transcribe
Transcribe audio files to text with optional diarization and known-speaker hints. Use when a user asks to transcribe speech from audio/video, extract text from recordings, or label speakers in interviews or meetings.
DeepseekModel
Curated skill
Quality Excellent · 90
v1.0.0
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Standard format with system_prompt and model_config, ready for any agent framework
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name transcribe description Transcribe audio files to text with optional diarization and known-speaker hints. Use when a user asks to transcribe speech from audio/video, extract text from recordings, or label speakers in interviews or meetings. Audio Transcribe Transcribe audio using OpenAI, with optional speaker diarization when requested. Prefer the bundled CLI for deterministic, repeatable runs. Workflow Collect inputs: audio file path(s), desired response format (text/json/diarized_json), optional language hint, and any known speaker references. Verify OPENAI_API_KEY is set. If missing, ask the user to set it locally (do not ask them to paste the key). Run the bundled transcribe_diarize.py CLI with sensible defaults (fast text transcription). Validate the output: transcription quality, speaker labels, and segment boundaries; iterate with a single targeted change if needed. Save outputs under output/transcribe/ when working in this repo. Decision rules Default to gpt-4o-mini-transcribe with --response-format text for fast transcription. If the user wants speaker labels or diarization, use --model gpt-4o-transcribe-diarize --response-format diarized_json . If audio is longer than ~30 seconds, keep --chunking-strategy auto . Prompting is not supported for gpt-4o-transcribe-diarize . Output conventions Use output/transcribe/<job-id>/ for evaluation runs. Use --out-dir for multiple files to avoid overwriting. Dependencies (install if missing) Prefer uv for dependency management. uv pip install openai If uv is unavailable: python3 -m pip install openai Environment OPENAI_API_KEY must be set for live API calls. If the key is missing, instruct the user to create one in the OpenAI platform UI and export it in their shell. Never ask the user to paste the full key in chat. Skill path (set once) export CODEX_HOME= " ${CODEX_HOME:- $HOME /.codex} " export TRANSCRIBE_CLI= " $CODEX_HOME /skills/transcribe/scripts/transcribe_diarize.py" User-scoped skills install under $CODEX_HOME/skills (default: ~/.codex/skills ). CLI quick start Single file (fast text default): python3 "$TRANSCRIBE_CLI" \ path/to/audio.wav \ --out transcript.txt Diarization with known speakers (up to 4): python3 "$TRANSCRIBE_CLI" \ meeting.m4a \ --model gpt-4o-transcribe-diarize \ --known-speaker "Alice=refs/alice.wav" \ --known-speaker "Bob=refs/bob.wav" \ --response-format diarized_json \ --out-dir output/transcribe/meeting Plain text output (explicit): python3 "$TRANSCRIBE_CLI" \ interview.mp3 \ --response-format text \ --out interview.txt Reference map references/api.md : supported formats, limits, response formats, and known-speaker notes.
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| Field | Description |
|---|---|
| format | Format tag (skill/v1) |
| skill_id | Unique skill ID |
| name | Skill name |
| version | Version |
| description | Description |
| category | Categories (array) |
| trigger_words | Trigger words |
| tags | Tags |
| source | Source |
| source_url | Source URL (this page) |
| exported_at | Exported at (set per download) |
| system_prompt | System prompt body |
| model_config | Model config: provider / model / temperature / max_tokens / top_p |
| examples | Examples |
| install_guide | Import guide for Coze / Dify / Claude / custom frameworks |
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