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byted-milvus

Manages Milvus on Volcano Engine (Volcengine): provision/inspect/scale/delete clusters and run collection + CRUD/search operations via bundled CLIs. Use when the user mentions Milvus + Volcengine/Volcano Engine or asks to operate Milvus there.

インストール方法を見る

含まれるファイル(13)

  • SKILL.md4.4 KB
  • CONTROL_PLANE.md9.3 KB
  • CONTROL_TOOLS.md7.2 KB
  • DATA_PLANE.md14.8 KB
  • LICENSE9.9 KB
  • README.md2.9 KB
  • requirements.txt85 B
  • scripts/api.py2.7 KB
  • scripts/ark_shim.py2.0 KB
  • scripts/control_tools.py29.5 KB
  • scripts/control.py49.1 KB
  • scripts/data.py37.4 KB
  • scripts/sdk_shim.py2.4 KB

SKILL.md(原文)

インストールする前に、エージェントに与えられる指示の中身を確認できます。

Volcano Engine Milvus

Manage Milvus instances on Volcano Engine — cluster lifecycle and vector data operations.

Quick Start

Use the bundled CLIs (always run via the skill venv):

{baseDir}/venv/bin/python {baseDir}/scripts/control.py <command>
{baseDir}/venv/bin/python {baseDir}/scripts/data.py <command>

If {baseDir}/venv does not exist:

python3 -m venv {baseDir}/venv
{baseDir}/venv/bin/pip install -r {baseDir}/requirements.txt

See CONTROL_PLANE.md and DATA_PLANE.md for workflows and examples.

Low-level control-plane fallback (use only when goal-based commands do not cover the task): {baseDir}/venv/bin/python {baseDir}/scripts/control_tools.py <command>

Available operations

Control Plane (cluster management): Use goal-based workflows to provision, inspect, scale, delete, and expose Milvus instances. → See CONTROL_PLANE.md for goal-based commands and workflows. → See CONTROL_TOOLS.md for low-level control_tools.py fallback commands (use only when CONTROL_PLANE.md does not cover the task).

Data Plane (collections & data): Create/drop collections, insert/upsert/delete data, vector search, scalar query, and get-by-ID. → See DATA_PLANE.md for commands and use cases.

Out of scope

  • Deploying or operating Milvus outside Volcano Engine (self-hosted, other clouds).
  • Deep Milvus performance tuning or schema design beyond basic collection creation and queries.
  • Application-level embedding strategy decisions (chunking, RAG design) unless needed to run the provided data plane commands.

Rules

Common

  • Execution environment: Always use {baseDir}/venv/bin/python to run scripts.
  • Authentication: VOLCENGINE_ACCESS_KEY and VOLCENGINE_SECRET_KEY are required for all control-plane operations. Data-plane commands also require a reachable Milvus --endpoint plus any needed Milvus auth flags. See DATA_PLANE.md.
  • Script usage: Prioritize scripts/control.py and scripts/data.py. Use scripts/control_tools.py only as a last resort when goal-based commands do not cover the task. Do not write ad-hoc Python scripts or use the SDK directly unless existing CLIs cannot satisfy a specific requirement.
  • Language (strict): Always reply in the user's language. Use a deterministic heuristic:
    • If the user's message contains any Chinese characters, reply in Chinese.
    • Otherwise, reply in the user's language as inferred from their message.
    • Keep commands/flags/code in English; only the explanation and prompts should be localized.
    • If the user mixes languages and preference is unclear, ask which language they prefer.

Control plane

  • Destructive actions (strict): Never run delete operations until:
    1. You first fetch and show what will be deleted (preview/detail/describe; see CONTROL_PLANE.md).
    2. The user replies with an explicit confirmation phrase that includes the exact target identifier.
    3. You pass that exact target identifier into the CLI --confirm argument.
  • Missing parameters: Never fail silently. Fetch available options (VPCs, Subnets, Specs) and present them to the user interactively.
  • EIP Auto-Reuse: When enabling public endpoints with enable-public or ms-enable-public, prefer using --eip-auto-reuse true to leverage existing unbinded EIPs and avoid quota failures.

Data plane

  • Network access: Before any data-plane operation, validate the endpoint is reachable. If the instance has no public address or is unreachable, use the enable-public or ms-enable-public control workflows to expose the instance and set IP allow-groups (whitelists), then re-fetch the endpoint via status.
  • Embedding/auto-embedding: Only use the built-in embedding flags supported by scripts/data.py (no custom embedding scripts). Follow the embedding config and input-type rules in DATA_PLANE.md.
  • Vector inputs (strict): Do not accept or generate raw vectors for insert/upsert/search. This skill is auto-embedding-only for data writes and semantic search.

レビュー

まだレビューはありません。使ってみた感想をお寄せください。

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