Generates multi-slide infographic content formatted for Xiaohongshu engagement.
Install
mkdir -p .claude/skills/baoyu-xhs-images && curl -L -o skill.zip "https://agentskills.codes/api/skills/download/1738" && unzip -o skill.zip -d .claude/skills/baoyu-xhs-images && rm skill.zipInstalls to .claude/skills/baoyu-xhs-images
Activation
This is the description your AI agent reads to decide when to run this skill — the better it matches your request, the more reliably it fires.
Generates infographic image card series with 12 visual styles, 8 layouts, and 3 color palettes. Breaks content into 1-10 cartoon-style image cards optimized for social media engagement. Use when user mentions "小红书图片", "小红书种草", "小绿书", "微信图文", "微信贴图", "image cards", "图片卡片", baoyu-xhs-images, or wants social media infographic series.Key capabilities
- →Generates 12 unique visual styles
- →Applies 8 distinct graphic layouts
- →Configures 3 curated color palettes
- →Splits long-form text into 1-10 image slides
How it works
Uses a rule-based selection engine to map user content into pre-defined layout and style templates. Renders images by invoking the highest-priority available image generation backend.
Inputs & outputs
When to use baoyu-xhs-images
- →Create educational carousels for XHS
- →Convert technical articles into social media infographics
- →Design slide-based content for RedNote
- →Format text content into branded image cards
About this skill
Image Card Series Generator
Break down complex content into eye-catching image card series with multiple style options.
User Input Tools
When this skill prompts the user, follow this tool-selection rule (priority order):
- Prefer built-in user-input tools exposed by the current agent runtime — e.g.,
AskUserQuestion,request_user_input,clarify,ask_user, or any equivalent. - Fallback: if no such tool exists, emit a numbered plain-text message and ask the user to reply with the chosen number/answer for each question.
- Batching: if the tool supports multiple questions per call, combine all applicable questions into a single call; if only single-question, ask them one at a time in priority order.
Concrete AskUserQuestion references below are examples — substitute the local equivalent in other runtimes.
Image Generation Tools
When this skill needs to render an image, resolve the backend in this order:
- Current-request override — if the user names a specific backend in the current message, use it.
- Saved preference — if
EXTEND.mdsetspreferred_image_backendto a backend available right now, use it. - Auto-select (when the preference is
auto, unset, or the pinned backend isn't available):- Codex (
imagegen) — first, inspect your available-skills / tool inventory. If a skill namedimagegenis listed, you are running inside Codex and MUST use it: invoke via theSkilltool withskill: "imagegen", passing the saved prompt file's content (plus output path and aspect ratio per Codeximagegen's own args). Codeximagegenis the official raster backend in that runtime and outranks any non-native skill (e.g.,baoyu-image-gen) unless the user has explicitly pinned a differentpreferred_image_backend. - Codex via
codex exec(codex-imagegen) — if the current runtime exposes no nativeimagegenskill but thecodexCLI is onPATHwith an activecodex login, route throughbaoyu-image-gen --provider codex-cli(preferred), or — if baoyu-image-gen is unavailable — invoke the bundled wrapper directly. Details, parameters, and the runtime-discovery procedure live in references/codex-imagegen.md — load that file only when this branch is selected. - Cursor (
GenerateImage) — if the runtime exposes a nativeGenerateImagetool, you are running inside Cursor and it outranks any non-native skill the same way Codeximagegendoes. Two hard caveats: (a) it has no aspect-ratio parameter — state the target aspect ratio / dimensions explicitly in the prompt text passed asdescription; (b) it does not accept an output directory — it saves to a tool-managed location, so after generation copy/move the file to the skill's expected output path (e.g.,outputs/.../NN-xxx.png). Reference images go inreference_image_paths. - Other runtime-native tools — if the runtime exposes a different native image tool (e.g., Hermes
image_generate), use it the same way. - Otherwise, if exactly one non-native backend is installed (e.g.,
baoyu-image-gen), use it. - Otherwise (multiple non-native backends with no runtime-native tool), ask the user once — batch with any other initial questions.
- Codex (
- If none are available, tell the user and ask how to proceed.
⛔ Never substitute SVG, HTML, canvas, or other code-based rendering for raster image generation. Codex imagegen's own description says it should be used "when the output should be a bitmap asset rather than repo-native code or vector." If you cannot resolve a raster backend via step 3, fall through to step 4 and ask the user — do not silently emit SVG, write inline <svg> markup, or produce HTML/CSS art as a substitute. This applies even if the article/section seems "diagram-like": the consumer skill calling this rule has already decided that a raster image is what it needs.
⛔ Never repair rendered text by painting over a generated bitmap. Do not use ImageMagick, Pillow, Canvas, SVG, HTML/CSS, OCR scripts, or any other programmatic overlay to cover, rewrite, erase, stroke, or replace titles, body copy, tags, or any other text inside an already generated image card. If text is wrong or unclear, regenerate from a corrected prompt, switch to a layout with less on-card text, or ask the user which imperfect candidate to keep.
Setting preferred_image_backend: ask forces the step-3 prompt every run regardless of available backends. Users change the pinned backend via the ## Changing Preferences section below.
Prompt file requirement (hard): write each image's full, final prompt to a standalone file under prompts/ (naming: NN-{type}-[slug].md) BEFORE invoking any backend. The file is the reproducibility record and lets you switch backends without regenerating prompts.
Concrete tool names (imagegen, GenerateImage, image_generate, baoyu-image-gen) above are examples — substitute the local equivalents under the same rule.
Batch Generation Policy
After every prompt file for the current generation group has been saved and verified, generate images in batches by default.
Priority order:
- Use the chosen backend's native batch / multi-task interface if it exists. Each task must keep its own prompt file, output path, aspect ratio, session ID, and direct reference images.
- If no native batch interface exists but the runtime can issue parallel tool calls, dispatch up to
generation_batch_sizeimages at a time. Default:4. An explicit user request in the current message, such as--batch-size 4or "并行 4 张一起生成", overrides EXTEND.md. - If neither native batch nor parallel tool calls are available, generate sequentially.
Rules:
- Honor the image-1 anchor chain: generate image 1 first, then batch images 2+ using image 1 as the reference.
- Never start a batch until every selected prompt file for that batch exists on disk.
- Retry failed items once without regenerating successful items.
- Do not use subagents merely to parallelize image rendering. Use subagents only for separate prompt iteration or creative exploration.
Confirmation Policy
Default behavior: confirm before generation.
- Treat explicit skill invocation, a file path, matched signals/presets, and
EXTEND.mddefaults as recommendation inputs only. None of them authorizes skipping confirmation. - Do not start Step 3 until the user completes Step 2.
- Skip confirmation only when the current request explicitly says to do so, for example:
--yes, "直接生成", "不用确认", "跳过确认", "按默认出图", or equivalent wording. - If confirmation is skipped explicitly, state the assumed strategy / style / layout / palette / count / backend in the next user-facing update before generating.
Language
Respond in the user's language across questions, progress, errors, and completion summary. Keep technical tokens (style names, file paths, code) in English.
Options
| Option | Description |
|---|---|
--style <name> | Visual style (see Styles below) |
--layout <name> | Information layout (see Layouts below) |
--palette <name> | Color override: macaron / warm / neon |
--preset <name> | Style + layout + optional palette shorthand (see Presets below; per-preset prompt fragments in references/style-presets.md) |
--ref <files...> | Reference images applied to image 1 as the series anchor |
--batch-size <n> | Temporary generation batch size for this run. Default: generation_batch_size from EXTEND.md, otherwise 4. Clamp to 1-8. |
--yes | Non-interactive: skip all confirmations, use EXTEND.md or built-in defaults, auto-confirm recommended plan (Path A) |
Dimensions
Three independent knobs combine freely:
| Dimension | Controls | Options |
|---|---|---|
| Style | Visual aesthetics (lines, decorations, rendering) | 12 styles (see Styles below) |
| Layout | Information structure (density, arrangement) | 8 layouts (see Layouts below) |
| Palette (optional) | Color override, replaces the style's default colors | macaron / warm / neon (see Palettes below) |
Example: --style notion --layout dense makes an intellectual knowledge card; add --palette macaron to soften the colors without changing notion's rendering rules. A --preset is a shorthand for style + layout (+ optional palette).
Palette behavior: no --palette → style's built-in colors; --palette <name> → overrides colors only, rendering rules unchanged. Some styles declare a default_palette (e.g., sketch-notes defaults to macaron).
Styles (12)
| Style | Description |
|---|---|
cute (Default) | Sweet, adorable, girly aesthetic |
fresh | Clean, refreshing, natural |
warm | Cozy, friendly, approachable |
bold | High impact, attention-grabbing |
minimal | Ultra-clean, sophisticated |
retro | Vintage, nostalgic, trendy |
pop | Vibrant, energetic, eye-catching |
notion | Minimalist hand-drawn line art, intellectual |
chalkboard | Colorful chalk on black board, educational |
study-notes | Realistic handwritten photo style, blue pen + red annotations + yellow highlighter |
screen-print | Bold poster art, halftone textures, limited colors, symbolic storytelling |
sketch-notes | Hand-drawn educational infographic, macaron pastels on warm cream, wobble lines |
Per-style specifications: references/presets/<style>.md.
Layouts (8)
| Layout | Description |
|---|---|
sparse (Default) | 1-2 points, maximum impact |
balanced | 3-4 points, standard |
dense | 5-8 points, knowledge-card style |
list | Enumeration / ranking (4-7 items) |
comparison | Side-by-side contrast |
flow | Process / timeline (3-6 steps) |
mindmap | Center-radial (4-8 branches) |
quadrant | Four-quadrant / circular sections |
Layout specs: references/elements/canvas.md.
Palettes (optional override)
Replaces the style's colors while keepi
Content truncated.
When not to use it
- →Generating non-text based artwork
- →Creating long-form video or animation files
- →Producing content for platforms outside the social media infographic ecosystem
Prerequisites
Limitations
- →Maximum of 10 slides per session
- →Dependent on external image generation backends for final render
- →Strictly constrained to pre-defined layout formats
How it compares
Unlike a standard image prompt, this applies structured design templates to ensure cohesive branding across a multi-slide carousel.
Compared to similar skills
baoyu-xhs-images side by side with the closest alternatives in the catalog.
| Skill | Installs | Updated | Safety | Difficulty |
|---|---|---|---|---|
| baoyu-xhs-images (this skill) | 20 | 2mo | No flags | Beginner |
| card-news-generator-v2 | 1 | 9mo | Review | Beginner |
| card-news-generator | 1 | 9mo | Review | Beginner |
| social-media-carousel | 0 | 2mo | Review | Beginner |
Try saying
Example prompts that trigger this skill in your AI assistant.
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