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dataify-server

Dataify Google Ai Mode

by dataify-server · GitHub ↗ · v1.0.0 · MIT-0
cross-platform ⚠ suspicious
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Install in OpenClaw
/install dataify-google-ai-mode
Description
When users search for information using Google AI Model, this skill is employed
README (SKILL.md)

Dataify Google AI Mode

Use this skill to turn a user's Google AI Mode request into a Dataify Scraper API form submission.

Required Pre-Call Confirmation

Before every real API call, follow this confirmation flow. These rules override any older workflow order in this skill.

  1. Parse the user's request into the API body fields and fixed engine value.
  2. Apply defaults only when the parameter description explicitly states a default. Do not use example YAML values, sample prompts, placeholder values, or examples such as pizza, us, en, dates, airport codes, or tokens as defaults.
  3. If a required parameter has no documented default and cannot be inferred from the user request, ask for that parameter before building the table.
  4. Show a Markdown table before calling the API. Do not include Authorization. Include the complete body field list from this skill's reference document, including engine, even when a field is currently blank.
  5. The table must have exactly these columns: 参数名, 当前值, 默认值, 说明.
  6. After the table, ask the user whether they want to modify any parameter. Do not call the API until the user explicitly confirms.
  7. If the user changes a parameter, regenerate the table and ask for confirmation again.
  8. If the token is missing, stop and tell the user to sign in at Dataify Dashboard to obtain DATAIFY_API_TOKEN.

Use the bundled preview helper whenever possible to generate the confirmation table from this skill's reference document:

python3 scripts/preview_params.py --params-json '{"q":"USER_QUERY"}'

Pass every parsed current value to preview_params.py using --params-json or matching --field value arguments. The helper reads defaults and descriptions from references/*api.md; if the helper cannot parse a default, leave the default blank rather than inventing one. 9. After confirmation and token handling, call the bundled Python script with python3 and return the API response body directly without summarizing, extracting, cleaning, translating, or reshaping it.

Workflow

  1. Parse the user's request into Google AI Mode fields. Use q as the query and set engine to google_ai_mode.
  2. If the token is missing, stop and tell the user to sign in at Dataify Dashboard to obtain DATAIFY_API_TOKEN.
  3. Build request parameters with only the fields the user requested plus required defaults. Use json: "1" unless the user asks for another output format.
  4. Run the bundled Python script with python3. Run it from this skill directory, or use the absolute path to scripts/google_ai_mode.py.
python3 scripts/google_ai_mode.py --q "pizza" --json 1

If the user provided a token in the conversation instead of an environment variable, pass it with --token and avoid echoing it back in the final answer:

python3 scripts/google_ai_mode.py --token "USER_TOKEN" --q "pizza" --gl us --hl en

For many fields, you may pass one JSON object with shell-appropriate quoting. The script will still submit form data to the API:

python3 scripts/google_ai_mode.py --params-json '{"q":"pizza","json":"1","gl":"us","hl":"en"}'
  1. Return the script output directly to the user. Do not summarize, extract, clean, translate, or reshape the API response.

Field Mapping

Use references/google_ai_mode_api.md when you need the exact field list or examples.

Core rules:

  • Always submit the API request as form data with Content-Type: application/x-www-form-urlencoded.
  • Always force engine to google_ai_mode.
  • Keep request values as strings unless the script accepts and normalizes a boolean.
  • Omit optional fields that the user did not request.
  • Ask a follow-up only when the required query q cannot be inferred.
  • If both location and uule are present, prefer the explicit uule and omit location.
  • Normalize token values in the script. A token without Bearer is accepted and prefixed automatically.

Common mappings:

  • "JSON" -> json: "1"
  • "JSON+HTML" -> json: "2"
  • "HTML" -> json: "3"
  • "Light JSON" -> json: "4"
  • search origin location -> location
  • Google encoded location -> uule
  • bypass cache / no cache -> no_cache: "true"
  • use cache -> no_cache: "false"
  • country or region for Google behavior -> gl
  • interface/search language -> hl
Usage Guidance
Install only if you intend to use Dataify for Google AI Mode scraping. Prefer setting DATAIFY_API_TOKEN in the environment instead of pasting tokens into commands or chat, review the confirmation table before each call, and avoid sending sensitive queries or precise location/uule values unless necessary.
Capability Assessment
Purpose & Capability
The artifacts consistently implement a Google AI Mode Dataify Scraper API workflow: parse request fields, show a confirmation table, then POST form data to a fixed Dataify endpoint.
Instruction Scope
The activation description is broad and could route general Google AI search requests into this API workflow, though the skill does require explicit confirmation before real calls.
Install Mechanism
No package install, dependency installation, startup registration, or hidden install behavior is present; the skill consists of markdown references and Python helper scripts.
Credentials
Network submission to Dataify is expected for the stated purpose, and the endpoint is disclosed; however submitted fields can include user search intent plus location/uule parameters.
Persistence & Privilege
No durable persistence or privilege escalation was found, but the documentation shows passing a Dataify token via --token, which can expose credentials through process arguments; environment variable use is safer.
How to Use
  1. Make sure OpenClaw is installed (local or Docker)
  2. Run the install command in chat: /install dataify-google-ai-mode
  3. After installation, invoke the skill by name or use /dataify-google-ai-mode
  4. Provide required inputs per the skill's parameter spec and get structured output
Version History
v1.0.0
- Initial release of the dataify-google-ai-mode skill. - Implements a confirmation workflow requiring a Markdown table and explicit user confirmation before API calls. - Strictly adheres to documented defaults and does not invent values for required parameters. - Integrates with a bundled preview helper script for parameter summaries. - Provides token management instructions and halts on missing tokens. - Returns API responses verbatim, without modification or summarization.
Metadata
Slug dataify-google-ai-mode
Version 1.0.0
License MIT-0
All-time Installs 0
Active Installs 0
Total Versions 1
Frequently Asked Questions

What is Dataify Google Ai Mode?

When users search for information using Google AI Model, this skill is employed. It is an AI Agent Skill for Claude Code / OpenClaw, with 41 downloads so far.

How do I install Dataify Google Ai Mode?

Run "/install dataify-google-ai-mode" in the OpenClaw or Claude Code chat to install it in one step — no extra setup required.

Is Dataify Google Ai Mode free?

Yes, Dataify Google Ai Mode is completely free, licensed under MIT-0. You can download, install and use it at no cost.

Which platforms does Dataify Google Ai Mode support?

Dataify Google Ai Mode is cross-platform and runs anywhere OpenClaw / Claude Code is available (cross-platform).

Who created Dataify Google Ai Mode?

It is built and maintained by dataify-server (@dataify-server); the current version is v1.0.0.

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