Linux fingerprint sensor daemon for QTEE devices
  • C++ 88.6%
  • Shell 11.4%
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Filename Latest commit message Latest commit date
Jorijn van der Graaf a91fb2ff58 Reach QTEE: credentials, client env and the app loader, with no QCBOR
fingerprintd's own code now talks to QTEE. On the phone:

    root object on /dev/tee0
    client env obtained (uid 0, 13-byte credentials)
    QSEECOM-compat app loader (UID 122) opened

The credentials object is ours rather than libqcomtee's. Upstream's exists only
to build a thirteen-byte CBOR map and drags in QCBOR to do it, so
packaging/make-libqcomtee.sh compiles the two sources that matter and drops
credentials_obj.c entirely -- nothing else references it, and the library then
has no dependency beyond libc. The map is built in Fingerprintd:Tee where it is
pinned byte-for-byte against the string verified on-device, and the object's
two-op read protocol is served here.

Three interop details, all of which cost a build cycle:

  * libqcomtee's headers carry no extern "C" guard, having only ever been
    consumed from C, so everything came out C++-mangled. They also pull in
    <stdatomic.h> and <stdio.h>, which under libc++ drag in templates that may
    not appear inside extern "C" -- so those are included first.
  * tee_call_t's second parameter is unsigned long on glibc and int on musl.
    The native build is glibc and the phone is musl; both forms are compiled.
  * On the callback path a UBUF_OUTPUT param arrives with addr = NULL. The
    dispatcher supplies the buffer, so a handler POINTS the param at its own
    storage rather than writing through the incoming address. Doing the latter
    is a null dereference that takes the supplicant thread with it, which is
    how the first run against real QTEE ended -- with the correct behaviour
    already spelled out in the module comment above the code that ignored it.
    That comment now says so in as many words.
2026-09-02 18:02:28 +02:00
implementations Reach QTEE: credentials, client env and the app loader, with no QCBOR 2026-09-02 18:02:28 +02:00
interfaces Reach QTEE: credentials, client env and the app loader, with no QCBOR 2026-09-02 18:02:28 +02:00
packaging Reach QTEE: credentials, client env and the app loader, with no QCBOR 2026-09-02 18:02:28 +02:00
tests Reach QTEE: credentials, client env and the app loader, with no QCBOR 2026-09-02 18:02:28 +02:00
.gitignore Initial commit: the gpfile wire format, pinned by two real containers 2026-09-02 16:02:46 +02:00
LICENSE Initial commit: the gpfile wire format, pinned by two real containers 2026-09-02 16:02:46 +02:00
lint-rules.h Initial commit: the gpfile wire format, pinned by two real containers 2026-09-02 16:02:46 +02:00
project.cpp Reach QTEE: credentials, client env and the app loader, with no QCBOR 2026-09-02 18:02:28 +02:00
README.md Add the cross-build sysroot recipe, verified on the device 2026-09-02 17:34:27 +02:00

fingerprintd

Fingerprint daemon for the Fairphone 6 (milos, SM7635) on mainline Linux.

Why a daemon

The sensor is a FocalTech FT9391 on a TrustZone-owned SPI bus. spi@a88000 is disabled in both the mainline and the stock Android device tree, and the pads are XPU-protected — touching them from the normal world is an instant SError reboot. Every pixel the sensor produces stays inside the TEE: capture, preprocessing, the classifier, enrolment and matching all run in the focal64 trustlet, which reports a matched finger id and nothing else. A libfprint-style driver cannot exist on this device.

So the normal world's job is narrower than usual, and none of it is per-request work:

  • Power the sensor. Rail on gpio29, reset on gpio74, interrupt on gpio75 — the same division of labour the downstream driver uses. One sensor reset buys exactly one trustlet init, so whatever powers the sensor must also hold the session open.
  • Be QTEE's filesystem. QTEE cannot reach storage. When the trustlet saves or loads a template it calls back into the normal world through the gpfile (0x7000) and RPMB (0x2000) listeners, and expects them served. QTEE does the crypto and the anti-rollback; this side moves opaque bytes and performs the authenticated RPMB transactions against the UFS device.
  • Speak a biometrics API. The daemon owns net.reactivated.Fprint, so pam_fprintd, the Plasma fingerprint KCM and fprintd-enroll(1) work against it unmodified.

A listener registration is held for as long as the process lives and QTEE's listener table is global to the boot, so this has to be one long-lived process rather than a tool spawned per request.

Layout

interfaces/     Fingerprintd{,-Sfs}.cppm   the core: pure C++ modules
implementations/main.cpp                   the daemon shell
tests/                                     one suite per core module

fingerprintd-core is a static library with no GLib, no libqcomtee and no system headers. Everything in it is a wire format or a state machine that was recovered by reverse-engineering, so all of it is pinned by tests that run on a dev box with no phone, no TEE and no sensor. The daemon shell holds everything that touches hardware.

Build

crafter-build              # bin/fingerprintd-<target>-<march>/fingerprintd
crafter-build test         # the unit suites

Cross-compiling for the phone:

packaging/make-sysroot.sh                        # once; no root, no qemu, no device
crafter-build -- --target=aarch64-alpine-linux-musl \
  --sysroot=~/.cache/fingerprintd/sysroot-aarch64-alpine \
  --march=armv8-a --mtune=generic
crafter-build test --target=aarch64-alpine-linux-musl --sysroot=... \
  --march=armv8-a --mtune=generic                # runs the suites under qemu-aarch64

The result links dynamically against the phone's own musl and libc++ (libc++, libc++abi, libunwind, libgcc_s, all already present on pmOS). The research harness this replaces had to be built -static, but only because it was built with the host's glibc toolchain — that constraint does not apply to a real Alpine sysroot.

Verified on the device: all five suites pass cross-built and run on the phone itself, not only under emulation.

Status

The core is complete; the daemon does not run yet. Everything was ported out of the research harness that first made the sensor work (utilities/fpta.c in the fp6 repo), one module at a time, each landing with its tests before the next started.

module what it holds
:Sfs the gpfile frame — the read/write offset split, the O_TRUNC guard, root mapping, path-traversal rejection
:Rpmb request/reply framing, the bytes-transferred out-parameter, JEDEC result codes, chunking, the one-time-programmable key guard
:Ta command surface, the 740-byte event context, capture flags, SAVE_DATA masks, enrol/auth payloads, the error table, the verdict rule
:Engine baseline calibration, touch edges, enrolment progress, and the accounting
:Store the finger name map

Every constant that was recovered by reverse-engineering carries where it came from, and the tests are written to fail if it is undone rather than to restate it. Several replay real captures: two SFS containers off the phone, and three recorded authentication runs.

Next is the I/O shell — the TEE session, the sensor rail, the RPMB device and the bus — which is the first part that cannot be validated without hardware.

The working reference enrols a finger, keeps it across a reboot, and matches it with zero false accepts; the port exists to turn that into a service rather than to rediscover it.

Runtime dependencies, not carried here

The focal64 trustlet is proprietary and is not in this repo. It is extracted from the device's own stock Android partition on first boot by the fp6-vendor-blobs mechanism, the same way the audio firmware is.