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Introduce a mechanism for managing global kernel state whose lifecycle is tied to the preservation of one or more files. This is necessary for subsystems where multiple preserved file descriptors depend on a single, shared underlying resource. An example is HugeTLB, where multiple file descriptors such as memfd and guest_memfd may rely on the state of a single HugeTLB subsystem. Preserving this state for each individual file would be redundant and incorrect. The state should be preserved only once when the first file is preserved, and restored/finished only once the last file is handled. This patch introduces File-Lifecycle-Bound (FLB) objects to solve this problem. An FLB is a global, reference-counted object with a defined set of operations: - A file handler (struct liveupdate_file_handler) declares a dependency on one or more FLBs via a new registration function, liveupdate_register_flb(). - When the first file depending on an FLB is preserved, the FLB's .preserve() callback is invoked to save the shared global state. The reference count is then incremented for each subsequent file. - Conversely, when the last file is unpreserved (before reboot) or finished (after reboot), the FLB's .unpreserve() or .finish() callback is invoked to clean up the global resource. The implementation includes: - A new set of ABI definitions (luo_flb_ser, luo_flb_head_ser) and a corresponding FDT node (luo-flb) to serialize the state of all active FLBs and pass them via Kexec Handover. - Core logic in luo_flb.c to manage FLB registration, reference counting, and the invocation of lifecycle callbacks. - An API (liveupdate_flb_get/_incoming/_outgoing) for other kernel subsystems to safely access the live object managed by an FLB, both before and after the live update. This framework provides the necessary infrastructure for more complex subsystems like IOMMU, VFIO, and KVM to integrate with the Live Update Orchestrator. Link: https://lkml.kernel.org/r/20251218155752.3045808-5-pasha.tatashin@soleen.com Signed-off-by: Pasha Tatashin <pasha.tatashin@soleen.com> Cc: Alexander Graf <graf@amazon.com> Cc: David Gow <davidgow@google.com> Cc: David Matlack <dmatlack@google.com> Cc: David Rientjes <rientjes@google.com> Cc: Jonathan Corbet <corbet@lwn.net> Cc: Kees Cook <kees@kernel.org> Cc: Mike Rapoport <rppt@kernel.org> Cc: Petr Mladek <pmladek@suse.com> Cc: Pratyush Yadav <pratyush@kernel.org> Cc: Samiullah Khawaja <skhawaja@google.com> Cc: Tamir Duberstein <tamird@gmail.com> Signed-off-by: Andrew Morton <akpm@linux-foundation.org>
452 lines
11 KiB
C
452 lines
11 KiB
C
// SPDX-License-Identifier: GPL-2.0
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/*
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* Copyright (c) 2025, Google LLC.
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* Pasha Tatashin <pasha.tatashin@soleen.com>
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*/
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/**
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* DOC: Live Update Orchestrator (LUO)
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*
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* Live Update is a specialized, kexec-based reboot process that allows a
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* running kernel to be updated from one version to another while preserving
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* the state of selected resources and keeping designated hardware devices
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* operational. For these devices, DMA activity may continue throughout the
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* kernel transition.
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*
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* While the primary use case driving this work is supporting live updates of
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* the Linux kernel when it is used as a hypervisor in cloud environments, the
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* LUO framework itself is designed to be workload-agnostic. Live Update
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* facilitates a full kernel version upgrade for any type of system.
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*
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* For example, a non-hypervisor system running an in-memory cache like
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* memcached with many gigabytes of data can use LUO. The userspace service
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* can place its cache into a memfd, have its state preserved by LUO, and
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* restore it immediately after the kernel kexec.
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*
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* Whether the system is running virtual machines, containers, a
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* high-performance database, or networking services, LUO's primary goal is to
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* enable a full kernel update by preserving critical userspace state and
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* keeping essential devices operational.
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*
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* The core of LUO is a mechanism that tracks the progress of a live update,
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* along with a callback API that allows other kernel subsystems to participate
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* in the process. Example subsystems that can hook into LUO include: kvm,
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* iommu, interrupts, vfio, participating filesystems, and memory management.
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*
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* LUO uses Kexec Handover to transfer memory state from the current kernel to
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* the next kernel. For more details see Documentation/core-api/kho/index.rst.
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*/
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#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
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#include <linux/atomic.h>
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#include <linux/errno.h>
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#include <linux/file.h>
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#include <linux/fs.h>
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#include <linux/init.h>
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#include <linux/io.h>
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#include <linux/kernel.h>
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#include <linux/kexec_handover.h>
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#include <linux/kho/abi/luo.h>
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#include <linux/kobject.h>
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#include <linux/libfdt.h>
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#include <linux/liveupdate.h>
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#include <linux/miscdevice.h>
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#include <linux/mm.h>
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#include <linux/sizes.h>
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#include <linux/string.h>
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#include <linux/unaligned.h>
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#include "kexec_handover_internal.h"
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#include "luo_internal.h"
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static struct {
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bool enabled;
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void *fdt_out;
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void *fdt_in;
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u64 liveupdate_num;
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} luo_global;
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static int __init early_liveupdate_param(char *buf)
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{
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return kstrtobool(buf, &luo_global.enabled);
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}
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early_param("liveupdate", early_liveupdate_param);
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static int __init luo_early_startup(void)
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{
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phys_addr_t fdt_phys;
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int err, ln_size;
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const void *ptr;
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if (!kho_is_enabled()) {
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if (liveupdate_enabled())
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pr_warn("Disabling liveupdate because KHO is disabled\n");
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luo_global.enabled = false;
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return 0;
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}
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/* Retrieve LUO subtree, and verify its format. */
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err = kho_retrieve_subtree(LUO_FDT_KHO_ENTRY_NAME, &fdt_phys);
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if (err) {
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if (err != -ENOENT) {
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pr_err("failed to retrieve FDT '%s' from KHO: %pe\n",
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LUO_FDT_KHO_ENTRY_NAME, ERR_PTR(err));
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return err;
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}
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return 0;
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}
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luo_global.fdt_in = phys_to_virt(fdt_phys);
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err = fdt_node_check_compatible(luo_global.fdt_in, 0,
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LUO_FDT_COMPATIBLE);
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if (err) {
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pr_err("FDT '%s' is incompatible with '%s' [%d]\n",
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LUO_FDT_KHO_ENTRY_NAME, LUO_FDT_COMPATIBLE, err);
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return -EINVAL;
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}
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ln_size = 0;
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ptr = fdt_getprop(luo_global.fdt_in, 0, LUO_FDT_LIVEUPDATE_NUM,
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&ln_size);
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if (!ptr || ln_size != sizeof(luo_global.liveupdate_num)) {
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pr_err("Unable to get live update number '%s' [%d]\n",
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LUO_FDT_LIVEUPDATE_NUM, ln_size);
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return -EINVAL;
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}
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luo_global.liveupdate_num = get_unaligned((u64 *)ptr);
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pr_info("Retrieved live update data, liveupdate number: %lld\n",
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luo_global.liveupdate_num);
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err = luo_session_setup_incoming(luo_global.fdt_in);
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if (err)
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return err;
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err = luo_flb_setup_incoming(luo_global.fdt_in);
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return err;
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}
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static int __init liveupdate_early_init(void)
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{
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int err;
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err = luo_early_startup();
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if (err) {
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luo_global.enabled = false;
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luo_restore_fail("The incoming tree failed to initialize properly [%pe], disabling live update\n",
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ERR_PTR(err));
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}
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return err;
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}
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early_initcall(liveupdate_early_init);
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/* Called during boot to create outgoing LUO fdt tree */
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static int __init luo_fdt_setup(void)
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{
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const u64 ln = luo_global.liveupdate_num + 1;
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void *fdt_out;
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int err;
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fdt_out = kho_alloc_preserve(LUO_FDT_SIZE);
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if (IS_ERR(fdt_out)) {
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pr_err("failed to allocate/preserve FDT memory\n");
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return PTR_ERR(fdt_out);
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}
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err = fdt_create(fdt_out, LUO_FDT_SIZE);
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err |= fdt_finish_reservemap(fdt_out);
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err |= fdt_begin_node(fdt_out, "");
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err |= fdt_property_string(fdt_out, "compatible", LUO_FDT_COMPATIBLE);
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err |= fdt_property(fdt_out, LUO_FDT_LIVEUPDATE_NUM, &ln, sizeof(ln));
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err |= luo_session_setup_outgoing(fdt_out);
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err |= luo_flb_setup_outgoing(fdt_out);
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err |= fdt_end_node(fdt_out);
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err |= fdt_finish(fdt_out);
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if (err)
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goto exit_free;
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err = kho_add_subtree(LUO_FDT_KHO_ENTRY_NAME, fdt_out);
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if (err)
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goto exit_free;
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luo_global.fdt_out = fdt_out;
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return 0;
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exit_free:
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kho_unpreserve_free(fdt_out);
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pr_err("failed to prepare LUO FDT: %d\n", err);
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return err;
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}
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/*
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* late initcall because it initializes the outgoing tree that is needed only
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* once userspace starts using /dev/liveupdate.
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*/
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static int __init luo_late_startup(void)
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{
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int err;
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if (!liveupdate_enabled())
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return 0;
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err = luo_fdt_setup();
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if (err)
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luo_global.enabled = false;
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return err;
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}
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late_initcall(luo_late_startup);
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/* Public Functions */
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/**
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* liveupdate_reboot() - Kernel reboot notifier for live update final
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* serialization.
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*
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* This function is invoked directly from the reboot() syscall pathway
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* if kexec is in progress.
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*
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* If any callback fails, this function aborts KHO, undoes the freeze()
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* callbacks, and returns an error.
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*/
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int liveupdate_reboot(void)
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{
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int err;
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if (!liveupdate_enabled())
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return 0;
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err = luo_session_serialize();
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if (err)
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return err;
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luo_flb_serialize();
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err = kho_finalize();
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if (err) {
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pr_err("kho_finalize failed %d\n", err);
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/*
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* kho_finalize() may return libfdt errors, to aboid passing to
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* userspace unknown errors, change this to EAGAIN.
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*/
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err = -EAGAIN;
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}
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return err;
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}
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/**
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* liveupdate_enabled - Check if the live update feature is enabled.
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*
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* This function returns the state of the live update feature flag, which
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* can be controlled via the ``liveupdate`` kernel command-line parameter.
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*
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* @return true if live update is enabled, false otherwise.
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*/
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bool liveupdate_enabled(void)
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{
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return luo_global.enabled;
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}
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/**
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* DOC: LUO ioctl Interface
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*
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* The IOCTL user-space control interface for the LUO subsystem.
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* It registers a character device, typically found at ``/dev/liveupdate``,
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* which allows a userspace agent to manage the LUO state machine and its
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* associated resources, such as preservable file descriptors.
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*
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* To ensure that the state machine is controlled by a single entity, access
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* to this device is exclusive: only one process is permitted to have
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* ``/dev/liveupdate`` open at any given time. Subsequent open attempts will
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* fail with -EBUSY until the first process closes its file descriptor.
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* This singleton model simplifies state management by preventing conflicting
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* commands from multiple userspace agents.
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*/
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struct luo_device_state {
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struct miscdevice miscdev;
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atomic_t in_use;
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};
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static int luo_ioctl_create_session(struct luo_ucmd *ucmd)
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{
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struct liveupdate_ioctl_create_session *argp = ucmd->cmd;
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struct file *file;
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int err;
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argp->fd = get_unused_fd_flags(O_CLOEXEC);
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if (argp->fd < 0)
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return argp->fd;
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err = luo_session_create(argp->name, &file);
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if (err)
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goto err_put_fd;
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err = luo_ucmd_respond(ucmd, sizeof(*argp));
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if (err)
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goto err_put_file;
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fd_install(argp->fd, file);
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return 0;
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err_put_file:
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fput(file);
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err_put_fd:
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put_unused_fd(argp->fd);
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return err;
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}
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static int luo_ioctl_retrieve_session(struct luo_ucmd *ucmd)
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{
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struct liveupdate_ioctl_retrieve_session *argp = ucmd->cmd;
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struct file *file;
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int err;
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argp->fd = get_unused_fd_flags(O_CLOEXEC);
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if (argp->fd < 0)
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return argp->fd;
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err = luo_session_retrieve(argp->name, &file);
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if (err < 0)
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goto err_put_fd;
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err = luo_ucmd_respond(ucmd, sizeof(*argp));
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if (err)
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goto err_put_file;
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fd_install(argp->fd, file);
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return 0;
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err_put_file:
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fput(file);
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err_put_fd:
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put_unused_fd(argp->fd);
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return err;
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}
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static int luo_open(struct inode *inodep, struct file *filep)
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{
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struct luo_device_state *ldev = container_of(filep->private_data,
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struct luo_device_state,
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miscdev);
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if (atomic_cmpxchg(&ldev->in_use, 0, 1))
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return -EBUSY;
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/* Always return -EIO to user if deserialization fail */
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if (luo_session_deserialize()) {
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atomic_set(&ldev->in_use, 0);
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return -EIO;
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}
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return 0;
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}
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static int luo_release(struct inode *inodep, struct file *filep)
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{
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struct luo_device_state *ldev = container_of(filep->private_data,
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struct luo_device_state,
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miscdev);
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atomic_set(&ldev->in_use, 0);
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return 0;
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}
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union ucmd_buffer {
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struct liveupdate_ioctl_create_session create;
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struct liveupdate_ioctl_retrieve_session retrieve;
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};
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struct luo_ioctl_op {
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unsigned int size;
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unsigned int min_size;
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unsigned int ioctl_num;
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int (*execute)(struct luo_ucmd *ucmd);
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};
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#define IOCTL_OP(_ioctl, _fn, _struct, _last) \
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[_IOC_NR(_ioctl) - LIVEUPDATE_CMD_BASE] = { \
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.size = sizeof(_struct) + \
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BUILD_BUG_ON_ZERO(sizeof(union ucmd_buffer) < \
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sizeof(_struct)), \
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.min_size = offsetofend(_struct, _last), \
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.ioctl_num = _ioctl, \
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.execute = _fn, \
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}
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static const struct luo_ioctl_op luo_ioctl_ops[] = {
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IOCTL_OP(LIVEUPDATE_IOCTL_CREATE_SESSION, luo_ioctl_create_session,
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struct liveupdate_ioctl_create_session, name),
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IOCTL_OP(LIVEUPDATE_IOCTL_RETRIEVE_SESSION, luo_ioctl_retrieve_session,
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struct liveupdate_ioctl_retrieve_session, name),
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};
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static long luo_ioctl(struct file *filep, unsigned int cmd, unsigned long arg)
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{
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const struct luo_ioctl_op *op;
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struct luo_ucmd ucmd = {};
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union ucmd_buffer buf;
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unsigned int nr;
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int err;
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nr = _IOC_NR(cmd);
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if (nr - LIVEUPDATE_CMD_BASE >= ARRAY_SIZE(luo_ioctl_ops))
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return -EINVAL;
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ucmd.ubuffer = (void __user *)arg;
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err = get_user(ucmd.user_size, (u32 __user *)ucmd.ubuffer);
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if (err)
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return err;
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op = &luo_ioctl_ops[nr - LIVEUPDATE_CMD_BASE];
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if (op->ioctl_num != cmd)
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return -ENOIOCTLCMD;
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if (ucmd.user_size < op->min_size)
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return -EINVAL;
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ucmd.cmd = &buf;
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err = copy_struct_from_user(ucmd.cmd, op->size, ucmd.ubuffer,
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ucmd.user_size);
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if (err)
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return err;
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return op->execute(&ucmd);
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}
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static const struct file_operations luo_fops = {
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.owner = THIS_MODULE,
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.open = luo_open,
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.release = luo_release,
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.unlocked_ioctl = luo_ioctl,
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};
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static struct luo_device_state luo_dev = {
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.miscdev = {
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.minor = MISC_DYNAMIC_MINOR,
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.name = "liveupdate",
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.fops = &luo_fops,
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},
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.in_use = ATOMIC_INIT(0),
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};
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static int __init liveupdate_ioctl_init(void)
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{
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if (!liveupdate_enabled())
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return 0;
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return misc_register(&luo_dev.miscdev);
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}
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late_initcall(liveupdate_ioctl_init);
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