Install
$ agentstack add skill-dp-archive-archive-speech ✓ scanned · ✓ verified, works with Claude Code, Cursor, and more.
Security review
✓ PassedNo issues found. Passed automated security review. · v0.1.0 How review works →
- ✓ Prompt-injection patterns
- ✓ Secret / credential exfiltration
- ✓ Dangerous shell & filesystem operations
- ✓ Untrusted network calls
- ✓ Known-malicious package signatures
What it can access
- ✓ Network access No
- ✓ Filesystem access No
- ✓ Shell / process execution No
- ✓ Environment & secrets No
- ✓ Dynamic code execution No
From automated source analysis of v0.1.0. “Used” means the capability is present in the source — more access means more to trust, not that it’s unsafe.
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Passed review? Show it. Paste this badge into your README, it links to the public security report.
Reliability & compatibility
Declared compatibility
Compatibility is declared by the source manifest. End-to-end runtime verification is coming, see below.
We're building live execution health for every listing: tool-call success rate, median latency, uptime, and last-checked timestamps, measured, not self-reported. It isn't live yet, so we don't show numbers we can't stand behind.
How agent discovery & health will work →About
Speech Generation Skill
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.
When to use
- Generate a single spoken clip from text
- Generate a batch of prompts (many lines, many files)
Decision tree (single vs batch)
- If the user provides multiple lines/prompts or wants many outputs -> batch
- Else -> single
Workflow
- Decide intent: single vs batch (see decision tree above).
- Collect inputs up front: exact text (verbatim), desired voice, delivery style, format, and any constraints.
- If batch: write a temporary JSONL under tmp/ (one job per line), run once, then delete the JSONL.
- Augment instructions into a short labeled spec without rewriting the input text.
- Run the bundled CLI (
scripts/text_to_speech.py) with sensible defaults (see references/cli.md). - For important clips, validate: intelligibility, pacing, pronunciation, and adherence to constraints.
- Iterate with a single targeted change (voice, speed, or instructions), then re-check.
- Save/return final outputs and note the final text + instructions + flags used.
Temp and output conventions
- Use
tmp/speech/for intermediate files (for example JSONL batches); delete when done. - Write final artifacts under
output/speech/when working in this repo. - Use
--outor--out-dirto control output paths; keep filenames stable and descriptive.
Dependencies (install if missing)
Prefer uv for dependency management.
Python packages:
uv pip install openai
If uv is unavailable:
python3 -m pip install openai
Environment
OPENAI_API_KEYmust be set for live API calls.
If the key is missing, give the user these steps:
- Create an API key in the OpenAI platform UI: https://platform.openai.com/api-keys
- Set
OPENAI_API_KEYas an environment variable in their system. - Offer to guide them through setting the environment variable for their OS/shell if needed.
- Never ask the user to paste the full key in chat. Ask them to set it locally and confirm when ready.
If installation isn't possible in this environment, tell the user which dependency is missing and how to install it locally.
Defaults & rules
- Use
gpt-4o-mini-tts-2025-12-15unless the user requests another model. - Default voice:
cedar. If the user wants a brighter tone, prefermarin. - Built-in voices only. Custom voices are out of scope for this skill.
instructionsare supported for GPT-4o mini TTS models, but not fortts-1ortts-1-hd.- Input length must be
Tone: Pacing: Emotion: Pronunciation: Pauses: Emphasis: Delivery:
Augmentation rules:
- Keep it short; add only details the user already implied or provided elsewhere.
- Do not rewrite the input text.
- If any critical detail is missing and blocks success, ask a question; otherwise proceed.
## Examples
### Single example (narration)
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".
### Batch example (IVR prompts)
{"input":"Thank you for calling. Please hold.","voice":"cedar","responseformat":"mp3","out":"hold.mp3"} {"input":"For sales, press 1. For support, press 2.","voice":"marin","instructions":"Tone: Clear and neutral. Pacing: Slow.","responseformat":"wav"}
## Instructioning best practices (short list)
- Structure directions as: affect -> tone -> pacing -> emotion -> pronunciation/pauses -> emphasis.
- Keep 4 to 8 short lines; avoid conflicting guidance.
- For names/acronyms, add pronunciation hints (e.g., "enunciate A-I") or supply a phonetic spelling in the text.
- For edits/iterations, repeat invariants (e.g., "keep pacing steady") to reduce drift.
- Iterate with single-change follow-ups.
More principles: `references/prompting.md`. Copy/paste specs: `references/sample-prompts.md`.
## Guidance by use case
Use these modules when the request is for a specific delivery style. They provide targeted defaults and templates.
- Narration / explainer: `references/narration.md`
- Product demo / voiceover: `references/voiceover.md`
- IVR / phone prompts: `references/ivr.md`
- Accessibility reads: `references/accessibility.md`
## CLI + environment notes
- CLI commands + examples: `references/cli.md`
- API parameter quick reference: `references/audio-api.md`
- Instruction patterns + examples: `references/voice-directions.md`
- If network approvals / sandbox settings are getting in the way: `references/codex-network.md`
## Reference map
- **`references/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.
## Source & license
This open-source skill is cataloged on AgentStack and links to its original source — we do not rehost the code.
- **Author:** [dp-archive](https://github.com/dp-archive)
- **Source:** [dp-archive/archive](https://github.com/dp-archive/archive)
- **License:** Apache-2.0
Install and usage instructions live in the source repository linked above.
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Versions
- v0.1.0 Imported from the upstream source.