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This adds a ability to add alternative sections of a specific type in
the same UKI. The primary usecase is for supporting multiple different
kernel cmdlines that are baked into a UKI.
The mechanism is relatively simple (I think), in order to make it robust.
1. A new PE section ".profile" is introduced, that is a lot like
".osrel", but contains information about a specific "profile" to
boot. The ".profile" section can appear multiple times in the same
PE, and acts as delimiter indicating where a new profile starts.
Everything before the first ".profile" is called the "base profile",
and is shared among all other profiles, which can then override or
add addition PE sections on top.
2. An UKI's command line can be prefixed with an argument such as "@0" or
"@1" or "@2" which indicates the "profile" to boot. If no argument is
specified the default is profile 0. Also, a UKI that lacks any
.profile section is treated like one with only a profile 0, but with
no data in that profile section.
3. The stub will first search for its usual set of PE sections
(hereafter called "base sections"), and stop at the first .profile PE
section if any. It will then find the .profile matching the selected
profile by its index, and any sections found as part of that profile
on top of the base sections.
And that's already it.
Example: let's say a distro wants to provide a single UKI that can be
invoked in one of three ways:
1. The regular profile that just boots the system
2. A profile that boots into storagetm
3. A profile that initiates factory reset and reboots.
For this it would define a classic UKI with sections .linux, .initrd,
.cmdline, and whatever else it needs. The .cmdline section would contain
the kernel command line for the regular profile.
It would then insert one ".profile" section, with a contents like the
following:
ID=regular
This is the profile for profile 0. It would immediately afterwards add
another ".profile" section:
ID=storagetm
TITLE=Boot into Storage Target Mode
This would then followed with a .cmdline section that is just like the
basic one, but with "rd.systemd.unit=storage-target-mode.target"
suffixed. Then, another .profile section would be added:
ID=factory-reset
TITLE=Factory Reset
Which is then followed by one last PE section: a .cmdline one with
"systemd.unit=factory-reset.target" suffixed to te regular command line.
i.e. expressed in tabular form the above would be:
The base profile:
.linux
.initrd
.cmdline
.osrel
The regular boot profile:
.profile
The storagetm profile:
.profile
.cmdline
The factory reset profile:
.profile
.cmdline
You might wonder why the first .cmdline in the list above is placed in
the base profile rather than in the regular boot profile, given that it
is overriden in all other profiles anyway. And you are right. The only
reason I'd place it in the base profile is that it makes the UKI more
nicely extensible if later profiles are added that want to replace
something else instead of the .cmdline, for example .ucode or so. But it
really doesn't matter much.
While the primary usecase is of course multiple alternative command
lines, the concept is more powerful than that: for various usecases it
might be valuable to offer multiple choices of devicetree, ucode or
initrds.
The .profile contents is also passed to the invoked kernel as a file in
/.extra/profile (via a synthetic initrd). Thus, this functionality can
even be useful without overriding any section at all, simply by means of
reading that file from userspace.
Design choices:
1. On purposes I used a special command line marker (i.e. the "@" thing,
which maybe we should call the "profile selector"), that doesn't look
like a regular kernel command line option. This is because this is
really not a regular kernel command line option – we process it in
the stub, then remove it as prefix, and measure the unprefixed
command line only after that. The kernel will not see the profile
selector either. I think these special semantics are best
communicated by making it look substantially different from regular
options.
2. This moves around measurements a bit. Previously we measured our UKI
sections right after finding them. Now we first parse the profile
number from the command line, then search for the profile's sections,
and only then measure the sections we actually end up using for this
profile. I think that this logic makes most sense: measure what we
are using, not what we are overriding. Or in other words, if you boot
profile @3, then we'll measure .cmdline (assuming it exists) of
profile 3, and *not* measure .cmdline of the base profile. Also note
that if the user passes in a custom kernel command line via command
line arguments we'll strip off the profile selector (i.e. the initial
"@X" thing) before we pass it on.
3. The .profile stuff is supposed to be generic and extensible. For
example we could use it in future to mark "dangerous" options such as
factory reset, so that boot menus can ask for confirmation before
booting into it. Or we could introduce match expressions against
SMBIOS or other system identifiers, to filter out profiles on
specific hw.
Note btw, that PE allows defining multiple sections that point to the
same offsets in the file. This allows sharing payload under different
names. For example, if profile @4 and @7 shall carry the same .ucode
section, they can define .ucode in each profile and then make it point to
the same offset.
Also note that that one can even "mask" a base section in a profile, by
inserting an empty section. For example, if the base .dtb section should
not be used for profile @4, then add a section .dtb right after the
fourth .profile with a zero size to the UKI, and you will get your wish
fulfilled.
This code only contains changes to sd-stub. A follow-up commit will
teach sd-boot to also find this profile PE sections to synthesize
additional menu entries from a single UKI.
A later commit will add support for gnerating this via ukify.
Fixes: #24539
This adds helpers for:
1. Returning the PE section table of open PE files or memory
2. Scanning PE section tables for the sections that belong to a specific
profile
In mkosi, I want to add a sysupdate verb to wrap systemd-sysupdate.
The definitions will be picked up from mkosi.sysupdate/ and passed
to systemd-sysupdate. I want users to be able to write transfer
definitions that are independent of the output directory used by
mkosi. To make this possible, it should be possible to specify the
directory that transfer sources should be looked up in on the sysupdate
command line. Let's allow this via a new --transfer-source= option.
Additionally, transfer sources that want to take advantage of this
feature should specify PathRelativeTo=directory to indicate the configured
Path= is interpreted relative to the tranfer source directory specified
on the CLI.
This allows for the following transfer definition to be put in
mkosi.sysupdate:
"""
[Transfer]
ProtectVersion=%A
[Source]
Type=regular-file
Path=/
PathRelativeTo=directory
MatchPattern=ParticleOS_@v.usr-%a.@u.raw
[Target]
Type=partition
Path=auto
MatchPattern=ParticleOS_@v
MatchPartitionType=usr
PartitionFlags=0
ReadOnly=1
"""
Linux kernel v4.18 (2018-08-12) added user-namespace support to FUSE, and
bumped the FUSE version to 7.27 (see: da315f6e0398 (Merge tag
'fuse-update-4.18' of
git://git.kernel.org/pub/scm/linux/kernel/git/mszeredi/fuse, Linus Torvalds,
2018-06-07). This means that on such kernels it is safe to enable FUSE in
nspawn containers.
In outer_child(), before calling copy_devnodes(), check the FUSE version to
decide whether enable (>=7.27) or disable (<7.27) FUSE in the container. We
look at the FUSE version instead of the kernel version in order to enable FUSE
support on older-versioned kernels that may have the mentioned patchset
backported ([as requested by @poettering][1]). However, I am not sure that
this is safe; user-namespace support is not a documented part of the FUSE
protocol, which is what FUSE_KERNEL_VERSION/FUSE_KERNEL_MINOR_VERSION are meant
to capture. While the same patchset
- added FUSE_ABORT_ERROR (which is all that the 7.27 version bump
is documented as including),
- bumped FUSE_KERNEL_MINOR_VERSION from 26 to 27, and
- added user-namespace support
these 3 things are not inseparable; it is conceivable to me that a backport
could include the first 2 of those things and exclude the 3rd; perhaps it would
be safer to check the kernel version.
Do note that our get_fuse_version() function uses the fsopen() family of
syscalls, which were not added until Linux kernel v5.2 (2019-07-07); so if
nothing has been backported, then the minimum kernel version for FUSE-in-nspawn
is actually v5.2, not v4.18.
Pass whether or not to enable FUSE to copy_devnodes(); have copy_devnodes()
copy in /dev/fuse if enabled.
Pass whether or not to enable FUSE back over fd_outer_socket to run_container()
so that it can pass that to append_machine_properties() (via either
register_machine() or allocate_scope()); have append_machine_properties()
append "DeviceAllow=/dev/fuse rw" if enabled.
For testing, simply check that /dev/fuse can be opened for reading and writing,
but that actually reading from it fails with EPERM. The test assumes that if
FUSE is supported (/dev/fuse exists), then the testsuite is running on a kernel
with FUSE >= 7.27; I am unsure how to go about writing a test that validates
that the version check disables FUSE on old kernels.
[1]: https://github.com/systemd/systemd/issues/17607#issuecomment-745418835Closes#17607
Follow-up for 99aad9a2b9
The commit changed lookup_paths_init_or_warn() call to
be fatal to manager_reload(), but invoke_main_loop()
assumes that manager_reload() would only return
recoverable error, and put the manager back to
MANAGER_OK in that case, which is spurious.
Looking at it more, it appears to be utterly unnecessary
to reinitialize LookupPaths here, given that nothing during
the reload process would change the search dirs. Let's drop
the path altogether hence.