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arm64: kaslr: split kaslr/module initialization
Currently kaslr_init() handles a mixture of detecting/announcing whether KASLR is enabled, and randomizing the module region depending on whether KASLR is enabled. To make it easier to rework the module region initialization, split the KASLR initialization into two steps: * kaslr_init() determines whether KASLR should be enabled, and announces this choice, recording this to a new global boolean variable. This is called from setup_arch() just before the existing call to kaslr_requires_kpti() so that this will always provide the expected result. * kaslr_module_init() randomizes the module region when required. This is called as a subsys_initcall, where we previously called kaslr_init(). As a bonus, moving the KASLR reporting earlier makes it easier to spot and permits it to be logged via earlycon, making it easier to debug any issues that could be triggered by KASLR. Booting a v6.4-rc1 kernel with this patch applied, the log looks like: | EFI stub: Booting Linux Kernel... | EFI stub: Generating empty DTB | EFI stub: Exiting boot services... | [ 0.000000] Booting Linux on physical CPU 0x0000000000 [0x000f0510] | [ 0.000000] Linux version 6.4.0-rc1-00006-g4763a8f8aeb3 (mark@lakrids) (aarch64-linux-gcc (GCC) 12.1.0, GNU ld (GNU Binutils) 2.38) #2 SMP PREEMPT Tue May 9 11:03:37 BST 2023 | [ 0.000000] KASLR enabled | [ 0.000000] earlycon: pl11 at MMIO 0x0000000009000000 (options '') | [ 0.000000] printk: bootconsole [pl11] enabled Signed-off-by: Mark Rutland <mark.rutland@arm.com> Reviewed-by: Ard Biesheuvel <ardb@kernel.org> Cc: Will Deacon <will@kernel.org> Tested-by: Shanker Donthineni <sdonthineni@nvidia.com> Link: https://lore.kernel.org/r/20230530110328.2213762-4-mark.rutland@arm.com Signed-off-by: Catalin Marinas <catalin.marinas@arm.com>
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@ -204,15 +204,17 @@ static inline unsigned long kaslr_offset(void)
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return kimage_vaddr - KIMAGE_VADDR;
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}
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#ifdef CONFIG_RANDOMIZE_BASE
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void kaslr_init(void);
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static inline bool kaslr_enabled(void)
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{
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/*
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* The KASLR offset modulo MIN_KIMG_ALIGN is taken from the physical
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* placement of the image rather than from the seed, so a displacement
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* of less than MIN_KIMG_ALIGN means that no seed was provided.
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*/
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return kaslr_offset() >= MIN_KIMG_ALIGN;
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extern bool __kaslr_is_enabled;
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return __kaslr_is_enabled;
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}
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#else
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static inline void kaslr_init(void) { }
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static inline bool kaslr_enabled(void) { return false; }
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#endif
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/*
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* Allow all memory at the discovery stage. We will clip it later.
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@ -25,7 +25,30 @@ u16 __initdata memstart_offset_seed;
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struct arm64_ftr_override kaslr_feature_override __initdata;
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static int __init kaslr_init(void)
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bool __ro_after_init __kaslr_is_enabled = false;
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void __init kaslr_init(void)
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{
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if (kaslr_feature_override.val & kaslr_feature_override.mask & 0xf) {
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pr_info("KASLR disabled on command line\n");
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return;
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}
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/*
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* The KASLR offset modulo MIN_KIMG_ALIGN is taken from the physical
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* placement of the image rather than from the seed, so a displacement
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* of less than MIN_KIMG_ALIGN means that no seed was provided.
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*/
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if (kaslr_offset() < MIN_KIMG_ALIGN) {
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pr_warn("KASLR disabled due to lack of seed\n");
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return;
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}
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pr_info("KASLR enabled\n");
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__kaslr_is_enabled = true;
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}
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int kaslr_module_init(void)
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{
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u64 module_range;
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u32 seed;
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@ -36,18 +59,6 @@ static int __init kaslr_init(void)
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*/
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module_alloc_base = (u64)_etext - MODULES_VSIZE;
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if (kaslr_feature_override.val & kaslr_feature_override.mask & 0xf) {
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pr_info("KASLR disabled on command line\n");
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return 0;
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}
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if (!kaslr_enabled()) {
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pr_warn("KASLR disabled due to lack of seed\n");
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return 0;
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}
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pr_info("KASLR enabled\n");
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seed = get_random_u32();
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if (IS_ENABLED(CONFIG_RANDOMIZE_MODULE_REGION_FULL)) {
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@ -80,4 +91,4 @@ static int __init kaslr_init(void)
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return 0;
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}
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subsys_initcall(kaslr_init)
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subsys_initcall(kaslr_module_init)
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@ -296,6 +296,8 @@ void __init __no_sanitize_address setup_arch(char **cmdline_p)
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*cmdline_p = boot_command_line;
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kaslr_init();
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/*
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* If know now we are going to need KPTI then use non-global
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* mappings from the start, avoiding the cost of rewriting
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