agents, technical investigations, data-analysis pipelines, and internal assistants that query several tools before returning structured results. Validate tool arguments and restrict permissions at the application layer.

Scientific Research and Knowledge Work

Combine papers, reports, tables, diagrams, and earlier findings in one task. Require source identifiers and a clear separation between extracted facts and inference. Use retrieval when the source set exceeds the context limit or changes frequently.

Multimodal Enterprise Review

Analyze screenshots, charts, visual documents, and recorded workflows through text, image, and video input. The endpoint returns text, so media creation still requires a dedicated image or video model.

Qwen3.8-Max-0902 vs GPT-5.6, Gemini 3.7 Flash, Kimi K3, and GLM-5.3 Flash

Compare cost per accepted result, including reasoning tokens, retries, failed tool calls, and human correction—not token price alone.

Model Start Here When Validate Before Routing More Traffic
Qwen3.8-Max-0902 The task combines difficult coding, long context, multimodal evidence, and many tool steps Regression behavior, latency, and total tokens on your own workflow
GPT-5.6 Your application already depends on GPT-oriented coding and agent behavior The exact model tier, tool compatibility, latency, and cost
Gemini 3.7 Flash High-volume multimodal work makes speed and token cost the first filter Complex repository accuracy and required output length
Kimi K3 Long coding or research tasks need another frontier route for A/B testing First-pass completion, tool-call accuracy, and token use
GLM-5.3 Flash Budget-sensitive coding and agent traffic needs a lower-cost first route The hardest multi-step and repository-scale tasks

For cost-sensitive routing, begin with a Flash-class model such as GLM-5.3 Flash, then send difficult or repeatedly failing tasks to Qwen3.8-Max-0902.

Migration Checks Before You Upgrade

Before moving traffic from the original Qwen3.8 Max, record the model string, prompt, reasoning settings, tool schemas, latency, token use, and result. Run the same evaluation against 0902.

  1. Copy the exact model ID from GPTProto Quick Start; do not assume the page title is the request string.

  2. Re-test function schemas, structured JSON, streaming, and error recovery.

  3. Check image and video input formatting if the workflow is multimodal.

  4. Measure first-pass completion, retries, output tokens, end-to-end latency, and human corrections.

  5. Keep the previous route available until the new revision passes regression tests.

A lower token rate is not automatically more affordable when retries or manual repair increase. Measure cost per accepted result.

When Should You Choose Qwen3.8-Max-0902?

Choose Qwen3.8-Max-0902 for large repositories, multimodal evidence, long outputs, structured tool use, or sustained work across many steps. It fits coding agents, research assistants, and enterprise systems expected to produce a verifiable deliverable.

Use a smaller or Flash-class model for short, latency-sensitive tasks. GPTProto's shared key and balance let developers compare the model catalog without separate provider accounts. Check live pricing and evaluation results before setting a default.

Qwen3.8-Max-0902 API FAQ

When was Qwen3.8-Max-0902 released, and what did the upgrade change?

Qwen released it on September 2, 2026. The revision adds coding and cowork post-training to Qwen3.8-Max while retaining the published 2.4T MoE foundation, 1M context window, and multimodal input.

What is the Qwen3.8-Max-0902 API price on GPTProto?

GPTProto lists $1.80 per million input tokens and $5.40 per million output tokens—10% below QwenCloud's international $2/$6 rates. Verify the live pricing panel before estimating production spend.

Is there an affordable Qwen3.8-Max-0902 API provider?

GPTProto offers the route at 10% below QwenCloud's international input and output rates. One key and shared balance also cover 200+ other models.

How do I get a Qwen3.8-Max-0902 API key and try the playground?

Create one GPTProto key, open the model playground, and test a prompt before integrating the API. Requests use the shared account balance; implementation details remain in Quick Start.

What Qwen3.8-Max-0902 model ID should developers use?

Use the exact string in GPTProto Quick Start. Alibaba documents qwen3.8-max, while a provider may expose 0902 through that alias or a dated snapshot.

Is Qwen3.8-Max-0902 open source or open weight?

Not as a separately identified 0902 checkpoint. Downloadable Qwen3.8 family checkpoints exist, but they should not be treated as capability-identical to the hosted 0902 revision.

Does Qwen3.8-Max-0902 support 1M context and multimodal input?

Yes. Alibaba documents a 1M context, up to 131,072 output tokens, and text, image, or video input with text output. Confirm the live GPTProto request format before deployment.

Is Qwen3.8-Max-0902 suitable for long tasks and enterprise work?

Yes, when work spans large source sets, many tools, or long outputs. Use bounded permissions, schema validation, timeouts, checkpoints, retries, evaluation, and human approval for high-impact actions.

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我們深知穩定性至關重要。我們的平台建立在強大的去中心化架構之上,支援動態自動擴展。無論您是進行試點專案還是處理數百萬次併發請求,我們的系統都能即時擴展以滿足需求,確保您的業務永遠不會受限於基礎設施。

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