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  2. /Model
  3. /Hunyuan
  4. /hy4-preview
Hunyuan
Hy4 Preview
$ 
Access Tencent's 770B-parameter Hy4-preview API through GPTProto for long-context coding, document analysis, and agent workflows. Use one API key and one shared balance to test it alongside 200+ AI models.

Modalities

Input: Text
Output: Text

/

Hy4 Preview pricing

Estimate a request with real work scenarios. GPTProto token pricing is 5% below official rates.

UsageQuantityRateCost
tokens
$0.7923/1M$0.0011
tokens
$2.376/1M$0.0019
tokens
$0.0399/1M$0.0009
Cost per request$0.004
Requests
Top-up amount

Top-up $100 and you get:

1.

Top-up credits with permanent validity. You will receive a total of $100.00.

2.

Additional 5% model discount, saving $5.2607 versus direct official Hunyuan API calls.

Related Models
All Models
Hy4 Preview
Current
$ 
byHunyuan$0.7923/M input$2.376/M output
GPT 6 Astra
$ 
byOpenAI1.05M context$8/M input$40/M output
Gemini 3.8 Flash
$ 
byGoogle1.05M context$0.9/M input$4.5/M output
Claude Fable 5.1
$ 
byClaude1M context$9/M input$45/M output
Qwen3.8 Max 0902
$ 
byQwen1M context$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$0.9/M input$4.5/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$0.9/M input$4.5/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
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
Qwen3.7 Max
$ 
byQwen1M context$0.36/M input$1.44/M output
DeepSeek v4 Flash
$ 
byDeepSeek1.05M context$0.374/M input$1.122/M output
DeepSeek v4 Pro
$ 
byDeepSeek1.05M context$1.122/M input$3.366/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
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
ModelInput → Output
Hy4 PreviewCurrent
$ 
—$0.79 / $2.38 per 1M— / $0.04 per 1M
Input: Text
Output: Text
GPT 6 Astra
$ 
1.05M$8.00 / $40.00 per 1M$10.00 / $0.80 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Gemini 3.8 Flash
$ 
1.05M$0.90 / $4.50 per 1M$0.60 / $0.09 per 1M
Input: TextInput: ImageInput: VideoInput: DocumentInput: Audio
Output: Text
Claude Fable 5.1
$ 
1M$9.00 / $45.00 per 1M$11.25 / $0.23 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Qwen3.8 Max 0902
$ 
1M$1.80 / $5.40 per 1M$2.25 / $0.23 per 1M
Input: TextInput: ImageInput: VideoInput: DocumentInput: Audio
Output: Text
GLM 5.3 Flash
$ 
—1.31M$0.15 / $0.50 per 1M— / $0.03 per 1M
Input: TextInput: ImageInput: VideoInput: Document
Output: Text
DeepSeek v4 Flash Vision Exp
$ 
—1.05M$0.44 / $1.32 per 1M— / $0.01 per 1M
Input: TextInput: Image
Output: Text
GLM 5.3
$ 
1.31M$1.26 / $3.96 per 1M— / $0.23 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Gemini 3.7 Flash
$ 
1.05M$0.90 / $4.50 per 1M$0.60 / $0.09 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Grok 4.6
$ 
500K$1.20 / $3.60 per 1M— / $0.30 per 1M
Input: TextInput: Image
Output: Text
Qwen3.8 Max
$ 
1M$1.80 / $5.40 per 1M$2.25 / $0.23 per 1M
Input: TextInput: ImageInput: VideoInput: Document
Output: Text
Claude Opus 5
$ 
1M$4.50 / $22.50 per 1M$5.63 / $0.45 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Gemini 3.6 Flash
$ 
1.05M$0.90 / $4.50 per 1M$0.60 / $0.09 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Kimi K3
$ 
1.05M$2.70 / $13.50 per 1M$0.27 / $0.27 per 1M
Input: TextInput: ImageInput: Document
Output: Text
GPT 5.6 Luna
$ 
1.05M$0.16 / $0.96 per 1M$0.20 / $0.02 per 1M
Input: TextInput: ImageInput: Document
Output: Text
GPT 5.6 Terra
$ 
1.05M$1.60 / $9.60 per 1M$2.00 / $0.16 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Grok 4.5
$ 
500K$1.20 / $3.60 per 1M$0.30 / $0.30 per 1M
Input: TextInput: Image
Output: Text
Claude Sonnet 5
$ 
1M$1.80 / $9.00 per 1M$2.25 / $0.18 per 1M
Input: TextInput: Document
Output: Text
MiniMax M3
$ 
1.05M$0.48 / $0.96 per 1M$0.10 / $0.10 per 1M
Input: TextInput: ImageInput: Document
Output: Text
GLM 5.2
$ 
1.05M$1.26 / $3.96 per 1M$0.23 / $0.23 per 1M
Input: TextInput: ImageInput: Document
Output: Text
Qwen3.7 Max
$ 
1M$0.36 / $1.44 per 1M$0.07 / $0.07 per 1M
Input: TextInput: Document
Output: Text
DeepSeek v4 Flash
$ 
1.05M$0.37 / $1.12 per 1M— / $0.01 per 1M
Input: Text
Output: Text
DeepSeek v4 Pro
$ 
1.05M$1.12 / $3.37 per 1M— / $0.04 per 1M
Input: Text
Output: Text
Grok 4.3
$ 
1M$0.75 / $1.50 per 1M$0.12 / $0.12 per 1M
Input: TextInput: Image
Output: Text
Kimi K2.6
$ 
262K$0.85 / $3.60 per 1M$0.14 / $0.14 per 1M
Input: TextInput: Document
Output: Text
MiniMax M2.5
$ 
205K$0.24 / $0.96 per 1M$0.30 / $0.02 per 1M
Input: TextInput: Document
Output: Text
Kimi K2.5
$ 
262K$0.54 / $2.70 per 1M$0.09 / $0.09 per 1M
Input: TextInput: Document
Output: Text
Doubao Seed 1.6 Thinking (Build 250715)
$ 
262K$0.10 / $0.97 per 1M—
Input: TextInput: Image
Output: Text
Doubao Seed 1.6 Thinking (Build 250615)
$ 
262K$0.10 / $0.97 per 1M—
Input: TextInput: Image
Output: Text
Doubao Seed 1.6 Flash (Build 250615)
$ 
262K$0.02 / $0.18 per 1M—
Input: TextInput: Image
Output: Text

Hy4-preview API for Coding and Long-Horizon Agents

Build with Tencent's open-weight 770B Mixture-of-Experts model through a hosted API. Hy4 preview activates 49B parameters per token, supports a 1M-token context window, and targets software engineering, complex productivity work, scientific reasoning, and sustained multi-step tasks.

1M-Token Context

Process large codebases, long specifications, and multi-document context within the model's 1M-token window, while budgeting prompt and generated tokens together.

770B MoE, 49B Active

Hy4 preview uses a 770B-parameter MoE backbone but activates 49B parameters per token, combining large model capacity with sparse computation.

Built for Real Workflows

Tencent trained the preview for software engineering, office analysis, game development, and scientific research, with emphasis on planning, debugging, validation, and extended work.

Hosted Open-Weight Access

Call the Apache 2.0 model through GPTProto without provisioning the substantial multi-GPU infrastructure required to serve its BF16 or FP8 checkpoints yourself.

What Is the Hy4-preview API?

Hy4 preview is a text-to-text flagship model released by the Tencent Hy Team on August 28, 2026. It is also searched as Tencent Hy4, Tencent Hunyuan 4, Hunyuan4 API, and Hy4-preview API, but the official public checkpoint is named Hy4 preview. GPTProto provides hosted API access to the model, while Tencent separately publishes downloadable weights for teams that want to operate their own inference stack.

The model uses a Mixture-of-Experts architecture with 770 billion backbone parameters and 49 billion activated for each token. Its 78-layer backbone contains one dense feed-forward layer followed by 77 MoE layers. Each MoE layer has 256 routed experts and one shared expert, with eight routed experts selected per token. A separate native MTP layer supports speculative decoding.

Tencent's model card lists a 1M-token context length and describes Gated DeepSeek Sparse Attention with IndexCache for sparse index reuse. This preview checkpoint accepts text and returns text; it does not natively accept images, audio, or video.

Specification Hy4 preview
Provider Tencent Hy Team
Release date August 28, 2026
Input / output Text / text
Architecture Mixture-of-Experts (MoE), 78 layers
Backbone parameters 770B total; 49B activated per token
Expert routing 256 routed experts + 1 shared expert; top 8 routed experts activated
Context length 1M tokens
Attention Gated DSA with IndexCache
Additional decoding layer Native MTP: 10B total; 0.7B activated
Open-weight license Apache License 2.0

Hy4-preview API Applications

Repository-scale coding: Give a coding agent enough context to inspect architecture, interfaces, tests, logs, and related files before proposing a patch. Tencent specifically highlights improvements in planning, debugging, verification, and front-end implementation quality.

Long-horizon agent workflows: Use the model for tasks that require repeated planning, execution, inspection, and revision. The surrounding agent application should still control tools, permissions, timeouts, retries, and acceptance checks rather than treating model output as automatically verified.

Document and data work: Analyze information distributed across long documents, produce structured summaries, and support workflows that create documents, spreadsheets, presentations, equations, or financial analyses.

Game development and research: Prototype game logic through multi-turn iteration or assist with difficult research problems in areas such as AI development, molecular dynamics, condensed-matter physics, and mathematics. Outputs should be reviewed against domain evidence before use.

Hy4-preview Upgrades and Known Preview Trade-offs

Tencent describes Hy4 preview as a major generation change driven by increases in model size, context length, training data, and post-training. The company also co-designed the model with products such as CodeBuddy and WorkBuddy, giving the release a stronger focus on end-to-end productivity rather than short, isolated benchmark prompts.

The word preview matters. Tencent reports that this early checkpoint can reason longer than necessary on difficult tasks and may over-verify its own work. For short classification, extraction, or formatting requests, compare latency and token use against a smaller model. For long coding or agent runs, test task completion, tool-call validity, generated-token volume, and recovery from failed steps before sending production traffic.

Hy4-preview vs GLM-5.3 and Kimi K3

Tencent ran a blind internal evaluation in which 163 experts reviewed outputs for 203 engineering tasks. Hy4 preview received a 2.99/4.00 average score, compared with 2.92 for GLM-5.3 and 2.94 for Kimi K3.

Comparator Hy4 preview average Comparator average Hy4 preview win / tie / loss
GLM-5.3 2.99 2.92 46.8% / 12.8% / 40.4%
Kimi K3 2.99 2.94 51.2% / 7.9% / 40.9%

These figures were reported by Tencent and were not independently reproduced by GPTProto. They suggest that Hy4 is competitive on Tencent's engineering task set, not that it wins every coding workload. A fair API comparison should reuse the same repository snapshot, system prompt, tool definitions, token budget, and pass/fail checks across models.

Hosted Hy4-preview API vs Self-Hosting the Open Weights

Access route Best for Main trade-off
GPTProto hosted API Developers who want immediate access, usage-based billing, and one balance shared with other models Less infrastructure control than operating the weights directly
Self-hosted BF16 or FP8 weights Teams that need deployment control, custom serving, or model-level experimentation Requires a substantial multi-GPU serving stack plus capacity planning, monitoring, and upgrades

Open weights do not make inference operationally free. Tencent's reference deployment uses specialized vLLM or SGLang configurations for sparse attention, MTP speculative decoding, reasoning parsing, and tool-call parsing. Hosted access removes that serving work, while self-hosting remains the better option when infrastructure control is more important than setup time.

When Should You Choose Hy4-preview?

Choose Hy4 preview when your application benefits from large-context code understanding, cross-document analysis, sustained planning, or access to an Apache 2.0 open-weight flagship without running the checkpoint yourself. It is especially relevant for developers evaluating Chinese frontier models for coding and agent workloads through a shared API account.

Use a smaller or more mature model when requests are short, latency-sensitive, or highly repetitive. Because this is a preview release with known over-reasoning and over-verification behavior, validate cost, response time, task success, and output consistency on your own workload before making it the default model.

Hy4-preview API: Frequently Asked Questions

Who provides the Hy4-preview API model?

Hy4 preview was developed by the Tencent Hy Team. Tencent released the checkpoint and its FP8 variant on August 28, 2026, and published the weights under the Apache License 2.0.

Are Hy4 preview and Hunyuan 4 the same model?

Searchers commonly use “Hunyuan 4” or “Hunyuan4 API” for this release. Tencent's official English model name is Hy4 preview, so API documentation and model selectors should use the exact identifier displayed by the provider.

Is Hy4-preview open source or open weight?

Tencent calls the release open source and provides downloadable BF16 and FP8 model weights under Apache 2.0. API access is a separate hosted service: you can call the model without downloading or serving those weights yourself.

What does 770B parameters and 49B active mean?

The backbone contains 770 billion total parameters, but its MoE router activates 49 billion parameters for each token. The 770B figure describes total model capacity; it does not mean every parameter is used for every generated token.

How large is the Hy4-preview context window?

Tencent's model card lists a 1M-token context length. Input and generated output must fit within the provider's implemented request limits, so check the live API documentation before sending near-limit workloads.

Is Hy4-preview suitable for coding and AI agents?

Yes, coding and long-horizon productivity are core target workloads. The model can plan, debug, verify, and continue multi-step work, while the agent framework remains responsible for executing tools, enforcing permissions, handling failures, and validating results.

How much does the Hy4-preview API cost?

Use the live GPTProto Pricing panel for the current input, output, and cache-read rates. Tencent's launch list price was $0.834 per million input tokens, $2.501 per million output tokens, and $0.042 per million cache-hit tokens; GPTProto pricing should be verified separately.

How does Hy4-preview compare with GPT-6, Claude Fable 5.1, Gemini 3.8, or Qwen3.8-Max-0902?

Hy4 preview's verified differentiators are its Apache 2.0 weights, 770B/49B MoE design, 1M context, and productivity focus. There is no independent, apples-to-apples evaluation proving one universal winner across these models. Compare them using the same prompts, tools, token budget, latency target, and acceptance tests.

Can Hy4-preview process images or video?

No. The current Hy4 preview checkpoint is text-to-text. It can generate code or instructions used by visual tools, but it does not natively inspect image, audio, or video inputs.

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