docs(01-esp32-firmware): create phase plan (4 plans, 3 waves)
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# Roadmap: LED Sync Studio
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## Overview
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Four phases build a music-synchronized LED choreography system from hardware up. Phase 1 validates the ESP32 firmware and retires all hardware risks before any Pi-side code is written. Phase 2 builds the headless Pi core — audio playback, beat detection, choreography engine, and UDP transport — all CLI-testable against real hardware. Phase 3 assembles the full cyberpunk TUI on top of the stable core, delivering the choreography editor end-to-end. Phase 4 adds live-reactive mode and Spotify as a second audio source.
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## Phases
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**Phase Numbering:**
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- Integer phases (1, 2, 3): Planned milestone work
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- Decimal phases (2.1, 2.2): Urgent insertions (marked with INSERTED)
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Decimal phases appear between their surrounding integers in numeric order.
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- [ ] **Phase 1: ESP32 Firmware** - Both LED strips driven by a WiFi-connected ESP32 that executes named animations from JSON commands
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- [ ] **Phase 2: App Core + Audio** - Headless Pi layer: song playback, beat detection, choreography engine, UDP transport
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- [ ] **Phase 3: Choreography TUI** - Full cyberpunk terminal UI with timeline editor, event list, transport controls, and animation panel
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- [ ] **Phase 4: Live Reactive + Spotify** - Beat-driven animation mode with sensitivity calibration and Spotify as audio source
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## Phase Details
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### Phase 1: ESP32 Firmware
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**Goal**: Both LED strips are driven by one ESP32-C3 that receives JSON commands over WiFi and executes named animations autonomously
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**Depends on**: Nothing (first phase)
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**Requirements**: FW-01, FW-02, FW-03, FW-04, FW-05
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**Success Criteria** (what must be TRUE):
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1. WS2801 (160 LEDs, SPI) and SK6812 (300 LEDs, RMT/RGBW) both illuminate correctly and simultaneously with no flicker from WiFi interference
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2. Sending a UDP JSON command (e.g. `{"zone":"wall","animation":"chase","speed":0.5}`) from a laptop triggers the named animation on the correct strip within 50ms
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3. All 8 built-in animations (Chase, Pulse, Rainbow, Strobe, Color Wash, Breathe, Sparkle, Gradient Sweep) run on either zone without crashing
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4. Each zone can be commanded independently — different animations run on Schrank and Wand simultaneously
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5. Animation parameters (color/RGBW, speed, intensity) visibly change behavior when included in the JSON command
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**Plans**: TBD
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### Phase 2: App Core + Audio
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**Goal**: The Pi can play songs, detect beats, schedule choreography events, and send animation commands to the ESP32 — all testable from the command line without any TUI
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**Depends on**: Phase 1
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**Requirements**: AUD-01, AUD-02, AUD-03, AUD-04, CHR-04, CHR-05
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**Success Criteria** (what must be TRUE):
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1. A local MP3, FLAC, or WAV file plays with audible output and the current playback position is readable at any moment
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2. Playback can be paused, resumed, and seeked to an arbitrary timestamp via CLI commands
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3. Beat events are detected from the system audio stream in real time (aubio) with visible console output per beat
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4. A choreography JSON file loads and plays back: correct animations fire on the ESP32 at the timestamps specified in the file
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5. Choreography edits (adding an event) save to a JSON file that reloads correctly on next run
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**Plans**: TBD
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### Phase 3: Choreography TUI
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**Goal**: The full cyberpunk terminal UI is usable over SSH: user can load a song, place animations on the timeline, and play back a complete light show
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**Depends on**: Phase 2
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**Requirements**: CHR-01, CHR-02, CHR-03, UI-01, UI-02, UI-03, UI-04, UI-05, UI-06
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**Success Criteria** (what must be TRUE):
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1. The TUI launches over SSH with cyberpunk/neon styling — dark background, glowing colored elements — and all panels are legible in a standard terminal
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2. User can select a position in the song, choose an animation with parameters, and assign it to a zone — it appears as a block on the timeline view
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3. User can tap a key on the beat during playback to stamp timing marks, and those marks are visible on the timeline
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4. User can switch between Timeline view (horizontal blocks) and Event List view (table of timestamps) for the same choreography
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5. Pressing Play runs the full light show — animations fire on the ESP32 in sync with the song — and the playhead advances visibly on the timeline
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**Plans**: TBD
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**UI hint**: yes
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### Phase 4: Live Reactive + Spotify
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**Goal**: Users can switch into live-reactive mode where beats drive LED animations in real time, and can optionally use Spotify as the audio source
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**Depends on**: Phase 3
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**Requirements**: LIVE-01, LIVE-02, SPT-01
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**Success Criteria** (what must be TRUE):
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1. User can switch from choreography mode to live-reactive mode without restarting the app, and LEDs respond to beats within 100ms of audio onset
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2. User can adjust beat-detection sensitivity in the UI and see the effect immediately — more sensitive triggers fire on quieter transients, less sensitive ignores them
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3. Spotify audio passes through the system audio pipeline and triggers beat-reactive animations the same way local file playback does
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**Plans**: TBD
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## Progress
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**Execution Order:**
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Phases execute in numeric order: 1 → 2 → 3 → 4
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| Phase | Plans Complete | Status | Completed |
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|-------|----------------|--------|-----------|
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| 1. ESP32 Firmware | 0/? | Not started | - |
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| 2. App Core + Audio | 0/? | Not started | - |
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| 3. Choreography TUI | 0/? | Not started | - |
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| 4. Live Reactive + Spotify | 0/? | Not started | - |
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