# pm3py — Development Guide ## What is this? A pure-Python async library that speaks the Proxmark3 NG wire protocol directly over USB serial. Returns structured dicts, not text. No dependency on the C client binary. ## Quick reference ```bash # Run tests (no hardware needed, all mocked) cd /home/work/pm3py python -m pytest tests/ -v # Install for development pip install -e . ``` ## Package structure ``` pm3py/ __init__.py # re-exports Proxmark3, PM3Error, PM3Response, Cmd, PM3Status core/ # wire protocol and device commands protocol.py # wire constants, CRC-16/A, Cmd enum, PM3Status transport.py # frame encode/decode, PM3Transport async serial client.py # Proxmark3 class, _SyncProxy, FirmwareInfo hw.py # hardware commands, LED API (platform-aware) hf.py # HF core — tune, search, sniff, dropfield hf_iso14a.py # ISO 14443-A — scan, raw. Uses MIX frames hf_iso15.py # ISO 15693 — scan, rdbl, wrbl, thin sniff cmd hf_mfc.py # MIFARE Classic — rdbl, wrbl, rdsc, chk, nested, cident lf.py # LF commands + T55xxCommands + LFSearchResult flash.py # pure-Python firmware flasher (OLD-frame bootloader protocol) _firmware.py # firmware pin (matches_pin) — the fork build pm3py corresponds to flash_cli.py # `pm3flash` console-script (detect → build/resolve → flash → verify) trace/ # firmware trace infrastructure (shared by sniff, sim, reader) trace.py # parse_tracelog, TRACELOG_HDR_SIZE decode_iso15.py # ISO 15693 command/response decoders ndef.py # NDEF TLV/record decode for trace annotation format.py # ANSI color formatting, format_sniff_line sniff/ # sniff orchestration — protocol detection, session lifecycle session.py # SniffSession — start/download/decode per protocol sim/ # card simulation infrastructure (19 files) transponder.py # Transponder ABC, MemoryRegion medium.py # Medium, SoftwareMedium (RF simulation) reader.py # Reader ABC, ScriptedReader, InteractiveReader frame.py # RFFrame (bit/byte level) sim_session.py # SimSession (table compile + WTX relay) dual_session.py # DualInterfaceSession (PM3 RF + MCU I2C) table_compiler.py # ResponseTable, TableCompiler trace_fmt.py # TraceFormatter (14443-A + 15693 decoders) pm3medium.py # PM3-backed Medium for real hardware mcu_bridge.py # COBS serial bridge to MCU mcu_protocol.py # MCU message types and protocol fuzzer.py # Transponder fuzzer relay.py # Card relay replay.py # Trace replay access_control/ # Wiegand, OSDP transponders/ # tag/transponder models (extracted from sim/) hf/iso14443a/ # Tag14443A_3/4, MifareClassic, DESFire, NfcType2/4 # nxp/type2,ntag21x,ultralight,ntag_i2c # (NTAG210-216, Ultralight/C/EV1, NTAG I2C plus) # st/st25tn (Type 2), st/st25ta (Type 4) # infineon/optiga_nbt (OPTIGA Authenticate NBT, Type 4) hf/iso14443b/ # base.py: Tag14443B (SRIX slot-marker) + # Tag14443B_4 (standard REQB/ATTRIB + ISO-DEP). # Vendor models (organised by mfg, like the rest): # st/st25tb, ti/rf430cl330h (NFC Type 4B) hf/iso15693/ # Tag15693, NfcType5, NXP ICODE/SLIX2/DNA/NTAG5 # st/st25tv, st/st25dv, infineon/myd_vicinity # ti/tagit (Tag-it HF-I), ti/rf430frl (sensor) lf/ # EM4100, HID, T5577 reader/ # higher-level reader modes by protocol/vendor (scaffold) ``` ## Client API ```python pm3.hw.ping() # hardware pm3.hf.iso14a.scan() # ISO 14443-A pm3.hf.iso15.rdbl(4) # ISO 15693 pm3.hf.mfc.rdbl(0) # MIFARE Classic pm3.lf.t55.readbl(0) # T55xx pm3.hf.tune() # HF antenna tune pm3.hf.dropfield() # drop field ``` ## Wire protocol essentials - **NG frame (client→device):** magic `0x61334d50` + `length|0x8000` + cmd + payload + crc/nocrc - **MIX frame:** Same but `ng` bit unset, payload starts with 3x uint64 args (24 bytes) - **Response frame:** magic `0x62334d50` + `length|ng` + status + reason + cmd + payload + crc/nocrc - **USB: no CRC** (postamble = `0x3361` cmd / `0x3362` resp). C client sets `send_with_crc_on_usb = false`. - **FPC UART: CRC-16/A** with byte-swapped wire encoding ## Key patterns - All command methods are `async`. The sync wrapper in `_SyncProxy` (in `core/client.py`) intercepts via `__getattr__` and calls `loop.run_until_complete()`. - Command classes hold a `self._t` reference to `PM3Transport` (or mock in tests). - Tests use `AsyncMock` for transport. Set `hw._is_rdv4 = False` to skip capabilities fetch in LED tests. - `capabilities()` response parsed at known byte/bit offsets from the C struct (version=7 format). ## Platform differences (PM3 Easy vs RDV4) | Color | Easy | RDV4 | |--------|-----------|-----------| | green | A (0x01) | B (0x02) | | red | B (0x02) | C (0x04) | | orange | C (0x04) | A (0x01) | | blue | D (0x08) | *(none)* | | red2 | *(none)* | D (0x08) | PWM-capable: Easy = A,B. RDV4 = A,D. ## Sim framework Software-defined transponder/reader simulation framework — 750+ tests, merged to master. Pure-Python models for ISO 14443-A, 15693, MIFARE Classic, DESFire, JCOP, LF (EM4100, HID, T5577), NDEF, NXP ICODE/SLIX2/DNA/NTAG5, access control (Wiegand, OSDP), implant profiles. Transponder models in `transponders/`, sim infrastructure in `sim/`. ## Table compiler: proprietary command match patterns **Critical:** For NXP custom commands (0xA0+), table entry match patterns must **NOT** include the manufacturer code byte (0x04). The firmware's UID addressing logic consumes the mfg byte as part of UID parsing, so after normalization the mfg byte is absent from the command passed to table lookup. Addressing flow for `22 AB 04 `: 1. Firmware sees `cmd[0] & ADDRESS` → addressed mode 2. `cmd[2]` (mfg code 0x04) doesn't match UID → tries `cmd[3:11]` → UID matches 3. `cmdCpt` advances past mfg + UID → `cmdCpt = 11` 4. Normalization: `norm = [flags & ~ADDRESS, cmd] + cmd[cmdCpt:]` → `02 AB` (no mfg code!) 5. Table lookup on `02 AB` → match pattern must be `[0x02, 0xAB]` (PREFIX), NOT `[0x02, 0xAB, 0x04]` For unaddressed commands (`02 AB 04`), mfg code stays → `02 AB 04`. PREFIX match on `[0x02, 0xAB]` matches both forms. **Rule:** All NXP custom command table entries use `match=bytes([flags, cmd_byte])` with `MATCH_PREFIX`. Never include `0x04` in the match. ## Python-driven card simulation Design doc: `docs/PYTHON_SIM_DESIGN.md`. Firmware patch in `firmware/` submodule (proxmark3-pm3py) + Python sim framework. 15693 sim fully working — phone reads all blocks, NDEF, NXP custom commands. Two mechanisms: - **Response table** in BigBuf — pre-compiled by Python, served by firmware at wire speed (86µs FDT for 14443-A Layer 3) - **WTX relay** — firmware sends S(WTX) on Layer 4 table miss, relays APDU to Python over USB for real-time crypto (DESFire, JCOP, EMV) - **15693 retry relay** — reader retry-based relay for unknown commands Firmware maintenance: atomic single-file commits for easy rebase against upstream PM3. See design doc for CI workflow. ## Firmware flashing pm3py flashes the fork firmware itself (`pm3.flasher`, `pm3flash` CLI) — no C `pm3-flash`. Key facts for maintainers: - **OLD frame, not NG.** The bootloader speaks the legacy 544-byte fixed frame (no magic/CRC); `core/transport.py` has `send_old`/`reopen`, `core/flash.py` the `Flasher`. - **fullimage-only by default.** The bootrom region is refused unless `allow_bootrom=True` — a bad OS write is recoverable (proven on hardware); a bad bootrom write bricks to JTAG. - **Merge segments sharing a flash page** (`build_blocks`): the SAM7 erase-programs whole pages, so two adjacent PT_LOAD segments landing in one page must be written once with both segments' data (else 0xFF padding clobbers real bytes — the on-hardware bug we hit). - **Platform ≠ is_rdv4.** `is_rdv4` is the running firmware's compile-time flag, not the board, so `--build`/`build_firmware` require an explicit `PLATFORM` (`PM3GENERIC` = Easy, `PM3RDV4`). Build target: `make -C firmware PLATFORM=... armsrc/all`. - **The pin.** `pm3py/_firmware.py` `FIRMWARE_PIN` is the fork build pm3py corresponds to (currently the submodule SHA); bump it when you bump the submodule. `matches()` does a 7-char SHA-prefix test on the device version string. Auto-download of the pinned release is the open follow-up (see the DT-Gitea migration plan). ## Adding new commands 1. Find the `CMD_*` constant in `include/pm3_cmd.h` and add to `Cmd` enum in `core/protocol.py` 2. Check if the C client uses `SendCommandNG` (→ `send_ng`) or `SendCommandMIX` (→ `send_mix`) 3. Check the payload struct in `pm3_cmd.h` and use `struct.pack` to build it 4. Parse the response using `struct.unpack_from` on `resp.data` 5. Return a dict with human-readable keys 6. Write test with `AsyncMock` transport — no hardware needed