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Internal storage and machine settings
Documentation index · Boot images · Recovery
Internal storage contains boot files, an independent recovery system and persistent machine settings. The operating system itself lives on a removable SYSTEM cartridge. This guide covers preparing the internal disk and updating its settings from recovery.
For the complete first-install sequence, including cabling, EEPROM and a first bay map without DATA, use the real-hardware setup guide.
Build the complete disk image
Build the component images first, in this order:
make kernel
make initramfs
make boot-volume BOOT_MODE=production
make recovery
make internal-image
The result is out/fds-internal.img, a complete GPT disk image. Its versioned
build directory contains layout.json, source payload checksums, and readback
verification. This differs from out/fds-boot.img (a raw FAT partition) and
out/fds-recovery.img (a raw EROFS partition).
| Partition | Format | Default allocation | Purpose |
|---|---|---|---|
| 1: FDS_BOOT | FAT32, EFI system type | 512 MiB | Pi firmware, kernel, DTBs, configuration and initramfs |
| 2: FDS_RECOVERY | EROFS | 1 GiB | Complete independent maintenance system |
| 3: FDS_INTERNAL | ext4 | 256 MiB | Machine settings and explicitly saved diagnostics |
The builder pads the recovery partition without changing its EROFS contents,
aligns partitions to 1 MiB, writes both GPT copies, verifies each payload, and
checks the table independently with sfdisk. Internal ext4 is fully initialized
before deployment. It contains root-owned config/ and private diagnostics/.
Unused capacity beyond this initial layout is not automatically expanded.
For a 2 GiB recovery allocation or larger settings partition:
./image/build-internal --recovery-mib 2048 --internal-mib 512
Install the internal disk
Use an NVMe enclosure or another Linux machine that can access the target drive
while the Pi is off. First verify a downloaded release using a separately trusted
public key as described in Release signatures. Its complete disk
is named fds-internal-0.1.0.img; a local build uses out/fds-internal.img.
Use the complete disk image, not the separate BOOT or RECOVERY payload.
List disks before and after connecting the intended drive:
lsblk -d -o NAME,PATH,MODEL,SERIAL,SIZE,TRAN,LOG-SEC
ls -l /dev/disk/by-id/
Match the physical model, serial and capacity. Choose a persistent whole-disk
/dev/disk/by-id/ path without a -partN suffix; never guess a /dev/sdX name.
Unmount every target partition and disable any swap on it. Do not select the
workstation's system disk. The current images require 512-byte logical sectors
and a disk at least as large as the image; 4 KiB logical-sector media is not
supported by this layout.
Open Bash (bash), replace both paths below, then run the block. It checks the
selected disk again, requires a typed confirmation, writes and reads back the
complete image, and relocates the backup GPT when the disk is larger than the
image. It does not expand any partition or filesystem.
(
set -euo pipefail
fds_image="$PWD/out/fds-internal.img"
fds_disk=/dev/disk/by-id/REPLACE_WITH_THE_TARGET_DISK
[[ -f "$fds_image" && -s "$fds_image" && -b "$fds_disk" ]]
[[ $(lsblk -dnro TYPE "$fds_disk") == disk ]]
[[ $(sudo blockdev --getss "$fds_disk") == 512 ]]
fds_bytes=$(stat -Lc %s "$fds_image")
(( $(sudo blockdev --getsize64 "$fds_disk") >= fds_bytes ))
lsblk -p -o NAME,TYPE,MODEL,SERIAL,SIZE,MOUNTPOINTS "$fds_disk"
if lsblk -nrpo MOUNTPOINTS "$fds_disk" | grep '[^[:space:]]' >/dev/null; then
echo 'Target has mounted filesystems or swap; stop and release them first.' >&2
exit 1
fi
if lsblk -nrpo TYPE "$fds_disk" | grep -Ev '^(disk|part)$' >/dev/null; then
echo 'Target has device-mapper or other active descendants; stop.' >&2
exit 1
fi
read -r -p "Type ERASE $fds_disk to erase this disk: " fds_confirmation
[[ "$fds_confirmation" == "ERASE $fds_disk" ]]
sudo dd if="$fds_image" of="$fds_disk" bs=4M conv=fsync status=progress
sudo blockdev --flushbufs "$fds_disk"
sudo cmp -n "$fds_bytes" "$fds_image" "$fds_disk"
sudo sfdisk --lock=yes --relocate gpt-bak-std "$fds_disk"
sudo sfdisk --verify "$fds_disk"
sudo blockdev --flushbufs "$fds_disk"
)
Every command must succeed. The byte comparison occurs before relocating GPT,
because relocation intentionally changes disk-table headers. GNU dd's fsync
flushes output before it returns; sfdisk's gpt-bak-std moves the backup header
to the end of the target. See the GNU dd manual
and sfdisk manual.
These commands use the already documented coreutils, diffutils and util-linux
host tools; they do not add a target daemon.
Confirm that the disk shows FDS_BOOT, FDS_RECOVERY and FDS_INTERNAL in that
order using lsblk -o NAME,PARTLABEL,FSTYPE,MOUNTPOINTS. Unmount anything the
desktop automatically mounted, then safely disconnect the enclosure and install
the NVMe in the powered-off Pi. Follow EEPROM preparation for the
separately reviewed NVMe boot settings.
Prepare the first SYSTEM cartridge on the workstation using the same guarded
write block, with its two path assignments changed to the chosen SYSTEM image
and a different, empty USB cartridge disk. For a local build select
out/fds-system-cli.img or out/fds-system-development.img; release files are
fds-system-cli-0.1.0.img and fds-system-development-0.1.0.img. They are
alternative complete GPT images, each containing one FDS_SYSTEM partition.
Readback and backup-GPT relocation apply to this disk too. Check its partition
label, safely disconnect it, and insert exactly one SYSTEM cartridge in the Pi
before normal boot. Subsequent cartridge creation and updates can use FDS's
confirmed media workflow after bay calibration.
Configure the machine before building
Copy config/machine/ to your own directory. It contains three files:
machine.toml:format = 1and a short human-readablename.bays.toml: the measured controller/port map described in Cartridges and bay calibration.hardware-catalog.toml: optional USB identification names using the same schema as the base catalog. Entries are data and cannot run commands.
The supplied bay map is empty. Record actual controller/port identities for each physical slot before installing settings. USB 2 and USB 3 companion ports need explicit aliases for the same bay.
cp -a config/machine out/my-machine
# Edit the three files in out/my-machine using your editor.
make internal-image MACHINE_CONFIG=out/my-machine
The builder compiles a native host copy of fds and uses the same strict parser
as the target system. You can also validate or pack settings yourself:
cargo build --locked --offline --release --target x86_64-unknown-linux-gnu -p fds-cli
./target/x86_64-unknown-linux-gnu/release/fds machine validate out/my-machine
./target/x86_64-unknown-linux-gnu/release/fds machine pack out/my-machine out/my-machine.json
The three source files become one atomic config/machine.json document on
FDS_INTERNAL. Names, lengths, bay aliases, catalog fields and unknown keys are
validated before use. Do not put passwords or private keys in this configuration:
its active snapshot is readable by the local FDS user.
What happens at boot
The machine-config native s6 oneshot precedes cartridged. It does not
precede the console or Dasung controller. It accepts exactly one non-removable
NVMe disk with the three named partitions in the order above. USB lookalikes are
ignored; multiple eligible NVMe disks are rejected instead of choosing by name.
The settings partition must be clean ext4 with the expected label. Loading uses
ro,noload,nosuid,nodev,noexec in a private mount namespace, validates the entire
settings bundle, copies it into /run/fds/machine/, and unmounts. No filesystem
repair, journal replay, cache compilation or persistent write occurs during
normal boot. The cartridge service uses that snapshot throughout this boot,
including after a service restart.
If internal storage is missing, unclean, invalid or ambiguous, the service records
an explanation and uses the immutable image's /etc/fds/ defaults. The console
still opens. Check the actual source before treating bays as calibrated:
fds machine status
fds --json machine status
fds machine export /tmp/current-machine
Export creates a new directory with the three editable source files. It never
overwrites an existing directory. The status source is internal_nvme or
image_defaults. A temporarily unavailable NVMe is not adopted later in the same
boot; resolve the issue and reboot to load its settings. This prevents changing
bay identities underneath active cartridge operations.
Update settings from recovery
Bring the edited source directory on a DATA cartridge. At the local root
RECOVERY# console, identify its bay with fds bays; healthy DATA is mounted
read-only under /run/fds/media/NN. For example, if it is in BAY 02:
fds machine validate /run/fds/media/02/my-machine
fds machine install /run/fds/media/02/my-machine
fds reboot
Installation is restricted to root in the recovery image. It writes the complete
validated bundle atomically, saves the old bytes as config/previous.json,
flushes and unmounts the internal filesystem, and reports success only after
those steps. A reboot activates the new settings. The currently running bay map
is unchanged, so active media does not move to a different bay mid-operation.
Keep a copy of your previous source directory on DATA or the build host to
reinstall it if the new calibration is wrong.
An invalid existing JSON document can be replaced this way. Wrong ownership,
symlinks, an unclean filesystem or a damaged directory require offline filesystem
maintenance first. Recovery does not automatically repair internal NVMe; its
fds recovery repair command is deliberately limited to DATA cartridges.
Save and retrieve diagnostics
Logs and boot records stay in RAM by default. Root may explicitly save a file of up to 16 MiB. Saved names cannot contain paths, and existing names are refused. These operations mount internal ext4 only for the operation and then unmount it. For example, from recovery:
fds --json boot-profile >/tmp/boot.json
fds machine store boot-first.json /tmp/boot.json
fds --json bays >/tmp/cartridge-inventory.json
fds machine store cartridges-first.json /tmp/cartridge-inventory.json
bash /usr/share/fds/capture-hardware /tmp/hardware-capture
tar -C /tmp -czf /tmp/hardware-capture.tar.gz hardware-capture
fds machine store hardware-first.tar.gz /tmp/hardware-capture.tar.gz
fds machine fetch boot-first.json /tmp/retrieved-boot.json
Use distinct names for subsequent sessions. A failed flush or unmount is an
error, not a successful save. These are machine diagnostics; do not use this
facility as ordinary user storage. The saved cartridge inventory is a persistent
diagnostic snapshot, including metadata already inspected during this boot.
Retrieve it with fds machine fetch cartridges-first.json /tmp/saved-inventory.json.
The daemon's live metadata cache remains volatile and is rebuilt from currently
attached devices; saved snapshots are never used to authorize media actions.