msm-4.14/mm/mempolicy.c
azrim 2abb319f4b
Merge branch 'android-4.14-stable' of https://android.googlesource.com/kernel/common into sheesh
* 'android-4.14-stable' of https://android.googlesource.com/kernel/common:
  Linux 4.14.277
  Revert "net: micrel: fix KS8851_MLL Kconfig"
  ax25: Fix UAF bugs in ax25 timers
  ax25: Fix NULL pointer dereferences in ax25 timers
  ax25: fix NPD bug in ax25_disconnect
  ax25: fix UAF bug in ax25_send_control()
  ax25: Fix refcount leaks caused by ax25_cb_del()
  ax25: fix UAF bugs of net_device caused by rebinding operation
  ax25: fix reference count leaks of ax25_dev
  ax25: add refcount in ax25_dev to avoid UAF bugs
  block/compat_ioctl: fix range check in BLKGETSIZE
  staging: ion: Prevent incorrect reference counting behavour
  ext4: force overhead calculation if the s_overhead_cluster makes no sense
  ext4: fix overhead calculation to account for the reserved gdt blocks
  ext4: limit length to bitmap_maxbytes - blocksize in punch_hole
  ext4: fix symlink file size not match to file content
  ARC: entry: fix syscall_trace_exit argument
  e1000e: Fix possible overflow in LTR decoding
  ASoC: soc-dapm: fix two incorrect uses of list iterator
  openvswitch: fix OOB access in reserve_sfa_size()
  powerpc/perf: Fix power9 event alternatives
  dma: at_xdmac: fix a missing check on list iterator
  ata: pata_marvell: Check the 'bmdma_addr' beforing reading
  stat: fix inconsistency between struct stat and struct compat_stat
  net: macb: Restart tx only if queue pointer is lagging
  drm/msm/mdp5: check the return of kzalloc()
  brcmfmac: sdio: Fix undefined behavior due to shift overflowing the constant
  cifs: Check the IOCB_DIRECT flag, not O_DIRECT
  vxlan: fix error return code in vxlan_fdb_append
  ALSA: usb-audio: Fix undefined behavior due to shift overflowing the constant
  platform/x86: samsung-laptop: Fix an unsigned comparison which can never be negative
  ARM: vexpress/spc: Avoid negative array index when !SMP
  netlink: reset network and mac headers in netlink_dump()
  net/packet: fix packet_sock xmit return value checking
  dmaengine: imx-sdma: Fix error checking in sdma_event_remap
  tcp: Fix potential use-after-free due to double kfree()
  tcp: fix race condition when creating child sockets from syncookies
  ALSA: usb-audio: Clear MIDI port active flag after draining
  gfs2: assign rgrp glock before compute_bitstructs
  can: usb_8dev: usb_8dev_start_xmit(): fix double dev_kfree_skb() in error path
  tracing: Dump stacktrace trigger to the corresponding instance
  tracing: Have traceon and traceoff trigger honor the instance
  mm: page_alloc: fix building error on -Werror=array-compare
  etherdevice: Adjust ether_addr* prototypes to silence -Wstringop-overead
  Linux 4.14.276
  i2c: pasemi: Wait for write xfers to finish
  smp: Fix offline cpu check in flush_smp_call_function_queue()
  ARM: davinci: da850-evm: Avoid NULL pointer dereference
  ALSA: pcm: Test for "silence" field in struct "pcm_format_data"
  gcc-plugins: latent_entropy: use /dev/urandom
  mm: kmemleak: take a full lowmem check in kmemleak_*_phys()
  mm, page_alloc: fix build_zonerefs_node()
  drivers: net: slip: fix NPD bug in sl_tx_timeout()
  scsi: mvsas: Add PCI ID of RocketRaid 2640
  gpu: ipu-v3: Fix dev_dbg frequency output
  ata: libata-core: Disable READ LOG DMA EXT for Samsung 840 EVOs
  net: micrel: fix KS8851_MLL Kconfig
  scsi: ibmvscsis: Increase INITIAL_SRP_LIMIT to 1024
  scsi: target: tcmu: Fix possible page UAF
  Drivers: hv: vmbus: Prevent load re-ordering when reading ring buffer
  drm/amdkfd: Check for potential null return of kmalloc_array()
  drm/amd: Add USBC connector ID
  cifs: potential buffer overflow in handling symlinks
  nfc: nci: add flush_workqueue to prevent uaf
  net: ethernet: stmmac: fix altr_tse_pcs function when using a fixed-link
  mlxsw: i2c: Fix initialization error flow
  gpiolib: acpi: use correct format characters
  veth: Ensure eth header is in skb's linear part
  memory: atmel-ebi: Fix missing of_node_put in atmel_ebi_probe
  xfrm: policy: match with both mark and mask on user interfaces
  cgroup: Use open-time cgroup namespace for process migration perm checks
  cgroup: Allocate cgroup_file_ctx for kernfs_open_file->priv
  cgroup: Use open-time credentials for process migraton perm checks
  mm/sparsemem: fix 'mem_section' will never be NULL gcc 12 warning
  arm64: module: remove (NOLOAD) from linker script
  mm: don't skip swap entry even if zap_details specified
  dmaengine: Revert "dmaengine: shdma: Fix runtime PM imbalance on error"
  tools build: Use $(shell ) instead of `` to get embedded libperl's ccopts
  perf: qcom_l2_pmu: fix an incorrect NULL check on list iterator
  arm64: patch_text: Fixup last cpu should be master
  btrfs: fix qgroup reserve overflow the qgroup limit
  x86/speculation: Restore speculation related MSRs during S3 resume
  x86/pm: Save the MSR validity status at context setup
  mm/mempolicy: fix mpol_new leak in shared_policy_replace
  mmmremap.c: avoid pointless invalidate_range_start/end on mremap(old_size=0)
  Revert "mmc: sdhci-xenon: fix annoying 1.8V regulator warning"
  drbd: Fix five use after free bugs in get_initial_state
  drm/imx: Fix memory leak in imx_pd_connector_get_modes
  net: stmmac: Fix unset max_speed difference between DT and non-DT platforms
  scsi: zorro7xx: Fix a resource leak in zorro7xx_remove_one()
  drm/amdgpu: fix off by one in amdgpu_gfx_kiq_acquire()
  mm: fix race between MADV_FREE reclaim and blkdev direct IO read
  net: add missing SOF_TIMESTAMPING_OPT_ID support
  ipv6: add missing tx timestamping on IPPROTO_RAW
  parisc: Fix CPU affinity for Lasi, WAX and Dino chips
  jfs: prevent NULL deref in diFree
  virtio_console: eliminate anonymous module_init & module_exit
  serial: samsung_tty: do not unlock port->lock for uart_write_wakeup()
  NFS: swap-out must always use STABLE writes.
  NFS: swap IO handling is slightly different for O_DIRECT IO
  SUNRPC/call_alloc: async tasks mustn't block waiting for memory
  w1: w1_therm: fixes w1_seq for ds28ea00 sensors
  init/main.c: return 1 from handled __setup() functions
  Bluetooth: Fix use after free in hci_send_acl
  xtensa: fix DTC warning unit_address_format
  usb: dwc3: omap: fix "unbalanced disables for smps10_out1" on omap5evm
  scsi: libfc: Fix use after free in fc_exch_abts_resp()
  MIPS: fix fortify panic when copying asm exception handlers
  bnxt_en: Eliminate unintended link toggle during FW reset
  macvtap: advertise link netns via netlink
  net/smc: correct settings of RMB window update limit
  scsi: aha152x: Fix aha152x_setup() __setup handler return value
  scsi: pm8001: Fix pm8001_mpi_task_abort_resp()
  dm ioctl: prevent potential spectre v1 gadget
  iommu/arm-smmu-v3: fix event handling soft lockup
  PCI: aardvark: Fix support for MSI interrupts
  powerpc: Set crashkernel offset to mid of RMA region
  power: supply: axp20x_battery: properly report current when discharging
  scsi: bfa: Replace snprintf() with sysfs_emit()
  scsi: mvsas: Replace snprintf() with sysfs_emit()
  powerpc: dts: t104xrdb: fix phy type for FMAN 4/5
  ptp: replace snprintf with sysfs_emit
  ath5k: fix OOB in ath5k_eeprom_read_pcal_info_5111
  KVM: x86/svm: Clear reserved bits written to PerfEvtSeln MSRs
  ARM: 9187/1: JIVE: fix return value of __setup handler
  rtc: wm8350: Handle error for wm8350_register_irq
  ubifs: Rectify space amount budget for mkdir/tmpfile operations
  KVM: x86: Forbid VMM to set SYNIC/STIMER MSRs when SynIC wasn't activated
  openvswitch: Fixed nd target mask field in the flow dump.
  ARM: dts: spear13xx: Update SPI dma properties
  ARM: dts: spear1340: Update serial node properties
  ASoC: topology: Allow TLV control to be either read or write
  ubi: fastmap: Return error code if memory allocation fails in add_aeb()
  mm/memcontrol: return 1 from cgroup.memory __setup() handler
  mm/mmap: return 1 from stack_guard_gap __setup() handler
  ACPI: CPPC: Avoid out of bounds access when parsing _CPC data
  ubi: Fix race condition between ctrl_cdev_ioctl and ubi_cdev_ioctl
  pinctrl: pinconf-generic: Print arguments for bias-pull-*
  gfs2: Make sure FITRIM minlen is rounded up to fs block size
  can: mcba_usb: properly check endpoint type
  can: mcba_usb: mcba_usb_start_xmit(): fix double dev_kfree_skb in error path
  ubifs: rename_whiteout: correct old_dir size computing
  ubifs: setflags: Make dirtied_ino_d 8 bytes aligned
  ubifs: Add missing iput if do_tmpfile() failed in rename whiteout
  ubifs: rename_whiteout: Fix double free for whiteout_ui->data
  KVM: Prevent module exit until all VMs are freed
  scsi: qla2xxx: Suppress a kernel complaint in qla_create_qpair()
  scsi: qla2xxx: Fix warning for missing error code
  powerpc/lib/sstep: Fix build errors with newer binutils
  powerpc/lib/sstep: Fix 'sthcx' instruction
  mmc: host: Return an error when ->enable_sdio_irq() ops is missing
  media: hdpvr: initialize dev->worker at hdpvr_register_videodev
  video: fbdev: sm712fb: Fix crash in smtcfb_write()
  ARM: mmp: Fix failure to remove sram device
  ARM: tegra: tamonten: Fix I2C3 pad setting
  media: cx88-mpeg: clear interrupt status register before streaming video
  ASoC: soc-core: skip zero num_dai component in searching dai name
  video: fbdev: omapfb: panel-tpo-td043mtea1: Use sysfs_emit() instead of snprintf()
  video: fbdev: omapfb: panel-dsi-cm: Use sysfs_emit() instead of snprintf()
  ARM: dts: bcm2837: Add the missing L1/L2 cache information
  ARM: dts: qcom: fix gic_irq_domain_translate warnings for msm8960
  video: fbdev: omapfb: acx565akm: replace snprintf with sysfs_emit
  video: fbdev: cirrusfb: check pixclock to avoid divide by zero
  video: fbdev: w100fb: Reset global state
  video: fbdev: nvidiafb: Use strscpy() to prevent buffer overflow
  ntfs: add sanity check on allocation size
  ext4: don't BUG if someone dirty pages without asking ext4 first
  spi: tegra20: Use of_device_get_match_data()
  PM: core: keep irq flags in device_pm_check_callbacks()
  ACPI/APEI: Limit printable size of BERT table data
  ACPICA: Avoid walking the ACPI Namespace if it is not there
  irqchip/nvic: Release nvic_base upon failure
  Fix incorrect type in assignment of ipv6 port for audit
  loop: use sysfs_emit() in the sysfs xxx show()
  selinux: use correct type for context length
  lib/test: use after free in register_test_dev_kmod()
  NFSv4/pNFS: Fix another issue with a list iterator pointing to the head
  net/x25: Fix null-ptr-deref caused by x25_disconnect
  qlcnic: dcb: default to returning -EOPNOTSUPP
  net: phy: broadcom: Fix brcm_fet_config_init()
  xen: fix is_xen_pmu()
  netfilter: nf_conntrack_tcp: preserve liberal flag in tcp options
  jfs: fix divide error in dbNextAG
  kgdbts: fix return value of __setup handler
  kgdboc: fix return value of __setup handler
  tty: hvc: fix return value of __setup handler
  pinctrl/rockchip: Add missing of_node_put() in rockchip_pinctrl_probe
  pinctrl: nomadik: Add missing of_node_put() in nmk_pinctrl_probe
  pinctrl: mediatek: Fix missing of_node_put() in mtk_pctrl_init
  NFS: remove unneeded check in decode_devicenotify_args()
  clk: tegra: tegra124-emc: Fix missing put_device() call in emc_ensure_emc_driver
  clk: clps711x: Terminate clk_div_table with sentinel element
  clk: loongson1: Terminate clk_div_table with sentinel element
  remoteproc: qcom_wcnss: Add missing of_node_put() in wcnss_alloc_memory_region
  clk: qcom: clk-rcg2: Update the frac table for pixel clock
  iio: adc: Add check for devm_request_threaded_irq
  serial: 8250: Fix race condition in RTS-after-send handling
  serial: 8250_mid: Balance reference count for PCI DMA device
  staging:iio:adc:ad7280a: Fix handing of device address bit reversing.
  pwm: lpc18xx-sct: Initialize driver data and hardware before pwmchip_add()
  mxser: fix xmit_buf leak in activate when LSR == 0xff
  mfd: asic3: Add missing iounmap() on error asic3_mfd_probe
  tcp: ensure PMTU updates are processed during fastopen
  i2c: mux: demux-pinctrl: do not deactivate a master that is not active
  af_netlink: Fix shift out of bounds in group mask calculation
  USB: storage: ums-realtek: fix error code in rts51x_read_mem()
  mtd: rawnand: atmel: fix refcount issue in atmel_nand_controller_init
  MIPS: RB532: fix return value of __setup handler
  vxcan: enable local echo for sent CAN frames
  mfd: mc13xxx: Add check for mc13xxx_irq_request
  powerpc/sysdev: fix incorrect use to determine if list is empty
  PCI: Reduce warnings on possible RW1C corruption
  power: supply: wm8350-power: Add missing free in free_charger_irq
  power: supply: wm8350-power: Handle error for wm8350_register_irq
  i2c: xiic: Make bus names unique
  KVM: x86/emulator: Defer not-present segment check in __load_segment_descriptor()
  KVM: x86: Fix emulation in writing cr8
  power: supply: bq24190_charger: Fix bq24190_vbus_is_enabled() wrong false return
  drm/tegra: Fix reference leak in tegra_dsi_ganged_probe
  ext2: correct max file size computing
  TOMOYO: fix __setup handlers return values
  scsi: pm8001: Fix abort all task initialization
  scsi: pm8001: Fix payload initialization in pm80xx_set_thermal_config()
  scsi: pm8001: Fix command initialization in pm8001_chip_ssp_tm_req()
  scsi: pm8001: Fix command initialization in pm80XX_send_read_log()
  dm crypt: fix get_key_size compiler warning if !CONFIG_KEYS
  iwlwifi: Fix -EIO error code that is never returned
  HID: i2c-hid: fix GET/SET_REPORT for unnumbered reports
  power: supply: ab8500: Fix memory leak in ab8500_fg_sysfs_init
  ray_cs: Check ioremap return value
  power: reset: gemini-poweroff: Fix IRQ check in gemini_poweroff_probe
  ath9k_htc: fix uninit value bugs
  drm/edid: Don't clear formats if using deep color
  mtd: onenand: Check for error irq
  ASoC: msm8916-wcd-digital: Fix missing clk_disable_unprepare() in msm8916_wcd_digital_probe
  ASoC: imx-es8328: Fix error return code in imx_es8328_probe()
  ASoC: mxs: Fix error handling in mxs_sgtl5000_probe
  ASoC: dmaengine: do not use a NULL prepare_slave_config() callback
  video: fbdev: omapfb: Add missing of_node_put() in dvic_probe_of
  ASoC: fsi: Add check for clk_enable
  ASoC: wm8350: Handle error for wm8350_register_irq
  ASoC: atmel: Add missing of_node_put() in at91sam9g20ek_audio_probe
  media: stk1160: If start stream fails, return buffers with VB2_BUF_STATE_QUEUED
  ALSA: firewire-lib: fix uninitialized flag for AV/C deferred transaction
  memory: emif: check the pointer temp in get_device_details()
  memory: emif: Add check for setup_interrupts
  ASoC: atmel_ssc_dai: Handle errors for clk_enable
  ASoC: mxs-saif: Handle errors for clk_enable
  printk: fix return value of printk.devkmsg __setup handler
  arm64: dts: broadcom: Fix sata nodename
  arm64: dts: ns2: Fix spi-cpol and spi-cpha property
  ALSA: spi: Add check for clk_enable()
  ASoC: ti: davinci-i2s: Add check for clk_enable()
  media: usb: go7007: s2250-board: fix leak in probe()
  soc: ti: wkup_m3_ipc: Fix IRQ check in wkup_m3_ipc_probe
  ARM: dts: qcom: ipq4019: fix sleep clock
  video: fbdev: fbcvt.c: fix printing in fb_cvt_print_name()
  video: fbdev: smscufx: Fix null-ptr-deref in ufx_usb_probe()
  media: coda: Fix missing put_device() call in coda_get_vdoa_data
  perf/x86/intel/pt: Fix address filter config for 32-bit kernel
  perf/core: Fix address filter parser for multiple filters
  sched/debug: Remove mpol_get/put and task_lock/unlock from sched_show_numa
  clocksource: acpi_pm: fix return value of __setup handler
  hwmon: (pmbus) Add Vin unit off handling
  crypto: ccp - ccp_dmaengine_unregister release dma channels
  ACPI: APEI: fix return value of __setup handlers
  crypto: vmx - add missing dependencies
  hwrng: atmel - disable trng on failure path
  PM: suspend: fix return value of __setup handler
  PM: hibernate: fix __setup handler error handling
  hwmon: (sch56xx-common) Replace WDOG_ACTIVE with WDOG_HW_RUNNING
  hwmon: (pmbus) Add mutex to regulator ops
  spi: pxa2xx-pci: Balance reference count for PCI DMA device
  selftests/x86: Add validity check and allow field splitting
  spi: tegra114: Add missing IRQ check in tegra_spi_probe
  crypto: mxs-dcp - Fix scatterlist processing
  crypto: authenc - Fix sleep in atomic context in decrypt_tail
  PCI: pciehp: Clear cmd_busy bit in polling mode
  brcmfmac: pcie: Replace brcmf_pcie_copy_mem_todev with memcpy_toio
  brcmfmac: firmware: Allocate space for default boardrev in nvram
  media: davinci: vpif: fix unbalanced runtime PM get
  DEC: Limit PMAX memory probing to R3k systems
  lib/raid6/test: fix multiple definition linking error
  thermal: int340x: Increase bitmap size
  carl9170: fix missing bit-wise or operator for tx_params
  ARM: dts: exynos: add missing HDMI supplies on SMDK5420
  ARM: dts: exynos: add missing HDMI supplies on SMDK5250
  ARM: dts: exynos: fix UART3 pins configuration in Exynos5250
  ARM: dts: at91: sama5d2: Fix PMERRLOC resource size
  video: fbdev: atari: Atari 2 bpp (STe) palette bugfix
  video: fbdev: sm712fb: Fix crash in smtcfb_read()
  drivers: hamradio: 6pack: fix UAF bug caused by mod_timer()
  ACPI: properties: Consistently return -ENOENT if there are no more references
  drbd: fix potential silent data corruption
  ALSA: cs4236: fix an incorrect NULL check on list iterator
  Revert "Input: clear BTN_RIGHT/MIDDLE on buttonpads"
  qed: validate and restrict untrusted VFs vlan promisc mode
  qed: display VF trust config
  scsi: libsas: Fix sas_ata_qc_issue() handling of NCQ NON DATA commands
  mempolicy: mbind_range() set_policy() after vma_merge()
  mm/pages_alloc.c: don't create ZONE_MOVABLE beyond the end of a node
  jffs2: fix memory leak in jffs2_scan_medium
  jffs2: fix memory leak in jffs2_do_mount_fs
  jffs2: fix use-after-free in jffs2_clear_xattr_subsystem
  can: ems_usb: ems_usb_start_xmit(): fix double dev_kfree_skb() in error path
  pinctrl: samsung: drop pin banks references on error paths
  NFSD: prevent underflow in nfssvc_decode_writeargs()
  SUNRPC: avoid race between mod_timer() and del_timer_sync()
  Documentation: update stable tree link
  Documentation: add link to stable release candidate tree
  ptrace: Check PTRACE_O_SUSPEND_SECCOMP permission on PTRACE_SEIZE
  clk: uniphier: Fix fixed-rate initialization
  iio: inkern: make a best effort on offset calculation
  iio: inkern: apply consumer scale when no channel scale is available
  iio: inkern: apply consumer scale on IIO_VAL_INT cases
  coresight: Fix TRCCONFIGR.QE sysfs interface
  USB: usb-storage: Fix use of bitfields for hardware data in ene_ub6250.c
  virtio-blk: Use blk_validate_block_size() to validate block size
  block: Add a helper to validate the block size
  tpm: fix reference counting for struct tpm_chip
  fuse: fix pipe buffer lifetime for direct_io
  af_key: add __GFP_ZERO flag for compose_sadb_supported in function pfkey_register
  spi: Fix erroneous sgs value with min_t()
  spi: Fix invalid sgs value
  ethernet: sun: Free the coherent when failing in probing
  virtio_console: break out of buf poll on remove
  netdevice: add the case if dev is NULL
  USB: serial: simple: add Nokia phone driver
  USB: serial: pl2303: add IBM device IDs
  ANDROID: incremental-fs: limit mount stack depth
  UPSTREAM: binderfs: use __u32 for device numbers
  Linux 4.14.275
  arm64: Use the clearbhb instruction in mitigations
  arm64: add ID_AA64ISAR2_EL1 sys register
  KVM: arm64: Allow SMCCC_ARCH_WORKAROUND_3 to be discovered and migrated
  arm64: Mitigate spectre style branch history side channels
  KVM: arm64: Add templates for BHB mitigation sequences
  arm64: proton-pack: Report Spectre-BHB vulnerabilities as part of Spectre-v2
  arm64: Add percpu vectors for EL1
  arm64: entry: Add macro for reading symbol addresses from the trampoline
  arm64: entry: Add vectors that have the bhb mitigation sequences
  arm64: entry: Add non-kpti __bp_harden_el1_vectors for mitigations
  arm64: entry: Allow the trampoline text to occupy multiple pages
  arm64: entry: Make the kpti trampoline's kpti sequence optional
  arm64: entry: Move trampoline macros out of ifdef'd section
  arm64: entry: Don't assume tramp_vectors is the start of the vectors
  arm64: entry: Allow tramp_alias to access symbols after the 4K boundary
  arm64: entry: Move the trampoline data page before the text page
  arm64: entry: Free up another register on kpti's tramp_exit path
  arm64: entry: Make the trampoline cleanup optional
  arm64: entry.S: Add ventry overflow sanity checks
  arm64: Add Cortex-X2 CPU part definition
  arm64: Add Neoverse-N2, Cortex-A710 CPU part definition
  arm64: Add part number for Arm Cortex-A77
  arm64: Add part number for Neoverse N1
  arm64: Make ARM64_ERRATUM_1188873 depend on COMPAT
  arm64: Add silicon-errata.txt entry for ARM erratum 1188873
  arm64: arch_timer: avoid unused function warning
  arm64: arch_timer: Add workaround for ARM erratum 1188873
  Linux 4.14.274
  llc: only change llc->dev when bind() succeeds
  mac80211: fix potential double free on mesh join
  crypto: qat - disable registration of algorithms
  ACPI: video: Force backlight native for Clevo NL5xRU and NL5xNU
  ACPI: battery: Add device HID and quirk for Microsoft Surface Go 3
  ACPI / x86: Work around broken XSDT on Advantech DAC-BJ01 board
  netfilter: nf_tables: initialize registers in nft_do_chain()
  drivers: net: xgene: Fix regression in CRC stripping
  ALSA: pci: fix reading of swapped values from pcmreg in AC97 codec
  ALSA: cmipci: Restore aux vol on suspend/resume
  ALSA: usb-audio: Add mute TLV for playback volumes on RODE NT-USB
  ALSA: pcm: Add stream lock during PCM reset ioctl operations
  llc: fix netdevice reference leaks in llc_ui_bind()
  thermal: int340x: fix memory leak in int3400_notify()
  staging: fbtft: fb_st7789v: reset display before initialization
  esp: Fix possible buffer overflow in ESP transformation
  net: ipv6: fix skb_over_panic in __ip6_append_data
  nfc: st21nfca: Fix potential buffer overflows in EVT_TRANSACTION
  Linux 4.14.273
  perf symbols: Fix symbol size calculation condition
  Input: aiptek - properly check endpoint type
  usb: gadget: Fix use-after-free bug by not setting udc->dev.driver
  usb: gadget: rndis: prevent integer overflow in rndis_set_response()
  net: handle ARPHRD_PIMREG in dev_is_mac_header_xmit()
  atm: eni: Add check for dma_map_single
  net/packet: fix slab-out-of-bounds access in packet_recvmsg()
  efi: fix return value of __setup handlers
  fs: sysfs_emit: Remove PAGE_SIZE alignment check
  kselftest/vm: fix tests build with old libc
  sfc: extend the locking on mcdi->seqno
  tcp: make tcp_read_sock() more robust
  nl80211: Update bss channel on channel switch for P2P_CLIENT
  atm: firestream: check the return value of ioremap() in fs_init()
  can: rcar_canfd: rcar_canfd_channel_probe(): register the CAN device when fully ready
  ARM: 9178/1: fix unmet dependency on BITREVERSE for HAVE_ARCH_BITREVERSE
  MIPS: smp: fill in sibling and core maps earlier
  ARM: dts: rockchip: fix a typo on rk3288 crypto-controller
  arm64: dts: rockchip: fix rk3399-puma eMMC HS400 signal integrity
  xfrm: Fix xfrm migrate issues when address family changes
  sctp: fix the processing for INIT_ACK chunk
  sctp: fix the processing for INIT chunk
  Linux 4.14.272
  btrfs: unlock newly allocated extent buffer after error
  ext4: add check to prevent attempting to resize an fs with sparse_super2
  ARM: fix Thumb2 regression with Spectre BHB
  virtio: acknowledge all features before access
  virtio: unexport virtio_finalize_features
  staging: gdm724x: fix use after free in gdm_lte_rx()
  ARM: Spectre-BHB: provide empty stub for non-config
  selftests/memfd: clean up mapping in mfd_fail_write
  tracing: Ensure trace buffer is at least 4096 bytes large
  Revert "xen-netback: Check for hotplug-status existence before watching"
  Revert "xen-netback: remove 'hotplug-status' once it has served its purpose"
  net-sysfs: add check for netdevice being present to speed_show
  sctp: fix kernel-infoleak for SCTP sockets
  gpio: ts4900: Do not set DAT and OE together
  NFC: port100: fix use-after-free in port100_send_complete
  net/mlx5: Fix size field in bufferx_reg struct
  ax25: Fix NULL pointer dereference in ax25_kill_by_device
  net: ethernet: lpc_eth: Handle error for clk_enable
  net: ethernet: ti: cpts: Handle error for clk_enable
  ethernet: Fix error handling in xemaclite_of_probe
  qed: return status of qed_iov_get_link
  net: qlogic: check the return value of dma_alloc_coherent() in qed_vf_hw_prepare()
2022-05-03 12:46:23 +07:00

2919 lines
72 KiB
C

/*
* Simple NUMA memory policy for the Linux kernel.
*
* Copyright 2003,2004 Andi Kleen, SuSE Labs.
* (C) Copyright 2005 Christoph Lameter, Silicon Graphics, Inc.
* Subject to the GNU Public License, version 2.
*
* NUMA policy allows the user to give hints in which node(s) memory should
* be allocated.
*
* Support four policies per VMA and per process:
*
* The VMA policy has priority over the process policy for a page fault.
*
* interleave Allocate memory interleaved over a set of nodes,
* with normal fallback if it fails.
* For VMA based allocations this interleaves based on the
* offset into the backing object or offset into the mapping
* for anonymous memory. For process policy an process counter
* is used.
*
* bind Only allocate memory on a specific set of nodes,
* no fallback.
* FIXME: memory is allocated starting with the first node
* to the last. It would be better if bind would truly restrict
* the allocation to memory nodes instead
*
* preferred Try a specific node first before normal fallback.
* As a special case NUMA_NO_NODE here means do the allocation
* on the local CPU. This is normally identical to default,
* but useful to set in a VMA when you have a non default
* process policy.
*
* default Allocate on the local node first, or when on a VMA
* use the process policy. This is what Linux always did
* in a NUMA aware kernel and still does by, ahem, default.
*
* The process policy is applied for most non interrupt memory allocations
* in that process' context. Interrupts ignore the policies and always
* try to allocate on the local CPU. The VMA policy is only applied for memory
* allocations for a VMA in the VM.
*
* Currently there are a few corner cases in swapping where the policy
* is not applied, but the majority should be handled. When process policy
* is used it is not remembered over swap outs/swap ins.
*
* Only the highest zone in the zone hierarchy gets policied. Allocations
* requesting a lower zone just use default policy. This implies that
* on systems with highmem kernel lowmem allocation don't get policied.
* Same with GFP_DMA allocations.
*
* For shmfs/tmpfs/hugetlbfs shared memory the policy is shared between
* all users and remembered even when nobody has memory mapped.
*/
/* Notebook:
fix mmap readahead to honour policy and enable policy for any page cache
object
statistics for bigpages
global policy for page cache? currently it uses process policy. Requires
first item above.
handle mremap for shared memory (currently ignored for the policy)
grows down?
make bind policy root only? It can trigger oom much faster and the
kernel is not always grateful with that.
*/
#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt
#include <linux/mempolicy.h>
#include <linux/mm.h>
#include <linux/highmem.h>
#include <linux/hugetlb.h>
#include <linux/kernel.h>
#include <linux/sched.h>
#include <linux/sched/mm.h>
#include <linux/sched/numa_balancing.h>
#include <linux/sched/task.h>
#include <linux/nodemask.h>
#include <linux/cpuset.h>
#include <linux/slab.h>
#include <linux/string.h>
#include <linux/export.h>
#include <linux/nsproxy.h>
#include <linux/interrupt.h>
#include <linux/init.h>
#include <linux/compat.h>
#include <linux/swap.h>
#include <linux/seq_file.h>
#include <linux/proc_fs.h>
#include <linux/migrate.h>
#include <linux/ksm.h>
#include <linux/rmap.h>
#include <linux/security.h>
#include <linux/syscalls.h>
#include <linux/ctype.h>
#include <linux/mm_inline.h>
#include <linux/mmu_notifier.h>
#include <linux/printk.h>
#include <linux/swapops.h>
#include <asm/tlbflush.h>
#include <linux/uaccess.h>
#include "internal.h"
/* Internal flags */
#define MPOL_MF_DISCONTIG_OK (MPOL_MF_INTERNAL << 0) /* Skip checks for continuous vmas */
#define MPOL_MF_INVERT (MPOL_MF_INTERNAL << 1) /* Invert check for nodemask */
static struct kmem_cache *policy_cache;
static struct kmem_cache *sn_cache;
/* Highest zone. An specific allocation for a zone below that is not
policied. */
enum zone_type policy_zone = 0;
/*
* run-time system-wide default policy => local allocation
*/
static struct mempolicy default_policy = {
.refcnt = ATOMIC_INIT(1), /* never free it */
.mode = MPOL_PREFERRED,
.flags = MPOL_F_LOCAL,
};
static struct mempolicy preferred_node_policy[MAX_NUMNODES];
struct mempolicy *get_task_policy(struct task_struct *p)
{
struct mempolicy *pol = p->mempolicy;
int node;
if (pol)
return pol;
node = numa_node_id();
if (node != NUMA_NO_NODE) {
pol = &preferred_node_policy[node];
/* preferred_node_policy is not initialised early in boot */
if (pol->mode)
return pol;
}
return &default_policy;
}
static const struct mempolicy_operations {
int (*create)(struct mempolicy *pol, const nodemask_t *nodes);
void (*rebind)(struct mempolicy *pol, const nodemask_t *nodes);
} mpol_ops[MPOL_MAX];
static inline int mpol_store_user_nodemask(const struct mempolicy *pol)
{
return pol->flags & MPOL_MODE_FLAGS;
}
static void mpol_relative_nodemask(nodemask_t *ret, const nodemask_t *orig,
const nodemask_t *rel)
{
nodemask_t tmp;
nodes_fold(tmp, *orig, nodes_weight(*rel));
nodes_onto(*ret, tmp, *rel);
}
static int mpol_new_interleave(struct mempolicy *pol, const nodemask_t *nodes)
{
if (nodes_empty(*nodes))
return -EINVAL;
pol->v.nodes = *nodes;
return 0;
}
static int mpol_new_preferred(struct mempolicy *pol, const nodemask_t *nodes)
{
if (!nodes)
pol->flags |= MPOL_F_LOCAL; /* local allocation */
else if (nodes_empty(*nodes))
return -EINVAL; /* no allowed nodes */
else
pol->v.preferred_node = first_node(*nodes);
return 0;
}
static int mpol_new_bind(struct mempolicy *pol, const nodemask_t *nodes)
{
if (nodes_empty(*nodes))
return -EINVAL;
pol->v.nodes = *nodes;
return 0;
}
/*
* mpol_set_nodemask is called after mpol_new() to set up the nodemask, if
* any, for the new policy. mpol_new() has already validated the nodes
* parameter with respect to the policy mode and flags. But, we need to
* handle an empty nodemask with MPOL_PREFERRED here.
*
* Must be called holding task's alloc_lock to protect task's mems_allowed
* and mempolicy. May also be called holding the mmap_semaphore for write.
*/
static int mpol_set_nodemask(struct mempolicy *pol,
const nodemask_t *nodes, struct nodemask_scratch *nsc)
{
int ret;
/* if mode is MPOL_DEFAULT, pol is NULL. This is right. */
if (pol == NULL)
return 0;
/* Check N_MEMORY */
nodes_and(nsc->mask1,
cpuset_current_mems_allowed, node_states[N_MEMORY]);
VM_BUG_ON(!nodes);
if (pol->mode == MPOL_PREFERRED && nodes_empty(*nodes))
nodes = NULL; /* explicit local allocation */
else {
if (pol->flags & MPOL_F_RELATIVE_NODES)
mpol_relative_nodemask(&nsc->mask2, nodes, &nsc->mask1);
else
nodes_and(nsc->mask2, *nodes, nsc->mask1);
if (mpol_store_user_nodemask(pol))
pol->w.user_nodemask = *nodes;
else
pol->w.cpuset_mems_allowed =
cpuset_current_mems_allowed;
}
if (nodes)
ret = mpol_ops[pol->mode].create(pol, &nsc->mask2);
else
ret = mpol_ops[pol->mode].create(pol, NULL);
return ret;
}
/*
* This function just creates a new policy, does some check and simple
* initialization. You must invoke mpol_set_nodemask() to set nodes.
*/
static struct mempolicy *mpol_new(unsigned short mode, unsigned short flags,
nodemask_t *nodes)
{
struct mempolicy *policy;
pr_debug("setting mode %d flags %d nodes[0] %lx\n",
mode, flags, nodes ? nodes_addr(*nodes)[0] : NUMA_NO_NODE);
if (mode == MPOL_DEFAULT) {
if (nodes && !nodes_empty(*nodes))
return ERR_PTR(-EINVAL);
return NULL;
}
VM_BUG_ON(!nodes);
/*
* MPOL_PREFERRED cannot be used with MPOL_F_STATIC_NODES or
* MPOL_F_RELATIVE_NODES if the nodemask is empty (local allocation).
* All other modes require a valid pointer to a non-empty nodemask.
*/
if (mode == MPOL_PREFERRED) {
if (nodes_empty(*nodes)) {
if (((flags & MPOL_F_STATIC_NODES) ||
(flags & MPOL_F_RELATIVE_NODES)))
return ERR_PTR(-EINVAL);
}
} else if (mode == MPOL_LOCAL) {
if (!nodes_empty(*nodes) ||
(flags & MPOL_F_STATIC_NODES) ||
(flags & MPOL_F_RELATIVE_NODES))
return ERR_PTR(-EINVAL);
mode = MPOL_PREFERRED;
} else if (nodes_empty(*nodes))
return ERR_PTR(-EINVAL);
policy = kmem_cache_alloc(policy_cache, GFP_KERNEL);
if (!policy)
return ERR_PTR(-ENOMEM);
atomic_set(&policy->refcnt, 1);
policy->mode = mode;
policy->flags = flags;
return policy;
}
/* Slow path of a mpol destructor. */
void __mpol_put(struct mempolicy *p)
{
if (!atomic_dec_and_test(&p->refcnt))
return;
kmem_cache_free(policy_cache, p);
}
static void mpol_rebind_default(struct mempolicy *pol, const nodemask_t *nodes)
{
}
static void mpol_rebind_nodemask(struct mempolicy *pol, const nodemask_t *nodes)
{
nodemask_t tmp;
if (pol->flags & MPOL_F_STATIC_NODES)
nodes_and(tmp, pol->w.user_nodemask, *nodes);
else if (pol->flags & MPOL_F_RELATIVE_NODES)
mpol_relative_nodemask(&tmp, &pol->w.user_nodemask, nodes);
else {
nodes_remap(tmp, pol->v.nodes,pol->w.cpuset_mems_allowed,
*nodes);
pol->w.cpuset_mems_allowed = *nodes;
}
if (nodes_empty(tmp))
tmp = *nodes;
pol->v.nodes = tmp;
}
static void mpol_rebind_preferred(struct mempolicy *pol,
const nodemask_t *nodes)
{
nodemask_t tmp;
if (pol->flags & MPOL_F_STATIC_NODES) {
int node = first_node(pol->w.user_nodemask);
if (node_isset(node, *nodes)) {
pol->v.preferred_node = node;
pol->flags &= ~MPOL_F_LOCAL;
} else
pol->flags |= MPOL_F_LOCAL;
} else if (pol->flags & MPOL_F_RELATIVE_NODES) {
mpol_relative_nodemask(&tmp, &pol->w.user_nodemask, nodes);
pol->v.preferred_node = first_node(tmp);
} else if (!(pol->flags & MPOL_F_LOCAL)) {
pol->v.preferred_node = node_remap(pol->v.preferred_node,
pol->w.cpuset_mems_allowed,
*nodes);
pol->w.cpuset_mems_allowed = *nodes;
}
}
/*
* mpol_rebind_policy - Migrate a policy to a different set of nodes
*
* Per-vma policies are protected by mmap_sem. Allocations using per-task
* policies are protected by task->mems_allowed_seq to prevent a premature
* OOM/allocation failure due to parallel nodemask modification.
*/
static void mpol_rebind_policy(struct mempolicy *pol, const nodemask_t *newmask)
{
if (!pol)
return;
if (!mpol_store_user_nodemask(pol) && !(pol->flags & MPOL_F_LOCAL) &&
nodes_equal(pol->w.cpuset_mems_allowed, *newmask))
return;
mpol_ops[pol->mode].rebind(pol, newmask);
}
/*
* Wrapper for mpol_rebind_policy() that just requires task
* pointer, and updates task mempolicy.
*
* Called with task's alloc_lock held.
*/
void mpol_rebind_task(struct task_struct *tsk, const nodemask_t *new)
{
mpol_rebind_policy(tsk->mempolicy, new);
}
/*
* Rebind each vma in mm to new nodemask.
*
* Call holding a reference to mm. Takes mm->mmap_sem during call.
*/
void mpol_rebind_mm(struct mm_struct *mm, nodemask_t *new)
{
struct vm_area_struct *vma;
down_write(&mm->mmap_sem);
for (vma = mm->mmap; vma; vma = vma->vm_next) {
vm_write_begin(vma);
mpol_rebind_policy(vma->vm_policy, new);
vm_write_end(vma);
}
up_write(&mm->mmap_sem);
}
static const struct mempolicy_operations mpol_ops[MPOL_MAX] = {
[MPOL_DEFAULT] = {
.rebind = mpol_rebind_default,
},
[MPOL_INTERLEAVE] = {
.create = mpol_new_interleave,
.rebind = mpol_rebind_nodemask,
},
[MPOL_PREFERRED] = {
.create = mpol_new_preferred,
.rebind = mpol_rebind_preferred,
},
[MPOL_BIND] = {
.create = mpol_new_bind,
.rebind = mpol_rebind_nodemask,
},
};
static void migrate_page_add(struct page *page, struct list_head *pagelist,
unsigned long flags);
struct queue_pages {
struct list_head *pagelist;
unsigned long flags;
nodemask_t *nmask;
struct vm_area_struct *prev;
};
/*
* Check if the page's nid is in qp->nmask.
*
* If MPOL_MF_INVERT is set in qp->flags, check if the nid is
* in the invert of qp->nmask.
*/
static inline bool queue_pages_required(struct page *page,
struct queue_pages *qp)
{
int nid = page_to_nid(page);
unsigned long flags = qp->flags;
return node_isset(nid, *qp->nmask) == !(flags & MPOL_MF_INVERT);
}
/*
* queue_pages_pmd() has three possible return values:
* 1 - pages are placed on the right node or queued successfully.
* 0 - THP was split.
* -EIO - is migration entry or MPOL_MF_STRICT was specified and an existing
* page was already on a node that does not follow the policy.
*/
static int queue_pages_pmd(pmd_t *pmd, spinlock_t *ptl, unsigned long addr,
unsigned long end, struct mm_walk *walk)
{
int ret = 0;
struct page *page;
struct queue_pages *qp = walk->private;
unsigned long flags;
if (unlikely(is_pmd_migration_entry(*pmd))) {
ret = -EIO;
goto unlock;
}
page = pmd_page(*pmd);
if (is_huge_zero_page(page)) {
spin_unlock(ptl);
__split_huge_pmd(walk->vma, pmd, addr, false, NULL);
goto out;
}
if (!thp_migration_supported()) {
get_page(page);
spin_unlock(ptl);
lock_page(page);
ret = split_huge_page(page);
unlock_page(page);
put_page(page);
goto out;
}
if (!queue_pages_required(page, qp)) {
ret = 1;
goto unlock;
}
ret = 1;
flags = qp->flags;
/* go to thp migration */
if (flags & (MPOL_MF_MOVE | MPOL_MF_MOVE_ALL)) {
if (!vma_migratable(walk->vma)) {
ret = -EIO;
goto unlock;
}
migrate_page_add(page, qp->pagelist, flags);
} else
ret = -EIO;
unlock:
spin_unlock(ptl);
out:
return ret;
}
/*
* Scan through pages checking if pages follow certain conditions,
* and move them to the pagelist if they do.
*/
static int queue_pages_pte_range(pmd_t *pmd, unsigned long addr,
unsigned long end, struct mm_walk *walk)
{
struct vm_area_struct *vma = walk->vma;
struct page *page;
struct queue_pages *qp = walk->private;
unsigned long flags = qp->flags;
int ret;
pte_t *pte, *mapped_pte;
spinlock_t *ptl;
ptl = pmd_trans_huge_lock(pmd, vma);
if (ptl) {
ret = queue_pages_pmd(pmd, ptl, addr, end, walk);
if (ret > 0)
return 0;
else if (ret < 0)
return ret;
}
if (pmd_trans_unstable(pmd))
return 0;
retry:
mapped_pte = pte = pte_offset_map_lock(walk->mm, pmd, addr, &ptl);
for (; addr != end; pte++, addr += PAGE_SIZE) {
if (!pte_present(*pte))
continue;
page = vm_normal_page(vma, addr, *pte);
if (!page)
continue;
/*
* vm_normal_page() filters out zero pages, but there might
* still be PageReserved pages to skip, perhaps in a VDSO.
*/
if (PageReserved(page))
continue;
if (!queue_pages_required(page, qp))
continue;
if (PageTransCompound(page) && !thp_migration_supported()) {
get_page(page);
pte_unmap_unlock(pte, ptl);
lock_page(page);
ret = split_huge_page(page);
unlock_page(page);
put_page(page);
/* Failed to split -- skip. */
if (ret) {
pte = pte_offset_map_lock(walk->mm, pmd,
addr, &ptl);
continue;
}
goto retry;
}
if (flags & (MPOL_MF_MOVE | MPOL_MF_MOVE_ALL)) {
if (!vma_migratable(vma))
break;
migrate_page_add(page, qp->pagelist, flags);
} else
break;
}
pte_unmap_unlock(mapped_pte, ptl);
cond_resched();
return addr != end ? -EIO : 0;
}
static int queue_pages_hugetlb(pte_t *pte, unsigned long hmask,
unsigned long addr, unsigned long end,
struct mm_walk *walk)
{
#ifdef CONFIG_HUGETLB_PAGE
struct queue_pages *qp = walk->private;
unsigned long flags = qp->flags;
struct page *page;
spinlock_t *ptl;
pte_t entry;
ptl = huge_pte_lock(hstate_vma(walk->vma), walk->mm, pte);
entry = huge_ptep_get(pte);
if (!pte_present(entry))
goto unlock;
page = pte_page(entry);
if (!queue_pages_required(page, qp))
goto unlock;
/* With MPOL_MF_MOVE, we migrate only unshared hugepage. */
if (flags & (MPOL_MF_MOVE_ALL) ||
(flags & MPOL_MF_MOVE && page_mapcount(page) == 1))
isolate_huge_page(page, qp->pagelist);
unlock:
spin_unlock(ptl);
#else
BUG();
#endif
return 0;
}
#ifdef CONFIG_NUMA_BALANCING
/*
* This is used to mark a range of virtual addresses to be inaccessible.
* These are later cleared by a NUMA hinting fault. Depending on these
* faults, pages may be migrated for better NUMA placement.
*
* This is assuming that NUMA faults are handled using PROT_NONE. If
* an architecture makes a different choice, it will need further
* changes to the core.
*/
unsigned long change_prot_numa(struct vm_area_struct *vma,
unsigned long addr, unsigned long end)
{
int nr_updated;
vm_write_begin(vma);
nr_updated = change_protection(vma, addr, end, PAGE_NONE, 0, 1);
if (nr_updated)
count_vm_numa_events(NUMA_PTE_UPDATES, nr_updated);
vm_write_end(vma);
return nr_updated;
}
#else
static unsigned long change_prot_numa(struct vm_area_struct *vma,
unsigned long addr, unsigned long end)
{
return 0;
}
#endif /* CONFIG_NUMA_BALANCING */
static int queue_pages_test_walk(unsigned long start, unsigned long end,
struct mm_walk *walk)
{
struct vm_area_struct *vma = walk->vma;
struct queue_pages *qp = walk->private;
unsigned long endvma = vma->vm_end;
unsigned long flags = qp->flags;
/*
* Need check MPOL_MF_STRICT to return -EIO if possible
* regardless of vma_migratable
*/
if (!vma_migratable(vma) &&
!(flags & MPOL_MF_STRICT))
return 1;
if (endvma > end)
endvma = end;
if (vma->vm_start > start)
start = vma->vm_start;
if (!(flags & MPOL_MF_DISCONTIG_OK)) {
if (!vma->vm_next && vma->vm_end < end)
return -EFAULT;
if (qp->prev && qp->prev->vm_end < vma->vm_start)
return -EFAULT;
}
qp->prev = vma;
if (flags & MPOL_MF_LAZY) {
/* Similar to task_numa_work, skip inaccessible VMAs */
if (!is_vm_hugetlb_page(vma) &&
(vma->vm_flags & (VM_READ | VM_EXEC | VM_WRITE)) &&
!(vma->vm_flags & VM_MIXEDMAP))
change_prot_numa(vma, start, endvma);
return 1;
}
/* queue pages from current vma */
if (flags & MPOL_MF_VALID)
return 0;
return 1;
}
/*
* Walk through page tables and collect pages to be migrated.
*
* If pages found in a given range are on a set of nodes (determined by
* @nodes and @flags,) it's isolated and queued to the pagelist which is
* passed via @private.)
*/
static int
queue_pages_range(struct mm_struct *mm, unsigned long start, unsigned long end,
nodemask_t *nodes, unsigned long flags,
struct list_head *pagelist)
{
struct queue_pages qp = {
.pagelist = pagelist,
.flags = flags,
.nmask = nodes,
.prev = NULL,
};
struct mm_walk queue_pages_walk = {
.hugetlb_entry = queue_pages_hugetlb,
.pmd_entry = queue_pages_pte_range,
.test_walk = queue_pages_test_walk,
.mm = mm,
.private = &qp,
};
return walk_page_range(start, end, &queue_pages_walk);
}
/*
* Apply policy to a single VMA
* This must be called with the mmap_sem held for writing.
*/
static int vma_replace_policy(struct vm_area_struct *vma,
struct mempolicy *pol)
{
int err;
struct mempolicy *old;
struct mempolicy *new;
pr_debug("vma %lx-%lx/%lx vm_ops %p vm_file %p set_policy %p\n",
vma->vm_start, vma->vm_end, vma->vm_pgoff,
vma->vm_ops, vma->vm_file,
vma->vm_ops ? vma->vm_ops->set_policy : NULL);
new = mpol_dup(pol);
if (IS_ERR(new))
return PTR_ERR(new);
vm_write_begin(vma);
if (vma->vm_ops && vma->vm_ops->set_policy) {
err = vma->vm_ops->set_policy(vma, new);
if (err)
goto err_out;
}
old = vma->vm_policy;
/*
* The speculative page fault handler accesses this field without
* hodling the mmap_sem.
*/
WRITE_ONCE(vma->vm_policy, new);
vm_write_end(vma);
mpol_put(old);
return 0;
err_out:
vm_write_end(vma);
mpol_put(new);
return err;
}
/* Step 2: apply policy to a range and do splits. */
static int mbind_range(struct mm_struct *mm, unsigned long start,
unsigned long end, struct mempolicy *new_pol)
{
struct vm_area_struct *prev;
struct vm_area_struct *vma;
int err = 0;
pgoff_t pgoff;
unsigned long vmstart;
unsigned long vmend;
vma = find_vma(mm, start);
if (!vma || vma->vm_start > start)
return -EFAULT;
prev = vma->vm_prev;
if (start > vma->vm_start)
prev = vma;
for (; vma && vma->vm_start < end; prev = vma, vma = vma->vm_next) {
vmstart = max(start, vma->vm_start);
vmend = min(end, vma->vm_end);
if (mpol_equal(vma_policy(vma), new_pol))
continue;
pgoff = vma->vm_pgoff +
((vmstart - vma->vm_start) >> PAGE_SHIFT);
prev = vma_merge(mm, prev, vmstart, vmend, vma->vm_flags,
vma->anon_vma, vma->vm_file, pgoff,
new_pol, vma->vm_userfaultfd_ctx,
vma_get_anon_name(vma));
if (prev) {
vma = prev;
goto replace;
}
if (vma->vm_start != vmstart) {
err = split_vma(vma->vm_mm, vma, vmstart, 1);
if (err)
goto out;
}
if (vma->vm_end != vmend) {
err = split_vma(vma->vm_mm, vma, vmend, 0);
if (err)
goto out;
}
replace:
err = vma_replace_policy(vma, new_pol);
if (err)
goto out;
}
out:
return err;
}
/* Set the process memory policy */
static long do_set_mempolicy(unsigned short mode, unsigned short flags,
nodemask_t *nodes)
{
struct mempolicy *new, *old;
NODEMASK_SCRATCH(scratch);
int ret;
if (!scratch)
return -ENOMEM;
new = mpol_new(mode, flags, nodes);
if (IS_ERR(new)) {
ret = PTR_ERR(new);
goto out;
}
task_lock(current);
ret = mpol_set_nodemask(new, nodes, scratch);
if (ret) {
task_unlock(current);
mpol_put(new);
goto out;
}
old = current->mempolicy;
current->mempolicy = new;
if (new && new->mode == MPOL_INTERLEAVE)
current->il_prev = MAX_NUMNODES-1;
task_unlock(current);
mpol_put(old);
ret = 0;
out:
NODEMASK_SCRATCH_FREE(scratch);
return ret;
}
/*
* Return nodemask for policy for get_mempolicy() query
*
* Called with task's alloc_lock held
*/
static void get_policy_nodemask(struct mempolicy *p, nodemask_t *nodes)
{
nodes_clear(*nodes);
if (p == &default_policy)
return;
switch (p->mode) {
case MPOL_BIND:
/* Fall through */
case MPOL_INTERLEAVE:
*nodes = p->v.nodes;
break;
case MPOL_PREFERRED:
if (!(p->flags & MPOL_F_LOCAL))
node_set(p->v.preferred_node, *nodes);
/* else return empty node mask for local allocation */
break;
default:
BUG();
}
}
static int lookup_node(unsigned long addr)
{
struct page *p;
int err;
err = get_user_pages(addr & PAGE_MASK, 1, 0, &p, NULL);
if (err >= 0) {
err = page_to_nid(p);
put_page(p);
}
return err;
}
/* Retrieve NUMA policy */
static long do_get_mempolicy(int *policy, nodemask_t *nmask,
unsigned long addr, unsigned long flags)
{
int err;
struct mm_struct *mm = current->mm;
struct vm_area_struct *vma = NULL;
struct mempolicy *pol = current->mempolicy;
if (flags &
~(unsigned long)(MPOL_F_NODE|MPOL_F_ADDR|MPOL_F_MEMS_ALLOWED))
return -EINVAL;
if (flags & MPOL_F_MEMS_ALLOWED) {
if (flags & (MPOL_F_NODE|MPOL_F_ADDR))
return -EINVAL;
*policy = 0; /* just so it's initialized */
task_lock(current);
*nmask = cpuset_current_mems_allowed;
task_unlock(current);
return 0;
}
if (flags & MPOL_F_ADDR) {
/*
* Do NOT fall back to task policy if the
* vma/shared policy at addr is NULL. We
* want to return MPOL_DEFAULT in this case.
*/
down_read(&mm->mmap_sem);
vma = find_vma_intersection(mm, addr, addr+1);
if (!vma) {
up_read(&mm->mmap_sem);
return -EFAULT;
}
if (vma->vm_ops && vma->vm_ops->get_policy)
pol = vma->vm_ops->get_policy(vma, addr);
else
pol = vma->vm_policy;
} else if (addr)
return -EINVAL;
if (!pol)
pol = &default_policy; /* indicates default behavior */
if (flags & MPOL_F_NODE) {
if (flags & MPOL_F_ADDR) {
err = lookup_node(addr);
if (err < 0)
goto out;
*policy = err;
} else if (pol == current->mempolicy &&
pol->mode == MPOL_INTERLEAVE) {
*policy = next_node_in(current->il_prev, pol->v.nodes);
} else {
err = -EINVAL;
goto out;
}
} else {
*policy = pol == &default_policy ? MPOL_DEFAULT :
pol->mode;
/*
* Internal mempolicy flags must be masked off before exposing
* the policy to userspace.
*/
*policy |= (pol->flags & MPOL_MODE_FLAGS);
}
err = 0;
if (nmask) {
if (mpol_store_user_nodemask(pol)) {
*nmask = pol->w.user_nodemask;
} else {
task_lock(current);
get_policy_nodemask(pol, nmask);
task_unlock(current);
}
}
out:
mpol_cond_put(pol);
if (vma)
up_read(&current->mm->mmap_sem);
return err;
}
#ifdef CONFIG_MIGRATION
/*
* page migration, thp tail pages can be passed.
*/
static void migrate_page_add(struct page *page, struct list_head *pagelist,
unsigned long flags)
{
struct page *head = compound_head(page);
/*
* Avoid migrating a page that is shared with others.
*/
if ((flags & MPOL_MF_MOVE_ALL) || page_mapcount(head) == 1) {
if (!isolate_lru_page(head)) {
list_add_tail(&head->lru, pagelist);
mod_node_page_state(page_pgdat(head),
NR_ISOLATED_ANON + page_is_file_cache(head),
hpage_nr_pages(head));
}
}
}
static struct page *new_node_page(struct page *page, unsigned long node, int **x)
{
if (PageHuge(page))
return alloc_huge_page_node(page_hstate(compound_head(page)),
node);
else if (thp_migration_supported() && PageTransHuge(page)) {
struct page *thp;
thp = alloc_pages_node(node,
(GFP_TRANSHUGE | __GFP_THISNODE),
HPAGE_PMD_ORDER);
if (!thp)
return NULL;
prep_transhuge_page(thp);
return thp;
} else
return __alloc_pages_node(node, GFP_HIGHUSER_MOVABLE |
__GFP_THISNODE, 0);
}
/*
* Migrate pages from one node to a target node.
* Returns error or the number of pages not migrated.
*/
static int migrate_to_node(struct mm_struct *mm, int source, int dest,
int flags)
{
nodemask_t nmask;
LIST_HEAD(pagelist);
int err = 0;
nodes_clear(nmask);
node_set(source, nmask);
/*
* This does not "check" the range but isolates all pages that
* need migration. Between passing in the full user address
* space range and MPOL_MF_DISCONTIG_OK, this call can not fail.
*/
VM_BUG_ON(!(flags & (MPOL_MF_MOVE | MPOL_MF_MOVE_ALL)));
queue_pages_range(mm, mm->mmap->vm_start, mm->task_size, &nmask,
flags | MPOL_MF_DISCONTIG_OK, &pagelist);
if (!list_empty(&pagelist)) {
err = migrate_pages(&pagelist, new_node_page, NULL, dest,
MIGRATE_SYNC, MR_SYSCALL);
if (err)
putback_movable_pages(&pagelist);
}
return err;
}
/*
* Move pages between the two nodesets so as to preserve the physical
* layout as much as possible.
*
* Returns the number of page that could not be moved.
*/
int do_migrate_pages(struct mm_struct *mm, const nodemask_t *from,
const nodemask_t *to, int flags)
{
int busy = 0;
int err;
nodemask_t tmp;
err = migrate_prep();
if (err)
return err;
down_read(&mm->mmap_sem);
/*
* Find a 'source' bit set in 'tmp' whose corresponding 'dest'
* bit in 'to' is not also set in 'tmp'. Clear the found 'source'
* bit in 'tmp', and return that <source, dest> pair for migration.
* The pair of nodemasks 'to' and 'from' define the map.
*
* If no pair of bits is found that way, fallback to picking some
* pair of 'source' and 'dest' bits that are not the same. If the
* 'source' and 'dest' bits are the same, this represents a node
* that will be migrating to itself, so no pages need move.
*
* If no bits are left in 'tmp', or if all remaining bits left
* in 'tmp' correspond to the same bit in 'to', return false
* (nothing left to migrate).
*
* This lets us pick a pair of nodes to migrate between, such that
* if possible the dest node is not already occupied by some other
* source node, minimizing the risk of overloading the memory on a
* node that would happen if we migrated incoming memory to a node
* before migrating outgoing memory source that same node.
*
* A single scan of tmp is sufficient. As we go, we remember the
* most recent <s, d> pair that moved (s != d). If we find a pair
* that not only moved, but what's better, moved to an empty slot
* (d is not set in tmp), then we break out then, with that pair.
* Otherwise when we finish scanning from_tmp, we at least have the
* most recent <s, d> pair that moved. If we get all the way through
* the scan of tmp without finding any node that moved, much less
* moved to an empty node, then there is nothing left worth migrating.
*/
tmp = *from;
while (!nodes_empty(tmp)) {
int s,d;
int source = NUMA_NO_NODE;
int dest = 0;
for_each_node_mask(s, tmp) {
/*
* do_migrate_pages() tries to maintain the relative
* node relationship of the pages established between
* threads and memory areas.
*
* However if the number of source nodes is not equal to
* the number of destination nodes we can not preserve
* this node relative relationship. In that case, skip
* copying memory from a node that is in the destination
* mask.
*
* Example: [2,3,4] -> [3,4,5] moves everything.
* [0-7] - > [3,4,5] moves only 0,1,2,6,7.
*/
if ((nodes_weight(*from) != nodes_weight(*to)) &&
(node_isset(s, *to)))
continue;
d = node_remap(s, *from, *to);
if (s == d)
continue;
source = s; /* Node moved. Memorize */
dest = d;
/* dest not in remaining from nodes? */
if (!node_isset(dest, tmp))
break;
}
if (source == NUMA_NO_NODE)
break;
node_clear(source, tmp);
err = migrate_to_node(mm, source, dest, flags);
if (err > 0)
busy += err;
if (err < 0)
break;
}
up_read(&mm->mmap_sem);
if (err < 0)
return err;
return busy;
}
/*
* Allocate a new page for page migration based on vma policy.
* Start by assuming the page is mapped by the same vma as contains @start.
* Search forward from there, if not. N.B., this assumes that the
* list of pages handed to migrate_pages()--which is how we get here--
* is in virtual address order.
*/
static struct page *new_page(struct page *page, unsigned long start, int **x)
{
struct vm_area_struct *vma;
unsigned long uninitialized_var(address);
vma = find_vma(current->mm, start);
while (vma) {
address = page_address_in_vma(page, vma);
if (address != -EFAULT)
break;
vma = vma->vm_next;
}
if (PageHuge(page)) {
BUG_ON(!vma);
return alloc_huge_page_noerr(vma, address, 1);
} else if (thp_migration_supported() && PageTransHuge(page)) {
struct page *thp;
thp = alloc_hugepage_vma(GFP_TRANSHUGE, vma, address,
HPAGE_PMD_ORDER);
if (!thp)
return NULL;
prep_transhuge_page(thp);
return thp;
}
/*
* if !vma, alloc_page_vma() will use task or system default policy
*/
return alloc_page_vma(GFP_HIGHUSER_MOVABLE | __GFP_RETRY_MAYFAIL,
vma, address);
}
#else
static void migrate_page_add(struct page *page, struct list_head *pagelist,
unsigned long flags)
{
}
int do_migrate_pages(struct mm_struct *mm, const nodemask_t *from,
const nodemask_t *to, int flags)
{
return -ENOSYS;
}
static struct page *new_page(struct page *page, unsigned long start, int **x)
{
return NULL;
}
#endif
static long do_mbind(unsigned long start, unsigned long len,
unsigned short mode, unsigned short mode_flags,
nodemask_t *nmask, unsigned long flags)
{
struct mm_struct *mm = current->mm;
struct mempolicy *new;
unsigned long end;
int err;
LIST_HEAD(pagelist);
if (flags & ~(unsigned long)MPOL_MF_VALID)
return -EINVAL;
if ((flags & MPOL_MF_MOVE_ALL) && !capable(CAP_SYS_NICE))
return -EPERM;
if (start & ~PAGE_MASK)
return -EINVAL;
if (mode == MPOL_DEFAULT)
flags &= ~MPOL_MF_STRICT;
len = (len + PAGE_SIZE - 1) & PAGE_MASK;
end = start + len;
if (end < start)
return -EINVAL;
if (end == start)
return 0;
new = mpol_new(mode, mode_flags, nmask);
if (IS_ERR(new))
return PTR_ERR(new);
if (flags & MPOL_MF_LAZY)
new->flags |= MPOL_F_MOF;
/*
* If we are using the default policy then operation
* on discontinuous address spaces is okay after all
*/
if (!new)
flags |= MPOL_MF_DISCONTIG_OK;
pr_debug("mbind %lx-%lx mode:%d flags:%d nodes:%lx\n",
start, start + len, mode, mode_flags,
nmask ? nodes_addr(*nmask)[0] : NUMA_NO_NODE);
if (flags & (MPOL_MF_MOVE | MPOL_MF_MOVE_ALL)) {
err = migrate_prep();
if (err)
goto mpol_out;
}
{
NODEMASK_SCRATCH(scratch);
if (scratch) {
down_write(&mm->mmap_sem);
task_lock(current);
err = mpol_set_nodemask(new, nmask, scratch);
task_unlock(current);
if (err)
up_write(&mm->mmap_sem);
} else
err = -ENOMEM;
NODEMASK_SCRATCH_FREE(scratch);
}
if (err)
goto mpol_out;
err = queue_pages_range(mm, start, end, nmask,
flags | MPOL_MF_INVERT, &pagelist);
if (!err)
err = mbind_range(mm, start, end, new);
if (!err) {
int nr_failed = 0;
if (!list_empty(&pagelist)) {
WARN_ON_ONCE(flags & MPOL_MF_LAZY);
nr_failed = migrate_pages(&pagelist, new_page, NULL,
start, MIGRATE_SYNC, MR_MEMPOLICY_MBIND);
if (nr_failed)
putback_movable_pages(&pagelist);
}
if (nr_failed && (flags & MPOL_MF_STRICT))
err = -EIO;
} else
putback_movable_pages(&pagelist);
up_write(&mm->mmap_sem);
mpol_out:
mpol_put(new);
return err;
}
/*
* User space interface with variable sized bitmaps for nodelists.
*/
/* Copy a node mask from user space. */
static int get_nodes(nodemask_t *nodes, const unsigned long __user *nmask,
unsigned long maxnode)
{
unsigned long k;
unsigned long t;
unsigned long nlongs;
unsigned long endmask;
--maxnode;
nodes_clear(*nodes);
if (maxnode == 0 || !nmask)
return 0;
if (maxnode > PAGE_SIZE*BITS_PER_BYTE)
return -EINVAL;
nlongs = BITS_TO_LONGS(maxnode);
if ((maxnode % BITS_PER_LONG) == 0)
endmask = ~0UL;
else
endmask = (1UL << (maxnode % BITS_PER_LONG)) - 1;
/*
* When the user specified more nodes than supported just check
* if the non supported part is all zero.
*
* If maxnode have more longs than MAX_NUMNODES, check
* the bits in that area first. And then go through to
* check the rest bits which equal or bigger than MAX_NUMNODES.
* Otherwise, just check bits [MAX_NUMNODES, maxnode).
*/
if (nlongs > BITS_TO_LONGS(MAX_NUMNODES)) {
if (nlongs > PAGE_SIZE/sizeof(long))
return -EINVAL;
for (k = BITS_TO_LONGS(MAX_NUMNODES); k < nlongs; k++) {
if (get_user(t, nmask + k))
return -EFAULT;
if (k == nlongs - 1) {
if (t & endmask)
return -EINVAL;
} else if (t)
return -EINVAL;
}
nlongs = BITS_TO_LONGS(MAX_NUMNODES);
endmask = ~0UL;
}
if (maxnode > MAX_NUMNODES && MAX_NUMNODES % BITS_PER_LONG != 0) {
unsigned long valid_mask = endmask;
valid_mask &= ~((1UL << (MAX_NUMNODES % BITS_PER_LONG)) - 1);
if (get_user(t, nmask + nlongs - 1))
return -EFAULT;
if (t & valid_mask)
return -EINVAL;
}
if (copy_from_user(nodes_addr(*nodes), nmask, nlongs*sizeof(unsigned long)))
return -EFAULT;
nodes_addr(*nodes)[nlongs-1] &= endmask;
return 0;
}
/* Copy a kernel node mask to user space */
static int copy_nodes_to_user(unsigned long __user *mask, unsigned long maxnode,
nodemask_t *nodes)
{
unsigned long copy = ALIGN(maxnode-1, 64) / 8;
unsigned int nbytes = BITS_TO_LONGS(nr_node_ids) * sizeof(long);
if (copy > nbytes) {
if (copy > PAGE_SIZE)
return -EINVAL;
if (clear_user((char __user *)mask + nbytes, copy - nbytes))
return -EFAULT;
copy = nbytes;
}
return copy_to_user(mask, nodes_addr(*nodes), copy) ? -EFAULT : 0;
}
SYSCALL_DEFINE6(mbind, unsigned long, start, unsigned long, len,
unsigned long, mode, const unsigned long __user *, nmask,
unsigned long, maxnode, unsigned, flags)
{
nodemask_t nodes;
int err;
unsigned short mode_flags;
start = untagged_addr(start);
mode_flags = mode & MPOL_MODE_FLAGS;
mode &= ~MPOL_MODE_FLAGS;
if (mode >= MPOL_MAX)
return -EINVAL;
if ((mode_flags & MPOL_F_STATIC_NODES) &&
(mode_flags & MPOL_F_RELATIVE_NODES))
return -EINVAL;
err = get_nodes(&nodes, nmask, maxnode);
if (err)
return err;
return do_mbind(start, len, mode, mode_flags, &nodes, flags);
}
/* Set the process memory policy */
SYSCALL_DEFINE3(set_mempolicy, int, mode, const unsigned long __user *, nmask,
unsigned long, maxnode)
{
int err;
nodemask_t nodes;
unsigned short flags;
flags = mode & MPOL_MODE_FLAGS;
mode &= ~MPOL_MODE_FLAGS;
if ((unsigned int)mode >= MPOL_MAX)
return -EINVAL;
if ((flags & MPOL_F_STATIC_NODES) && (flags & MPOL_F_RELATIVE_NODES))
return -EINVAL;
err = get_nodes(&nodes, nmask, maxnode);
if (err)
return err;
return do_set_mempolicy(mode, flags, &nodes);
}
SYSCALL_DEFINE4(migrate_pages, pid_t, pid, unsigned long, maxnode,
const unsigned long __user *, old_nodes,
const unsigned long __user *, new_nodes)
{
const struct cred *cred = current_cred(), *tcred;
struct mm_struct *mm = NULL;
struct task_struct *task;
nodemask_t task_nodes;
int err;
nodemask_t *old;
nodemask_t *new;
NODEMASK_SCRATCH(scratch);
if (!scratch)
return -ENOMEM;
old = &scratch->mask1;
new = &scratch->mask2;
err = get_nodes(old, old_nodes, maxnode);
if (err)
goto out;
err = get_nodes(new, new_nodes, maxnode);
if (err)
goto out;
/* Find the mm_struct */
rcu_read_lock();
task = pid ? find_task_by_vpid(pid) : current;
if (!task) {
rcu_read_unlock();
err = -ESRCH;
goto out;
}
get_task_struct(task);
err = -EINVAL;
/*
* Check if this process has the right to modify the specified
* process. The right exists if the process has administrative
* capabilities, superuser privileges or the same
* userid as the target process.
*/
tcred = __task_cred(task);
if (!uid_eq(cred->euid, tcred->suid) && !uid_eq(cred->euid, tcred->uid) &&
!uid_eq(cred->uid, tcred->suid) && !uid_eq(cred->uid, tcred->uid) &&
!capable(CAP_SYS_NICE)) {
rcu_read_unlock();
err = -EPERM;
goto out_put;
}
rcu_read_unlock();
task_nodes = cpuset_mems_allowed(task);
/* Is the user allowed to access the target nodes? */
if (!nodes_subset(*new, task_nodes) && !capable(CAP_SYS_NICE)) {
err = -EPERM;
goto out_put;
}
task_nodes = cpuset_mems_allowed(current);
nodes_and(*new, *new, task_nodes);
if (nodes_empty(*new))
goto out_put;
nodes_and(*new, *new, node_states[N_MEMORY]);
if (nodes_empty(*new))
goto out_put;
err = security_task_movememory(task);
if (err)
goto out_put;
mm = get_task_mm(task);
put_task_struct(task);
if (!mm) {
err = -EINVAL;
goto out;
}
err = do_migrate_pages(mm, old, new,
capable(CAP_SYS_NICE) ? MPOL_MF_MOVE_ALL : MPOL_MF_MOVE);
mmput(mm);
out:
NODEMASK_SCRATCH_FREE(scratch);
return err;
out_put:
put_task_struct(task);
goto out;
}
/* Retrieve NUMA policy */
SYSCALL_DEFINE5(get_mempolicy, int __user *, policy,
unsigned long __user *, nmask, unsigned long, maxnode,
unsigned long, addr, unsigned long, flags)
{
int err;
int uninitialized_var(pval);
nodemask_t nodes;
addr = untagged_addr(addr);
if (nmask != NULL && maxnode < nr_node_ids)
return -EINVAL;
err = do_get_mempolicy(&pval, &nodes, addr, flags);
if (err)
return err;
if (policy && put_user(pval, policy))
return -EFAULT;
if (nmask)
err = copy_nodes_to_user(nmask, maxnode, &nodes);
return err;
}
#ifdef CONFIG_COMPAT
COMPAT_SYSCALL_DEFINE5(get_mempolicy, int __user *, policy,
compat_ulong_t __user *, nmask,
compat_ulong_t, maxnode,
compat_ulong_t, addr, compat_ulong_t, flags)
{
long err;
unsigned long __user *nm = NULL;
unsigned long nr_bits, alloc_size;
DECLARE_BITMAP(bm, MAX_NUMNODES);
nr_bits = min_t(unsigned long, maxnode-1, nr_node_ids);
alloc_size = ALIGN(nr_bits, BITS_PER_LONG) / 8;
if (nmask)
nm = compat_alloc_user_space(alloc_size);
err = sys_get_mempolicy(policy, nm, nr_bits+1, addr, flags);
if (!err && nmask) {
unsigned long copy_size;
copy_size = min_t(unsigned long, sizeof(bm), alloc_size);
err = copy_from_user(bm, nm, copy_size);
/* ensure entire bitmap is zeroed */
err |= clear_user(nmask, ALIGN(maxnode-1, 8) / 8);
err |= compat_put_bitmap(nmask, bm, nr_bits);
}
return err;
}
COMPAT_SYSCALL_DEFINE3(set_mempolicy, int, mode, compat_ulong_t __user *, nmask,
compat_ulong_t, maxnode)
{
unsigned long __user *nm = NULL;
unsigned long nr_bits, alloc_size;
DECLARE_BITMAP(bm, MAX_NUMNODES);
nr_bits = min_t(unsigned long, maxnode-1, MAX_NUMNODES);
alloc_size = ALIGN(nr_bits, BITS_PER_LONG) / 8;
if (nmask) {
if (compat_get_bitmap(bm, nmask, nr_bits))
return -EFAULT;
nm = compat_alloc_user_space(alloc_size);
if (copy_to_user(nm, bm, alloc_size))
return -EFAULT;
}
return sys_set_mempolicy(mode, nm, nr_bits+1);
}
COMPAT_SYSCALL_DEFINE6(mbind, compat_ulong_t, start, compat_ulong_t, len,
compat_ulong_t, mode, compat_ulong_t __user *, nmask,
compat_ulong_t, maxnode, compat_ulong_t, flags)
{
unsigned long __user *nm = NULL;
unsigned long nr_bits, alloc_size;
nodemask_t bm;
nr_bits = min_t(unsigned long, maxnode-1, MAX_NUMNODES);
alloc_size = ALIGN(nr_bits, BITS_PER_LONG) / 8;
if (nmask) {
if (compat_get_bitmap(nodes_addr(bm), nmask, nr_bits))
return -EFAULT;
nm = compat_alloc_user_space(alloc_size);
if (copy_to_user(nm, nodes_addr(bm), alloc_size))
return -EFAULT;
}
return sys_mbind(start, len, mode, nm, nr_bits+1, flags);
}
#endif
struct mempolicy *__get_vma_policy(struct vm_area_struct *vma,
unsigned long addr)
{
struct mempolicy *pol;
if (!vma)
return NULL;
if (vma->vm_ops && vma->vm_ops->get_policy)
return vma->vm_ops->get_policy(vma, addr);
/*
* This could be called without holding the mmap_sem in the
* speculative page fault handler's path.
*/
pol = READ_ONCE(vma->vm_policy);
if (pol) {
/*
* shmem_alloc_page() passes MPOL_F_SHARED policy with
* a pseudo vma whose vma->vm_ops=NULL. Take a reference
* count on these policies which will be dropped by
* mpol_cond_put() later
*/
if (mpol_needs_cond_ref(pol))
mpol_get(pol);
}
return pol;
}
/*
* get_vma_policy(@vma, @addr)
* @vma: virtual memory area whose policy is sought
* @addr: address in @vma for shared policy lookup
*
* Returns effective policy for a VMA at specified address.
* Falls back to current->mempolicy or system default policy, as necessary.
* Shared policies [those marked as MPOL_F_SHARED] require an extra reference
* count--added by the get_policy() vm_op, as appropriate--to protect against
* freeing by another task. It is the caller's responsibility to free the
* extra reference for shared policies.
*/
static struct mempolicy *get_vma_policy(struct vm_area_struct *vma,
unsigned long addr)
{
struct mempolicy *pol = __get_vma_policy(vma, addr);
if (!pol)
pol = get_task_policy(current);
return pol;
}
bool vma_policy_mof(struct vm_area_struct *vma)
{
struct mempolicy *pol;
if (vma->vm_ops && vma->vm_ops->get_policy) {
bool ret = false;
pol = vma->vm_ops->get_policy(vma, vma->vm_start);
if (pol && (pol->flags & MPOL_F_MOF))
ret = true;
mpol_cond_put(pol);
return ret;
}
pol = vma->vm_policy;
if (!pol)
pol = get_task_policy(current);
return pol->flags & MPOL_F_MOF;
}
static int apply_policy_zone(struct mempolicy *policy, enum zone_type zone)
{
enum zone_type dynamic_policy_zone = policy_zone;
BUG_ON(dynamic_policy_zone == ZONE_MOVABLE);
/*
* if policy->v.nodes has movable memory only,
* we apply policy when gfp_zone(gfp) = ZONE_MOVABLE only.
*
* policy->v.nodes is intersect with node_states[N_MEMORY].
* so if the following test faile, it implies
* policy->v.nodes has movable memory only.
*/
if (!nodes_intersects(policy->v.nodes, node_states[N_HIGH_MEMORY]))
dynamic_policy_zone = ZONE_MOVABLE;
return zone >= dynamic_policy_zone;
}
/*
* Return a nodemask representing a mempolicy for filtering nodes for
* page allocation
*/
static nodemask_t *policy_nodemask(gfp_t gfp, struct mempolicy *policy)
{
/* Lower zones don't get a nodemask applied for MPOL_BIND */
if (unlikely(policy->mode == MPOL_BIND) &&
apply_policy_zone(policy, gfp_zone(gfp)) &&
cpuset_nodemask_valid_mems_allowed(&policy->v.nodes))
return &policy->v.nodes;
return NULL;
}
/* Return the node id preferred by the given mempolicy, or the given id */
static int policy_node(gfp_t gfp, struct mempolicy *policy,
int nd)
{
if (policy->mode == MPOL_PREFERRED && !(policy->flags & MPOL_F_LOCAL))
nd = policy->v.preferred_node;
else {
/*
* __GFP_THISNODE shouldn't even be used with the bind policy
* because we might easily break the expectation to stay on the
* requested node and not break the policy.
*/
WARN_ON_ONCE(policy->mode == MPOL_BIND && (gfp & __GFP_THISNODE));
}
return nd;
}
/* Do dynamic interleaving for a process */
static unsigned interleave_nodes(struct mempolicy *policy)
{
unsigned next;
struct task_struct *me = current;
next = next_node_in(me->il_prev, policy->v.nodes);
if (next < MAX_NUMNODES)
me->il_prev = next;
return next;
}
/*
* Depending on the memory policy provide a node from which to allocate the
* next slab entry.
*/
unsigned int mempolicy_slab_node(void)
{
struct mempolicy *policy;
int node = numa_mem_id();
if (in_interrupt())
return node;
policy = current->mempolicy;
if (!policy || policy->flags & MPOL_F_LOCAL)
return node;
switch (policy->mode) {
case MPOL_PREFERRED:
/*
* handled MPOL_F_LOCAL above
*/
return policy->v.preferred_node;
case MPOL_INTERLEAVE:
return interleave_nodes(policy);
case MPOL_BIND: {
struct zoneref *z;
/*
* Follow bind policy behavior and start allocation at the
* first node.
*/
struct zonelist *zonelist;
enum zone_type highest_zoneidx = gfp_zone(GFP_KERNEL);
zonelist = &NODE_DATA(node)->node_zonelists[ZONELIST_FALLBACK];
z = first_zones_zonelist(zonelist, highest_zoneidx,
&policy->v.nodes);
return z->zone ? z->zone->node : node;
}
default:
BUG();
}
}
/*
* Do static interleaving for a VMA with known offset @n. Returns the n'th
* node in pol->v.nodes (starting from n=0), wrapping around if n exceeds the
* number of present nodes.
*/
static unsigned offset_il_node(struct mempolicy *pol, unsigned long n)
{
unsigned nnodes = nodes_weight(pol->v.nodes);
unsigned target;
int i;
int nid;
if (!nnodes)
return numa_node_id();
target = (unsigned int)n % nnodes;
nid = first_node(pol->v.nodes);
for (i = 0; i < target; i++)
nid = next_node(nid, pol->v.nodes);
return nid;
}
/* Determine a node number for interleave */
static inline unsigned interleave_nid(struct mempolicy *pol,
struct vm_area_struct *vma, unsigned long addr, int shift)
{
if (vma) {
unsigned long off;
/*
* for small pages, there is no difference between
* shift and PAGE_SHIFT, so the bit-shift is safe.
* for huge pages, since vm_pgoff is in units of small
* pages, we need to shift off the always 0 bits to get
* a useful offset.
*/
BUG_ON(shift < PAGE_SHIFT);
off = vma->vm_pgoff >> (shift - PAGE_SHIFT);
off += (addr - vma->vm_start) >> shift;
return offset_il_node(pol, off);
} else
return interleave_nodes(pol);
}
#ifdef CONFIG_HUGETLBFS
/*
* huge_node(@vma, @addr, @gfp_flags, @mpol)
* @vma: virtual memory area whose policy is sought
* @addr: address in @vma for shared policy lookup and interleave policy
* @gfp_flags: for requested zone
* @mpol: pointer to mempolicy pointer for reference counted mempolicy
* @nodemask: pointer to nodemask pointer for MPOL_BIND nodemask
*
* Returns a nid suitable for a huge page allocation and a pointer
* to the struct mempolicy for conditional unref after allocation.
* If the effective policy is 'BIND, returns a pointer to the mempolicy's
* @nodemask for filtering the zonelist.
*
* Must be protected by read_mems_allowed_begin()
*/
int huge_node(struct vm_area_struct *vma, unsigned long addr, gfp_t gfp_flags,
struct mempolicy **mpol, nodemask_t **nodemask)
{
int nid;
*mpol = get_vma_policy(vma, addr);
*nodemask = NULL; /* assume !MPOL_BIND */
if (unlikely((*mpol)->mode == MPOL_INTERLEAVE)) {
nid = interleave_nid(*mpol, vma, addr,
huge_page_shift(hstate_vma(vma)));
} else {
nid = policy_node(gfp_flags, *mpol, numa_node_id());
if ((*mpol)->mode == MPOL_BIND)
*nodemask = &(*mpol)->v.nodes;
}
return nid;
}
/*
* init_nodemask_of_mempolicy
*
* If the current task's mempolicy is "default" [NULL], return 'false'
* to indicate default policy. Otherwise, extract the policy nodemask
* for 'bind' or 'interleave' policy into the argument nodemask, or
* initialize the argument nodemask to contain the single node for
* 'preferred' or 'local' policy and return 'true' to indicate presence
* of non-default mempolicy.
*
* We don't bother with reference counting the mempolicy [mpol_get/put]
* because the current task is examining it's own mempolicy and a task's
* mempolicy is only ever changed by the task itself.
*
* N.B., it is the caller's responsibility to free a returned nodemask.
*/
bool init_nodemask_of_mempolicy(nodemask_t *mask)
{
struct mempolicy *mempolicy;
int nid;
if (!(mask && current->mempolicy))
return false;
task_lock(current);
mempolicy = current->mempolicy;
switch (mempolicy->mode) {
case MPOL_PREFERRED:
if (mempolicy->flags & MPOL_F_LOCAL)
nid = numa_node_id();
else
nid = mempolicy->v.preferred_node;
init_nodemask_of_node(mask, nid);
break;
case MPOL_BIND:
/* Fall through */
case MPOL_INTERLEAVE:
*mask = mempolicy->v.nodes;
break;
default:
BUG();
}
task_unlock(current);
return true;
}
#endif
/*
* mempolicy_nodemask_intersects
*
* If tsk's mempolicy is "default" [NULL], return 'true' to indicate default
* policy. Otherwise, check for intersection between mask and the policy
* nodemask for 'bind' or 'interleave' policy. For 'perferred' or 'local'
* policy, always return true since it may allocate elsewhere on fallback.
*
* Takes task_lock(tsk) to prevent freeing of its mempolicy.
*/
bool mempolicy_nodemask_intersects(struct task_struct *tsk,
const nodemask_t *mask)
{
struct mempolicy *mempolicy;
bool ret = true;
if (!mask)
return ret;
task_lock(tsk);
mempolicy = tsk->mempolicy;
if (!mempolicy)
goto out;
switch (mempolicy->mode) {
case MPOL_PREFERRED:
/*
* MPOL_PREFERRED and MPOL_F_LOCAL are only preferred nodes to
* allocate from, they may fallback to other nodes when oom.
* Thus, it's possible for tsk to have allocated memory from
* nodes in mask.
*/
break;
case MPOL_BIND:
case MPOL_INTERLEAVE:
ret = nodes_intersects(mempolicy->v.nodes, *mask);
break;
default:
BUG();
}
out:
task_unlock(tsk);
return ret;
}
/* Allocate a page in interleaved policy.
Own path because it needs to do special accounting. */
static struct page *alloc_page_interleave(gfp_t gfp, unsigned order,
unsigned nid)
{
struct page *page;
page = __alloc_pages(gfp, order, nid);
if (page && page_to_nid(page) == nid) {
preempt_disable();
__inc_numa_state(page_zone(page), NUMA_INTERLEAVE_HIT);
preempt_enable();
}
return page;
}
/**
* alloc_pages_vma - Allocate a page for a VMA.
*
* @gfp:
* %GFP_USER user allocation.
* %GFP_KERNEL kernel allocations,
* %GFP_HIGHMEM highmem/user allocations,
* %GFP_FS allocation should not call back into a file system.
* %GFP_ATOMIC don't sleep.
*
* @order:Order of the GFP allocation.
* @vma: Pointer to VMA or NULL if not available.
* @addr: Virtual Address of the allocation. Must be inside the VMA.
* @node: Which node to prefer for allocation (modulo policy).
* @hugepage: for hugepages try only the preferred node if possible
*
* This function allocates a page from the kernel page pool and applies
* a NUMA policy associated with the VMA or the current process.
* When VMA is not NULL caller must hold down_read on the mmap_sem of the
* mm_struct of the VMA to prevent it from going away. Should be used for
* all allocations for pages that will be mapped into user space. Returns
* NULL when no page can be allocated.
*/
struct page *
alloc_pages_vma(gfp_t gfp, int order, struct vm_area_struct *vma,
unsigned long addr, int node, bool hugepage)
{
struct mempolicy *pol;
struct page *page;
int preferred_nid;
nodemask_t *nmask;
pol = get_vma_policy(vma, addr);
if (pol->mode == MPOL_INTERLEAVE) {
unsigned nid;
nid = interleave_nid(pol, vma, addr, PAGE_SHIFT + order);
mpol_cond_put(pol);
page = alloc_page_interleave(gfp, order, nid);
goto out;
}
if (unlikely(IS_ENABLED(CONFIG_TRANSPARENT_HUGEPAGE) && hugepage)) {
int hpage_node = node;
/*
* For hugepage allocation and non-interleave policy which
* allows the current node (or other explicitly preferred
* node) we only try to allocate from the current/preferred
* node and don't fall back to other nodes, as the cost of
* remote accesses would likely offset THP benefits.
*
* If the policy is interleave, or does not allow the current
* node in its nodemask, we allocate the standard way.
*/
if (pol->mode == MPOL_PREFERRED &&
!(pol->flags & MPOL_F_LOCAL))
hpage_node = pol->v.preferred_node;
nmask = policy_nodemask(gfp, pol);
if (!nmask || node_isset(hpage_node, *nmask)) {
mpol_cond_put(pol);
/*
* We cannot invoke reclaim if __GFP_THISNODE
* is set. Invoking reclaim with
* __GFP_THISNODE set, would cause THP
* allocations to trigger heavy swapping
* despite there may be tons of free memory
* (including potentially plenty of THP
* already available in the buddy) on all the
* other NUMA nodes.
*
* At most we could invoke compaction when
* __GFP_THISNODE is set (but we would need to
* refrain from invoking reclaim even if
* compaction returned COMPACT_SKIPPED because
* there wasn't not enough memory to succeed
* compaction). For now just avoid
* __GFP_THISNODE instead of limiting the
* allocation path to a strict and single
* compaction invocation.
*
* Supposedly if direct reclaim was enabled by
* the caller, the app prefers THP regardless
* of the node it comes from so this would be
* more desiderable behavior than only
* providing THP originated from the local
* node in such case.
*/
if (!(gfp & __GFP_DIRECT_RECLAIM))
gfp |= __GFP_THISNODE;
page = __alloc_pages_node(hpage_node, gfp, order);
goto out;
}
}
nmask = policy_nodemask(gfp, pol);
preferred_nid = policy_node(gfp, pol, node);
page = __alloc_pages_nodemask(gfp, order, preferred_nid, nmask);
mpol_cond_put(pol);
out:
return page;
}
/**
* alloc_pages_current - Allocate pages.
*
* @gfp:
* %GFP_USER user allocation,
* %GFP_KERNEL kernel allocation,
* %GFP_HIGHMEM highmem allocation,
* %GFP_FS don't call back into a file system.
* %GFP_ATOMIC don't sleep.
* @order: Power of two of allocation size in pages. 0 is a single page.
*
* Allocate a page from the kernel page pool. When not in
* interrupt context and apply the current process NUMA policy.
* Returns NULL when no page can be allocated.
*/
struct page *alloc_pages_current(gfp_t gfp, unsigned order)
{
struct mempolicy *pol = &default_policy;
struct page *page;
if (!in_interrupt() && !(gfp & __GFP_THISNODE))
pol = get_task_policy(current);
/*
* No reference counting needed for current->mempolicy
* nor system default_policy
*/
if (pol->mode == MPOL_INTERLEAVE)
page = alloc_page_interleave(gfp, order, interleave_nodes(pol));
else
page = __alloc_pages_nodemask(gfp, order,
policy_node(gfp, pol, numa_node_id()),
policy_nodemask(gfp, pol));
return page;
}
EXPORT_SYMBOL(alloc_pages_current);
int vma_dup_policy(struct vm_area_struct *src, struct vm_area_struct *dst)
{
struct mempolicy *pol = mpol_dup(vma_policy(src));
if (IS_ERR(pol))
return PTR_ERR(pol);
dst->vm_policy = pol;
return 0;
}
/*
* If mpol_dup() sees current->cpuset == cpuset_being_rebound, then it
* rebinds the mempolicy its copying by calling mpol_rebind_policy()
* with the mems_allowed returned by cpuset_mems_allowed(). This
* keeps mempolicies cpuset relative after its cpuset moves. See
* further kernel/cpuset.c update_nodemask().
*
* current's mempolicy may be rebinded by the other task(the task that changes
* cpuset's mems), so we needn't do rebind work for current task.
*/
/* Slow path of a mempolicy duplicate */
struct mempolicy *__mpol_dup(struct mempolicy *old)
{
struct mempolicy *new = kmem_cache_alloc(policy_cache, GFP_KERNEL);
if (!new)
return ERR_PTR(-ENOMEM);
/* task's mempolicy is protected by alloc_lock */
if (old == current->mempolicy) {
task_lock(current);
*new = *old;
task_unlock(current);
} else
*new = *old;
if (current_cpuset_is_being_rebound()) {
nodemask_t mems = cpuset_mems_allowed(current);
mpol_rebind_policy(new, &mems);
}
atomic_set(&new->refcnt, 1);
return new;
}
/* Slow path of a mempolicy comparison */
bool __mpol_equal(struct mempolicy *a, struct mempolicy *b)
{
if (!a || !b)
return false;
if (a->mode != b->mode)
return false;
if (a->flags != b->flags)
return false;
if (mpol_store_user_nodemask(a))
if (!nodes_equal(a->w.user_nodemask, b->w.user_nodemask))
return false;
switch (a->mode) {
case MPOL_BIND:
/* Fall through */
case MPOL_INTERLEAVE:
return !!nodes_equal(a->v.nodes, b->v.nodes);
case MPOL_PREFERRED:
/* a's ->flags is the same as b's */
if (a->flags & MPOL_F_LOCAL)
return true;
return a->v.preferred_node == b->v.preferred_node;
default:
BUG();
return false;
}
}
/*
* Shared memory backing store policy support.
*
* Remember policies even when nobody has shared memory mapped.
* The policies are kept in Red-Black tree linked from the inode.
* They are protected by the sp->lock rwlock, which should be held
* for any accesses to the tree.
*/
/*
* lookup first element intersecting start-end. Caller holds sp->lock for
* reading or for writing
*/
static struct sp_node *
sp_lookup(struct shared_policy *sp, unsigned long start, unsigned long end)
{
struct rb_node *n = sp->root.rb_node;
while (n) {
struct sp_node *p = rb_entry(n, struct sp_node, nd);
if (start >= p->end)
n = n->rb_right;
else if (end <= p->start)
n = n->rb_left;
else
break;
}
if (!n)
return NULL;
for (;;) {
struct sp_node *w = NULL;
struct rb_node *prev = rb_prev(n);
if (!prev)
break;
w = rb_entry(prev, struct sp_node, nd);
if (w->end <= start)
break;
n = prev;
}
return rb_entry(n, struct sp_node, nd);
}
/*
* Insert a new shared policy into the list. Caller holds sp->lock for
* writing.
*/
static void sp_insert(struct shared_policy *sp, struct sp_node *new)
{
struct rb_node **p = &sp->root.rb_node;
struct rb_node *parent = NULL;
struct sp_node *nd;
while (*p) {
parent = *p;
nd = rb_entry(parent, struct sp_node, nd);
if (new->start < nd->start)
p = &(*p)->rb_left;
else if (new->end > nd->end)
p = &(*p)->rb_right;
else
BUG();
}
rb_link_node(&new->nd, parent, p);
rb_insert_color(&new->nd, &sp->root);
pr_debug("inserting %lx-%lx: %d\n", new->start, new->end,
new->policy ? new->policy->mode : 0);
}
/* Find shared policy intersecting idx */
struct mempolicy *
mpol_shared_policy_lookup(struct shared_policy *sp, unsigned long idx)
{
struct mempolicy *pol = NULL;
struct sp_node *sn;
if (!sp->root.rb_node)
return NULL;
read_lock(&sp->lock);
sn = sp_lookup(sp, idx, idx+1);
if (sn) {
mpol_get(sn->policy);
pol = sn->policy;
}
read_unlock(&sp->lock);
return pol;
}
static void sp_free(struct sp_node *n)
{
mpol_put(n->policy);
kmem_cache_free(sn_cache, n);
}
/**
* mpol_misplaced - check whether current page node is valid in policy
*
* @page: page to be checked
* @vma: vm area where page mapped
* @addr: virtual address where page mapped
*
* Lookup current policy node id for vma,addr and "compare to" page's
* node id.
*
* Returns:
* -1 - not misplaced, page is in the right node
* node - node id where the page should be
*
* Policy determination "mimics" alloc_page_vma().
* Called from fault path where we know the vma and faulting address.
*/
int mpol_misplaced(struct page *page, struct vm_area_struct *vma, unsigned long addr)
{
struct mempolicy *pol;
struct zoneref *z;
int curnid = page_to_nid(page);
unsigned long pgoff;
int thiscpu = raw_smp_processor_id();
int thisnid = cpu_to_node(thiscpu);
int polnid = -1;
int ret = -1;
pol = get_vma_policy(vma, addr);
if (!(pol->flags & MPOL_F_MOF))
goto out;
switch (pol->mode) {
case MPOL_INTERLEAVE:
pgoff = vma->vm_pgoff;
pgoff += (addr - vma->vm_start) >> PAGE_SHIFT;
polnid = offset_il_node(pol, pgoff);
break;
case MPOL_PREFERRED:
if (pol->flags & MPOL_F_LOCAL)
polnid = numa_node_id();
else
polnid = pol->v.preferred_node;
break;
case MPOL_BIND:
/*
* allows binding to multiple nodes.
* use current page if in policy nodemask,
* else select nearest allowed node, if any.
* If no allowed nodes, use current [!misplaced].
*/
if (node_isset(curnid, pol->v.nodes))
goto out;
z = first_zones_zonelist(
node_zonelist(numa_node_id(), GFP_HIGHUSER),
gfp_zone(GFP_HIGHUSER),
&pol->v.nodes);
polnid = z->zone->node;
break;
default:
BUG();
}
/* Migrate the page towards the node whose CPU is referencing it */
if (pol->flags & MPOL_F_MORON) {
polnid = thisnid;
if (!should_numa_migrate_memory(current, page, curnid, thiscpu))
goto out;
}
if (curnid != polnid)
ret = polnid;
out:
mpol_cond_put(pol);
return ret;
}
/*
* Drop the (possibly final) reference to task->mempolicy. It needs to be
* dropped after task->mempolicy is set to NULL so that any allocation done as
* part of its kmem_cache_free(), such as by KASAN, doesn't reference a freed
* policy.
*/
void mpol_put_task_policy(struct task_struct *task)
{
struct mempolicy *pol;
task_lock(task);
pol = task->mempolicy;
task->mempolicy = NULL;
task_unlock(task);
mpol_put(pol);
}
static void sp_delete(struct shared_policy *sp, struct sp_node *n)
{
pr_debug("deleting %lx-l%lx\n", n->start, n->end);
rb_erase(&n->nd, &sp->root);
sp_free(n);
}
static void sp_node_init(struct sp_node *node, unsigned long start,
unsigned long end, struct mempolicy *pol)
{
node->start = start;
node->end = end;
node->policy = pol;
}
static struct sp_node *sp_alloc(unsigned long start, unsigned long end,
struct mempolicy *pol)
{
struct sp_node *n;
struct mempolicy *newpol;
n = kmem_cache_alloc(sn_cache, GFP_KERNEL);
if (!n)
return NULL;
newpol = mpol_dup(pol);
if (IS_ERR(newpol)) {
kmem_cache_free(sn_cache, n);
return NULL;
}
newpol->flags |= MPOL_F_SHARED;
sp_node_init(n, start, end, newpol);
return n;
}
/* Replace a policy range. */
static int shared_policy_replace(struct shared_policy *sp, unsigned long start,
unsigned long end, struct sp_node *new)
{
struct sp_node *n;
struct sp_node *n_new = NULL;
struct mempolicy *mpol_new = NULL;
int ret = 0;
restart:
write_lock(&sp->lock);
n = sp_lookup(sp, start, end);
/* Take care of old policies in the same range. */
while (n && n->start < end) {
struct rb_node *next = rb_next(&n->nd);
if (n->start >= start) {
if (n->end <= end)
sp_delete(sp, n);
else
n->start = end;
} else {
/* Old policy spanning whole new range. */
if (n->end > end) {
if (!n_new)
goto alloc_new;
*mpol_new = *n->policy;
atomic_set(&mpol_new->refcnt, 1);
sp_node_init(n_new, end, n->end, mpol_new);
n->end = start;
sp_insert(sp, n_new);
n_new = NULL;
mpol_new = NULL;
break;
} else
n->end = start;
}
if (!next)
break;
n = rb_entry(next, struct sp_node, nd);
}
if (new)
sp_insert(sp, new);
write_unlock(&sp->lock);
ret = 0;
err_out:
if (mpol_new)
mpol_put(mpol_new);
if (n_new)
kmem_cache_free(sn_cache, n_new);
return ret;
alloc_new:
write_unlock(&sp->lock);
ret = -ENOMEM;
n_new = kmem_cache_alloc(sn_cache, GFP_KERNEL);
if (!n_new)
goto err_out;
mpol_new = kmem_cache_alloc(policy_cache, GFP_KERNEL);
if (!mpol_new)
goto err_out;
atomic_set(&mpol_new->refcnt, 1);
goto restart;
}
/**
* mpol_shared_policy_init - initialize shared policy for inode
* @sp: pointer to inode shared policy
* @mpol: struct mempolicy to install
*
* Install non-NULL @mpol in inode's shared policy rb-tree.
* On entry, the current task has a reference on a non-NULL @mpol.
* This must be released on exit.
* This is called at get_inode() calls and we can use GFP_KERNEL.
*/
void mpol_shared_policy_init(struct shared_policy *sp, struct mempolicy *mpol)
{
int ret;
sp->root = RB_ROOT; /* empty tree == default mempolicy */
rwlock_init(&sp->lock);
if (mpol) {
struct vm_area_struct pvma;
struct mempolicy *new;
NODEMASK_SCRATCH(scratch);
if (!scratch)
goto put_mpol;
/* contextualize the tmpfs mount point mempolicy */
new = mpol_new(mpol->mode, mpol->flags, &mpol->w.user_nodemask);
if (IS_ERR(new))
goto free_scratch; /* no valid nodemask intersection */
task_lock(current);
ret = mpol_set_nodemask(new, &mpol->w.user_nodemask, scratch);
task_unlock(current);
if (ret)
goto put_new;
/* Create pseudo-vma that contains just the policy */
memset(&pvma, 0, sizeof(struct vm_area_struct));
pvma.vm_end = TASK_SIZE; /* policy covers entire file */
mpol_set_shared_policy(sp, &pvma, new); /* adds ref */
put_new:
mpol_put(new); /* drop initial ref */
free_scratch:
NODEMASK_SCRATCH_FREE(scratch);
put_mpol:
mpol_put(mpol); /* drop our incoming ref on sb mpol */
}
}
int mpol_set_shared_policy(struct shared_policy *info,
struct vm_area_struct *vma, struct mempolicy *npol)
{
int err;
struct sp_node *new = NULL;
unsigned long sz = vma_pages(vma);
pr_debug("set_shared_policy %lx sz %lu %d %d %lx\n",
vma->vm_pgoff,
sz, npol ? npol->mode : -1,
npol ? npol->flags : -1,
npol ? nodes_addr(npol->v.nodes)[0] : NUMA_NO_NODE);
if (npol) {
new = sp_alloc(vma->vm_pgoff, vma->vm_pgoff + sz, npol);
if (!new)
return -ENOMEM;
}
err = shared_policy_replace(info, vma->vm_pgoff, vma->vm_pgoff+sz, new);
if (err && new)
sp_free(new);
return err;
}
/* Free a backing policy store on inode delete. */
void mpol_free_shared_policy(struct shared_policy *p)
{
struct sp_node *n;
struct rb_node *next;
if (!p->root.rb_node)
return;
write_lock(&p->lock);
next = rb_first(&p->root);
while (next) {
n = rb_entry(next, struct sp_node, nd);
next = rb_next(&n->nd);
sp_delete(p, n);
}
write_unlock(&p->lock);
}
#ifdef CONFIG_NUMA_BALANCING
static int __initdata numabalancing_override;
static void __init check_numabalancing_enable(void)
{
bool numabalancing_default = false;
if (IS_ENABLED(CONFIG_NUMA_BALANCING_DEFAULT_ENABLED))
numabalancing_default = true;
/* Parsed by setup_numabalancing. override == 1 enables, -1 disables */
if (numabalancing_override)
set_numabalancing_state(numabalancing_override == 1);
if (num_online_nodes() > 1 && !numabalancing_override) {
pr_info("%s automatic NUMA balancing. Configure with numa_balancing= or the kernel.numa_balancing sysctl\n",
numabalancing_default ? "Enabling" : "Disabling");
set_numabalancing_state(numabalancing_default);
}
}
static int __init setup_numabalancing(char *str)
{
int ret = 0;
if (!str)
goto out;
if (!strcmp(str, "enable")) {
numabalancing_override = 1;
ret = 1;
} else if (!strcmp(str, "disable")) {
numabalancing_override = -1;
ret = 1;
}
out:
if (!ret)
pr_warn("Unable to parse numa_balancing=\n");
return ret;
}
__setup("numa_balancing=", setup_numabalancing);
#else
static inline void __init check_numabalancing_enable(void)
{
}
#endif /* CONFIG_NUMA_BALANCING */
/* assumes fs == KERNEL_DS */
void __init numa_policy_init(void)
{
nodemask_t interleave_nodes;
unsigned long largest = 0;
int nid, prefer = 0;
policy_cache = kmem_cache_create("numa_policy",
sizeof(struct mempolicy),
0, SLAB_PANIC, NULL);
sn_cache = kmem_cache_create("shared_policy_node",
sizeof(struct sp_node),
0, SLAB_PANIC, NULL);
for_each_node(nid) {
preferred_node_policy[nid] = (struct mempolicy) {
.refcnt = ATOMIC_INIT(1),
.mode = MPOL_PREFERRED,
.flags = MPOL_F_MOF | MPOL_F_MORON,
.v = { .preferred_node = nid, },
};
}
/*
* Set interleaving policy for system init. Interleaving is only
* enabled across suitably sized nodes (default is >= 16MB), or
* fall back to the largest node if they're all smaller.
*/
nodes_clear(interleave_nodes);
for_each_node_state(nid, N_MEMORY) {
unsigned long total_pages = node_present_pages(nid);
/* Preserve the largest node */
if (largest < total_pages) {
largest = total_pages;
prefer = nid;
}
/* Interleave this node? */
if ((total_pages << PAGE_SHIFT) >= (16 << 20))
node_set(nid, interleave_nodes);
}
/* All too small, use the largest */
if (unlikely(nodes_empty(interleave_nodes)))
node_set(prefer, interleave_nodes);
if (do_set_mempolicy(MPOL_INTERLEAVE, 0, &interleave_nodes))
pr_err("%s: interleaving failed\n", __func__);
check_numabalancing_enable();
}
/* Reset policy of current process to default */
void numa_default_policy(void)
{
do_set_mempolicy(MPOL_DEFAULT, 0, NULL);
}
/*
* Parse and format mempolicy from/to strings
*/
/*
* "local" is implemented internally by MPOL_PREFERRED with MPOL_F_LOCAL flag.
*/
static const char * const policy_modes[] =
{
[MPOL_DEFAULT] = "default",
[MPOL_PREFERRED] = "prefer",
[MPOL_BIND] = "bind",
[MPOL_INTERLEAVE] = "interleave",
[MPOL_LOCAL] = "local",
};
#ifdef CONFIG_TMPFS
/**
* mpol_parse_str - parse string to mempolicy, for tmpfs mpol mount option.
* @str: string containing mempolicy to parse
* @mpol: pointer to struct mempolicy pointer, returned on success.
*
* Format of input:
* <mode>[=<flags>][:<nodelist>]
*
* On success, returns 0, else 1
*/
int mpol_parse_str(char *str, struct mempolicy **mpol)
{
struct mempolicy *new = NULL;
unsigned short mode;
unsigned short mode_flags;
nodemask_t nodes;
char *nodelist = strchr(str, ':');
char *flags = strchr(str, '=');
int err = 1;
if (flags)
*flags++ = '\0'; /* terminate mode string */
if (nodelist) {
/* NUL-terminate mode or flags string */
*nodelist++ = '\0';
if (nodelist_parse(nodelist, nodes))
goto out;
if (!nodes_subset(nodes, node_states[N_MEMORY]))
goto out;
} else
nodes_clear(nodes);
for (mode = 0; mode < MPOL_MAX; mode++) {
if (!strcmp(str, policy_modes[mode])) {
break;
}
}
if (mode >= MPOL_MAX)
goto out;
switch (mode) {
case MPOL_PREFERRED:
/*
* Insist on a nodelist of one node only, although later
* we use first_node(nodes) to grab a single node, so here
* nodelist (or nodes) cannot be empty.
*/
if (nodelist) {
char *rest = nodelist;
while (isdigit(*rest))
rest++;
if (*rest)
goto out;
if (nodes_empty(nodes))
goto out;
}
break;
case MPOL_INTERLEAVE:
/*
* Default to online nodes with memory if no nodelist
*/
if (!nodelist)
nodes = node_states[N_MEMORY];
break;
case MPOL_LOCAL:
/*
* Don't allow a nodelist; mpol_new() checks flags
*/
if (nodelist)
goto out;
mode = MPOL_PREFERRED;
break;
case MPOL_DEFAULT:
/*
* Insist on a empty nodelist
*/
if (!nodelist)
err = 0;
goto out;
case MPOL_BIND:
/*
* Insist on a nodelist
*/
if (!nodelist)
goto out;
}
mode_flags = 0;
if (flags) {
/*
* Currently, we only support two mutually exclusive
* mode flags.
*/
if (!strcmp(flags, "static"))
mode_flags |= MPOL_F_STATIC_NODES;
else if (!strcmp(flags, "relative"))
mode_flags |= MPOL_F_RELATIVE_NODES;
else
goto out;
}
new = mpol_new(mode, mode_flags, &nodes);
if (IS_ERR(new))
goto out;
/*
* Save nodes for mpol_to_str() to show the tmpfs mount options
* for /proc/mounts, /proc/pid/mounts and /proc/pid/mountinfo.
*/
if (mode != MPOL_PREFERRED)
new->v.nodes = nodes;
else if (nodelist)
new->v.preferred_node = first_node(nodes);
else
new->flags |= MPOL_F_LOCAL;
/*
* Save nodes for contextualization: this will be used to "clone"
* the mempolicy in a specific context [cpuset] at a later time.
*/
new->w.user_nodemask = nodes;
err = 0;
out:
/* Restore string for error message */
if (nodelist)
*--nodelist = ':';
if (flags)
*--flags = '=';
if (!err)
*mpol = new;
return err;
}
#endif /* CONFIG_TMPFS */
/**
* mpol_to_str - format a mempolicy structure for printing
* @buffer: to contain formatted mempolicy string
* @maxlen: length of @buffer
* @pol: pointer to mempolicy to be formatted
*
* Convert @pol into a string. If @buffer is too short, truncate the string.
* Recommend a @maxlen of at least 32 for the longest mode, "interleave", the
* longest flag, "relative", and to display at least a few node ids.
*/
void mpol_to_str(char *buffer, int maxlen, struct mempolicy *pol)
{
char *p = buffer;
nodemask_t nodes = NODE_MASK_NONE;
unsigned short mode = MPOL_DEFAULT;
unsigned short flags = 0;
if (pol && pol != &default_policy && !(pol->flags & MPOL_F_MORON)) {
mode = pol->mode;
flags = pol->flags;
}
switch (mode) {
case MPOL_DEFAULT:
break;
case MPOL_PREFERRED:
if (flags & MPOL_F_LOCAL)
mode = MPOL_LOCAL;
else
node_set(pol->v.preferred_node, nodes);
break;
case MPOL_BIND:
case MPOL_INTERLEAVE:
nodes = pol->v.nodes;
break;
default:
WARN_ON_ONCE(1);
snprintf(p, maxlen, "unknown");
return;
}
p += snprintf(p, maxlen, "%s", policy_modes[mode]);
if (flags & MPOL_MODE_FLAGS) {
p += snprintf(p, buffer + maxlen - p, "=");
/*
* Currently, the only defined flags are mutually exclusive
*/
if (flags & MPOL_F_STATIC_NODES)
p += snprintf(p, buffer + maxlen - p, "static");
else if (flags & MPOL_F_RELATIVE_NODES)
p += snprintf(p, buffer + maxlen - p, "relative");
}
if (!nodes_empty(nodes))
p += scnprintf(p, buffer + maxlen - p, ":%*pbl",
nodemask_pr_args(&nodes));
}