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84e5969f55
Author | SHA1 | Date |
---|---|---|
anonymix007 | 84e5969f55 | |
Luca Boccassi | 9bf6ffe166 | |
anonymix007 | 098e44d03c | |
Lennart Poettering | cc6baba720 | |
Lennart Poettering | 3ae48d071c | |
Antonio Alvarez Feijoo | 2ccacdd57c | |
anonymix007 | cf331f1c9b |
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@ -265,32 +265,11 @@
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</refsect1>
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<refsect1>
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<title>Options</title>
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<title>Unlocking</title>
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<para>The following options are understood:</para>
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<para>The following options are understood that may be used to unlock the device in preparation of the enrollment operations:</para>
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<variablelist>
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<varlistentry>
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<term><option>--password</option></term>
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<listitem><para>Enroll a regular password/passphrase. This command is mostly equivalent to
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<command>cryptsetup luksAddKey</command>, however may be combined with
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<option>--wipe-slot=</option> in one call, see below.</para>
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<xi:include href="version-info.xml" xpointer="v248"/></listitem>
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</varlistentry>
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<varlistentry>
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<term><option>--recovery-key</option></term>
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<listitem><para>Enroll a recovery key. Recovery keys are mostly identical to passphrases, but are
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computer-generated instead of being chosen by a human, and thus have a guaranteed high entropy. The
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key uses a character set that is easy to type in, and may be scanned off screen via a QR code.
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</para>
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<xi:include href="version-info.xml" xpointer="v248"/></listitem>
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</varlistentry>
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<varlistentry>
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<term><option>--unlock-key-file=<replaceable>PATH</replaceable></option></term>
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@ -328,7 +307,45 @@
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<xi:include href="version-info.xml" xpointer="v256"/></listitem>
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</varlistentry>
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</variablelist>
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</refsect1>
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<refsect1>
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<title>Simple Enrollment</title>
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<para>The following options are understood that may be used to enroll simple user input based
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unlocking:</para>
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<variablelist>
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<varlistentry>
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<term><option>--password</option></term>
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<listitem><para>Enroll a regular password/passphrase. This command is mostly equivalent to
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<command>cryptsetup luksAddKey</command>, however may be combined with
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<option>--wipe-slot=</option> in one call, see below.</para>
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<xi:include href="version-info.xml" xpointer="v248"/></listitem>
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</varlistentry>
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<varlistentry>
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<term><option>--recovery-key</option></term>
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<listitem><para>Enroll a recovery key. Recovery keys are mostly identical to passphrases, but are
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computer-generated instead of being chosen by a human, and thus have a guaranteed high entropy. The
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key uses a character set that is easy to type in, and may be scanned off screen via a QR code.
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</para>
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<xi:include href="version-info.xml" xpointer="v248"/></listitem>
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</varlistentry>
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</variablelist>
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</refsect1>
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<refsect1>
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<title>PKCS#11 Enrollment</title>
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<para>The following option is understood that may be used to enroll PKCS#11 tokens:</para>
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<variablelist>
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<varlistentry>
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<term><option>--pkcs11-token-uri=<replaceable>URI</replaceable></option></term>
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@ -361,7 +378,15 @@
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<xi:include href="version-info.xml" xpointer="v248"/></listitem>
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</varlistentry>
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</variablelist>
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</refsect1>
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<refsect1>
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<title>FIDO2 Enrollment</title>
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<para>The following options are understood that may be used to enroll PKCS#11 tokens:</para>
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<variablelist>
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<varlistentry>
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<term><option>--fido2-credential-algorithm=<replaceable>STRING</replaceable></option></term>
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<listitem><para>Specify COSE algorithm used in credential generation. The default value is
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@ -461,7 +486,15 @@
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<xi:include href="version-info.xml" xpointer="v249"/></listitem>
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</varlistentry>
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</variablelist>
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</refsect1>
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<refsect1>
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<title>TPM2 Enrollment</title>
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<para>The following options are understood that may be used to enroll TPM2 devices:</para>
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<variablelist>
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<varlistentry>
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<term><option>--tpm2-device=<replaceable>PATH</replaceable></option></term>
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@ -636,7 +669,15 @@
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<xi:include href="version-info.xml" xpointer="v255"/></listitem>
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</varlistentry>
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</variablelist>
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</refsect1>
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<refsect1>
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<title>Other Options</title>
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<para>The following additional options are understood:</para>
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<variablelist>
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<varlistentry>
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<term><option>--wipe-slot=<replaceable>SLOT<optional>,SLOT...</optional></replaceable></option></term>
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@ -71,6 +71,8 @@
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<varname>Cmdline=</varname>/<option>--cmdline=</option>,
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<varname>OSRelease=</varname>/<option>--os-release=</option>,
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<varname>DeviceTree=</varname>/<option>--devicetree=</option>,
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<varname>DeviceTreeAuto=</varname>/<option>--devicetree-auto=</option>,
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<varname>HWIDs=</varname>/<option>--hwids=</option>,
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<varname>Splash=</varname>/<option>--splash=</option>,
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<varname>PCRPKey=</varname>/<option>--pcrpkey=</option>,
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<varname>Uname=</varname>/<option>--uname=</option>,
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@ -373,6 +375,35 @@
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<xi:include href="version-info.xml" xpointer="v253"/></listitem>
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</varlistentry>
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<varlistentry>
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<term><varname>DeviceTreeAuto=<replaceable>PATH</replaceable>...</varname></term>
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<term><option>--devicetree-auto=<replaceable>PATH</replaceable></option></term>
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<listitem><para>Zero or more automatically selectable DeviceTree files. In the configuration file, items are separated by
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whitespace. Each DeviceTree will be in a separate <literal>.dtbauto</literal> section.</para>
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<xi:include href="version-info.xml" xpointer="v257"/></listitem>
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</varlistentry>
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<varlistentry>
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<term><varname>HWIDs=<replaceable>PATH</replaceable></varname></term>
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<term><option>--hwids=<replaceable>PATH</replaceable></option></term>
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<listitem><para>The hardware ID device table (the <literal>.hwids</literal> section). The argument is a
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path to a directory with JSON HWID device description files. Each file needs to contain a single JSON object with a <literal>name</literal>, <literal>compatible</literal> and <literal>hwids</literal> keys. The <literal>name</literal> and <literal>compatible</literal> keys must have string values and the <literal>hwids</literal> key must have a list of strings as value, where the strings must be valid UUIDs that represent CHIDs/HWIDs.
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Example:
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<programlisting><xi:include href="ukify_hwid.json.example" parse="text" /></programlisting>
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Here <literal>Example Laptop 16 Gen 7</literal> is the device <literal>name</literal> (as defined by the manufacturer),
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<literal>example,laptop-16-g7</literal> is the <literal>compatible</literal> (as defined by the kernel) and <literal>hwids</literal>
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is an array of CHIDs/HWIDs (extracted i.e. from <command>fwupdtool hwids</command> output).
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If not specified, the section will not be present. It is recommended to specify this parameter if automatically
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selectable DeviceTrees are to be used.
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</para>
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<xi:include href="version-info.xml" xpointer="v257"/></listitem>
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</varlistentry>
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<varlistentry>
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<term><varname>Uname=<replaceable>VERSION</replaceable></varname></term>
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<term><option>--uname=<replaceable>VERSION</replaceable></option></term>
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@ -0,0 +1,8 @@
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{
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"name": "Example Laptop 16 Gen 7",
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"compatible": "example,laptop-16-g7",
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"hwids": [
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"5dc05bf4-01f6-4089-b464-a08c47ea9295",
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"3e3f8f3c-2003-46f2-811c-85554f7d5952"
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]
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}
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@ -38,19 +38,12 @@ __get_tpm2_devices() {
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done
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}
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__get_block_devices() {
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local i
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for i in /dev/*; do
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[ -b "$i" ] && printf '%s\n' "$i"
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done
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}
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_systemd_cryptenroll() {
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local comps
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local cur=${COMP_WORDS[COMP_CWORD]} prev=${COMP_WORDS[COMP_CWORD-1]} words cword
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local -A OPTS=(
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[STANDALONE]='-h --help --version
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--password --recovery-key'
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--password --recovery-key --list-devices'
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[ARG]='--unlock-key-file
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--unlock-fido2-device
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--unlock-tpm2-device
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@ -116,7 +109,7 @@ _systemd_cryptenroll() {
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return 0
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fi
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comps=$(__get_block_devices)
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comps=$(systemd-cryptenroll --list-devices)
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COMPREPLY=( $(compgen -W '$comps' -- "$cur") )
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return 0
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}
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@ -193,7 +193,7 @@ static int help(void) {
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"\n%3$sSimple Enrollment:%4$s\n"
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" --password Enroll a user-supplied password\n"
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" --recovery-key Enroll a recovery key\n"
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"\n%3$sPKCS11 Enrollment:%4$s\n"
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"\n%3$sPKCS#11 Enrollment:%4$s\n"
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" --pkcs11-token-uri=URI\n"
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" Specify PKCS#11 security token URI\n"
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"\n%3$sFIDO2 Enrollment:%4$s\n"
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@ -42,6 +42,7 @@ import subprocess
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import sys
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import tempfile
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import textwrap
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import uuid
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from collections.abc import Iterable, Iterator, Sequence
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from hashlib import sha256
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from pathlib import Path
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@ -1013,14 +1014,9 @@ def merge_sbat(input_pe: list[Path], input_text: list[str]) -> str:
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)
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# Keep in sync with EFI_GUID (src/boot/efi.h)
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# uint32_t Data1, uint16_t Data2, uint16_t Data3, uint8_t Data4[8]
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EFI_GUID = tuple[int, int, int, tuple[int, int, int, int, int, int, int, int]]
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EFI_GUID_STRUCT_SIZE = 4 + 2 + 2 + 1 * 8
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# Keep in sync with Device (DEVICE_TYPE_DEVICETREE) from src/boot/chid.h
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# uint32_t descriptor, EFI_GUID chid, uint32_t name_offset, uint32_t compatible_offset
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DEVICE_STRUCT_SIZE = 4 + EFI_GUID_STRUCT_SIZE + 4 + 4
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DEVICE_STRUCT_SIZE = 4 + 16 + 4 + 4
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NULL_DEVICE = b'\0' * DEVICE_STRUCT_SIZE
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DEVICE_TYPE_DEVICETREE = 1
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@ -1029,29 +1025,21 @@ def device_make_descriptor(device_type: int, size: int) -> int:
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return (size) | (device_type << 28)
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def pack_device(offsets: dict[str, int], name: str, compatible: str, chids: list[EFI_GUID]) -> bytes:
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DEVICETREE_DESCRIPTOR = device_make_descriptor(DEVICE_TYPE_DEVICETREE, DEVICE_STRUCT_SIZE)
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def pack_device(offsets: dict[str, int], name: str, compatible: str, chids: set[uuid.UUID]) -> bytes:
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data = b''
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for data1, data2, data3, data4 in chids:
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data += struct.pack(
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'<IIHH8BII',
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device_make_descriptor(DEVICE_TYPE_DEVICETREE, DEVICE_STRUCT_SIZE),
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data1,
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data2,
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data3,
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*data4,
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offsets[name],
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offsets[compatible],
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)
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for chid in sorted(chids):
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data += struct.pack('<I', DEVICETREE_DESCRIPTOR)
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data += chid.bytes_le
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data += struct.pack('<II', offsets[name], offsets[compatible])
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assert len(data) == DEVICE_STRUCT_SIZE * len(chids)
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return data
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def hex_pairs_list(string: str) -> list[int]:
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return [int(string[i : i + 2], 16) for i in range(0, len(string), 2)]
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def pack_strings(strings: set[str], base: int) -> tuple[bytes, dict[str, int]]:
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blob = b''
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offsets = {}
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@ -1064,56 +1052,22 @@ def pack_strings(strings: set[str], base: int) -> tuple[bytes, dict[str, int]]:
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def parse_hwid_dir(path: Path) -> bytes:
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hwid_files = path.rglob('*.txt')
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hwid_files = path.rglob('*.json')
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strings: set[str] = set()
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devices: collections.defaultdict[tuple[str, str], list[EFI_GUID]] = collections.defaultdict(list)
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uuid_regexp = re.compile(
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r'\{[0-9a-f]{8}-[0-9a-f]{4}-[0-5][0-9a-f]{3}-[089ab][0-9a-f]{3}-[0-9a-f]{12}\}', re.I
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)
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devices: collections.defaultdict[tuple[str, str], set[uuid.UUID]] = collections.defaultdict(set)
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for hwid_file in hwid_files:
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content = hwid_file.open().readlines()
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data = json.loads(hwid_file.read_text(encoding='UTF-8'))
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data: dict[str, str] = {
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'Manufacturer': '',
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'Family': '',
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'Compatible': '',
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}
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uuids: list[EFI_GUID] = []
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for line in content:
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for k in data:
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if line.startswith(k):
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data[k] = line.split(':')[1].strip()
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break
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else:
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uuid = uuid_regexp.match(line)
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if uuid is not None:
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d1, d2, d3, d4, d5 = uuid.group(0)[1:-1].split('-')
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data1 = int(d1, 16)
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data2 = int(d2, 16)
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data3 = int(d3, 16)
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data4 = cast(
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tuple[int, int, int, int, int, int, int, int],
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tuple(hex_pairs_list(d4) + hex_pairs_list(d5)),
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)
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uuids.append((data1, data2, data3, data4))
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for k, v in data.items():
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if not v:
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for k in ['name', 'compatible', 'hwids']:
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if k not in data:
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raise ValueError(f'hwid description file "{hwid_file}" does not contain "{k}"')
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name = data['Manufacturer'] + ' ' + data['Family']
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compatible = data['Compatible']
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strings |= {data['name'], data['compatible']}
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strings |= set([name, compatible])
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# (compatible, name) pair uniquely identifies the device
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devices[(compatible, name)] += uuids
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# (name, compatible) pair uniquely identifies the device
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devices[(data['name'], data['compatible'])] |= {uuid.UUID(u) for u in data['hwids']}
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total_device_structs = 1
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for dev, uuids in devices.items():
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@ -1122,7 +1076,7 @@ def parse_hwid_dir(path: Path) -> bytes:
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strings_blob, offsets = pack_strings(strings, total_device_structs * DEVICE_STRUCT_SIZE)
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devices_blob = b''
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for (compatible, name), uuids in devices.items():
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for (name, compatible), uuids in devices.items():
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devices_blob += pack_device(offsets, name, compatible, uuids)
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devices_blob += NULL_DEVICE
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|
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Loading…
Reference in New Issue