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Old Linux kernels disable SVE after every system call. Calling the SVE-optimized memcpy afterwards will then cause a trap to reenable SVE. As a result, applications with a high use of syscalls may run slower with the SVE memcpy. This is true for kernels between 4.15.0 and before 6.2.0, except for 5.14.0 which was patched. Avoid this by checking the kernel version and selecting the SVE ifunc on modern kernels. Parse the kernel version reported by uname() into a 24-bit kernel.major.minor value without calling any library functions. If uname() is not supported or if the version format is not recognized, assume the kernel is modern. Tested-by: Florian Weimer <fweimer@redhat.com> Reviewed-by: Szabolcs Nagy <szabolcs.nagy@arm.com>
179 lines
5.6 KiB
C
179 lines
5.6 KiB
C
/* Initialize CPU feature data. AArch64 version.
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This file is part of the GNU C Library.
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Copyright (C) 2017-2024 Free Software Foundation, Inc.
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The GNU C Library is free software; you can redistribute it and/or
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modify it under the terms of the GNU Lesser General Public
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License as published by the Free Software Foundation; either
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version 2.1 of the License, or (at your option) any later version.
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The GNU C Library is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
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Lesser General Public License for more details.
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You should have received a copy of the GNU Lesser General Public
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License along with the GNU C Library; if not, see
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<https://www.gnu.org/licenses/>. */
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#include <array_length.h>
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#include <cpu-features.h>
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#include <sys/auxv.h>
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#include <elf/dl-hwcaps.h>
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#include <sys/prctl.h>
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#include <sys/utsname.h>
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#include <dl-tunables-parse.h>
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#define DCZID_DZP_MASK (1 << 4)
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#define DCZID_BS_MASK (0xf)
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/* The maximal set of permitted tags that the MTE random tag generation
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instruction may use. We exclude tag 0 because a) we want to reserve
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that for the libc heap structures and b) because it makes it easier
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to see when pointer have been correctly tagged. */
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#define MTE_ALLOWED_TAGS (0xfffe << PR_MTE_TAG_SHIFT)
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struct cpu_list
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{
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const char *name;
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size_t len;
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uint64_t midr;
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};
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static const struct cpu_list cpu_list[] =
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{
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#define CPU_LIST_ENTRY(__str, __num) { __str, sizeof (__str) - 1, __num }
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CPU_LIST_ENTRY ("thunderxt88", 0x430F0A10),
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CPU_LIST_ENTRY ("thunderx2t99", 0x431F0AF0),
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CPU_LIST_ENTRY ("thunderx2t99p1", 0x420F5160),
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CPU_LIST_ENTRY ("ares", 0x411FD0C0),
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CPU_LIST_ENTRY ("emag", 0x503F0001),
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CPU_LIST_ENTRY ("kunpeng920", 0x481FD010),
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CPU_LIST_ENTRY ("a64fx", 0x460F0010),
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CPU_LIST_ENTRY ("generic", 0x0),
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};
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static uint64_t
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get_midr_from_mcpu (const struct tunable_str_t *mcpu)
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{
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for (int i = 0; i < array_length (cpu_list); i++)
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if (tunable_strcmp (mcpu, cpu_list[i].name, cpu_list[i].len))
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return cpu_list[i].midr;
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return UINT64_MAX;
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}
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#if __LINUX_KERNEL_VERSION < 0x060200
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/* Return true if we prefer using SVE in string ifuncs. Old kernels disable
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SVE after every system call which results in unnecessary traps if memcpy
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uses SVE. This is true for kernels between 4.15.0 and before 6.2.0, except
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for 5.14.0 which was patched. For these versions return false to avoid using
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SVE ifuncs.
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Parse the kernel version into a 24-bit kernel.major.minor value without
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calling any library functions. If uname() is not supported or if the version
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format is not recognized, assume the kernel is modern and return true. */
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static inline bool
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prefer_sve_ifuncs (void)
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{
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struct utsname buf;
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const char *p = &buf.release[0];
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int kernel = 0;
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int val;
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if (__uname (&buf) < 0)
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return true;
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for (int shift = 16; shift >= 0; shift -= 8)
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{
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for (val = 0; *p >= '0' && *p <= '9'; p++)
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val = val * 10 + *p - '0';
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kernel |= (val & 255) << shift;
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if (*p++ != '.')
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break;
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}
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if (kernel >= 0x060200 || kernel == 0x050e00)
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return true;
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if (kernel >= 0x040f00)
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return false;
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return true;
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}
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#endif
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static inline void
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init_cpu_features (struct cpu_features *cpu_features)
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{
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register uint64_t midr = UINT64_MAX;
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/* Get the tunable override. */
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const struct tunable_str_t *mcpu = TUNABLE_GET (glibc, cpu, name,
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struct tunable_str_t *,
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NULL);
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if (mcpu != NULL)
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midr = get_midr_from_mcpu (mcpu);
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/* If there was no useful tunable override, query the MIDR if the kernel
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allows it. */
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if (midr == UINT64_MAX)
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{
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if (GLRO (dl_hwcap) & HWCAP_CPUID)
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asm volatile ("mrs %0, midr_el1" : "=r"(midr));
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else
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midr = 0;
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}
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cpu_features->midr_el1 = midr;
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/* Check if ZVA is enabled. */
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unsigned dczid;
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asm volatile ("mrs %0, dczid_el0" : "=r"(dczid));
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if ((dczid & DCZID_DZP_MASK) == 0)
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cpu_features->zva_size = 4 << (dczid & DCZID_BS_MASK);
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/* Check if BTI is supported. */
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cpu_features->bti = GLRO (dl_hwcap2) & HWCAP2_BTI;
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/* Setup memory tagging support if the HW and kernel support it, and if
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the user has requested it. */
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cpu_features->mte_state = 0;
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#ifdef USE_MTAG
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int mte_state = TUNABLE_GET (glibc, mem, tagging, unsigned, 0);
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cpu_features->mte_state = (GLRO (dl_hwcap2) & HWCAP2_MTE) ? mte_state : 0;
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/* If we lack the MTE feature, disable the tunable, since it will
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otherwise cause instructions that won't run on this CPU to be used. */
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TUNABLE_SET (glibc, mem, tagging, cpu_features->mte_state);
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if (cpu_features->mte_state & 4)
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/* Enable choosing system-preferred faulting mode. */
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__prctl (PR_SET_TAGGED_ADDR_CTRL,
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(PR_TAGGED_ADDR_ENABLE | PR_MTE_TCF_SYNC | PR_MTE_TCF_ASYNC
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| MTE_ALLOWED_TAGS),
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0, 0, 0);
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else if (cpu_features->mte_state & 2)
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__prctl (PR_SET_TAGGED_ADDR_CTRL,
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(PR_TAGGED_ADDR_ENABLE | PR_MTE_TCF_SYNC | MTE_ALLOWED_TAGS),
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0, 0, 0);
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else if (cpu_features->mte_state)
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__prctl (PR_SET_TAGGED_ADDR_CTRL,
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(PR_TAGGED_ADDR_ENABLE | PR_MTE_TCF_ASYNC | MTE_ALLOWED_TAGS),
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0, 0, 0);
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#endif
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/* Check if SVE is supported. */
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cpu_features->sve = GLRO (dl_hwcap) & HWCAP_SVE;
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cpu_features->prefer_sve_ifuncs = cpu_features->sve;
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#if __LINUX_KERNEL_VERSION < 0x060200
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if (cpu_features->sve)
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cpu_features->prefer_sve_ifuncs = prefer_sve_ifuncs ();
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#endif
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/* Check if MOPS is supported. */
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cpu_features->mops = GLRO (dl_hwcap2) & HWCAP2_MOPS;
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}
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