openclaw-skills/speech/SKILL.md
Use when the user asks for text-to-speech narration or voiceover, accessibility reads, audio prompts, or batch speech generation via the OpenAI Audio API; run the bundled CLI (`scripts/text_to_speech.py`) with built-in voices and require `OPENAI_API_KEY` for live calls. Custom voice creation is out of scope.
npx skillsauth add seaworld008/commonly-used-high-value-skills speechInstall this skill globally with one command. Works with Claude Code, Cursor, and Windsurf.
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Generate spoken audio for the current project (narration, product demo voiceover, IVR prompts, accessibility reads). Defaults to gpt-4o-mini-tts-2025-12-15 and built-in voices, and prefers the bundled CLI for deterministic, reproducible runs.
scripts/text_to_speech.py) with sensible defaults (see references/cli.md).tmp/speech/ for intermediate files (for example JSONL batches); delete when done.output/speech/ when working in this repo.--out or --out-dir to control output paths; keep filenames stable and descriptive.Prefer uv for dependency management.
Python packages:
uv pip install openai
If uv is unavailable:
python3 -m pip install openai
OPENAI_API_KEY must be set for live API calls.If the key is missing, give the user these steps:
OPENAI_API_KEY as an environment variable in their system.If installation isn't possible in this environment, tell the user which dependency is missing and how to install it locally.
gpt-4o-mini-tts-2025-12-15 unless the user requests another model.cedar. If the user wants a brighter tone, prefer marin.instructions are supported for GPT-4o mini TTS models, but not for tts-1 or tts-1-hd.--rpm at 50.OPENAI_API_KEY before any live API call.openai package) for all API calls; do not use raw HTTP.scripts/text_to_speech.py) over writing new one-off scripts.scripts/text_to_speech.py. If something is missing, ask the user before doing anything else.Reformat user direction into a short, labeled spec. Only make implicit details explicit; do not invent new requirements.
Quick clarification (augmentation vs invention):
Template (include only relevant lines):
Voice Affect: <overall character and texture of the voice>
Tone: <attitude, formality, warmth>
Pacing: <slow, steady, brisk>
Emotion: <key emotions to convey>
Pronunciation: <words to enunciate or emphasize>
Pauses: <where to add intentional pauses>
Emphasis: <key words or phrases to stress>
Delivery: <cadence or rhythm notes>
Augmentation rules:
Input text: "Welcome to the demo. Today we'll show how it works."
Instructions:
Voice Affect: Warm and composed.
Tone: Friendly and confident.
Pacing: Steady and moderate.
Emphasis: Stress "demo" and "show".
{"input":"Thank you for calling. Please hold.","voice":"cedar","response_format":"mp3","out":"hold.mp3"}
{"input":"For sales, press 1. For support, press 2.","voice":"marin","instructions":"Tone: Clear and neutral. Pacing: Slow.","response_format":"wav"}
More principles: references/prompting.md. Copy/paste specs: references/sample-prompts.md.
Use these modules when the request is for a specific delivery style. They provide targeted defaults and templates.
references/narration.mdreferences/voiceover.mdreferences/ivr.mdreferences/accessibility.mdreferences/cli.mdreferences/audio-api.mdreferences/voice-directions.mdreferences/codex-network.mdreferences/cli.md: how to run speech generation/batches via scripts/text_to_speech.py (commands, flags, recipes).references/audio-api.md: API parameters, limits, voice list.references/voice-directions.md: instruction patterns and examples.references/prompting.md: instruction best practices (structure, constraints, iteration patterns).references/sample-prompts.md: copy/paste instruction recipes (examples only; no extra theory).references/narration.md: templates + defaults for narration and explainers.references/voiceover.md: templates + defaults for product demo voiceovers.references/ivr.md: templates + defaults for IVR/phone prompts.references/accessibility.md: templates + defaults for accessibility reads.references/codex-network.md: environment/sandbox/network-approval troubleshooting.tools
飞书审批:查询和处理审批待办/已办/实例,搜索可发起审批定义、查看定义详情并发起原生审批实例。当用户要处理审批任务、查看审批实例、搜索或发起审批时使用。审批待办不是飞书任务;非审批类待办走 lark-task。不负责创建审批定义;三方审批定义不走原生提单。
development
Use when a user needs reproducible repository sizing, language composition, file counts, or code-versus-comment ratios with pygount; record exclusions and verify measurement scope before interpreting results.
development
Route a development task to the official Hermes Agent skill, Graphify Codex artifact set, Open GSD Core bundle, or optional GSD Pi bundle without duplicating their installers or state machines.
development
飞书 / Lark 通讯录:按姓名 / 邮箱解析成 open_id,或按 open_id 反查姓名 / 部门 / 邮箱 / 联系方式 / 个人状态 / 签名,以及按关键词搜索当前用户可见的机器人 / 智能体(agent)。当用户提到一个名字要下一步发消息 / 排日程,或拿到 open_id 想查具体信息时使用。不负责部门树遍历、按部门列员工、组织架构图,这类需求走原生 OpenAPI。