embed

GitHub

将文本转换为384维嵌入向量,用于语义搜索、RAG检索、聚类和相似度比较。调用ZeroGPU API处理输入,支持不同模型选择,输出标准JSON格式向量数据。

agents/openclaw/plugin/skills/embed/SKILL.md zerogpu/zerogpu-router

Trigger Scenarios

用户要求对文本进行嵌入处理 构建或查询向量索引 按语义而非关键词比较段落

Install

npx skills add zerogpu/zerogpu-router --skill embed -g -y
More Options

Non-standard path

npx skills add https://github.com/zerogpu/zerogpu-router/tree/main/agents/openclaw/plugin/skills/embed -g -y

Use without installing

npx skills use zerogpu/zerogpu-router@embed

指定 Agent (Claude Code)

npx skills add zerogpu/zerogpu-router --skill embed -a claude-code -g -y

安装 repo 全部 skill

npx skills add zerogpu/zerogpu-router --all -g -y

预览 repo 内 skill

npx skills add zerogpu/zerogpu-router --list

SKILL.md

Frontmatter
{
    "name": "embed",
    "metadata": {
        "openclaw": {
            "install": [
                {
                    "bins": [
                        "zerogpu"
                    ],
                    "kind": "node",
                    "package": "zerogpu-cli"
                }
            ],
            "requires": {
                "bins": [
                    "zerogpu"
                ]
            }
        }
    },
    "description": "Turn text into a 384-dimensional embedding vector for semantic search, RAG retrieval, clustering, deduplication, or similarity comparison. Use when the user asks to embed text, build or query a vector index, or compare passages by meaning rather than by keyword.",
    "allowed-tools": "Bash(zerogpu embed *)",
    "argument-hint": "<text> [-m <model>]"
}

Sends your input to ZeroGPU's hosted API for inference — this is not local processing. Don't pass secrets, credentials, or regulated data you aren't cleared to share with a third party. See the plugin README's "Data & privacy" section.

Embed the text. $ARGUMENTS is the raw text — pass it verbatim, no escaping or quoting required (the heredoc below handles every shell metacharacter, newline, quote, and paren safely):

ZGPU_TEXT=$(cat <<'ZGPU_END_OF_INPUT'
$ARGUMENTS
ZGPU_END_OF_INPUT
)
zerogpu embed "$ZGPU_TEXT"

Defaults to all-minilm-l6-v2 (22.7M parameters, 256-token window), the general-purpose choice for semantic similarity over short chunks. For English retrieval, for chunks longer than 256 tokens, or when retrieval quality is the bottleneck, append -m bge-small-en-v1.5 (33.4M parameters, 512-token window). Both cost $0.50 per 1M input tokens and bill nothing on output, and both return 384-dimensional vectors, so they are interchangeable in an existing index.

Output is OpenAI's embeddings envelope as JSON: data[].embedding holds the vector, data[].index maps it back to its input, and usage reports input tokens. Do not print the raw vector back to the user — it is 384 floats and unreadable. Say what was embedded, which model produced it, and how many dimensions came back. Print or write the numbers only if the user explicitly asks for the vector or is piping it somewhere.

These models are served by the Embeddings API rather than the Responses API; the CLI routes them automatically. Inputs longer than the model's window are truncated, so chunk long documents and embed the chunks.

Savings note: only if the command output literally contains a line starting with 💰 ZeroGPU savings, append that exact line, unchanged, as the last line of your reply. If no such line is present, say nothing about savings and do not mention or suggest the cost-savings skill — this note is intentionally occasional, not shown every time.

Version History

  • 87b63e9 Current 2026-08-27 16:49

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Metadata

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Version
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Hash
8b1140cb
Indexed
2026-08-27 16:49

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