Expand documentation on selftest.sh behavior, module matching, and kernel compatibility. Clarify the auto-selection process based on `vermagic` and provide examples to guide users through fallback handling and manual overrides.
iec_listener kernel module
Commodore IEC listener (printer, default address 4) for the Raspberry Pi
Zero 2 W. The timing-critical IEC handshake runs in this kernel module; received
bytes and bus events are pushed to userspace through /dev/iec0.
Build/deploy, pinning, GPIO-descriptor and timing details live in
../docs/kernel-notes.md. This README documents the
self-test, which is the first thing to run after loading the module on real
hardware.
Self-test
The module exposes a hardware self-test via the IEC_IOC_SELFTEST ioctl on
/dev/iec0. It drives the DATA line (the only line the Pi asserts) low and
reads it back, releases it, then samples ATN / CLK / RESET, returning a
bitmask of line states. Run it with the C64 disconnected to check the wiring
before connecting the real bus (see PLAN.md §10).
Running it
selftest.sh is non-persistent (nothing is installed into /lib/modules, no
autoload): it detects the running kernel, picks the matching module, loads it,
runs the self-test, and always unloads it again.
A released package ships several kernel builds side by side:
comodore-iec-emu/
├── selftest.sh
└── modules/
├── iec_listener_1-6.12.93-1+rpt1.ko # built for 6.12.x (bookworm)
└── iec_listener_1-6.18.34-1+rpt1.ko # built for 6.18.x (trixie)
You don't pick the file yourself: the script reads uname -r, then scans
modules/ (and a few fallback locations) and selects the .ko whose vermagic
matches the running kernel. Matching is by vermagic rather than filename because
the packaged name carries a Debian epoch/revision (1:6.12.93-1+rpt1) that
uname -r (6.12.93+rpt-rpi-v8) does not.
sudo ./selftest.sh # auto-selects the matching module, address 4
sudo ./selftest.sh --address 5 # same, address 5
sudo ./selftest.sh ~/iec_listener.ko --address 5 # force a specific module file
If no module matches the running kernel, the script lists the modules it found (with the kernel each was built for) and exits — rebuild for the current kernel, or pass a path explicitly.
It exits non-zero unless the result is a full pass (0x1F), so it is usable in
scripts/CI.
Result bitmask
The ioctl returns a u32; a full pass is 0x1F (all five bits set).
| Bit | Value | Meaning | Source |
|---|---|---|---|
DATA_ASSERT_OK |
0x01 |
DATA read low while the module drives it low | Pi drive + sense path |
DATA_FLOAT_OK |
0x02 |
DATA read high after release (Hi-Z) | external pull-up on DATA |
ATN_RELEASED |
0x04 |
ATN high (idle) | line state |
CLK_RELEASED |
0x08 |
CLK high (idle) | line state |
RESET_RELEASED |
0x10 |
RESET high (idle) | line state |
Constants are defined in iec_listener.h; the ioctl number is
_IOR('I', 3, __u32) = 0x80044903.
Interpreting failures
DATA_ASSERT_OKmissing → driving DATA low doesn't read back low: level shifter wired backwards/inverting, wrong pin, or the sense path is broken. This is the only bit that is fully internal to the Pi — if it fails, suspect the module/build or the DATA wiring, not pull-ups.DATA_FLOAT_OKmissing → DATA stays low after release: missing/weak pull-up on DATA, or the pin didn't return to input.CLK_RELEASEDmissing → CLK reads low at idle: no pull-up on CLK, short, or a swapped signal.ATN_RELEASED/RESET_RELEASEDmissing → that line reads low at idle: short, missing pull-up, or swapped wiring.
⚠️ Bare-board caveat
With nothing connected, the expected result is 0x15, not a fault:
DATA_ASSERT_OK(0x01) passes — it's internal to the Pi.ATN_RELEASED(0x04) andRESET_RELEASED(0x10) pass only because GPIO2/GPIO3 have fixed ~1.8 kΩ pull-ups built into the BCM2710 SoC (they are the I²C0 pins; the pull-ups can't be disabled). They read high even with nothing wired, so on a bare board these two bits prove nothing about your wiring.DATA_FLOAT_OK(0x02) andCLK_RELEASED(0x08) read low because GPIO17/18 have no such built-in pull-up and nothing is attached.
So on a bare board the only meaningful signal is DATA_ASSERT_OK. A full 0x1F
is only reachable once the level shifter (with its CLK/DATA pull-ups) is wired
and powered. To make ATN/RESET meaningful, briefly ground each at the connector
and confirm the corresponding bit drops.