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qwen-audioQwen audio 音频

Agent Skill

用于辅助音频、音乐、语音转写、语音合成或声音素材处理。它适合让 Agent 生成配乐说明、整理音频流程、调用语音工具或处理播客和视频配音素材。使用时需要确认输入音频来源、输出格式、时长和模型限制;涉及人声克隆、版权音乐或公开发布时,应先核对授权和合规边界。

总安装

13,448

周安装

544

GitHub Stars

1

下载量

4,221
OpenClaw

安装说明

本站只整理中文说明和来源信息,不托管安装包,也不代用户安装。

GitHub

来源数

2

许可证

MIT-0

最后核验

2026-05-01

来源状态

来源可访问

安装方式

通过对话安装

复制提示词发给支持本地命令或 Skills 的 AI 助手,先确认命令和权限,再让它执行。

请帮我安装这个 Agent Skill:qwen-audio(Qwen audio 音频)
来源仓库:https://github.com/darknoah/qwen-audio
安装命令:
openclaw skills install qwen-audio
安装前请先检查当前环境是否支持对应 CLI,并向我确认将要执行的命令、安装目录、联网范围和文件读写权限;确认后再执行。

命令行安装

复制命令到本机终端执行。该命令会通过 OpenClaw 从第三方来源获取 Skill;本站只展示命令,不托管安装包,也不自动执行。

ClawHubOpenClaw
openclaw skills install qwen-audio

简介

具备高性能文本转语音(TTS)和语音转文本(STT)功能。

  • 适用于音频处理、播客制作和视频配音等效率场景。
  • 可生成配乐说明、整理音频流程或调用语音工具。
  • 安装命令:openclaw skills install qwen-audio,需确认模型限制。
  • 涉及人声克隆或版权音乐时,应核对授权与合规边界。

SKILL.md

name
qwen-audio
description
High-performance audio library with text-to-speech (TTS) and speech-to-text (STT).
version
0.0.4

Qwen-Audio

Overview

Qwen-Audio is a high-performance audio processing library optimized. It delivers fast, efficient TTS and STT with support for multiple models, languages, and audio formats.

Prerequisites

  • Python 3.10+

Environment checks

Before using any capability, verify that all items in ./references/env-check-list.md are complete.

Capabilities

Voice Management

Voices are stored in the ./voices/ directory at the skill root level. Each voice has its own folder containing:

  • ref_audio.wav - Reference audio file
  • ref_text.txt - Reference text transcript
  • ref_instruct.txt - Voice style description

Create a Voice

Create a reusable voice profile using VoiceDesign model. The --instruct parameter is required to describe the voice style:

uv run --project "/<qwen-audio-skill-path>" python "<qwen-audio-skill-path>/scripts/qwen-audio.py" voice create --text "This is a sample voice reference text." --instruct "A warm, friendly female voice with a professional tone." --id "my-voice-id"

Optional: --id "my-voice-id" to specify a custom voice ID.

Returns (JSON):

{
  "id": "my-voice-id",
  "ref_audio": "/<qwen-audio-skill-path>/voices/my-voice-id/ref_audio.wav",
  "ref_text": "This is a sample voice reference text.",
  "instruct": "A warm, friendly female voice with a professional tone.",
  "duration": 3.456,
  "sample_rate": 24000,
  "success": true
}

List Voices

List all created voice profiles:

uv run --project "/<qwen-audio-skill-path>" python "<qwen-audio-skill-path>/scripts/qwen-audio.py" voice list

Returns (JSON):

[
  {
    "id": "my-voice-id",
    "ref_audio": "/<qwen-audio-skill-path>/voices/my-voice-id/ref_audio.wav",
    "ref_text": "This is a sample voice reference text.",
    "instruct": "A warm, friendly female voice with a professional tone.",
    "duration": 3.456,
    "sample_rate": 24000
  }
]

Text to Speech

TTS Voice Pre-check (Required)

Before any tts generation, always confirm the available voices first:

  1. Run voice list to check the current voice profiles.
  2. If the returned list is empty, stop and ask the user what kind of voice they want to create first. Offer style choices, for example:

- Warm and friendly female narrator - Deep and steady male broadcast voice - Young and energetic neutral voice - Calm and professional customer-service voice Then run voice create only after the user confirms a style.

  1. If the returned list is not empty, show the available voice id values and ask the user to confirm which one should be used as the --ref_voice reference id for generation.

Only run tts after this confirmation step is complete.

uv run --project "/<qwen-audio-skill-path>" python "<qwen-audio-skill-path>/scripts/qwen-audio.py" tts --text "hello world" --output "/path/to/save.wav"

Returns (JSON):

{
  "audio_path": "/path/to/save.wav",
  "duration": 1.234,
  "sample_rate": 24000,
  "success": true
}

Voice Cloning

Clone any voice using a reference audio sample. Provide the wav file and its transcript:

uv run --project "/<qwen-audio-skill-path>" python "<qwen-audio-skill-path>/scripts/qwen-audio.py" tts --text "hello world" --output "/path/to/save.wav" --ref_audio "sample_audio.wav" --ref_text "This is what my voice sounds like."

ref_audio: reference audio to clone ref_text: transcript of the reference audio

Use a Created Voice

After creating a voice, use it for TTS with the --ref_voice parameter. The instruct will be automatically loaded:

uv run --project "/<qwen-audio-skill-path>" python "<qwen-audio-skill-path>/scripts/qwen-audio.py" tts --text "New text to speak" --output "/path/to/save.wav" --ref_voice "my-voice-id" --instruct "Very happy and excited."

Optional: --instruct to emotion control.

Automatic Speech Recognition (STT)

uv run --project "/<qwen-audio-skill-path>" python "<qwen-audio-skill-path>/scripts/qwen-audio.py" stt --audio "/sample_audio.wav" --output "/path/to/save.txt" --output-format txt

Test audio: https://qianwen-res.oss-cn-beijing.aliyuncs.com/Qwen3-ASR-Repo/asr_en.wav output-format: "txt" | "ass" | "srt" | "all"

Returns (JSON):

{
  "text": "transcribed text content",
  "duration": 10.5,
  "sample_rate": 16000,
  "files": ["/path/to/save.txt", "/path/to/save.srt"],
  "success": true
}

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安装后应在对应宿主中按原始 README 的触发条件使用;具体调用方式请以来源页面和 README 为准。

平台分布

OpenClaw

72.77%
按下载量换算3,072

安全审计

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可疑

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安装前确认

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