alicloud-ai-image-qwen-image
Generate images with Model Studio DashScope SDK using Qwen Image generation models (qwen-image, qwen-image-plus, qwen-image-max, qwen-image-2.0 series and snapshots). Use when implementing or documenting image.generate requests/responses, mapping prompt/negative_prompt/size/seed/reference_image, or integrating image generation into the video-agent pipeline.
How do I install this agent skill?
npx skills add https://github.com/cinience/alicloud-skills --skill alicloud-ai-image-qwen-imageIs this agent skill safe to install?
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This skill facilitates Alibaba Cloud Qwen image generation using the DashScope SDK. It includes a Python script for generating and downloading images. While it performs sensitive operations like reading local credentials and arbitrary files for image references, these are largely aligned with its primary purpose as a cloud provider integration. Security concerns include potential indirect prompt injection and unvalidated local file access.
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What does this agent skill do?
Category: provider
Model Studio Qwen Image
Validation
mkdir -p output/alicloud-ai-image-qwen-image
python -m py_compile skills/ai/image/alicloud-ai-image-qwen-image/scripts/generate_image.py && echo "py_compile_ok" > output/alicloud-ai-image-qwen-image/validate.txt
Pass criteria: command exits 0 and output/alicloud-ai-image-qwen-image/validate.txt is generated.
Output And Evidence
- Write generated image URLs, prompts, and metadata to
output/alicloud-ai-image-qwen-image/. - Keep at least one sample JSON response per run.
Build consistent image generation behavior for the video-agent pipeline by standardizing image.generate inputs/outputs and using DashScope SDK (Python) with the exact model name.
Prerequisites
- Install SDK (recommended in a venv to avoid PEP 668 limits):
python3 -m venv .venv
. .venv/bin/activate
python -m pip install dashscope
- Set
DASHSCOPE_API_KEYin your environment, or adddashscope_api_keyto~/.alibabacloud/credentials(env takes precedence).
Critical model names
Use one of these exact model strings:
qwen-imageqwen-image-plusqwen-image-maxqwen-image-2.0qwen-image-2.0-proqwen-image-2.0-2026-03-03qwen-image-2.0-pro-2026-03-03qwen-image-max-2025-12-30qwen-image-plus-2026-01-09
Normalized interface (image.generate)
Request
prompt(string, required)negative_prompt(string, optional)size(string, required) e.g.1024*1024,768*1024style(string, optional)seed(int, optional)reference_image(string | bytes, optional)
Response
image_url(string)width(int)height(int)seed(int)
Quickstart (normalized request + preview)
Minimal normalized request body:
{
"prompt": "a cinematic portrait of a cyclist at dusk, soft rim light, shallow depth of field",
"negative_prompt": "blurry, low quality, watermark",
"size": "1024*1024",
"seed": 1234
}
Preview workflow (download then open):
curl -L -o output/alicloud-ai-image-qwen-image/images/preview.png "<IMAGE_URL_FROM_RESPONSE>" && open output/alicloud-ai-image-qwen-image/images/preview.png
Local helper script (JSON request -> image file):
python skills/ai/image/alicloud-ai-image-qwen-image/scripts/generate_image.py \\
--request '{"prompt":"a studio product photo of headphones","size":"1024*1024"}' \\
--output output/alicloud-ai-image-qwen-image/images/headphones.png \\
--print-response
Parameters at a glance
| Field | Required | Notes |
|---|---|---|
prompt | yes | Describe a scene, not just keywords. |
negative_prompt | no | Best-effort, may be ignored by backend. |
size | yes | WxH format, e.g. 1024*1024, 768*1024. |
style | no | Optional stylistic hint. |
seed | no | Use for reproducibility when supported. |
reference_image | no | URL/file/bytes, SDK-specific mapping. |
Quick start (Python + DashScope SDK)
Use the DashScope SDK and map the normalized request into the SDK call.
Note: For qwen-image-max, the DashScope SDK currently succeeds via ImageGeneration (messages-based) rather than ImageSynthesis.
If the SDK version you are using expects a different field name for reference images, adapt the input mapping accordingly.
import os
from dashscope.aigc.image_generation import ImageGeneration
# Prefer env var for auth: export DASHSCOPE_API_KEY=...
# Or use ~/.alibabacloud/credentials with dashscope_api_key under [default].
def generate_image(req: dict) -> dict:
messages = [
{
"role": "user",
"content": [{"text": req["prompt"]}],
}
]
if req.get("reference_image"):
# Some SDK versions accept {"image": <url|file|bytes>} in messages content.
messages[0]["content"].insert(0, {"image": req["reference_image"]})
response = ImageGeneration.call(
model=req.get("model", "qwen-image-max"),
messages=messages,
size=req.get("size", "1024*1024"),
api_key=os.getenv("DASHSCOPE_API_KEY"),
# Pass through optional parameters if supported by the backend.
negative_prompt=req.get("negative_prompt"),
style=req.get("style"),
seed=req.get("seed"),
)
# Response is a generation-style envelope; extract the first image URL.
content = response.output["choices"][0]["message"]["content"]
image_url = None
for item in content:
if isinstance(item, dict) and item.get("image"):
image_url = item["image"]
break
return {
"image_url": image_url,
"width": response.usage.get("width"),
"height": response.usage.get("height"),
"seed": req.get("seed"),
}
Error handling
| Error | Likely cause | Action |
|---|---|---|
| 401/403 | Missing or invalid DASHSCOPE_API_KEY | Check env var or ~/.alibabacloud/credentials, and access policy. |
| 400 | Unsupported size or bad request shape | Use common WxH and validate fields. |
| 429 | Rate limit or quota | Retry with backoff, or reduce concurrency. |
| 5xx | Transient backend errors | Retry with backoff once or twice. |
Output location
- Default output:
output/alicloud-ai-image-qwen-image/images/ - Override base dir with
OUTPUT_DIR.
Operational guidance
- Store the returned image in object storage and persist only the URL in metadata.
- Cache results by
(prompt, negative_prompt, size, seed, reference_image hash)to avoid duplicate costs. - Add retries for transient 429/5xx responses with exponential backoff.
- Some backends ignore
negative_prompt,style, orseed; treat them as best-effort inputs. - If the response contains no image URL, surface a clear error and retry once with a simplified prompt.
Size notes
- Use
WxHformat (e.g.1024*1024,768*1024). - Prefer common sizes; unsupported sizes can return 400.
Anti-patterns
- Do not invent model names or aliases; use official model IDs only.
- Do not store large base64 blobs in DB rows; use object storage.
- Do not omit user-visible progress for long generations.
Workflow
- Confirm user intent, region, identifiers, and whether the operation is read-only or mutating.
- Run one minimal read-only query first to verify connectivity and permissions.
- Execute the target operation with explicit parameters and bounded scope.
- Verify results and save output/evidence files.
References
-
See
references/api_reference.mdfor a more detailed DashScope SDK mapping and response parsing tips. -
See
references/prompt-guide.mdfor prompt patterns and examples. -
For edit workflows, use
skills/ai/image/alicloud-ai-image-qwen-image-edit/. -
Source list:
references/sources.md
How can the creator link this skill?
Add the canonical catalog link to the repository README so users can inspect current installs and available audits. The publishing guide covers the complete discovery path.
<a href="https://skillzs.dev/skills/cinience/alicloud-skills/alicloud-ai-image-qwen-image">View alicloud-ai-image-qwen-image on skillZs</a>