diff options
author | Wolfram Sang <wsa+renesas@sang-engineering.com> | 2024-11-18 08:35:47 +0100 |
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committer | Wolfram Sang <wsa+renesas@sang-engineering.com> | 2024-11-18 08:35:47 +0100 |
commit | 1b3073291ddbe23fede7e0dd1b6f5635e370f8ba (patch) | |
tree | a3245db38b3389d4a63731b2c679c2d38eb24026 /arch/x86/kernel/cpu/microcode/amd.c | |
parent | 48730a9d04ffccda541602d722d1ff81920a85d8 (diff) | |
parent | 1922bc245541bd08e3282d8199c8ac703e366111 (diff) |
Merge tag 'i2c-host-6.13-p1' of git://git.kernel.org/pub/scm/linux/kernel/git/andi.shyti/linux into i2c/for-mergewindow
i2c-host updates for v6.13, part 1
Major Improvements and Refactoring:
- All controllers using the 'remove_new' callback have been
reverted to use the 'remove' callback.
- Intel SCH controller underwent significant refactoring,
this brings love and a modern look to the driver.
- PIIX4 driver refactored to enable usage by other drivers
(e.g., AMD ASF).
- iMX/MXC improved message handling to reduce protocol overhead:
Refactored DMA/non-DMA read/write and bus polling mechanisms
to achieve this.
- ACPI documentation for PIIX4.
New Features:
- i2c-cadence added support for atomic transfers.
- Qualcomm CII added support for a 32MHz serial engine clock.
Deprecated Features:
- Dropped outdated support for AMD756 S4882 and NFORCE2 S4985. If
somebody misses this, Jean will rewrite support using the proper
i2c mux framework.
New Hardware Support:
- Added support for:
- Intel Panther Lake (new ID)
- AMD ASF (new driver)
- S32G2/S32G3 SoCs (new ID)
- Realtek RTL I2C Controller (new driver)
- HJMC01 DesignWare ACPI HID (new ID)
- PIC64GX to Microchip Core (new ID)
- Qualcomm SDM670 to Qualcomm CCI (new ID)
Diffstat (limited to 'arch/x86/kernel/cpu/microcode/amd.c')
-rw-r--r-- | arch/x86/kernel/cpu/microcode/amd.c | 51 |
1 files changed, 35 insertions, 16 deletions
diff --git a/arch/x86/kernel/cpu/microcode/amd.c b/arch/x86/kernel/cpu/microcode/amd.c index f63b051f25a0a..31a73715d7553 100644 --- a/arch/x86/kernel/cpu/microcode/amd.c +++ b/arch/x86/kernel/cpu/microcode/amd.c @@ -584,7 +584,7 @@ void __init load_ucode_amd_bsp(struct early_load_data *ed, unsigned int cpuid_1_ native_rdmsr(MSR_AMD64_PATCH_LEVEL, ed->new_rev, dummy); } -static enum ucode_state load_microcode_amd(u8 family, const u8 *data, size_t size); +static enum ucode_state _load_microcode_amd(u8 family, const u8 *data, size_t size); static int __init save_microcode_in_initrd(void) { @@ -605,7 +605,7 @@ static int __init save_microcode_in_initrd(void) if (!desc.mc) return -EINVAL; - ret = load_microcode_amd(x86_family(cpuid_1_eax), desc.data, desc.size); + ret = _load_microcode_amd(x86_family(cpuid_1_eax), desc.data, desc.size); if (ret > UCODE_UPDATED) return -EINVAL; @@ -613,16 +613,19 @@ static int __init save_microcode_in_initrd(void) } early_initcall(save_microcode_in_initrd); -static inline bool patch_cpus_equivalent(struct ucode_patch *p, struct ucode_patch *n) +static inline bool patch_cpus_equivalent(struct ucode_patch *p, + struct ucode_patch *n, + bool ignore_stepping) { /* Zen and newer hardcode the f/m/s in the patch ID */ if (x86_family(bsp_cpuid_1_eax) >= 0x17) { union cpuid_1_eax p_cid = ucode_rev_to_cpuid(p->patch_id); union cpuid_1_eax n_cid = ucode_rev_to_cpuid(n->patch_id); - /* Zap stepping */ - p_cid.stepping = 0; - n_cid.stepping = 0; + if (ignore_stepping) { + p_cid.stepping = 0; + n_cid.stepping = 0; + } return p_cid.full == n_cid.full; } else { @@ -644,13 +647,13 @@ static struct ucode_patch *cache_find_patch(struct ucode_cpu_info *uci, u16 equi WARN_ON_ONCE(!n.patch_id); list_for_each_entry(p, µcode_cache, plist) - if (patch_cpus_equivalent(p, &n)) + if (patch_cpus_equivalent(p, &n, false)) return p; return NULL; } -static inline bool patch_newer(struct ucode_patch *p, struct ucode_patch *n) +static inline int patch_newer(struct ucode_patch *p, struct ucode_patch *n) { /* Zen and newer hardcode the f/m/s in the patch ID */ if (x86_family(bsp_cpuid_1_eax) >= 0x17) { @@ -659,6 +662,9 @@ static inline bool patch_newer(struct ucode_patch *p, struct ucode_patch *n) zp.ucode_rev = p->patch_id; zn.ucode_rev = n->patch_id; + if (zn.stepping != zp.stepping) + return -1; + return zn.rev > zp.rev; } else { return n->patch_id > p->patch_id; @@ -668,10 +674,14 @@ static inline bool patch_newer(struct ucode_patch *p, struct ucode_patch *n) static void update_cache(struct ucode_patch *new_patch) { struct ucode_patch *p; + int ret; list_for_each_entry(p, µcode_cache, plist) { - if (patch_cpus_equivalent(p, new_patch)) { - if (!patch_newer(p, new_patch)) { + if (patch_cpus_equivalent(p, new_patch, true)) { + ret = patch_newer(p, new_patch); + if (ret < 0) + continue; + else if (!ret) { /* we already have the latest patch */ kfree(new_patch->data); kfree(new_patch); @@ -944,21 +954,30 @@ static enum ucode_state __load_microcode_amd(u8 family, const u8 *data, return UCODE_OK; } -static enum ucode_state load_microcode_amd(u8 family, const u8 *data, size_t size) +static enum ucode_state _load_microcode_amd(u8 family, const u8 *data, size_t size) { - struct cpuinfo_x86 *c; - unsigned int nid, cpu; - struct ucode_patch *p; enum ucode_state ret; /* free old equiv table */ free_equiv_cpu_table(); ret = __load_microcode_amd(family, data, size); - if (ret != UCODE_OK) { + if (ret != UCODE_OK) cleanup(); + + return ret; +} + +static enum ucode_state load_microcode_amd(u8 family, const u8 *data, size_t size) +{ + struct cpuinfo_x86 *c; + unsigned int nid, cpu; + struct ucode_patch *p; + enum ucode_state ret; + + ret = _load_microcode_amd(family, data, size); + if (ret != UCODE_OK) return ret; - } for_each_node(nid) { cpu = cpumask_first(cpumask_of_node(nid)); |