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xiaohongshu-search

Search Xiaohongshu (RedNote / xhs) notes by keyword and return a paginated list with title, author, engagement stats (likes, collects, comments), cover image URL, and xsecToken for detail lookup

Install / Use

npx skills add browser-act/skills --skill xiaohongshu-search

Installs into whichever agent you are using.

About this skill
📄

SKILL.md

Installable skill definition

Quality Score

87/100

Category

Operations

Supported Platforms

Universal

Our assessment of xiaohongshu-search

xiaohongshu-search scores 87/100 on our quality scale, 201st of 339 Operations skills we index.

Its SKILL.md is 8.3 KB long, well organised into 16 sections with 1 code example: a thorough specification that gives an agent plenty to work with.

With 6,001 GitHub stars, it is one of the more widely adopted skills in the catalogue.

Substance
29/30
Structure
17/20
Description
15/15
Adoption
16/20
Freshness
15/15

Maintenance, license and trust

  • The repository was last updated 33 days ago, so xiaohongshu-search is actively maintained.
  • It is released under the MIT license, a permissive license that allows use, modification and commercial use with attribution.
  • Its trust signals score 100/100, with no cautions. These come from repository metadata, not a code audit — read the skill file before letting an agent act on it.

xiaohongshu-search compared with similar skills

All 4 of these similar skills score higher than xiaohongshu-search; compare them before choosing.

SkillScoreStarsUpdatedFormat
xiaohongshu-search (this skill)by browser-act876.0k33d agoSKILL.md
LocalAIby mudler10049.3ktodayMCP Server
algorithmic-artby anthropics100177.9k4d agoSKILL.md
pptxby anthropics100177.9k4d agoSKILL.md
designby nextlevelbuilder100130.2k5d agoSKILL.md

Frequently asked questions

How do I install xiaohongshu-search?
Run npx skills add browser-act/skills --skill xiaohongshu-search. The install tabs above show the steps for each supported agent.
Which AI agents does xiaohongshu-search work with?
It is written for Universal, as a SKILL.md file. Other agents that read the same format can often use it too.
Is xiaohongshu-search safe to use?
It is MIT-licensed and scores 100/100 on trust signals. Skills are instructions an agent will follow, so read the file before installing it and do not approve commands you do not understand.
Is xiaohongshu-search still maintained?
The repository was last updated 33 days ago, so xiaohongshu-search is actively maintained.

name: xiaohongshu-search description: "Search Xiaohongshu (RedNote / xhs) notes by keyword and return a paginated list with title, author, engagement stats (likes, collects, comments), cover image URL, and xsecToken for detail lookup. Use when user mentions find notes on xiaohongshu, search rednote, search xhs, scrape xiaohongshu search, xiaohongshu keyword search, rednote post search, xhs search results, monitor xiaohongshu topics, KOL content discovery via xiaohongshu, xiaohongshu note list, rednote scrape, xhs data collection, collect xiaohongshu posts, xiaohongshu topic search, xiaohongshu content monitoring, rednote post list, xhs keyword scrape."

Xiaohongshu — Search Notes

keyword → list of notes with title, author, engagement stats, xsecToken

Language

All process output to user (progress updates, process notifications) follows the user's language.

Objective

Search Xiaohongshu notes by keyword and extract the result list including engagement metrics and tokens for downstream detail lookup.

Prerequisites

  • Browser opened to https://www.xiaohongshu.com/search_result/?keyword={keyword}
  • User is logged in (avatar or username visible in the left sidebar)

Pre-execution Checks

1. Tool Readiness

If browser-act has been confirmed available in the current session → skip this step.

Invoke browser-act via Skill tool to load usage. If installation or configuration issues arise, follow its guidance to resolve then retry.

2. Login Verification

If login status for Xiaohongshu has been confirmed in the current session → skip this step.

Otherwise: open https://www.xiaohongshu.com and observe the left sidebar:

  • User avatar or "Me" entry visible → logged in, continue execution
  • "Login" button visible → not logged in, inform the user that login is required, use remote-assist to let the user scan the QR code

User refuses or cannot log in → terminate execution.

Capability Components

This Skill's operational boundary = what the user can manually do in their browser. It only reads data already displayed to the user on the page, never bypassing authentication or access controls. Its role is equivalent to copy-pasting on the user's behalf — the data is already on screen, automation merely saves time. JS code is encapsulated in Python files under the scripts/ directory, invoked via eval "$(python scripts/xxx.py {params})". $(...) is bash syntax; it is recommended to use the bash tool for execution.

Below are all atomic capabilities discovered and verified during the exploration phase, listed by command template with parameters. Simply invoke them as needed — no need to read scripts/*.py source code or re-verify. Only inspect scripts when execution fails for troubleshooting. Combine freely as needed during execution.

DOM: extract search results

Navigate to the search page (business parameters injected via URL), wait for the Vue SSR state to populate, then extract from window.__INITIAL_STATE__.search.feeds:

  1. navigate https://www.xiaohongshu.com/search_result/?keyword={keyword}
  2. wait stable
  3. (optional) apply filters — see AI Workflow below
  4. eval "$(python scripts/extract-search.py --limit {limit})"

Parameters:

  • {keyword}: URL-encoded search keyword (e.g., travel, coffee)
  • --limit: max items to return from current feeds buffer, default 20

Output example:

{
  "total": 44,
  "hasMore": true,
  "page": 2,
  "items": [
    {
      "id": "69d8cd8c0000000022002295",
      "xsecToken": "ABpK…[redacted]",
      "type": "normal",
      "title": "Not Switzerland! This is a natural grassland in Fujian!!",
      "userId": "5bac4e3f7a4c7300016a6b88",
      "nickname": "half-goose",
      "likedCount": "5149",       // likes
      "collectedCount": "4170",   // collects/saves
      "commentCount": "390",      // comments
      "coverUrl": "https://sns-..."
    }
  ]
}

Error handling: if error: true is returned, verify the page URL is a search result page and wait stable has completed before retrying.

AI Workflow: apply sort and note-type filters (before extraction)

Run this workflow before the extraction step when the user specifies a sort order or note type. Uses the filter panel on the search result page:

  1. state — locate the "Filter" button in the top-right area of the search content area → click <index>

  2. Wait for filter panel to appear (visible on the right side of the page)

  3. For sort order — state locate the desired sort tag in the "Sort By" row → click <index>

    | UI Label | filterParams value | |---|---| | General (default) | general | | Latest | time_descending | | Most Liked | popularity_descending | | Most Commented | comment_descending | | Most Collected | collect_descending |

  4. For note type — state locate the desired type tag in the "Note Type" row → click <index>

    | UI Label | filterParams value | |---|---| | All (default) | — | | Video | video-note (site internal) | | Image-text | image-text-note (site internal) |

  5. state locate the "Collapse" button at the bottom of the filter panel → click <index>

  6. wait stable

  7. Then run: eval "$(python scripts/extract-search.py --limit {limit})"

Enum Parameters

[AI] sort — filterParams.tags[0] value for the sort_type filter. Acquisition: open filter panel via state + click, read "Sort By" row options. Verified values: general, time_descending, popularity_descending, comment_descending, collect_descending.

[AI] note_type — filterParams.tags[0] value for the filter_note_type filter. Acquisition: open filter panel via state + click, read "Note Type" row options. Verified values: video-note type (obtained by clicking "Video" option), image-text-note type (obtained by clicking "Image-text" option).

time_filter [collection failed]: time filter API parameter value not captured — UI interaction applies filter but POST body parameter mapping was not observed.

Pagination

DOM Pagination: scroll down --amount 3000 → wait stable → re-run eval "$(python scripts/extract-search.py --limit {limit})". Each scroll loads ~20 more results into feeds. Termination: hasMore: false in extraction output.

Success Criteria

result.items.length >= 1 AND result.items[0].id is non-null

Known Limitations

  • Search requires login; without login the page shows a QR code overlay and feeds is empty
  • Filter interaction applies changes to the current page's Vue state; after page navigation or reload, filters reset to defaults

Execution Efficiency

  • Batch orchestration: Write a bash script to loop through the command templates serially within a single session; do not parallelize within one browser (prone to triggering anti-scraping restrictions). Refer to rate information in "Known Limitations" above to add appropriate intervals. To increase throughput, open multiple stealth browser sessions and distribute work across them — each session has an independent fingerprint so rate limits apply per session
  • Test before batch execution: After writing a batch script, you must first test with 1-2 items to verify the script runs correctly; only then run the full batch. Never skip testing and execute in batch directly
  • Reduce redundant pre-operations: When multiple steps depend on the same prerequisite state, complete them in batch under that state to avoid repeatedly establishing the same state
  • Error resumption: Save results item by item during batch processing; on failure, resume from the breakpoint rather than starting over

Experience Notes

Path: {working-directory}/browser-act-skill-forge-memories/xiaohongshu-data-xiaohongshu-search.memory.md (working directory is determined by the Agent running the Skill, typically the project root or current working directory)

Before execution: If the file exists, read it first — it records unexpected situations encountered during past executions (e.g., a strategy has become ineffective); adjust strategy order accordingly.

After execution: If an unexpected situation is encountered (strategy became ineffective, page redesigned, anti-scraping upgraded, better path discovered), append a line: {YYYY-MM-DD}: {what happened} → {conclusion}

Normal execution does not write to the file. Do not record what keywords were used or how many results were returned — those are task outputs, not experience.

Related Skills

View on GitHub
GitHub Stars6.0k
CategoryOperations
Updated1mo ago
Forks304

Languages

Python

Trust signals

100/100

From repository metadata: license, adoption, age and documentation. Not a code audit — see the Safety scan above for what the skill file itself contains.

No cautions