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GitHub - spacepacket1/e3d-pod2vid: AI-powered podcast-to-video pipeline. Semantic B-roll, voice synthesis, burned subtitles, YouTube publishing.
spacepacket · 2026-06-28 · via Show HN

AI-powered podcast-to-video pipeline. Converts a diarized audio file (NotebookLM, podcast, interview) into a YouTube-ready MP4 with:

  • Semantically matched Pexels B-roll per utterance (GPT-4o-mini picks the clip)
  • Burned-in subtitles (no ffmpeg libass required — pure Pillow)
  • Optional OpenAI TTS voice replacement (swap out NotebookLM / AI voices)
  • YouTube upload + description/thumbnail update
  • One-shot multi-platform social posting (Discord, Telegram, X, Moltbook, LinkedIn)

Quick Start

git clone https://github.com/spacepacket1/e3d-pod2vid.git
cd e3d-pod2vid

# Python deps
pip install -r requirements.txt

# Node deps (YouTube + social posting only)
npm install

# Copy and fill in your API keys
cp .env.example .env
$EDITOR .env

Workflow

1. Convert audio to video

python3 pod2vid.py episode.m4a output/episode.mp4

This single command:

  1. Uploads audio to AssemblyAI for speaker diarization
  2. Asks GPT-4o-mini for a specific Pexels search query per utterance
  3. Downloads matching B-roll clips (cached per query)
  4. Renders each segment with burned-in subtitles
  5. Concatenates into a final MP4 + SRT subtitle file

Caches diarization and queries as JSON so re-runs are fast.


2. (Optional) Replace voices with OpenAI TTS

If you want custom voices instead of the original audio (e.g. replace NotebookLM voices):

# Synthesize with OpenAI TTS voices
python3 tts_replace.py output/episode-diarization.json episode-tts

# Render video using TTS audio
python3 pod2vid.py output/episode-tts.mp3 output/episode-tts.mp4

Default voices: onyx (Speaker A) and nova (Speaker B). Override with VOICE_A / VOICE_B.

Available voices: alloy, echo, fable, onyx, nova, shimmer


3. Generate a thumbnail

python3 make_thumbnail.py "Predictive GPS for Autonomous AI Agents" thumbnail.png /path/to/logo.png

Outputs a 1280×720 PNG with title, accent stripe, and optional logo overlay. Pure Pillow — no browser or design tool required.


4. Upload to YouTube

First time: authorize your account

The script prints a URL. Open it on any device (phone, browser — the machine running the script doesn't need a browser). After approving, paste the redirect URL back into the terminal. Tokens are saved to youtube-tokens.json.

Upload the video

node yt_upload.js output/episode-tts.mp4 "My Episode Title"

Prints the video URL and ID when done.

Update description and thumbnail

YT_DESCRIPTION="Check out maps.e3d.ai — AI-powered GPS for autonomous vehicles.

Follow us:
• X: @e3dmaps
• Discord: https://discord.gg/your-server" \
node yt_update.js VIDEO_ID thumbnail.png

5. Announce on social media

node announce.js https://www.youtube.com/watch?v=VIDEO_ID "New episode: Predictive GPS for Autonomous AI Agents"

Posts simultaneously to all configured platforms. Platforms with no credentials are silently skipped.

Platform Credential(s) needed
Discord DISCORD_BOT_TOKEN + DISCORD_CHANNEL_ID
Telegram TELEGRAM_BOT_TOKEN + TELEGRAM_CHAT_ID
X (Twitter) X_ACCESS_TOKEN
Moltbook MOLTBOOK_API_KEY
LinkedIn linkedin-tokens.json with person_urn (run node linkedin_auth.js)

6. (Optional) LinkedIn setup

LinkedIn's API requires a few one-time setup steps before announce.js can post there.

Step 1 — Create a LinkedIn app

Go to linkedin.com/developers/apps and create an app. Under the Auth tab, add this as an authorized redirect URL:

https://www.linkedin.com/developers/tools/oauth/redirect

Step 2 — Add required products

Under the Products tab, request access to both:

  • Share on LinkedIn — grants w_member_social scope (post on behalf of user)
  • Sign In with LinkedIn using OpenID Connect — grants openid profile scopes (needed to resolve your person URN)

Both are typically approved instantly for personal apps.

Step 3 — Verify company association (if prompted)

LinkedIn may ask you to verify a company page association. Open the verification URL while logged in as a Page Admin and approve it.

Step 4 — Authorize and get tokens

Add your app credentials to .env:

LINKEDIN_CLIENT_ID=your_client_id
LINKEDIN_CLIENT_SECRET=your_client_secret

Then run:

Open the printed URL on any device. After approving, paste the redirect URL back. Tokens are saved to linkedin-tokens.json.

Step 5 — Add your person URN

LinkedIn's API requires your encoded person ID (not your numeric member ID). To find it:

  1. Go to your LinkedIn profile in a browser
  2. View Page Source (Cmd+U / Ctrl+U) and search for urn:li:member:
  3. Note the numeric ID (e.g. 4435724)
  4. Make a test API call — the error response will reveal your encoded person URN (e.g. urn:li:person:2KqUAyg4oY)

Or run this one-liner after getting a token:

node -e "
const https = require('https');
const t = JSON.parse(require('fs').readFileSync('linkedin-tokens.json'));
// Replace MEMBER_ID with your numeric ID from page source
const body = JSON.stringify({author:'urn:li:member:MEMBER_ID',commentary:'test',visibility:'PUBLIC',distribution:{feedDistribution:'MAIN_FEED',targetEntities:[],thirdPartyDistributionChannels:[]},lifecycleState:'PUBLISHED',isReshareDisabledByAuthor:false});
const u = require('url').parse('https://api.linkedin.com/rest/posts');
const r = https.request(Object.assign(u,{method:'POST',headers:{'Authorization':'Bearer '+t.access_token,'Content-Type':'application/json','Content-Length':Buffer.byteLength(body),'LinkedIn-Version':'202506','X-Restli-Protocol-Version':'2.0.0'}}),res=>{let d='';res.on('data',c=>d+=c);res.on('end',()=>console.log(d.slice(0,300)));});
r.write(body);r.end();
"

The error message will contain your encoded URN. Save it:

node -e "
const fs = require('fs');
const t = JSON.parse(fs.readFileSync('linkedin-tokens.json'));
t.person_urn = 'urn:li:person:YOUR_ENCODED_ID';
fs.writeFileSync('linkedin-tokens.json', JSON.stringify(t, null, 2));
"

Once linkedin-tokens.json contains person_urn, announce.js will post to LinkedIn automatically.


Configuration

Copy .env.example to .env and fill in the keys you need.

Variable Required for Notes
ASSEMBLYAI_API_KEY pod2vid.py assemblyai.com
OPENAI_API_KEY pod2vid.py, tts_replace.py GPT-4o-mini + TTS
PEXELS_API_KEY pod2vid.py pexels.com/api — free
DISCORD_BOT_TOKEN announce.js Optional
DISCORD_CHANNEL_ID announce.js Optional
TELEGRAM_BOT_TOKEN announce.js Optional
TELEGRAM_CHAT_ID announce.js Optional
X_ACCESS_TOKEN announce.js OAuth2 bearer token
MOLTBOOK_API_KEY announce.js Optional
MOLTBOOK_SUBMOLT announce.js Submolt name (default: agentfinance)
LINKEDIN_CLIENT_ID linkedin_auth.js From LinkedIn Developer Portal
LINKEDIN_CLIENT_SECRET linkedin_auth.js From LinkedIn Developer Portal
LINKEDIN_TOKEN_FILE announce.js Default: linkedin-tokens.json — must contain person_urn
VOICE_A tts_replace.py Default: onyx
VOICE_B tts_replace.py Default: nova
SPEAKER_A_NAME pod2vid.py Subtitle label (default: Host)
SPEAKER_B_NAME pod2vid.py Subtitle label (default: Guest)
YT_PRIVACY yt_upload.js public / unlisted / private
YT_DESCRIPTION yt_update.js Full video description text

How semantic B-roll works

Instead of rotating through a fixed clip library, this pipeline asks GPT-4o-mini to generate a specific Pexels search query for each utterance:

"EZPass saved us 90 seconds at every toll plaza"
  → "toll booth highway payment"

"the dual-witness problem"
  → "courtroom judge testimony"

"machine learning position predictions"
  → "machine learning data training loop"

Queries are cached so re-runs or TTS voice swaps don't re-spend API credits. ~82 unique clips across a 90-segment episode is typical.


Requirements

Python 3.8+

  • Pillow >= 10.0
  • python-dotenv >= 1.0
  • ffmpeg (any version — subtitle rendering does not require libfreetype/libass)

Node.js 18+

  • dotenv

External APIs

  • AssemblyAI (diarization)
  • OpenAI (GPT-4o-mini + TTS)
  • Pexels (B-roll clips, free tier fine for personal use)
  • YouTube Data API v3 (via Google Cloud Console)
  • LinkedIn API (via LinkedIn Developer Portal) — optional, for posting

Output files

output/
  episode.mp4                    final video
  episode.srt                    subtitle file for YouTube CC
  episode-diarization.json       cached AssemblyAI result
  episode-queries.json           cached GPT Pexels queries
  broll/                         cached B-roll clips (one per unique query)
  tts-cache/                     cached TTS utterances (per voice+text hash)

Credits

Built by E3D Maps — AI-powered navigation for autonomous vehicles.


License

MIT