# dwarfctl — Open-source DWARF telescope control CLI A Go command-line tool for controlling **DWARF II** (and upcoming DWARF III) smart telescopes over Wi-Fi via their WebSocket API. Built from reverse-engineered protocol specs (see `../analysis/`). ## Quick start ```bash make build ./dwarfctl --ip 192.168.1.100 state ``` ## Prerequisites The telescope must be connected to your Wi-Fi (or your phone joined to the telescope's AP hotspot). Once you can ping the telescope's IP, `dwarfctl` can reach it. Find the IP from: - The official DWARFLAB app's Settings → My Device - Your router's DHCP table (hostname like `DWARFxxxx`) - The BLE handshake (see `../analysis/API_REFERENCE.md`) ## Usage examples ```bash # Device state dwarfctl --ip 192.168.1.100 state # Camera dwarfctl camera open --cam tele dwarfctl camera photo --cam tele dwarfctl camera photo --cam wide --raw dwarfctl camera burst start --cam tele dwarfctl camera exp --cam tele 156 # 1/4s exposure dwarfctl camera gain --cam tele 60 dwarfctl camera params --cam tele # Motor / slew dwarfctl motor slew 90 0.5 # angle 90°, half speed dwarfctl motor stop 0 # stop RA motor dwarfctl motor goto 0 45.0 5.0 # RA motor to 45° at speed 5 # Astrophotography dwarfctl astro calibrate start dwarfctl astro goto-dso 10.6847 41.2687 "M31 Andromeda" dwarfctl astro goto-solar 3 # Earth = index 3 dwarfctl astro stack start dwarfctl astro eq-solve start # polar alignment # Focus dwarfctl focus auto dwarfctl focus step 1 # 1=out, 0=in dwarfctl focus astro-af start # Tracking dwarfctl track start 640 360 100 100 0 # bbox at center of tele cam dwarfctl track stop # System dwarfctl system sync-time dwarfctl system set-location 48.8566 2.3522 35 # Power dwarfctl power rgb-on dwarfctl power rgb-off dwarfctl power reboot dwarfctl power off # Monitor notifications (live status events) dwarfctl monitor # Visual odometry — image-based orientation (no star/plate solving) dwarfctl orient compare before.jpg after.jpg # measure rotation between 2 frames dwarfctl orient live --cam wide # live pointing tracker from RTSP dwarfctl orient live --fov-h 42 --fov-v 24 # override FoV with measured values ``` ## Architecture ``` dwarfctl/ ├── proto/dwarf.proto # unified proto3 definitions (397 messages) ├── proto/dwarf.pb.go # generated Go bindings (24948 lines) ├── internal/ │ ├── transport/client.go # WebSocket client + WsPacket envelope │ ├── api/ │ │ ├── commands.go # 323 command IDs + module routing │ │ └── client.go # typed Telescope API (camera/motor/astro/...) │ └── odometry/ # FFT phase-correlation visual odometry │ ├── fft.go # radix-2 Cooley-Tukey FFT (1D + 2D) │ ├── odometry.go # Estimate() — shift between 2 frames → degrees │ └── tracker.go # Tracker — cumulative orientation integrator └── cmd/dwarfctl/main.go # cobra CLI ``` ### Protocol summary | Layer | Transport | Port | |-------|-----------|------| | Control | WebSocket (binary protobuf) | 9900 | | Preview | RTSP (not implemented here) | 554 | Every command is a serialized `WsPacket{major=2, minor=3, device_id, module_id, cmd, type, data, client_id}`. The `module_id` is derived from `cmd` by range. See `../analysis/API_REFERENCE.md` for details. ## Regenerating protos If the proto definitions change: ```bash # From the APK analysis directory: python3 ../analysis/extract_protos.py ../extracted/jadx/.../proto ../analysis/protos # Merge into unified proto: cd dwarfctl/proto python3 merge.py . dwarf.proto protoc --go_out=. --go_opt=paths=source_relative dwarf.proto ``` ## Roadmap - [x] **Visual odometry** — image-based orientation via FFT phase correlation (`orient`) - [ ] BLE discovery + handshake (DwarfPing/DwarfEcho) - [ ] RTSP preview viewer - [ ] Interactive REPL mode - [ ] Schedule plan management - [ ] OTA firmware update - [ ] Full Notify event parsing (typed) - [ ] Closed-loop tracking: feed `orient` output into motor corrections ## Visual odometry (`orient`) The `orient` command estimates the telescope's pointing rotation by comparing wide-angle frames using **FFT phase correlation**. It does NOT use star identification or plate solving — it works on any textured scene (sky, horizon, clouds, daytime landscape), making it suitable for: - **Daytime airplane tracking** — the wide cam sees sky/horizon texture - **Nighttime satellite tracking** — the wide cam sees star fields as texture ### How it works 1. Grab two wide-angle frames (via RTSP `ffmpeg` grab, same as `preview grab`) 2. Downscale both to a square grid (default 256×256, power of two) 3. Compute the 2-D FFT of each, then the normalized cross-power spectrum 4. The inverse FFT gives a correlation surface; its peak = image-plane shift 5. Sub-pixel refinement via parabolic interpolation 6. Convert pixel shift → degrees using the camera field of view For a static alt-az mount, the accumulated shifts give the cumulative pointing orientation relative to the starting frame — no absolute encoders or polar alignment needed. ### Field of view calibration The default FoV (8.0°×6.5°) comes from the DWARF Mini's display values in `DEVICE_MODELS.md`, but the firmware-reported live FoV can differ. To calibrate: slew the motors by a known angle and compare with the measured rotation. Override with `--fov-h` / `--fov-v` once you have measured values. ### Prerequisites - **ffmpeg** must be installed (for RTSP frame capture) - The wide camera must be opened first (`camera open --cam wide`) — `orient live` does this automatically.