Files
ack-tegra/kernel/time/timekeeping.c
Greg Kroah-Hartman 2ec0c94f9b Merge 6.12.5 into android16-6.12
GKI (arm64) relevant 129 out of 468 changes, affecting 180 files +1843/-980
  e0964a5778 ptp: Add error handling for adjfine callback in ptp_clock_adjtime [1 file, +2/-1]
  a007f8895f net/sched: tbf: correct backlog statistic for GSO packets [1 file, +12/-6]
  9545011e7b net: Fix icmp host relookup triggering ip_rt_bug [1 file, +3/-0]
  01f95357e4 ipv6: avoid possible NULL deref in modify_prefix_route() [1 file, +7/-6]
  8b591bd522 net/ipv6: release expired exception dst cached in socket [1 file, +3/-3]
  e48b211c4c tipc: Fix use-after-free of kernel socket in cleanup_bearer(). [1 file, +1/-1]
  da5cc778e7 netfilter: nft_inner: incorrect percpu area handling under softirq [2 files, +46/-12]
  a36a6d7037 Revert "udp: avoid calling sock_def_readable() if possible" [1 file, +3/-11]
  22074dc1d4 ethtool: Fix wrong mod state in case of verbose and no_mask bitset [1 file, +44/-4]
  316183d583 net: avoid potential UAF in default_operstate() [1 file, +6/-1]
  c00372e41b mmc: sd: SDUC Support Recognition [7 files, +27/-15]
  19e22f1e68 mmc: core: Adjust ACMD22 to SDUC [1 file, +18/-6]
  42311846d3 mmc: core: Use GFP_NOIO in ACMD22 [1 file, +4/-0]
  4e51552bc5 zram: do not mark idle slots that cannot be idle [1 file, +18/-7]
  0ab037634b zram: clear IDLE flag in mark_idle() [1 file, +2/-0]
  405b6d5f90 ntp: Remove invalid cast in time offset math [1 file, +1/-1]
  6358df316d f2fs: clean up w/ F2FS_{BLK_TO_BYTES,BTYES_TO_BLK} [1 file, +29/-39]
  e6a91ed4b9 f2fs: fix to adjust appropriate length for fiemap [2 files, +4/-3]
  8e9fec7f79 f2fs: fix to requery extent which cross boundary of inquiry [1 file, +15/-5]
  815d8f0e52 i3c: master: Replace hard code 2 with macro I3C_ADDR_SLOT_STATUS_BITS [2 files, +5/-3]
  c3806cf647 i3c: master: Extend address status bit to 4 and add I3C_ADDR_SLOT_EXT_DESIRED [2 files, +59/-13]
  1117462773 i3c: master: Fix dynamic address leak when 'assigned-address' is present [1 file, +5/-10]
  7d4e5e33ea scsi: ufs: core: Always initialize the UIC done completion [1 file, +4/-7]
  3ad69f2f08 scsi: ufs: core: Add ufshcd_send_bsg_uic_cmd() for UFS BSG [3 files, +38/-1]
  47f4ad956b bpf, vsock: Fix poll() missing a queue [1 file, +3/-0]
  a222e48fea bpf, vsock: Invoke proto::close on close() [1 file, +40/-27]
  dabaf26846 xsk: always clear DMA mapping information when unmapping the pool [1 file, +2/-3]
  5c9e3bb43a tcp_bpf: Fix the sk_mem_uncharge logic in tcp_bpf_sendmsg [1 file, +4/-7]
  7bc37dd9ea ALSA: usb-audio: Notify xrun for low-latency mode [1 file, +11/-3]
  a78af11806 pmdomain: core: Add missing put_device() [1 file, +1/-0]
  913a3f1c06 pmdomain: core: Fix error path in pm_genpd_init() when ida alloc fails [1 file, +19/-17]
  5548887987 nvme: don't apply NVME_QUIRK_DEALLOCATE_ZEROES when DSM is not supported [1 file, +2/-1]
  bdbf87486d bpf: Ensure reg is PTR_TO_STACK in process_iter_arg [2 files, +7/-2]
  2459a0b149 drivers/virt: pkvm: Don't fail ioremap() call if MMIO_GUARD fails [1 file, +1/-5]
  0da7d4b7ca bpf: Don't mark STACK_INVALID as STACK_MISC in mark_stack_slot_misc [1 file, +6/-3]
  f9f2a2739e bpf: Fix narrow scalar spill onto 64-bit spilled scalar slots [1 file, +1/-0]
  845cc4ee8e nvme-fabrics: handle zero MAXCMD without closing the connection [1 file, +3/-2]
  c2277e2859 scatterlist: fix incorrect func name in kernel-doc [1 file, +1/-1]
  81ec3c6ceb bpf: Handle BPF_EXIST and BPF_NOEXIST for LPM trie [1 file, +20/-3]
  6dc076a257 bpf: Remove unnecessary kfree(im_node) in lpm_trie_update_elem [1 file, +1/-3]
  7218e441ad bpf: Handle in-place update for full LPM trie correctly [1 file, +21/-23]
  412bf01fd5 bpf: Fix exact match conditions in trie_get_next_key() [1 file, +2/-2]
  e689bc6697 HID: wacom: fix when get product name maybe null pointer [1 file, +2/-1]
  3b0c5bb437 can: dev: can_set_termination(): allow sleeping GPIOs [1 file, +1/-1]
  ba0ee489cd tracing: Fix cmp_entries_dup() to respect sort() comparison rules [1 file, +1/-5]
  ec643064ab arm64: mm: Fix zone_dma_limit calculation [1 file, +8/-9]
  34b6197867 arm64: Ensure bits ASID[15:8] are masked out when the kernel uses 8-bit ASIDs [1 file, +2/-2]
  abd614bbfc arm64: ptrace: fix partial SETREGSET for NT_ARM_TAGGED_ADDR_CTRL [1 file, +5/-1]
  8ab73c34e3 arm64: ptrace: fix partial SETREGSET for NT_ARM_FPMR [1 file, +2/-0]
  4105dd76bc arm64: ptrace: fix partial SETREGSET for NT_ARM_POE [1 file, +2/-0]
  7f1292f8d4 ALSA: usb-audio: Fix a DMA to stack memory bug [1 file, +27/-15]
  39c5d89b56 ALSA: usb-audio: Add extra PID for RME Digiface USB [3 files, +176/-168]
  9c191055c7 scsi: ufs: core: sysfs: Prevent div by zero [1 file, +6/-0]
  2e7a3bb033 scsi: ufs: core: Cancel RTC work during ufshcd_remove() [1 file, +1/-0]
  5a717f43c2 scsi: ufs: core: Add missing post notify for power mode change [2 files, +10/-7]
  793e560a6b io_uring: Change res2 parameter type in io_uring_cmd_done [2 files, +3/-3]
  85351e4941 Revert "readahead: properly shorten readahead when falling back to do_page_cache_ra()" [1 file, +2/-3]
  95e197354e cacheinfo: Allocate memory during CPU hotplug if not done from the primary CPU [1 file, +8/-6]
  bc031095d1 modpost: Add .irqentry.text to OTHER_SECTIONS [1 file, +1/-1]
  178e31df1f bpf: fix OOB devmap writes when deleting elements [1 file, +3/-3]
  3dcc20418e dma-buf: fix dma_fence_array_signaled v4 [1 file, +27/-1]
  f3dbb097d6 dma-fence: Fix reference leak on fence merge failure path [1 file, +2/-0]
  4715555964 dma-fence: Use kernel's sort for merging fences [1 file, +61/-67]
  d486b5741d xsk: fix OOB map writes when deleting elements [1 file, +1/-1]
  14258211d6 regmap: detach regmap from dev on regmap_exit [1 file, +12/-0]
  d562b457e1 mmc: core: Further prevent card detect during shutdown [2 files, +5/-0]
  9bfeeeff2c stackdepot: fix stack_depot_save_flags() in NMI context [2 files, +12/-4]
  a71ddd5b87 sched/numa: fix memory leak due to the overwritten vma->numab_state [1 file, +9/-3]
  835ca042df kasan: make report_lock a raw spinlock [1 file, +3/-3]
  69d319450d mm/gup: handle NULL pages in unpin_user_pages() [1 file, +10/-1]
  1dde3fde62 mm: open-code PageTail in folio_flags() and const_folio_flags() [1 file, +2/-2]
  bd4d2333a3 mm: open-code page_folio() in dump_page() [1 file, +5/-2]
  536ffb4014 mm: fix vrealloc()'s KASAN poisoning logic [1 file, +2/-1]
  fe1a34e92a mm: respect mmap hint address when aligning for THP [1 file, +1/-0]
  5c63e24b1b scsi: ufs: pltfrm: Drop PM runtime reference count after ufshcd_remove() [6 files, +2/-5]
  2cec2d916a memblock: allow zero threshold in validate_numa_converage() [1 file, +2/-2]
  d222934627 epoll: annotate racy check [2 files, +5/-3]
  493326c4f1 block: RCU protect disk->conv_zones_bitmap [2 files, +32/-13]
  b6ce2dbe98 ext4: partial zero eof block on unaligned inode size extension [2 files, +42/-16]
  ff599ad2d2 cleanup: Adjust scoped_guard() macros to avoid potential warning [1 file, +42/-10]
  3946e07552 gpio: free irqs that are still requested when the chip is being removed [1 file, +41/-0]
  ea74e9675b HID: add per device quirk to force bind to hid-generic [3 files, +8/-2]
  17db6ed5a3 media: uvcvideo: RealSense D421 Depth module metadata [1 file, +9/-0]
  0c20fadfd0 media: uvcvideo: Add a quirk for the Kaiweets KTI-W02 infrared camera [1 file, +11/-0]
  3cc5228d5b media: uvcvideo: Force UVC version to 1.0a for 0408:4033 [1 file, +11/-0]
  4150f22342 drm: panel-orientation-quirks: Add quirk for AYA NEO 2 model [1 file, +6/-0]
  5d7f35ed5f drm: panel-orientation-quirks: Add quirk for AYA NEO Founder edition [1 file, +6/-0]
  187d5ff497 drm: panel-orientation-quirks: Add quirk for AYA NEO GEEK [1 file, +6/-0]
  fd09880b16 af_packet: avoid erroring out after sock_init_data() in packet_create() [1 file, +6/-6]
  61686abc2f Bluetooth: L2CAP: do not leave dangling sk pointer on error in l2cap_sock_create() [1 file, +1/-0]
  32df687e12 Bluetooth: RFCOMM: avoid leaving dangling sk pointer in rfcomm_sock_alloc() [1 file, +5/-5]
  8df832e6b9 net: af_can: do not leave a dangling sk pointer in can_create() [1 file, +1/-0]
  03caa9bfb9 net: ieee802154: do not leave a dangling sk pointer in ieee802154_create() [1 file, +7/-5]
  691d6d816f net: inet: do not leave a dangling sk pointer in inet_create() [1 file, +10/-12]
  f44fceb71d net: inet6: do not leave a dangling sk pointer in inet6_create() [1 file, +10/-12]
  987aa730ba bpf: Prevent tailcall infinite loop caused by freplace [5 files, +81/-17]
  051f49d517 net/tcp: Add missing lockdep annotations for TCP-AO hlist traversals [4 files, +29/-23]
  920159e1bf ALSA: usb-audio: Make mic volume workarounds globally applicable [3 files, +45/-48]
  a50b4aa300 bpf: Call free_htab_elem() after htab_unlock_bucket() [1 file, +39/-17]
  da561d5fb6 Bluetooth: hci_conn: Reduce hci_conn_drop() calls in two functions [1 file, +3/-10]
  c55a4c5a04 Bluetooth: hci_conn: Use disable_delayed_work_sync [1 file, +3/-3]
  93a6160dc1 Bluetooth: hci_core: Fix not checking skb length on hci_acldata_packet [1 file, +9/-4]
  b04b4fb91d Bluetooth: Add new quirks for ATS2851 [2 files, +20/-4]
  359fc41e3c Bluetooth: Support new quirks for ATS2851 [2 files, +15/-1]
  166cf43070 net/neighbor: clear error in case strict check is not set [1 file, +1/-0]
  f63a1caae9 tracing/ftrace: disable preemption in syscall probe [2 files, +44/-4]
  d1133dd57e tracing: Use atomic64_inc_return() in trace_clock_counter() [1 file, +1/-1]
  09c083fbea ring-buffer: Limit time with disabled interrupts in rb_check_pages() [1 file, +72/-26]
  c11e2ec9a7 pinmux: Use sequential access to access desc->pinmux data [3 files, +100/-77]
  b865d4e569 scsi: ufs: core: Make DMA mask configuration more flexible [3 files, +13/-9]
  2fcb921c27 bpf: put bpf_link's program when link is safe to be deallocated [1 file, +17/-5]
  bb4a6236a4 leds: class: Protect brightness_show() with led_cdev->led_access mutex [2 files, +12/-4]
  7214d3a64e tracing: Fix function name for trampoline [3 files, +36/-8]
  9e28513fd2 f2fs: fix f2fs_bug_on when uninstalling filesystem call f2fs_evict_inode. [1 file, +3/-1]
  b51aa6a07e PCI: qcom: Add support for IPQ9574 [1 file, +1/-0]
  617bd1e6c3 PCI: Add ACS quirk for Wangxun FF5xxx NICs [1 file, +9/-6]
  1f51ae217d i3c: Use i3cdev->desc->info instead of calling i3c_device_get_info() to avoid deadlock [1 file, +2/-1]
  6d41a2d5c1 f2fs: print message if fscorrupted was found in f2fs_new_node_page() [1 file, +6/-1]
  924f7dd1e8 f2fs: fix to shrink read extent node in batches [1 file, +41/-28]
  1648c7000f serial: 8250_dw: Add Sophgo SG2044 quirk [1 file, +3/-2]
  950210c9c7 Revert "nvme: make keep-alive synchronous operation" [1 file, +10/-7]
  d5b2ddf1f9 io_uring/tctx: work around xa_store() allocation error issue [1 file, +12/-1]
  cd188519d2 scsi: ufs: pltfrm: Dellocate HBA during ufshcd_pltfrm_remove() [1 file, +1/-0]
  a39ad4f507 sched/core: Remove the unnecessary need_resched() check in nohz_csd_func() [1 file, +1/-1]
  f9e144a544 sched/fair: Check idle_cpu() before need_resched() to detect ilb CPU turning busy [1 file, +1/-1]
  b4ec68868c sched/core: Prevent wakeup of ksoftirqd during idle load balance [1 file, +1/-1]
  364dc8070b tracing/eprobe: Fix to release eprobe when failed to add dyn_event [1 file, +5/-0]
  1a678f6829 clocksource: Make negative motion detection more robust [4 files, +20/-7]
  6aeef0214d softirq: Allow raising SCHED_SOFTIRQ from SMP-call-function on RT kernel [1 file, +11/-4]

Changes in 6.12.5
	iTCO_wdt: mask NMI_NOW bit for update_no_reboot_bit() call
	watchdog: xilinx_wwdt: Calculate max_hw_heartbeat_ms using clock frequency
	watchdog: apple: Actually flush writes after requesting watchdog restart
	watchdog: mediatek: Make sure system reset gets asserted in mtk_wdt_restart()
	can: gs_usb: add usb endpoint address detection at driver probe step
	can: c_can: c_can_handle_bus_err(): update statistics if skb allocation fails
	can: sun4i_can: sun4i_can_err(): call can_change_state() even if cf is NULL
	can: hi311x: hi3110_can_ist(): fix potential use-after-free
	can: m_can: m_can_handle_lec_err(): fix {rx,tx}_errors statistics
	can: ifi_canfd: ifi_canfd_handle_lec_err(): fix {rx,tx}_errors statistics
	can: hi311x: hi3110_can_ist(): fix {rx,tx}_errors statistics
	can: sja1000: sja1000_err(): fix {rx,tx}_errors statistics
	can: sun4i_can: sun4i_can_err(): fix {rx,tx}_errors statistics
	can: ems_usb: ems_usb_rx_err(): fix {rx,tx}_errors statistics
	can: f81604: f81604_handle_can_bus_errors(): fix {rx,tx}_errors statistics
	ipvs: fix UB due to uninitialized stack access in ip_vs_protocol_init()
	netfilter: x_tables: fix LED ID check in led_tg_check()
	netfilter: nft_socket: remove WARN_ON_ONCE on maximum cgroup level
	selftests: hid: fix typo and exit code
	net: enetc: Do not configure preemptible TCs if SIs do not support
	ptp: Add error handling for adjfine callback in ptp_clock_adjtime
	net/sched: tbf: correct backlog statistic for GSO packets
	net: hsr: avoid potential out-of-bound access in fill_frame_info()
	bnxt_en: ethtool: Supply ntuple rss context action
	net: Fix icmp host relookup triggering ip_rt_bug
	ipv6: avoid possible NULL deref in modify_prefix_route()
	can: j1939: j1939_session_new(): fix skb reference counting
	platform/x86: asus-wmi: Ignore return value when writing thermal policy
	net: phy: microchip: Reset LAN88xx PHY to ensure clean link state on LAN7800/7850
	net/ipv6: release expired exception dst cached in socket
	dccp: Fix memory leak in dccp_feat_change_recv
	tipc: Fix use-after-free of kernel socket in cleanup_bearer().
	net/smc: initialize close_work early to avoid warning
	net/smc: fix LGR and link use-after-free issue
	net/qed: allow old cards not supporting "num_images" to work
	net: hsr: must allocate more bytes for RedBox support
	ice: fix PHY Clock Recovery availability check
	ice: fix PHY timestamp extraction for ETH56G
	ice: Fix VLAN pruning in switchdev mode
	idpf: set completion tag for "empty" bufs associated with a packet
	ixgbevf: stop attempting IPSEC offload on Mailbox API 1.5
	ixgbe: downgrade logging of unsupported VF API version to debug
	ixgbe: Correct BASE-BX10 compliance code
	igb: Fix potential invalid memory access in igb_init_module()
	netfilter: nft_inner: incorrect percpu area handling under softirq
	Revert "udp: avoid calling sock_def_readable() if possible"
	net: sched: fix erspan_opt settings in cls_flower
	netfilter: ipset: Hold module reference while requesting a module
	netfilter: nft_set_hash: skip duplicated elements pending gc run
	ethtool: Fix wrong mod state in case of verbose and no_mask bitset
	mlxsw: spectrum_acl_flex_keys: Constify struct mlxsw_afk_element_inst
	mlxsw: spectrum_acl_flex_keys: Use correct key block on Spectrum-4
	geneve: do not assume mac header is set in geneve_xmit_skb()
	net/mlx5: HWS: Fix memory leak in mlx5hws_definer_calc_layout
	net/mlx5: HWS: Properly set bwc queue locks lock classes
	net/mlx5e: SD, Use correct mdev to build channel param
	net/mlx5e: Remove workaround to avoid syndrome for internal port
	vsock/test: fix failures due to wrong SO_RCVLOWAT parameter
	vsock/test: fix parameter types in SO_VM_SOCKETS_* calls
	net: avoid potential UAF in default_operstate()
	gpio: grgpio: use a helper variable to store the address of ofdev->dev
	gpio: grgpio: Add NULL check in grgpio_probe
	mmc: mtk-sd: use devm_mmc_alloc_host
	mmc: mtk-sd: Fix error handle of probe function
	mmc: mtk-sd: fix devm_clk_get_optional usage
	mmc: mtk-sd: Fix MMC_CAP2_CRYPTO flag setting
	mmc: sd: SDUC Support Recognition
	mmc: core: Adjust ACMD22 to SDUC
	mmc: core: Use GFP_NOIO in ACMD22
	zram: do not mark idle slots that cannot be idle
	zram: clear IDLE flag in mark_idle()
	ntp: Remove invalid cast in time offset math
	f2fs: clean up w/ F2FS_{BLK_TO_BYTES,BTYES_TO_BLK}
	f2fs: fix to adjust appropriate length for fiemap
	f2fs: fix to requery extent which cross boundary of inquiry
	i3c: master: Replace hard code 2 with macro I3C_ADDR_SLOT_STATUS_BITS
	i3c: master: Extend address status bit to 4 and add I3C_ADDR_SLOT_EXT_DESIRED
	i3c: master: Fix dynamic address leak when 'assigned-address' is present
	drm/amd/display: calculate final viewport before TAP optimization
	drm/amd/display: Ignore scalar validation failure if pipe is phantom
	scsi: ufs: core: Always initialize the UIC done completion
	scsi: ufs: core: Add ufshcd_send_bsg_uic_cmd() for UFS BSG
	bpf, vsock: Fix poll() missing a queue
	bpf, vsock: Invoke proto::close on close()
	xsk: always clear DMA mapping information when unmapping the pool
	bpftool: fix potential NULL pointer dereferencing in prog_dump()
	drm/sti: Add __iomem for mixer_dbg_mxn's parameter
	tcp_bpf: Fix the sk_mem_uncharge logic in tcp_bpf_sendmsg
	ALSA: seq: ump: Fix seq port updates per FB info notify
	ALSA: usb-audio: Notify xrun for low-latency mode
	tools: Override makefile ARCH variable if defined, but empty
	spi: mpc52xx: Add cancel_work_sync before module remove
	ASoC: SOF: ipc3-topology: Convert the topology pin index to ALH dai index
	ASoC: SOF: ipc3-topology: fix resource leaks in sof_ipc3_widget_setup_comp_dai()
	pmdomain: core: Add missing put_device()
	pmdomain: core: Fix error path in pm_genpd_init() when ida alloc fails
	nvme: don't apply NVME_QUIRK_DEALLOCATE_ZEROES when DSM is not supported
	x86/pkeys: Change caller of update_pkru_in_sigframe()
	x86/pkeys: Ensure updated PKRU value is XRSTOR'd
	bpf: Ensure reg is PTR_TO_STACK in process_iter_arg
	irqchip/stm32mp-exti: CONFIG_STM32MP_EXTI should not default to y when compile-testing
	drivers/virt: pkvm: Don't fail ioremap() call if MMIO_GUARD fails
	bpf: Don't mark STACK_INVALID as STACK_MISC in mark_stack_slot_misc
	bpf: Fix narrow scalar spill onto 64-bit spilled scalar slots
	nvme-fabrics: handle zero MAXCMD without closing the connection
	nvme-tcp: fix the memleak while create new ctrl failed
	nvme-rdma: unquiesce admin_q before destroy it
	scsi: sg: Fix slab-use-after-free read in sg_release()
	scsi: scsi_debug: Fix hrtimer support for ndelay
	ASoC: mediatek: mt8188-mt6359: Remove hardcoded dmic codec
	drm/v3d: Enable Performance Counters before clearing them
	ocfs2: free inode when ocfs2_get_init_inode() fails
	scatterlist: fix incorrect func name in kernel-doc
	iio: magnetometer: yas530: use signed integer type for clamp limits
	smb: client: fix potential race in cifs_put_tcon()
	bpf: Handle BPF_EXIST and BPF_NOEXIST for LPM trie
	bpf: Remove unnecessary kfree(im_node) in lpm_trie_update_elem
	bpf: Handle in-place update for full LPM trie correctly
	bpf: Fix exact match conditions in trie_get_next_key()
	x86/CPU/AMD: WARN when setting EFER.AUTOIBRS if and only if the WRMSR fails
	rust: allow `clippy::needless_lifetimes`
	HID: i2c-hid: Revert to using power commands to wake on resume
	HID: wacom: fix when get product name maybe null pointer
	LoongArch: Add architecture specific huge_pte_clear()
	LoongArch: KVM: Protect kvm_check_requests() with SRCU
	ksmbd: fix Out-of-Bounds Read in ksmbd_vfs_stream_read
	ksmbd: fix Out-of-Bounds Write in ksmbd_vfs_stream_write
	watchdog: rti: of: honor timeout-sec property
	can: dev: can_set_termination(): allow sleeping GPIOs
	can: mcp251xfd: mcp251xfd_get_tef_len(): work around erratum DS80000789E 6.
	tracing: Fix cmp_entries_dup() to respect sort() comparison rules
	net :mana :Request a V2 response version for MANA_QUERY_GF_STAT
	iommufd: Fix out_fput in iommufd_fault_alloc()
	arm64: mm: Fix zone_dma_limit calculation
	arm64: Ensure bits ASID[15:8] are masked out when the kernel uses 8-bit ASIDs
	arm64: ptrace: fix partial SETREGSET for NT_ARM_TAGGED_ADDR_CTRL
	arm64: ptrace: fix partial SETREGSET for NT_ARM_FPMR
	arm64: ptrace: fix partial SETREGSET for NT_ARM_POE
	ALSA: usb-audio: Fix a DMA to stack memory bug
	ALSA: usb-audio: Add extra PID for RME Digiface USB
	ALSA: hda/realtek: fix micmute LEDs don't work on HP Laptops
	ALSA: usb-audio: add mixer mapping for Corsair HS80
	ALSA: hda/realtek: Enable mute and micmute LED on HP ProBook 430 G8
	ALSA: hda/realtek: Add support for Samsung Galaxy Book3 360 (NP730QFG)
	scsi: qla2xxx: Fix abort in bsg timeout
	scsi: qla2xxx: Fix NVMe and NPIV connect issue
	scsi: qla2xxx: Supported speed displayed incorrectly for VPorts
	scsi: qla2xxx: Fix use after free on unload
	scsi: qla2xxx: Remove check req_sg_cnt should be equal to rsp_sg_cnt
	scsi: ufs: core: sysfs: Prevent div by zero
	scsi: ufs: core: Cancel RTC work during ufshcd_remove()
	scsi: ufs: qcom: Only free platform MSIs when ESI is enabled
	scsi: ufs: pltfrm: Disable runtime PM during removal of glue drivers
	scsi: ufs: core: Add missing post notify for power mode change
	nilfs2: fix potential out-of-bounds memory access in nilfs_find_entry()
	fs/smb/client: avoid querying SMB2_OP_QUERY_WSL_EA for SMB3 POSIX
	fs/smb/client: Implement new SMB3 POSIX type
	fs/smb/client: cifs_prime_dcache() for SMB3 POSIX reparse points
	smb3.1.1: fix posix mounts to older servers
	io_uring: Change res2 parameter type in io_uring_cmd_done
	bcache: revert replacing IS_ERR_OR_NULL with IS_ERR again
	Revert "readahead: properly shorten readahead when falling back to do_page_cache_ra()"
	pmdomain: imx: gpcv2: Adjust delay after power up handshake
	selftests/damon: add _damon_sysfs.py to TEST_FILES
	selftest: hugetlb_dio: fix test naming
	cacheinfo: Allocate memory during CPU hotplug if not done from the primary CPU
	x86/cacheinfo: Delete global num_cache_leaves
	drm/amdkfd: hard-code cacheline for gc943,gc944
	drm/dp_mst: Fix MST sideband message body length check
	drm/amdkfd: add MEC version that supports no PCIe atomics for GFX12
	drm/amd/pm: fix and simplify workload handling
	drm/dp_mst: Verify request type in the corresponding down message reply
	drm/dp_mst: Fix resetting msg rx state after topology removal
	drm/amd/display: Correct prefetch calculation
	drm/amd/display: Limit VTotal range to max hw cap minus fp
	drm/amd/display: Add a left edge pixel if in YCbCr422 or YCbCr420 and odm
	drm/amdgpu/hdp6.0: do a posting read when flushing HDP
	drm/amdgpu/hdp4.0: do a posting read when flushing HDP
	drm/amdgpu/hdp5.0: do a posting read when flushing HDP
	drm/amdgpu/hdp7.0: do a posting read when flushing HDP
	drm/amdgpu/hdp5.2: do a posting read when flushing HDP
	modpost: Add .irqentry.text to OTHER_SECTIONS
	x86/kexec: Restore GDT on return from ::preserve_context kexec
	bpf: fix OOB devmap writes when deleting elements
	dma-buf: fix dma_fence_array_signaled v4
	dma-fence: Fix reference leak on fence merge failure path
	dma-fence: Use kernel's sort for merging fences
	xsk: fix OOB map writes when deleting elements
	regmap: detach regmap from dev on regmap_exit
	arch_numa: Restore nid checks before registering a memblock with a node
	mmc: sdhci-pci: Add DMI quirk for missing CD GPIO on Vexia Edu Atla 10 tablet
	mmc: core: Further prevent card detect during shutdown
	x86/cpu: Add Lunar Lake to list of CPUs with a broken MONITOR implementation
	ocfs2: update seq_file index in ocfs2_dlm_seq_next
	stackdepot: fix stack_depot_save_flags() in NMI context
	lib: stackinit: hide never-taken branch from compiler
	sched/numa: fix memory leak due to the overwritten vma->numab_state
	kasan: make report_lock a raw spinlock
	mm/gup: handle NULL pages in unpin_user_pages()
	mm/mempolicy: fix migrate_to_node() assuming there is at least one VMA in a MM
	x86/cpu/topology: Remove limit of CPUs due to disabled IO/APIC
	x86/mm: Add _PAGE_NOPTISHADOW bit to avoid updating userspace page tables
	mm/damon: fix order of arguments in damos_before_apply tracepoint
	mm: memcg: declare do_memsw_account inline
	mm: open-code PageTail in folio_flags() and const_folio_flags()
	mm: open-code page_folio() in dump_page()
	mm: fix vrealloc()'s KASAN poisoning logic
	mm: respect mmap hint address when aligning for THP
	scsi: ufs: pltfrm: Drop PM runtime reference count after ufshcd_remove()
	memblock: allow zero threshold in validate_numa_converage()
	rust: enable arbitrary_self_types and remove `Receiver`
	s390/pci: Sort PCI functions prior to creating virtual busses
	s390/pci: Use topology ID for multi-function devices
	s390/pci: Ignore RID for isolated VFs
	epoll: annotate racy check
	kselftest/arm64: Log fp-stress child startup errors to stdout
	s390/cpum_sf: Handle CPU hotplug remove during sampling
	block: RCU protect disk->conv_zones_bitmap
	btrfs: don't take dev_replace rwsem on task already holding it
	btrfs: avoid unnecessary device path update for the same device
	btrfs: canonicalize the device path before adding it
	btrfs: do not clear read-only when adding sprout device
	kselftest/arm64: Don't leak pipe fds in pac.exec_sign_all()
	ext4: partial zero eof block on unaligned inode size extension
	crypto: ecdsa - Avoid signed integer overflow on signature decoding
	kcsan: Turn report_filterlist_lock into a raw_spinlock
	hwmon: (nct6775) Add 665-ACE/600M-CL to ASUS WMI monitoring list
	ACPI: x86: Make UART skip quirks work on PCI UARTs without an UID
	ACPI: x86: Add adev NULL check to acpi_quirk_skip_serdev_enumeration()
	ACPI: video: force native for Apple MacbookPro11,2 and Air7,2
	perf/x86/amd: Warn only on new bits set
	cleanup: Adjust scoped_guard() macros to avoid potential warning
	iio: magnetometer: fix if () scoped_guard() formatting
	timekeeping: Always check for negative motion
	gpio: free irqs that are still requested when the chip is being removed
	spi: spi-fsl-lpspi: Adjust type of scldiv
	soc: qcom: llcc: Use designated initializers for LLC settings
	HID: add per device quirk to force bind to hid-generic
	firmware: qcom: scm: Allow QSEECOM on Lenovo Yoga Slim 7x
	soc: qcom: pd-mapper: Add QCM6490 PD maps
	media: uvcvideo: RealSense D421 Depth module metadata
	media: uvcvideo: Add a quirk for the Kaiweets KTI-W02 infrared camera
	media: uvcvideo: Force UVC version to 1.0a for 0408:4033
	media: cx231xx: Add support for Dexatek USB Video Grabber 1d19:6108
	mmc: core: Add SD card quirk for broken poweroff notification
	mmc: sdhci-esdhc-imx: enable quirks SDHCI_QUIRK_NO_LED
	firmware: qcom: scm: Allow QSEECOM on Dell XPS 13 9345
	soc: imx8m: Probe the SoC driver as platform driver
	regmap: maple: Provide lockdep (sub)class for maple tree's internal lock
	selftests/resctrl: Protect against array overflow when reading strings
	sched_ext: add a missing rcu_read_lock/unlock pair at scx_select_cpu_dfl()
	HID: magicmouse: Apple Magic Trackpad 2 USB-C driver support
	drm/xe/pciids: separate RPL-U and RPL-P PCI IDs
	drm/xe/pciids: separate ARL and MTL PCI IDs
	drm/vc4: hdmi: Avoid log spam for audio start failure
	drm/vc4: hvs: Set AXI panic modes for the HVS
	drm/xe/pciids: Add PVC's PCI device ID macros
	wifi: rtw88: use ieee80211_purge_tx_queue() to purge TX skb
	drm/xe/pciid: Add new PCI id for ARL
	drm: panel-orientation-quirks: Add quirk for AYA NEO 2 model
	drm: panel-orientation-quirks: Add quirk for AYA NEO Founder edition
	drm: panel-orientation-quirks: Add quirk for AYA NEO GEEK
	drm/bridge: it6505: Enable module autoloading
	drm/mcde: Enable module autoloading
	wifi: rtw89: check return value of ieee80211_probereq_get() for RNR
	drm/amd/display: Fix out-of-bounds access in 'dcn21_link_encoder_create'
	drm/radeon/r600_cs: Fix possible int overflow in r600_packet3_check()
	ASoC: Intel: sof_rt5682: Add HDMI-In capture with rt5682 support for MTL.
	dlm: fix possible lkb_resource null dereference
	drm/amd/display: skip disable CRTC in seemless bootup case
	drm/amd/display: Fix garbage or black screen when resetting otg
	drm/amd/display: disable SG displays on cyan skillfish
	drm/xe/ptl: L3bank mask is not available on the media GT
	drm/xe/xe3: Add initial set of workarounds
	drm/display: Fix building with GCC 15
	ALSA: hda: Use own quirk lookup helper
	ALSA: hda/conexant: Use the new codec SSID matching
	ALSA: hda/realtek: Use codec SSID matching for Lenovo devices
	r8169: don't apply UDP padding quirk on RTL8126A
	samples/bpf: Fix a resource leak
	wifi: ath12k: fix atomic calls in ath12k_mac_op_set_bitrate_mask()
	accel/qaic: Add AIC080 support
	drm/amd/display: Full exit out of IPS2 when all allow signals have been cleared
	net: fec_mpc52xx_phy: Use %pa to format resource_size_t
	net: ethernet: fs_enet: Use %pa to format resource_size_t
	net/sched: cbs: Fix integer overflow in cbs_set_port_rate()
	af_packet: avoid erroring out after sock_init_data() in packet_create()
	Bluetooth: L2CAP: do not leave dangling sk pointer on error in l2cap_sock_create()
	Bluetooth: RFCOMM: avoid leaving dangling sk pointer in rfcomm_sock_alloc()
	net: af_can: do not leave a dangling sk pointer in can_create()
	net: ieee802154: do not leave a dangling sk pointer in ieee802154_create()
	net: inet: do not leave a dangling sk pointer in inet_create()
	net: inet6: do not leave a dangling sk pointer in inet6_create()
	wifi: ath10k: avoid NULL pointer error during sdio remove
	wifi: ath5k: add PCI ID for SX76X
	wifi: ath5k: add PCI ID for Arcadyan devices
	fanotify: allow reporting errors on failure to open fd
	bpf: Prevent tailcall infinite loop caused by freplace
	ASoC: sdw_utils: Add support for exclusion DAI quirks
	ASoC: sdw_utils: Add a quirk to allow the cs42l43 mic DAI to be ignored
	ASoC: Intel: sof_sdw: Add quirk for cs42l43 system using host DMICs
	ASoC: Intel: sof_sdw: Add quirks for some new Lenovo laptops
	drm/xe/guc/ct: Flush g2h worker in case of g2h response timeout
	drm/panel: simple: Add Microchip AC69T88A LVDS Display panel
	net: sfp: change quirks for Alcatel Lucent G-010S-P
	net: stmmac: Programming sequence for VLAN packets with split header
	drm/sched: memset() 'job' in drm_sched_job_init()
	drm/amd/display: Adding array index check to prevent memory corruption
	drm/amdgpu/gfx9: Add cleaner shader for GFX9.4.2
	drm/amdgpu: clear RB_OVERFLOW bit when enabling interrupts for vega20_ih
	drm/amdgpu: Dereference the ATCS ACPI buffer
	netlink: specs: Add missing bitset attrs to ethtool spec
	drm/amdgpu: refine error handling in amdgpu_ttm_tt_pin_userptr
	ASoC: sdw_utils: Add quirk to exclude amplifier function
	ASoC: Intel: soc-acpi-intel-arl-match: Add rt722 and rt1320 support
	drm/amd/display: Fix underflow when playing 8K video in full screen mode
	mptcp: annotate data-races around subflow->fully_established
	dma-debug: fix a possible deadlock on radix_lock
	jfs: array-index-out-of-bounds fix in dtReadFirst
	jfs: fix shift-out-of-bounds in dbSplit
	jfs: fix array-index-out-of-bounds in jfs_readdir
	jfs: add a check to prevent array-index-out-of-bounds in dbAdjTree
	fsl/fman: Validate cell-index value obtained from Device Tree
	net/tcp: Add missing lockdep annotations for TCP-AO hlist traversals
	drm/panic: Add ABGR2101010 support
	drm/amd/display: Remove hw w/a toggle if on DP2/HPO
	drm/amd/display: parse umc_info or vram_info based on ASIC
	drm/amd/display: Prune Invalid Modes For HDMI Output
	drm/amdgpu: skip amdgpu_device_cache_pci_state under sriov
	virtio-net: fix overflow inside virtnet_rq_alloc
	ALSA: usb-audio: Make mic volume workarounds globally applicable
	drm/amdgpu: set the right AMDGPU sg segment limitation
	wifi: ipw2x00: libipw_rx_any(): fix bad alignment
	wifi: brcmfmac: Fix oops due to NULL pointer dereference in brcmf_sdiod_sglist_rw()
	bpf: Call free_htab_elem() after htab_unlock_bucket()
	mptcp: fix possible integer overflow in mptcp_reset_tout_timer
	dsa: qca8k: Use nested lock to avoid splat
	i2c: i801: Add support for Intel Panther Lake
	Bluetooth: hci_conn: Reduce hci_conn_drop() calls in two functions
	Bluetooth: btusb: Add RTL8852BE device 0489:e123 to device tables
	Bluetooth: btusb: Add USB HW IDs for MT7920/MT7925
	Bluetooth: hci_conn: Use disable_delayed_work_sync
	Bluetooth: hci_core: Fix not checking skb length on hci_acldata_packet
	Bluetooth: Add new quirks for ATS2851
	Bluetooth: Support new quirks for ATS2851
	Bluetooth: Set quirks for ATS2851
	Bluetooth: btusb: Add new VID/PID 0489/e111 for MT7925
	Bluetooth: btusb: Add new VID/PID 0489/e124 for MT7925
	Bluetooth: btusb: Add 3 HWIDs for MT7925
	ASoC: hdmi-codec: reorder channel allocation list
	rocker: fix link status detection in rocker_carrier_init()
	net/neighbor: clear error in case strict check is not set
	netpoll: Use rcu_access_pointer() in __netpoll_setup
	pinctrl: freescale: fix COMPILE_TEST error with PINCTRL_IMX_SCU
	rtla: Fix consistency in getopt_long for timerlat_hist
	tracing/ftrace: disable preemption in syscall probe
	tracing: Use atomic64_inc_return() in trace_clock_counter()
	tools/rtla: fix collision with glibc sched_attr/sched_set_attr
	rtla/timerlat: Make timerlat_top_cpu->*_count unsigned long long
	rtla/timerlat: Make timerlat_hist_cpu->*_count unsigned long long
	scsi: hisi_sas: Add cond_resched() for no forced preemption model
	scsi: hisi_sas: Create all dump files during debugfs initialization
	ring-buffer: Limit time with disabled interrupts in rb_check_pages()
	pinmux: Use sequential access to access desc->pinmux data
	scsi: ufs: core: Make DMA mask configuration more flexible
	iommu/amd: Fix corruption when mapping large pages from 0
	bpf: put bpf_link's program when link is safe to be deallocated
	scsi: lpfc: Call lpfc_sli4_queue_unset() in restart and rmmod paths
	scsi: lpfc: Check SLI_ACTIVE flag in FDMI cmpl before submitting follow up FDMI
	scsi: lpfc: Prevent NDLP reference count underflow in dev_loss_tmo callback
	clk: qcom: rcg2: add clk_rcg2_shared_floor_ops
	clk: qcom: rpmh: add support for SAR2130P
	clk: qcom: tcsrcc-sm8550: add SAR2130P support
	clk: qcom: dispcc-sm8550: enable support for SAR2130P
	clk: qcom: clk-alpha-pll: Add NSS HUAYRA ALPHA PLL support for ipq9574
	leds: class: Protect brightness_show() with led_cdev->led_access mutex
	scsi: st: Don't modify unknown block number in MTIOCGET
	scsi: st: Add MTIOCGET and MTLOAD to ioctls allowed after device reset
	pinctrl: qcom-pmic-gpio: add support for PM8937
	pinctrl: qcom: spmi-mpp: Add PM8937 compatible
	thermal/drivers/qcom/tsens-v1: Add support for MSM8937 tsens
	nvdimm: rectify the illogical code within nd_dax_probe()
	smb: client: memcpy() with surrounding object base address
	tracing: Fix function name for trampoline
	tools/rtla: Enhance argument parsing in timerlat_load.py
	verification/dot2: Improve dot parser robustness
	mailbox: pcc: Check before sending MCTP PCC response ACK
	f2fs: fix f2fs_bug_on when uninstalling filesystem call f2fs_evict_inode.
	KMSAN: uninit-value in inode_go_dump (5)
	i3c: mipi-i3c-hci: Mask ring interrupts before ring stop request
	PCI: qcom: Add support for IPQ9574
	PCI: vmd: Add DID 8086:B06F and 8086:B60B for Intel client SKUs
	PCI: vmd: Set devices to D0 before enabling PM L1 Substates
	PCI: Detect and trust built-in Thunderbolt chips
	PCI: starfive: Enable controller runtime PM before probing host bridge
	PCI: Add 'reset_subordinate' to reset hierarchy below bridge
	PCI: Add ACS quirk for Wangxun FF5xxx NICs
	remoteproc: qcom: pas: enable SAR2130P audio DSP support
	i3c: Use i3cdev->desc->info instead of calling i3c_device_get_info() to avoid deadlock
	f2fs: print message if fscorrupted was found in f2fs_new_node_page()
	f2fs: fix to shrink read extent node in batches
	f2fs: add a sysfs node to limit max read extent count per-inode
	ACPI: x86: Add skip i2c clients quirk for Acer Iconia One 8 A1-840
	ACPI: x86: Clean up Asus entries in acpi_quirk_skip_dmi_ids[]
	LoongArch: Fix sleeping in atomic context for PREEMPT_RT
	fs/ntfs3: Fix warning in ni_fiemap
	fs/ntfs3: Fix case when unmarked clusters intersect with zone
	regulator: qcom-rpmh: Update ranges for FTSMPS525
	usb: chipidea: add CI_HDRC_HAS_SHORT_PKT_LIMIT flag
	usb: chipidea: udc: limit usb request length to max 16KB
	usb: chipidea: udc: create bounce buffer for problem sglist entries if possible
	usb: chipidea: udc: handle USB Error Interrupt if IOC not set
	usb: typec: ucsi: Do not call ACPI _DSM method for UCSI read operations
	iio: adc: ad7192: properly check spi_get_device_match_data()
	iio: light: ltr501: Add LTER0303 to the supported devices
	usb: typec: ucsi: glink: be more precise on orientation-aware ports
	ASoC: amd: yc: fix internal mic on Redmi G 2022
	drm/amdgpu/vcn: reset fw_shared when VCPU buffers corrupted on vcn v4.0.3
	MIPS: Loongson64: DTS: Really fix PCIe port nodes for ls7a
	ASoC: amd: yc: Add quirk for microphone on Lenovo Thinkpad T14s Gen 6 21M1CTO1WW
	powerpc/prom_init: Fixup missing powermac #size-cells
	misc: eeprom: eeprom_93cx6: Add quirk for extra read clock cycle
	rtc: cmos: avoid taking rtc_lock for extended period of time
	serial: 8250_dw: Add Sophgo SG2044 quirk
	Revert "nvme: make keep-alive synchronous operation"
	irqchip/gicv3-its: Add workaround for hip09 ITS erratum 162100801
	smb: client: don't try following DFS links in cifs_tree_connect()
	setlocalversion: work around "git describe" performance
	io_uring/tctx: work around xa_store() allocation error issue
	scsi: ufs: pltfrm: Dellocate HBA during ufshcd_pltfrm_remove()
	drm/xe/devcoredump: Use drm_puts and already cached local variables
	drm/xe/devcoredump: Improve section headings and add tile info
	drm/xe/devcoredump: Add ASCII85 dump helper function
	drm/xe/guc: Copy GuC log prior to dumping
	drm/xe/forcewake: Add a helper xe_force_wake_ref_has_domain()
	drm/xe/devcoredump: Update handling of xe_force_wake_get return
	drm/amd/display: Add option to retrieve detile buffer size
	sched: fix warning in sched_setaffinity
	sched/core: Remove the unnecessary need_resched() check in nohz_csd_func()
	sched/fair: Check idle_cpu() before need_resched() to detect ilb CPU turning busy
	sched/core: Prevent wakeup of ksoftirqd during idle load balance
	sched/deadline: Fix warning in migrate_enable for boosted tasks
	btrfs: drop unused parameter options from open_ctree()
	btrfs: drop unused parameter data from btrfs_fill_super()
	btrfs: fix mount failure due to remount races
	btrfs: fix missing snapshot drew unlock when root is dead during swap activation
	clk: en7523: Initialize num before accessing hws in en7523_register_clocks()
	tracing/eprobe: Fix to release eprobe when failed to add dyn_event
	x86: Fix build regression with CONFIG_KEXEC_JUMP enabled
	Revert "unicode: Don't special case ignorable code points"
	vfio/mlx5: Align the page tracking max message size with the device capability
	selftests/ftrace: adjust offset for kprobe syntax error test
	KVM: x86/mmu: Ensure that kvm_release_pfn_clean() takes exact pfn from kvm_faultin_pfn()
	jffs2: Prevent rtime decompress memory corruption
	jffs2: Fix rtime decompressor
	media: ipu6: use the IPU6 DMA mapping APIs to do mapping
	ocfs2: Revert "ocfs2: fix the la space leak when unmounting an ocfs2 volume"
	net/mlx5: unique names for per device caches
	ASoC: Intel: avs: Fix return status of avs_pcm_hw_constraints_init()
	drm/amdgpu: rework resume handling for display (v2)
	ALSA: hda: Fix build error without CONFIG_SND_DEBUG
	Revert "drm/amd/display: parse umc_info or vram_info based on ASIC"
	s390/pci: Fix leak of struct zpci_dev when zpci_add_device() fails
	ALSA: hda/realtek: Fix spelling mistake "Firelfy" -> "Firefly"
	timekeeping: Remove CONFIG_DEBUG_TIMEKEEPING
	clocksource: Make negative motion detection more robust
	softirq: Allow raising SCHED_SOFTIRQ from SMP-call-function on RT kernel
	Linux 6.12.5

Change-Id: If1b834954ed2ee1a16886f9a9909c6ca62d93b6c
Signed-off-by: Greg Kroah-Hartman <gregkh@google.com>
2024-12-15 11:57:47 +00:00

2547 lines
72 KiB
C

// SPDX-License-Identifier: GPL-2.0
/*
* Kernel timekeeping code and accessor functions. Based on code from
* timer.c, moved in commit 8524070b7982.
*/
#include <linux/timekeeper_internal.h>
#include <linux/module.h>
#include <linux/interrupt.h>
#include <linux/percpu.h>
#include <linux/init.h>
#include <linux/mm.h>
#include <linux/nmi.h>
#include <linux/sched.h>
#include <linux/sched/loadavg.h>
#include <linux/sched/clock.h>
#include <linux/syscore_ops.h>
#include <linux/clocksource.h>
#include <linux/jiffies.h>
#include <linux/time.h>
#include <linux/timex.h>
#include <linux/tick.h>
#include <linux/stop_machine.h>
#include <linux/pvclock_gtod.h>
#include <linux/compiler.h>
#include <linux/audit.h>
#include <linux/random.h>
#include "tick-internal.h"
#include "ntp_internal.h"
#include "timekeeping_internal.h"
#define TK_CLEAR_NTP (1 << 0)
#define TK_MIRROR (1 << 1)
#define TK_CLOCK_WAS_SET (1 << 2)
enum timekeeping_adv_mode {
/* Update timekeeper when a tick has passed */
TK_ADV_TICK,
/* Update timekeeper on a direct frequency change */
TK_ADV_FREQ
};
DEFINE_RAW_SPINLOCK(timekeeper_lock);
/*
* The most important data for readout fits into a single 64 byte
* cache line.
*/
static struct {
seqcount_raw_spinlock_t seq;
struct timekeeper timekeeper;
} tk_core ____cacheline_aligned = {
.seq = SEQCNT_RAW_SPINLOCK_ZERO(tk_core.seq, &timekeeper_lock),
};
static struct timekeeper shadow_timekeeper;
/* flag for if timekeeping is suspended */
int __read_mostly timekeeping_suspended;
/**
* struct tk_fast - NMI safe timekeeper
* @seq: Sequence counter for protecting updates. The lowest bit
* is the index for the tk_read_base array
* @base: tk_read_base array. Access is indexed by the lowest bit of
* @seq.
*
* See @update_fast_timekeeper() below.
*/
struct tk_fast {
seqcount_latch_t seq;
struct tk_read_base base[2];
};
/* Suspend-time cycles value for halted fast timekeeper. */
static u64 cycles_at_suspend;
static u64 dummy_clock_read(struct clocksource *cs)
{
if (timekeeping_suspended)
return cycles_at_suspend;
return local_clock();
}
static struct clocksource dummy_clock = {
.read = dummy_clock_read,
};
/*
* Boot time initialization which allows local_clock() to be utilized
* during early boot when clocksources are not available. local_clock()
* returns nanoseconds already so no conversion is required, hence mult=1
* and shift=0. When the first proper clocksource is installed then
* the fast time keepers are updated with the correct values.
*/
#define FAST_TK_INIT \
{ \
.clock = &dummy_clock, \
.mask = CLOCKSOURCE_MASK(64), \
.mult = 1, \
.shift = 0, \
}
static struct tk_fast tk_fast_mono ____cacheline_aligned = {
.seq = SEQCNT_LATCH_ZERO(tk_fast_mono.seq),
.base[0] = FAST_TK_INIT,
.base[1] = FAST_TK_INIT,
};
static struct tk_fast tk_fast_raw ____cacheline_aligned = {
.seq = SEQCNT_LATCH_ZERO(tk_fast_raw.seq),
.base[0] = FAST_TK_INIT,
.base[1] = FAST_TK_INIT,
};
static inline void tk_normalize_xtime(struct timekeeper *tk)
{
while (tk->tkr_mono.xtime_nsec >= ((u64)NSEC_PER_SEC << tk->tkr_mono.shift)) {
tk->tkr_mono.xtime_nsec -= (u64)NSEC_PER_SEC << tk->tkr_mono.shift;
tk->xtime_sec++;
}
while (tk->tkr_raw.xtime_nsec >= ((u64)NSEC_PER_SEC << tk->tkr_raw.shift)) {
tk->tkr_raw.xtime_nsec -= (u64)NSEC_PER_SEC << tk->tkr_raw.shift;
tk->raw_sec++;
}
}
static inline struct timespec64 tk_xtime(const struct timekeeper *tk)
{
struct timespec64 ts;
ts.tv_sec = tk->xtime_sec;
ts.tv_nsec = (long)(tk->tkr_mono.xtime_nsec >> tk->tkr_mono.shift);
return ts;
}
static void tk_set_xtime(struct timekeeper *tk, const struct timespec64 *ts)
{
tk->xtime_sec = ts->tv_sec;
tk->tkr_mono.xtime_nsec = (u64)ts->tv_nsec << tk->tkr_mono.shift;
}
static void tk_xtime_add(struct timekeeper *tk, const struct timespec64 *ts)
{
tk->xtime_sec += ts->tv_sec;
tk->tkr_mono.xtime_nsec += (u64)ts->tv_nsec << tk->tkr_mono.shift;
tk_normalize_xtime(tk);
}
static void tk_set_wall_to_mono(struct timekeeper *tk, struct timespec64 wtm)
{
struct timespec64 tmp;
/*
* Verify consistency of: offset_real = -wall_to_monotonic
* before modifying anything
*/
set_normalized_timespec64(&tmp, -tk->wall_to_monotonic.tv_sec,
-tk->wall_to_monotonic.tv_nsec);
WARN_ON_ONCE(tk->offs_real != timespec64_to_ktime(tmp));
tk->wall_to_monotonic = wtm;
set_normalized_timespec64(&tmp, -wtm.tv_sec, -wtm.tv_nsec);
tk->offs_real = timespec64_to_ktime(tmp);
tk->offs_tai = ktime_add(tk->offs_real, ktime_set(tk->tai_offset, 0));
}
static inline void tk_update_sleep_time(struct timekeeper *tk, ktime_t delta)
{
tk->offs_boot = ktime_add(tk->offs_boot, delta);
/*
* Timespec representation for VDSO update to avoid 64bit division
* on every update.
*/
tk->monotonic_to_boot = ktime_to_timespec64(tk->offs_boot);
}
/*
* tk_clock_read - atomic clocksource read() helper
*
* This helper is necessary to use in the read paths because, while the
* seqcount ensures we don't return a bad value while structures are updated,
* it doesn't protect from potential crashes. There is the possibility that
* the tkr's clocksource may change between the read reference, and the
* clock reference passed to the read function. This can cause crashes if
* the wrong clocksource is passed to the wrong read function.
* This isn't necessary to use when holding the timekeeper_lock or doing
* a read of the fast-timekeeper tkrs (which is protected by its own locking
* and update logic).
*/
static inline u64 tk_clock_read(const struct tk_read_base *tkr)
{
struct clocksource *clock = READ_ONCE(tkr->clock);
return clock->read(clock);
}
/**
* tk_setup_internals - Set up internals to use clocksource clock.
*
* @tk: The target timekeeper to setup.
* @clock: Pointer to clocksource.
*
* Calculates a fixed cycle/nsec interval for a given clocksource/adjustment
* pair and interval request.
*
* Unless you're the timekeeping code, you should not be using this!
*/
static void tk_setup_internals(struct timekeeper *tk, struct clocksource *clock)
{
u64 interval;
u64 tmp, ntpinterval;
struct clocksource *old_clock;
++tk->cs_was_changed_seq;
old_clock = tk->tkr_mono.clock;
tk->tkr_mono.clock = clock;
tk->tkr_mono.mask = clock->mask;
tk->tkr_mono.cycle_last = tk_clock_read(&tk->tkr_mono);
tk->tkr_raw.clock = clock;
tk->tkr_raw.mask = clock->mask;
tk->tkr_raw.cycle_last = tk->tkr_mono.cycle_last;
/* Do the ns -> cycle conversion first, using original mult */
tmp = NTP_INTERVAL_LENGTH;
tmp <<= clock->shift;
ntpinterval = tmp;
tmp += clock->mult/2;
do_div(tmp, clock->mult);
if (tmp == 0)
tmp = 1;
interval = (u64) tmp;
tk->cycle_interval = interval;
/* Go back from cycles -> shifted ns */
tk->xtime_interval = interval * clock->mult;
tk->xtime_remainder = ntpinterval - tk->xtime_interval;
tk->raw_interval = interval * clock->mult;
/* if changing clocks, convert xtime_nsec shift units */
if (old_clock) {
int shift_change = clock->shift - old_clock->shift;
if (shift_change < 0) {
tk->tkr_mono.xtime_nsec >>= -shift_change;
tk->tkr_raw.xtime_nsec >>= -shift_change;
} else {
tk->tkr_mono.xtime_nsec <<= shift_change;
tk->tkr_raw.xtime_nsec <<= shift_change;
}
}
tk->tkr_mono.shift = clock->shift;
tk->tkr_raw.shift = clock->shift;
tk->ntp_error = 0;
tk->ntp_error_shift = NTP_SCALE_SHIFT - clock->shift;
tk->ntp_tick = ntpinterval << tk->ntp_error_shift;
/*
* The timekeeper keeps its own mult values for the currently
* active clocksource. These value will be adjusted via NTP
* to counteract clock drifting.
*/
tk->tkr_mono.mult = clock->mult;
tk->tkr_raw.mult = clock->mult;
tk->ntp_err_mult = 0;
tk->skip_second_overflow = 0;
}
/* Timekeeper helper functions. */
static noinline u64 delta_to_ns_safe(const struct tk_read_base *tkr, u64 delta)
{
return mul_u64_u32_add_u64_shr(delta, tkr->mult, tkr->xtime_nsec, tkr->shift);
}
static inline u64 timekeeping_cycles_to_ns(const struct tk_read_base *tkr, u64 cycles)
{
/* Calculate the delta since the last update_wall_time() */
u64 mask = tkr->mask, delta = (cycles - tkr->cycle_last) & mask;
/*
* This detects both negative motion and the case where the delta
* overflows the multiplication with tkr->mult.
*/
if (unlikely(delta > tkr->clock->max_cycles)) {
/*
* Handle clocksource inconsistency between CPUs to prevent
* time from going backwards by checking for the MSB of the
* mask being set in the delta.
*/
if (delta & ~(mask >> 1))
return tkr->xtime_nsec >> tkr->shift;
return delta_to_ns_safe(tkr, delta);
}
return ((delta * tkr->mult) + tkr->xtime_nsec) >> tkr->shift;
}
static __always_inline u64 timekeeping_get_ns(const struct tk_read_base *tkr)
{
return timekeeping_cycles_to_ns(tkr, tk_clock_read(tkr));
}
/**
* update_fast_timekeeper - Update the fast and NMI safe monotonic timekeeper.
* @tkr: Timekeeping readout base from which we take the update
* @tkf: Pointer to NMI safe timekeeper
*
* We want to use this from any context including NMI and tracing /
* instrumenting the timekeeping code itself.
*
* Employ the latch technique; see @raw_write_seqcount_latch.
*
* So if a NMI hits the update of base[0] then it will use base[1]
* which is still consistent. In the worst case this can result is a
* slightly wrong timestamp (a few nanoseconds). See
* @ktime_get_mono_fast_ns.
*/
static void update_fast_timekeeper(const struct tk_read_base *tkr,
struct tk_fast *tkf)
{
struct tk_read_base *base = tkf->base;
/* Force readers off to base[1] */
raw_write_seqcount_latch(&tkf->seq);
/* Update base[0] */
memcpy(base, tkr, sizeof(*base));
/* Force readers back to base[0] */
raw_write_seqcount_latch(&tkf->seq);
/* Update base[1] */
memcpy(base + 1, base, sizeof(*base));
}
static __always_inline u64 __ktime_get_fast_ns(struct tk_fast *tkf)
{
struct tk_read_base *tkr;
unsigned int seq;
u64 now;
do {
seq = raw_read_seqcount_latch(&tkf->seq);
tkr = tkf->base + (seq & 0x01);
now = ktime_to_ns(tkr->base);
now += timekeeping_get_ns(tkr);
} while (raw_read_seqcount_latch_retry(&tkf->seq, seq));
return now;
}
/**
* ktime_get_mono_fast_ns - Fast NMI safe access to clock monotonic
*
* This timestamp is not guaranteed to be monotonic across an update.
* The timestamp is calculated by:
*
* now = base_mono + clock_delta * slope
*
* So if the update lowers the slope, readers who are forced to the
* not yet updated second array are still using the old steeper slope.
*
* tmono
* ^
* | o n
* | o n
* | u
* | o
* |o
* |12345678---> reader order
*
* o = old slope
* u = update
* n = new slope
*
* So reader 6 will observe time going backwards versus reader 5.
*
* While other CPUs are likely to be able to observe that, the only way
* for a CPU local observation is when an NMI hits in the middle of
* the update. Timestamps taken from that NMI context might be ahead
* of the following timestamps. Callers need to be aware of that and
* deal with it.
*/
u64 notrace ktime_get_mono_fast_ns(void)
{
return __ktime_get_fast_ns(&tk_fast_mono);
}
EXPORT_SYMBOL_GPL(ktime_get_mono_fast_ns);
/**
* ktime_get_raw_fast_ns - Fast NMI safe access to clock monotonic raw
*
* Contrary to ktime_get_mono_fast_ns() this is always correct because the
* conversion factor is not affected by NTP/PTP correction.
*/
u64 notrace ktime_get_raw_fast_ns(void)
{
return __ktime_get_fast_ns(&tk_fast_raw);
}
EXPORT_SYMBOL_GPL(ktime_get_raw_fast_ns);
/**
* ktime_get_boot_fast_ns - NMI safe and fast access to boot clock.
*
* To keep it NMI safe since we're accessing from tracing, we're not using a
* separate timekeeper with updates to monotonic clock and boot offset
* protected with seqcounts. This has the following minor side effects:
*
* (1) Its possible that a timestamp be taken after the boot offset is updated
* but before the timekeeper is updated. If this happens, the new boot offset
* is added to the old timekeeping making the clock appear to update slightly
* earlier:
* CPU 0 CPU 1
* timekeeping_inject_sleeptime64()
* __timekeeping_inject_sleeptime(tk, delta);
* timestamp();
* timekeeping_update(tk, TK_CLEAR_NTP...);
*
* (2) On 32-bit systems, the 64-bit boot offset (tk->offs_boot) may be
* partially updated. Since the tk->offs_boot update is a rare event, this
* should be a rare occurrence which postprocessing should be able to handle.
*
* The caveats vs. timestamp ordering as documented for ktime_get_mono_fast_ns()
* apply as well.
*/
u64 notrace ktime_get_boot_fast_ns(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
return (ktime_get_mono_fast_ns() + ktime_to_ns(data_race(tk->offs_boot)));
}
EXPORT_SYMBOL_GPL(ktime_get_boot_fast_ns);
/**
* ktime_get_tai_fast_ns - NMI safe and fast access to tai clock.
*
* The same limitations as described for ktime_get_boot_fast_ns() apply. The
* mono time and the TAI offset are not read atomically which may yield wrong
* readouts. However, an update of the TAI offset is an rare event e.g., caused
* by settime or adjtimex with an offset. The user of this function has to deal
* with the possibility of wrong timestamps in post processing.
*/
u64 notrace ktime_get_tai_fast_ns(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
return (ktime_get_mono_fast_ns() + ktime_to_ns(data_race(tk->offs_tai)));
}
EXPORT_SYMBOL_GPL(ktime_get_tai_fast_ns);
static __always_inline u64 __ktime_get_real_fast(struct tk_fast *tkf, u64 *mono)
{
struct tk_read_base *tkr;
u64 basem, baser, delta;
unsigned int seq;
do {
seq = raw_read_seqcount_latch(&tkf->seq);
tkr = tkf->base + (seq & 0x01);
basem = ktime_to_ns(tkr->base);
baser = ktime_to_ns(tkr->base_real);
delta = timekeeping_get_ns(tkr);
} while (raw_read_seqcount_latch_retry(&tkf->seq, seq));
if (mono)
*mono = basem + delta;
return baser + delta;
}
/**
* ktime_get_real_fast_ns: - NMI safe and fast access to clock realtime.
*
* See ktime_get_mono_fast_ns() for documentation of the time stamp ordering.
*/
u64 ktime_get_real_fast_ns(void)
{
return __ktime_get_real_fast(&tk_fast_mono, NULL);
}
EXPORT_SYMBOL_GPL(ktime_get_real_fast_ns);
/**
* ktime_get_fast_timestamps: - NMI safe timestamps
* @snapshot: Pointer to timestamp storage
*
* Stores clock monotonic, boottime and realtime timestamps.
*
* Boot time is a racy access on 32bit systems if the sleep time injection
* happens late during resume and not in timekeeping_resume(). That could
* be avoided by expanding struct tk_read_base with boot offset for 32bit
* and adding more overhead to the update. As this is a hard to observe
* once per resume event which can be filtered with reasonable effort using
* the accurate mono/real timestamps, it's probably not worth the trouble.
*
* Aside of that it might be possible on 32 and 64 bit to observe the
* following when the sleep time injection happens late:
*
* CPU 0 CPU 1
* timekeeping_resume()
* ktime_get_fast_timestamps()
* mono, real = __ktime_get_real_fast()
* inject_sleep_time()
* update boot offset
* boot = mono + bootoffset;
*
* That means that boot time already has the sleep time adjustment, but
* real time does not. On the next readout both are in sync again.
*
* Preventing this for 64bit is not really feasible without destroying the
* careful cache layout of the timekeeper because the sequence count and
* struct tk_read_base would then need two cache lines instead of one.
*
* Access to the time keeper clock source is disabled across the innermost
* steps of suspend/resume. The accessors still work, but the timestamps
* are frozen until time keeping is resumed which happens very early.
*
* For regular suspend/resume there is no observable difference vs. sched
* clock, but it might affect some of the nasty low level debug printks.
*
* OTOH, access to sched clock is not guaranteed across suspend/resume on
* all systems either so it depends on the hardware in use.
*
* If that turns out to be a real problem then this could be mitigated by
* using sched clock in a similar way as during early boot. But it's not as
* trivial as on early boot because it needs some careful protection
* against the clock monotonic timestamp jumping backwards on resume.
*/
void ktime_get_fast_timestamps(struct ktime_timestamps *snapshot)
{
struct timekeeper *tk = &tk_core.timekeeper;
snapshot->real = __ktime_get_real_fast(&tk_fast_mono, &snapshot->mono);
snapshot->boot = snapshot->mono + ktime_to_ns(data_race(tk->offs_boot));
}
/**
* halt_fast_timekeeper - Prevent fast timekeeper from accessing clocksource.
* @tk: Timekeeper to snapshot.
*
* It generally is unsafe to access the clocksource after timekeeping has been
* suspended, so take a snapshot of the readout base of @tk and use it as the
* fast timekeeper's readout base while suspended. It will return the same
* number of cycles every time until timekeeping is resumed at which time the
* proper readout base for the fast timekeeper will be restored automatically.
*/
static void halt_fast_timekeeper(const struct timekeeper *tk)
{
static struct tk_read_base tkr_dummy;
const struct tk_read_base *tkr = &tk->tkr_mono;
memcpy(&tkr_dummy, tkr, sizeof(tkr_dummy));
cycles_at_suspend = tk_clock_read(tkr);
tkr_dummy.clock = &dummy_clock;
tkr_dummy.base_real = tkr->base + tk->offs_real;
update_fast_timekeeper(&tkr_dummy, &tk_fast_mono);
tkr = &tk->tkr_raw;
memcpy(&tkr_dummy, tkr, sizeof(tkr_dummy));
tkr_dummy.clock = &dummy_clock;
update_fast_timekeeper(&tkr_dummy, &tk_fast_raw);
}
static RAW_NOTIFIER_HEAD(pvclock_gtod_chain);
static void update_pvclock_gtod(struct timekeeper *tk, bool was_set)
{
raw_notifier_call_chain(&pvclock_gtod_chain, was_set, tk);
}
/**
* pvclock_gtod_register_notifier - register a pvclock timedata update listener
* @nb: Pointer to the notifier block to register
*/
int pvclock_gtod_register_notifier(struct notifier_block *nb)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned long flags;
int ret;
raw_spin_lock_irqsave(&timekeeper_lock, flags);
ret = raw_notifier_chain_register(&pvclock_gtod_chain, nb);
update_pvclock_gtod(tk, true);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
return ret;
}
EXPORT_SYMBOL_GPL(pvclock_gtod_register_notifier);
/**
* pvclock_gtod_unregister_notifier - unregister a pvclock
* timedata update listener
* @nb: Pointer to the notifier block to unregister
*/
int pvclock_gtod_unregister_notifier(struct notifier_block *nb)
{
unsigned long flags;
int ret;
raw_spin_lock_irqsave(&timekeeper_lock, flags);
ret = raw_notifier_chain_unregister(&pvclock_gtod_chain, nb);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
return ret;
}
EXPORT_SYMBOL_GPL(pvclock_gtod_unregister_notifier);
/*
* tk_update_leap_state - helper to update the next_leap_ktime
*/
static inline void tk_update_leap_state(struct timekeeper *tk)
{
tk->next_leap_ktime = ntp_get_next_leap();
if (tk->next_leap_ktime != KTIME_MAX)
/* Convert to monotonic time */
tk->next_leap_ktime = ktime_sub(tk->next_leap_ktime, tk->offs_real);
}
/*
* Update the ktime_t based scalar nsec members of the timekeeper
*/
static inline void tk_update_ktime_data(struct timekeeper *tk)
{
u64 seconds;
u32 nsec;
/*
* The xtime based monotonic readout is:
* nsec = (xtime_sec + wtm_sec) * 1e9 + wtm_nsec + now();
* The ktime based monotonic readout is:
* nsec = base_mono + now();
* ==> base_mono = (xtime_sec + wtm_sec) * 1e9 + wtm_nsec
*/
seconds = (u64)(tk->xtime_sec + tk->wall_to_monotonic.tv_sec);
nsec = (u32) tk->wall_to_monotonic.tv_nsec;
tk->tkr_mono.base = ns_to_ktime(seconds * NSEC_PER_SEC + nsec);
/*
* The sum of the nanoseconds portions of xtime and
* wall_to_monotonic can be greater/equal one second. Take
* this into account before updating tk->ktime_sec.
*/
nsec += (u32)(tk->tkr_mono.xtime_nsec >> tk->tkr_mono.shift);
if (nsec >= NSEC_PER_SEC)
seconds++;
tk->ktime_sec = seconds;
/* Update the monotonic raw base */
tk->tkr_raw.base = ns_to_ktime(tk->raw_sec * NSEC_PER_SEC);
}
/* must hold timekeeper_lock */
static void timekeeping_update(struct timekeeper *tk, unsigned int action)
{
if (action & TK_CLEAR_NTP) {
tk->ntp_error = 0;
ntp_clear();
}
tk_update_leap_state(tk);
tk_update_ktime_data(tk);
update_vsyscall(tk);
update_pvclock_gtod(tk, action & TK_CLOCK_WAS_SET);
tk->tkr_mono.base_real = tk->tkr_mono.base + tk->offs_real;
update_fast_timekeeper(&tk->tkr_mono, &tk_fast_mono);
update_fast_timekeeper(&tk->tkr_raw, &tk_fast_raw);
if (action & TK_CLOCK_WAS_SET)
tk->clock_was_set_seq++;
/*
* The mirroring of the data to the shadow-timekeeper needs
* to happen last here to ensure we don't over-write the
* timekeeper structure on the next update with stale data
*/
if (action & TK_MIRROR)
memcpy(&shadow_timekeeper, &tk_core.timekeeper,
sizeof(tk_core.timekeeper));
}
/**
* timekeeping_forward_now - update clock to the current time
* @tk: Pointer to the timekeeper to update
*
* Forward the current clock to update its state since the last call to
* update_wall_time(). This is useful before significant clock changes,
* as it avoids having to deal with this time offset explicitly.
*/
static void timekeeping_forward_now(struct timekeeper *tk)
{
u64 cycle_now, delta;
cycle_now = tk_clock_read(&tk->tkr_mono);
delta = clocksource_delta(cycle_now, tk->tkr_mono.cycle_last, tk->tkr_mono.mask,
tk->tkr_mono.clock->max_raw_delta);
tk->tkr_mono.cycle_last = cycle_now;
tk->tkr_raw.cycle_last = cycle_now;
while (delta > 0) {
u64 max = tk->tkr_mono.clock->max_cycles;
u64 incr = delta < max ? delta : max;
tk->tkr_mono.xtime_nsec += incr * tk->tkr_mono.mult;
tk->tkr_raw.xtime_nsec += incr * tk->tkr_raw.mult;
tk_normalize_xtime(tk);
delta -= incr;
}
}
/**
* ktime_get_real_ts64 - Returns the time of day in a timespec64.
* @ts: pointer to the timespec to be set
*
* Returns the time of day in a timespec64 (WARN if suspended).
*/
void ktime_get_real_ts64(struct timespec64 *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
u64 nsecs;
WARN_ON(timekeeping_suspended);
do {
seq = read_seqcount_begin(&tk_core.seq);
ts->tv_sec = tk->xtime_sec;
nsecs = timekeeping_get_ns(&tk->tkr_mono);
} while (read_seqcount_retry(&tk_core.seq, seq));
ts->tv_nsec = 0;
timespec64_add_ns(ts, nsecs);
}
EXPORT_SYMBOL(ktime_get_real_ts64);
ktime_t ktime_get(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
ktime_t base;
u64 nsecs;
WARN_ON(timekeeping_suspended);
do {
seq = read_seqcount_begin(&tk_core.seq);
base = tk->tkr_mono.base;
nsecs = timekeeping_get_ns(&tk->tkr_mono);
} while (read_seqcount_retry(&tk_core.seq, seq));
return ktime_add_ns(base, nsecs);
}
EXPORT_SYMBOL_GPL(ktime_get);
u32 ktime_get_resolution_ns(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
u32 nsecs;
WARN_ON(timekeeping_suspended);
do {
seq = read_seqcount_begin(&tk_core.seq);
nsecs = tk->tkr_mono.mult >> tk->tkr_mono.shift;
} while (read_seqcount_retry(&tk_core.seq, seq));
return nsecs;
}
EXPORT_SYMBOL_GPL(ktime_get_resolution_ns);
static ktime_t *offsets[TK_OFFS_MAX] = {
[TK_OFFS_REAL] = &tk_core.timekeeper.offs_real,
[TK_OFFS_BOOT] = &tk_core.timekeeper.offs_boot,
[TK_OFFS_TAI] = &tk_core.timekeeper.offs_tai,
};
ktime_t ktime_get_with_offset(enum tk_offsets offs)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
ktime_t base, *offset = offsets[offs];
u64 nsecs;
WARN_ON(timekeeping_suspended);
do {
seq = read_seqcount_begin(&tk_core.seq);
base = ktime_add(tk->tkr_mono.base, *offset);
nsecs = timekeeping_get_ns(&tk->tkr_mono);
} while (read_seqcount_retry(&tk_core.seq, seq));
return ktime_add_ns(base, nsecs);
}
EXPORT_SYMBOL_GPL(ktime_get_with_offset);
ktime_t ktime_get_coarse_with_offset(enum tk_offsets offs)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
ktime_t base, *offset = offsets[offs];
u64 nsecs;
WARN_ON(timekeeping_suspended);
do {
seq = read_seqcount_begin(&tk_core.seq);
base = ktime_add(tk->tkr_mono.base, *offset);
nsecs = tk->tkr_mono.xtime_nsec >> tk->tkr_mono.shift;
} while (read_seqcount_retry(&tk_core.seq, seq));
return ktime_add_ns(base, nsecs);
}
EXPORT_SYMBOL_GPL(ktime_get_coarse_with_offset);
/**
* ktime_mono_to_any() - convert monotonic time to any other time
* @tmono: time to convert.
* @offs: which offset to use
*/
ktime_t ktime_mono_to_any(ktime_t tmono, enum tk_offsets offs)
{
ktime_t *offset = offsets[offs];
unsigned int seq;
ktime_t tconv;
do {
seq = read_seqcount_begin(&tk_core.seq);
tconv = ktime_add(tmono, *offset);
} while (read_seqcount_retry(&tk_core.seq, seq));
return tconv;
}
EXPORT_SYMBOL_GPL(ktime_mono_to_any);
/**
* ktime_get_raw - Returns the raw monotonic time in ktime_t format
*/
ktime_t ktime_get_raw(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
ktime_t base;
u64 nsecs;
do {
seq = read_seqcount_begin(&tk_core.seq);
base = tk->tkr_raw.base;
nsecs = timekeeping_get_ns(&tk->tkr_raw);
} while (read_seqcount_retry(&tk_core.seq, seq));
return ktime_add_ns(base, nsecs);
}
EXPORT_SYMBOL_GPL(ktime_get_raw);
/**
* ktime_get_ts64 - get the monotonic clock in timespec64 format
* @ts: pointer to timespec variable
*
* The function calculates the monotonic clock from the realtime
* clock and the wall_to_monotonic offset and stores the result
* in normalized timespec64 format in the variable pointed to by @ts.
*/
void ktime_get_ts64(struct timespec64 *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
struct timespec64 tomono;
unsigned int seq;
u64 nsec;
WARN_ON(timekeeping_suspended);
do {
seq = read_seqcount_begin(&tk_core.seq);
ts->tv_sec = tk->xtime_sec;
nsec = timekeeping_get_ns(&tk->tkr_mono);
tomono = tk->wall_to_monotonic;
} while (read_seqcount_retry(&tk_core.seq, seq));
ts->tv_sec += tomono.tv_sec;
ts->tv_nsec = 0;
timespec64_add_ns(ts, nsec + tomono.tv_nsec);
}
EXPORT_SYMBOL_GPL(ktime_get_ts64);
/**
* ktime_get_seconds - Get the seconds portion of CLOCK_MONOTONIC
*
* Returns the seconds portion of CLOCK_MONOTONIC with a single non
* serialized read. tk->ktime_sec is of type 'unsigned long' so this
* works on both 32 and 64 bit systems. On 32 bit systems the readout
* covers ~136 years of uptime which should be enough to prevent
* premature wrap arounds.
*/
time64_t ktime_get_seconds(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
WARN_ON(timekeeping_suspended);
return tk->ktime_sec;
}
EXPORT_SYMBOL_GPL(ktime_get_seconds);
/**
* ktime_get_real_seconds - Get the seconds portion of CLOCK_REALTIME
*
* Returns the wall clock seconds since 1970.
*
* For 64bit systems the fast access to tk->xtime_sec is preserved. On
* 32bit systems the access must be protected with the sequence
* counter to provide "atomic" access to the 64bit tk->xtime_sec
* value.
*/
time64_t ktime_get_real_seconds(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
time64_t seconds;
unsigned int seq;
if (IS_ENABLED(CONFIG_64BIT))
return tk->xtime_sec;
do {
seq = read_seqcount_begin(&tk_core.seq);
seconds = tk->xtime_sec;
} while (read_seqcount_retry(&tk_core.seq, seq));
return seconds;
}
EXPORT_SYMBOL_GPL(ktime_get_real_seconds);
/**
* __ktime_get_real_seconds - The same as ktime_get_real_seconds
* but without the sequence counter protect. This internal function
* is called just when timekeeping lock is already held.
*/
noinstr time64_t __ktime_get_real_seconds(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
return tk->xtime_sec;
}
/**
* ktime_get_snapshot - snapshots the realtime/monotonic raw clocks with counter
* @systime_snapshot: pointer to struct receiving the system time snapshot
*/
void ktime_get_snapshot(struct system_time_snapshot *systime_snapshot)
{
struct timekeeper *tk = &tk_core.timekeeper;
u32 mono_mult, mono_shift;
unsigned int seq;
ktime_t base_raw;
ktime_t base_real;
ktime_t base_boot;
u64 nsec_raw;
u64 nsec_real;
u64 now;
WARN_ON_ONCE(timekeeping_suspended);
do {
seq = read_seqcount_begin(&tk_core.seq);
now = tk_clock_read(&tk->tkr_mono);
systime_snapshot->cs_id = tk->tkr_mono.clock->id;
systime_snapshot->cs_was_changed_seq = tk->cs_was_changed_seq;
systime_snapshot->clock_was_set_seq = tk->clock_was_set_seq;
base_real = ktime_add(tk->tkr_mono.base,
tk_core.timekeeper.offs_real);
base_boot = ktime_add(tk->tkr_mono.base,
tk_core.timekeeper.offs_boot);
base_raw = tk->tkr_raw.base;
nsec_real = timekeeping_cycles_to_ns(&tk->tkr_mono, now);
nsec_raw = timekeeping_cycles_to_ns(&tk->tkr_raw, now);
mono_mult = tk->tkr_mono.mult;
mono_shift = tk->tkr_mono.shift;
} while (read_seqcount_retry(&tk_core.seq, seq));
systime_snapshot->cycles = now;
systime_snapshot->real = ktime_add_ns(base_real, nsec_real);
systime_snapshot->boot = ktime_add_ns(base_boot, nsec_real);
systime_snapshot->raw = ktime_add_ns(base_raw, nsec_raw);
systime_snapshot->mono_shift = mono_shift;
systime_snapshot->mono_mult = mono_mult;
}
EXPORT_SYMBOL_GPL(ktime_get_snapshot);
/* Scale base by mult/div checking for overflow */
static int scale64_check_overflow(u64 mult, u64 div, u64 *base)
{
u64 tmp, rem;
tmp = div64_u64_rem(*base, div, &rem);
if (((int)sizeof(u64)*8 - fls64(mult) < fls64(tmp)) ||
((int)sizeof(u64)*8 - fls64(mult) < fls64(rem)))
return -EOVERFLOW;
tmp *= mult;
rem = div64_u64(rem * mult, div);
*base = tmp + rem;
return 0;
}
/**
* adjust_historical_crosststamp - adjust crosstimestamp previous to current interval
* @history: Snapshot representing start of history
* @partial_history_cycles: Cycle offset into history (fractional part)
* @total_history_cycles: Total history length in cycles
* @discontinuity: True indicates clock was set on history period
* @ts: Cross timestamp that should be adjusted using
* partial/total ratio
*
* Helper function used by get_device_system_crosststamp() to correct the
* crosstimestamp corresponding to the start of the current interval to the
* system counter value (timestamp point) provided by the driver. The
* total_history_* quantities are the total history starting at the provided
* reference point and ending at the start of the current interval. The cycle
* count between the driver timestamp point and the start of the current
* interval is partial_history_cycles.
*/
static int adjust_historical_crosststamp(struct system_time_snapshot *history,
u64 partial_history_cycles,
u64 total_history_cycles,
bool discontinuity,
struct system_device_crosststamp *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
u64 corr_raw, corr_real;
bool interp_forward;
int ret;
if (total_history_cycles == 0 || partial_history_cycles == 0)
return 0;
/* Interpolate shortest distance from beginning or end of history */
interp_forward = partial_history_cycles > total_history_cycles / 2;
partial_history_cycles = interp_forward ?
total_history_cycles - partial_history_cycles :
partial_history_cycles;
/*
* Scale the monotonic raw time delta by:
* partial_history_cycles / total_history_cycles
*/
corr_raw = (u64)ktime_to_ns(
ktime_sub(ts->sys_monoraw, history->raw));
ret = scale64_check_overflow(partial_history_cycles,
total_history_cycles, &corr_raw);
if (ret)
return ret;
/*
* If there is a discontinuity in the history, scale monotonic raw
* correction by:
* mult(real)/mult(raw) yielding the realtime correction
* Otherwise, calculate the realtime correction similar to monotonic
* raw calculation
*/
if (discontinuity) {
corr_real = mul_u64_u32_div
(corr_raw, tk->tkr_mono.mult, tk->tkr_raw.mult);
} else {
corr_real = (u64)ktime_to_ns(
ktime_sub(ts->sys_realtime, history->real));
ret = scale64_check_overflow(partial_history_cycles,
total_history_cycles, &corr_real);
if (ret)
return ret;
}
/* Fixup monotonic raw and real time time values */
if (interp_forward) {
ts->sys_monoraw = ktime_add_ns(history->raw, corr_raw);
ts->sys_realtime = ktime_add_ns(history->real, corr_real);
} else {
ts->sys_monoraw = ktime_sub_ns(ts->sys_monoraw, corr_raw);
ts->sys_realtime = ktime_sub_ns(ts->sys_realtime, corr_real);
}
return 0;
}
/*
* timestamp_in_interval - true if ts is chronologically in [start, end]
*
* True if ts occurs chronologically at or after start, and before or at end.
*/
static bool timestamp_in_interval(u64 start, u64 end, u64 ts)
{
if (ts >= start && ts <= end)
return true;
if (start > end && (ts >= start || ts <= end))
return true;
return false;
}
static bool convert_clock(u64 *val, u32 numerator, u32 denominator)
{
u64 rem, res;
if (!numerator || !denominator)
return false;
res = div64_u64_rem(*val, denominator, &rem) * numerator;
*val = res + div_u64(rem * numerator, denominator);
return true;
}
static bool convert_base_to_cs(struct system_counterval_t *scv)
{
struct clocksource *cs = tk_core.timekeeper.tkr_mono.clock;
struct clocksource_base *base;
u32 num, den;
/* The timestamp was taken from the time keeper clock source */
if (cs->id == scv->cs_id)
return true;
/*
* Check whether cs_id matches the base clock. Prevent the compiler from
* re-evaluating @base as the clocksource might change concurrently.
*/
base = READ_ONCE(cs->base);
if (!base || base->id != scv->cs_id)
return false;
num = scv->use_nsecs ? cs->freq_khz : base->numerator;
den = scv->use_nsecs ? USEC_PER_SEC : base->denominator;
if (!convert_clock(&scv->cycles, num, den))
return false;
scv->cycles += base->offset;
return true;
}
static bool convert_cs_to_base(u64 *cycles, enum clocksource_ids base_id)
{
struct clocksource *cs = tk_core.timekeeper.tkr_mono.clock;
struct clocksource_base *base;
/*
* Check whether base_id matches the base clock. Prevent the compiler from
* re-evaluating @base as the clocksource might change concurrently.
*/
base = READ_ONCE(cs->base);
if (!base || base->id != base_id)
return false;
*cycles -= base->offset;
if (!convert_clock(cycles, base->denominator, base->numerator))
return false;
return true;
}
static bool convert_ns_to_cs(u64 *delta)
{
struct tk_read_base *tkr = &tk_core.timekeeper.tkr_mono;
if (BITS_TO_BYTES(fls64(*delta) + tkr->shift) >= sizeof(*delta))
return false;
*delta = div_u64((*delta << tkr->shift) - tkr->xtime_nsec, tkr->mult);
return true;
}
/**
* ktime_real_to_base_clock() - Convert CLOCK_REALTIME timestamp to a base clock timestamp
* @treal: CLOCK_REALTIME timestamp to convert
* @base_id: base clocksource id
* @cycles: pointer to store the converted base clock timestamp
*
* Converts a supplied, future realtime clock value to the corresponding base clock value.
*
* Return: true if the conversion is successful, false otherwise.
*/
bool ktime_real_to_base_clock(ktime_t treal, enum clocksource_ids base_id, u64 *cycles)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
u64 delta;
do {
seq = read_seqcount_begin(&tk_core.seq);
if ((u64)treal < tk->tkr_mono.base_real)
return false;
delta = (u64)treal - tk->tkr_mono.base_real;
if (!convert_ns_to_cs(&delta))
return false;
*cycles = tk->tkr_mono.cycle_last + delta;
if (!convert_cs_to_base(cycles, base_id))
return false;
} while (read_seqcount_retry(&tk_core.seq, seq));
return true;
}
EXPORT_SYMBOL_GPL(ktime_real_to_base_clock);
/**
* get_device_system_crosststamp - Synchronously capture system/device timestamp
* @get_time_fn: Callback to get simultaneous device time and
* system counter from the device driver
* @ctx: Context passed to get_time_fn()
* @history_begin: Historical reference point used to interpolate system
* time when counter provided by the driver is before the current interval
* @xtstamp: Receives simultaneously captured system and device time
*
* Reads a timestamp from a device and correlates it to system time
*/
int get_device_system_crosststamp(int (*get_time_fn)
(ktime_t *device_time,
struct system_counterval_t *sys_counterval,
void *ctx),
void *ctx,
struct system_time_snapshot *history_begin,
struct system_device_crosststamp *xtstamp)
{
struct system_counterval_t system_counterval;
struct timekeeper *tk = &tk_core.timekeeper;
u64 cycles, now, interval_start;
unsigned int clock_was_set_seq = 0;
ktime_t base_real, base_raw;
u64 nsec_real, nsec_raw;
u8 cs_was_changed_seq;
unsigned int seq;
bool do_interp;
int ret;
do {
seq = read_seqcount_begin(&tk_core.seq);
/*
* Try to synchronously capture device time and a system
* counter value calling back into the device driver
*/
ret = get_time_fn(&xtstamp->device, &system_counterval, ctx);
if (ret)
return ret;
/*
* Verify that the clocksource ID associated with the captured
* system counter value is the same as for the currently
* installed timekeeper clocksource
*/
if (system_counterval.cs_id == CSID_GENERIC ||
!convert_base_to_cs(&system_counterval))
return -ENODEV;
cycles = system_counterval.cycles;
/*
* Check whether the system counter value provided by the
* device driver is on the current timekeeping interval.
*/
now = tk_clock_read(&tk->tkr_mono);
interval_start = tk->tkr_mono.cycle_last;
if (!timestamp_in_interval(interval_start, now, cycles)) {
clock_was_set_seq = tk->clock_was_set_seq;
cs_was_changed_seq = tk->cs_was_changed_seq;
cycles = interval_start;
do_interp = true;
} else {
do_interp = false;
}
base_real = ktime_add(tk->tkr_mono.base,
tk_core.timekeeper.offs_real);
base_raw = tk->tkr_raw.base;
nsec_real = timekeeping_cycles_to_ns(&tk->tkr_mono, cycles);
nsec_raw = timekeeping_cycles_to_ns(&tk->tkr_raw, cycles);
} while (read_seqcount_retry(&tk_core.seq, seq));
xtstamp->sys_realtime = ktime_add_ns(base_real, nsec_real);
xtstamp->sys_monoraw = ktime_add_ns(base_raw, nsec_raw);
/*
* Interpolate if necessary, adjusting back from the start of the
* current interval
*/
if (do_interp) {
u64 partial_history_cycles, total_history_cycles;
bool discontinuity;
/*
* Check that the counter value is not before the provided
* history reference and that the history doesn't cross a
* clocksource change
*/
if (!history_begin ||
!timestamp_in_interval(history_begin->cycles,
cycles, system_counterval.cycles) ||
history_begin->cs_was_changed_seq != cs_was_changed_seq)
return -EINVAL;
partial_history_cycles = cycles - system_counterval.cycles;
total_history_cycles = cycles - history_begin->cycles;
discontinuity =
history_begin->clock_was_set_seq != clock_was_set_seq;
ret = adjust_historical_crosststamp(history_begin,
partial_history_cycles,
total_history_cycles,
discontinuity, xtstamp);
if (ret)
return ret;
}
return 0;
}
EXPORT_SYMBOL_GPL(get_device_system_crosststamp);
/**
* timekeeping_clocksource_has_base - Check whether the current clocksource
* is based on given a base clock
* @id: base clocksource ID
*
* Note: The return value is a snapshot which can become invalid right
* after the function returns.
*
* Return: true if the timekeeper clocksource has a base clock with @id,
* false otherwise
*/
bool timekeeping_clocksource_has_base(enum clocksource_ids id)
{
/*
* This is a snapshot, so no point in using the sequence
* count. Just prevent the compiler from re-evaluating @base as the
* clocksource might change concurrently.
*/
struct clocksource_base *base = READ_ONCE(tk_core.timekeeper.tkr_mono.clock->base);
return base ? base->id == id : false;
}
EXPORT_SYMBOL_GPL(timekeeping_clocksource_has_base);
/**
* do_settimeofday64 - Sets the time of day.
* @ts: pointer to the timespec64 variable containing the new time
*
* Sets the time of day to the new time and update NTP and notify hrtimers
*/
int do_settimeofday64(const struct timespec64 *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
struct timespec64 ts_delta, xt;
unsigned long flags;
int ret = 0;
if (!timespec64_valid_settod(ts))
return -EINVAL;
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
timekeeping_forward_now(tk);
xt = tk_xtime(tk);
ts_delta = timespec64_sub(*ts, xt);
if (timespec64_compare(&tk->wall_to_monotonic, &ts_delta) > 0) {
ret = -EINVAL;
goto out;
}
tk_set_wall_to_mono(tk, timespec64_sub(tk->wall_to_monotonic, ts_delta));
tk_set_xtime(tk, ts);
out:
timekeeping_update(tk, TK_CLEAR_NTP | TK_MIRROR | TK_CLOCK_WAS_SET);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
/* Signal hrtimers about time change */
clock_was_set(CLOCK_SET_WALL);
if (!ret) {
audit_tk_injoffset(ts_delta);
add_device_randomness(ts, sizeof(*ts));
}
return ret;
}
EXPORT_SYMBOL(do_settimeofday64);
/**
* timekeeping_inject_offset - Adds or subtracts from the current time.
* @ts: Pointer to the timespec variable containing the offset
*
* Adds or subtracts an offset value from the current time.
*/
static int timekeeping_inject_offset(const struct timespec64 *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned long flags;
struct timespec64 tmp;
int ret = 0;
if (ts->tv_nsec < 0 || ts->tv_nsec >= NSEC_PER_SEC)
return -EINVAL;
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
timekeeping_forward_now(tk);
/* Make sure the proposed value is valid */
tmp = timespec64_add(tk_xtime(tk), *ts);
if (timespec64_compare(&tk->wall_to_monotonic, ts) > 0 ||
!timespec64_valid_settod(&tmp)) {
ret = -EINVAL;
goto error;
}
tk_xtime_add(tk, ts);
tk_set_wall_to_mono(tk, timespec64_sub(tk->wall_to_monotonic, *ts));
error: /* even if we error out, we forwarded the time, so call update */
timekeeping_update(tk, TK_CLEAR_NTP | TK_MIRROR | TK_CLOCK_WAS_SET);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
/* Signal hrtimers about time change */
clock_was_set(CLOCK_SET_WALL);
return ret;
}
/*
* Indicates if there is an offset between the system clock and the hardware
* clock/persistent clock/rtc.
*/
int persistent_clock_is_local;
/*
* Adjust the time obtained from the CMOS to be UTC time instead of
* local time.
*
* This is ugly, but preferable to the alternatives. Otherwise we
* would either need to write a program to do it in /etc/rc (and risk
* confusion if the program gets run more than once; it would also be
* hard to make the program warp the clock precisely n hours) or
* compile in the timezone information into the kernel. Bad, bad....
*
* - TYT, 1992-01-01
*
* The best thing to do is to keep the CMOS clock in universal time (UTC)
* as real UNIX machines always do it. This avoids all headaches about
* daylight saving times and warping kernel clocks.
*/
void timekeeping_warp_clock(void)
{
if (sys_tz.tz_minuteswest != 0) {
struct timespec64 adjust;
persistent_clock_is_local = 1;
adjust.tv_sec = sys_tz.tz_minuteswest * 60;
adjust.tv_nsec = 0;
timekeeping_inject_offset(&adjust);
}
}
/*
* __timekeeping_set_tai_offset - Sets the TAI offset from UTC and monotonic
*/
static void __timekeeping_set_tai_offset(struct timekeeper *tk, s32 tai_offset)
{
tk->tai_offset = tai_offset;
tk->offs_tai = ktime_add(tk->offs_real, ktime_set(tai_offset, 0));
}
/*
* change_clocksource - Swaps clocksources if a new one is available
*
* Accumulates current time interval and initializes new clocksource
*/
static int change_clocksource(void *data)
{
struct timekeeper *tk = &tk_core.timekeeper;
struct clocksource *new, *old = NULL;
unsigned long flags;
bool change = false;
new = (struct clocksource *) data;
/*
* If the cs is in module, get a module reference. Succeeds
* for built-in code (owner == NULL) as well.
*/
if (try_module_get(new->owner)) {
if (!new->enable || new->enable(new) == 0)
change = true;
else
module_put(new->owner);
}
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
timekeeping_forward_now(tk);
if (change) {
old = tk->tkr_mono.clock;
tk_setup_internals(tk, new);
}
timekeeping_update(tk, TK_CLEAR_NTP | TK_MIRROR | TK_CLOCK_WAS_SET);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
if (old) {
if (old->disable)
old->disable(old);
module_put(old->owner);
}
return 0;
}
/**
* timekeeping_notify - Install a new clock source
* @clock: pointer to the clock source
*
* This function is called from clocksource.c after a new, better clock
* source has been registered. The caller holds the clocksource_mutex.
*/
int timekeeping_notify(struct clocksource *clock)
{
struct timekeeper *tk = &tk_core.timekeeper;
if (tk->tkr_mono.clock == clock)
return 0;
stop_machine(change_clocksource, clock, NULL);
tick_clock_notify();
return tk->tkr_mono.clock == clock ? 0 : -1;
}
/**
* ktime_get_raw_ts64 - Returns the raw monotonic time in a timespec
* @ts: pointer to the timespec64 to be set
*
* Returns the raw monotonic time (completely un-modified by ntp)
*/
void ktime_get_raw_ts64(struct timespec64 *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
u64 nsecs;
do {
seq = read_seqcount_begin(&tk_core.seq);
ts->tv_sec = tk->raw_sec;
nsecs = timekeeping_get_ns(&tk->tkr_raw);
} while (read_seqcount_retry(&tk_core.seq, seq));
ts->tv_nsec = 0;
timespec64_add_ns(ts, nsecs);
}
EXPORT_SYMBOL(ktime_get_raw_ts64);
/**
* timekeeping_valid_for_hres - Check if timekeeping is suitable for hres
*/
int timekeeping_valid_for_hres(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
int ret;
do {
seq = read_seqcount_begin(&tk_core.seq);
ret = tk->tkr_mono.clock->flags & CLOCK_SOURCE_VALID_FOR_HRES;
} while (read_seqcount_retry(&tk_core.seq, seq));
return ret;
}
/**
* timekeeping_max_deferment - Returns max time the clocksource can be deferred
*/
u64 timekeeping_max_deferment(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
u64 ret;
do {
seq = read_seqcount_begin(&tk_core.seq);
ret = tk->tkr_mono.clock->max_idle_ns;
} while (read_seqcount_retry(&tk_core.seq, seq));
return ret;
}
/**
* read_persistent_clock64 - Return time from the persistent clock.
* @ts: Pointer to the storage for the readout value
*
* Weak dummy function for arches that do not yet support it.
* Reads the time from the battery backed persistent clock.
* Returns a timespec with tv_sec=0 and tv_nsec=0 if unsupported.
*
* XXX - Do be sure to remove it once all arches implement it.
*/
void __weak read_persistent_clock64(struct timespec64 *ts)
{
ts->tv_sec = 0;
ts->tv_nsec = 0;
}
/**
* read_persistent_wall_and_boot_offset - Read persistent clock, and also offset
* from the boot.
* @wall_time: current time as returned by persistent clock
* @boot_offset: offset that is defined as wall_time - boot_time
*
* Weak dummy function for arches that do not yet support it.
*
* The default function calculates offset based on the current value of
* local_clock(). This way architectures that support sched_clock() but don't
* support dedicated boot time clock will provide the best estimate of the
* boot time.
*/
void __weak __init
read_persistent_wall_and_boot_offset(struct timespec64 *wall_time,
struct timespec64 *boot_offset)
{
read_persistent_clock64(wall_time);
*boot_offset = ns_to_timespec64(local_clock());
}
/*
* Flag reflecting whether timekeeping_resume() has injected sleeptime.
*
* The flag starts of false and is only set when a suspend reaches
* timekeeping_suspend(), timekeeping_resume() sets it to false when the
* timekeeper clocksource is not stopping across suspend and has been
* used to update sleep time. If the timekeeper clocksource has stopped
* then the flag stays true and is used by the RTC resume code to decide
* whether sleeptime must be injected and if so the flag gets false then.
*
* If a suspend fails before reaching timekeeping_resume() then the flag
* stays false and prevents erroneous sleeptime injection.
*/
static bool suspend_timing_needed;
/* Flag for if there is a persistent clock on this platform */
static bool persistent_clock_exists;
/*
* timekeeping_init - Initializes the clocksource and common timekeeping values
*/
void __init timekeeping_init(void)
{
struct timespec64 wall_time, boot_offset, wall_to_mono;
struct timekeeper *tk = &tk_core.timekeeper;
struct clocksource *clock;
unsigned long flags;
read_persistent_wall_and_boot_offset(&wall_time, &boot_offset);
if (timespec64_valid_settod(&wall_time) &&
timespec64_to_ns(&wall_time) > 0) {
persistent_clock_exists = true;
} else if (timespec64_to_ns(&wall_time) != 0) {
pr_warn("Persistent clock returned invalid value");
wall_time = (struct timespec64){0};
}
if (timespec64_compare(&wall_time, &boot_offset) < 0)
boot_offset = (struct timespec64){0};
/*
* We want set wall_to_mono, so the following is true:
* wall time + wall_to_mono = boot time
*/
wall_to_mono = timespec64_sub(boot_offset, wall_time);
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
ntp_init();
clock = clocksource_default_clock();
if (clock->enable)
clock->enable(clock);
tk_setup_internals(tk, clock);
tk_set_xtime(tk, &wall_time);
tk->raw_sec = 0;
tk_set_wall_to_mono(tk, wall_to_mono);
timekeeping_update(tk, TK_MIRROR | TK_CLOCK_WAS_SET);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
}
/* time in seconds when suspend began for persistent clock */
static struct timespec64 timekeeping_suspend_time;
/**
* __timekeeping_inject_sleeptime - Internal function to add sleep interval
* @tk: Pointer to the timekeeper to be updated
* @delta: Pointer to the delta value in timespec64 format
*
* Takes a timespec offset measuring a suspend interval and properly
* adds the sleep offset to the timekeeping variables.
*/
static void __timekeeping_inject_sleeptime(struct timekeeper *tk,
const struct timespec64 *delta)
{
if (!timespec64_valid_strict(delta)) {
printk_deferred(KERN_WARNING
"__timekeeping_inject_sleeptime: Invalid "
"sleep delta value!\n");
return;
}
tk_xtime_add(tk, delta);
tk_set_wall_to_mono(tk, timespec64_sub(tk->wall_to_monotonic, *delta));
tk_update_sleep_time(tk, timespec64_to_ktime(*delta));
tk_debug_account_sleep_time(delta);
}
#if defined(CONFIG_PM_SLEEP) && defined(CONFIG_RTC_HCTOSYS_DEVICE)
/*
* We have three kinds of time sources to use for sleep time
* injection, the preference order is:
* 1) non-stop clocksource
* 2) persistent clock (ie: RTC accessible when irqs are off)
* 3) RTC
*
* 1) and 2) are used by timekeeping, 3) by RTC subsystem.
* If system has neither 1) nor 2), 3) will be used finally.
*
*
* If timekeeping has injected sleeptime via either 1) or 2),
* 3) becomes needless, so in this case we don't need to call
* rtc_resume(), and this is what timekeeping_rtc_skipresume()
* means.
*/
bool timekeeping_rtc_skipresume(void)
{
return !suspend_timing_needed;
}
/*
* 1) can be determined whether to use or not only when doing
* timekeeping_resume() which is invoked after rtc_suspend(),
* so we can't skip rtc_suspend() surely if system has 1).
*
* But if system has 2), 2) will definitely be used, so in this
* case we don't need to call rtc_suspend(), and this is what
* timekeeping_rtc_skipsuspend() means.
*/
bool timekeeping_rtc_skipsuspend(void)
{
return persistent_clock_exists;
}
/**
* timekeeping_inject_sleeptime64 - Adds suspend interval to timeekeeping values
* @delta: pointer to a timespec64 delta value
*
* This hook is for architectures that cannot support read_persistent_clock64
* because their RTC/persistent clock is only accessible when irqs are enabled.
* and also don't have an effective nonstop clocksource.
*
* This function should only be called by rtc_resume(), and allows
* a suspend offset to be injected into the timekeeping values.
*/
void timekeeping_inject_sleeptime64(const struct timespec64 *delta)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned long flags;
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
suspend_timing_needed = false;
timekeeping_forward_now(tk);
__timekeeping_inject_sleeptime(tk, delta);
timekeeping_update(tk, TK_CLEAR_NTP | TK_MIRROR | TK_CLOCK_WAS_SET);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
/* Signal hrtimers about time change */
clock_was_set(CLOCK_SET_WALL | CLOCK_SET_BOOT);
}
#endif
/**
* timekeeping_resume - Resumes the generic timekeeping subsystem.
*/
void timekeeping_resume(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
struct clocksource *clock = tk->tkr_mono.clock;
unsigned long flags;
struct timespec64 ts_new, ts_delta;
u64 cycle_now, nsec;
bool inject_sleeptime = false;
read_persistent_clock64(&ts_new);
clockevents_resume();
clocksource_resume();
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
/*
* After system resumes, we need to calculate the suspended time and
* compensate it for the OS time. There are 3 sources that could be
* used: Nonstop clocksource during suspend, persistent clock and rtc
* device.
*
* One specific platform may have 1 or 2 or all of them, and the
* preference will be:
* suspend-nonstop clocksource -> persistent clock -> rtc
* The less preferred source will only be tried if there is no better
* usable source. The rtc part is handled separately in rtc core code.
*/
cycle_now = tk_clock_read(&tk->tkr_mono);
nsec = clocksource_stop_suspend_timing(clock, cycle_now);
if (nsec > 0) {
ts_delta = ns_to_timespec64(nsec);
inject_sleeptime = true;
} else if (timespec64_compare(&ts_new, &timekeeping_suspend_time) > 0) {
ts_delta = timespec64_sub(ts_new, timekeeping_suspend_time);
inject_sleeptime = true;
}
if (inject_sleeptime) {
suspend_timing_needed = false;
__timekeeping_inject_sleeptime(tk, &ts_delta);
}
/* Re-base the last cycle value */
tk->tkr_mono.cycle_last = cycle_now;
tk->tkr_raw.cycle_last = cycle_now;
tk->ntp_error = 0;
timekeeping_suspended = 0;
timekeeping_update(tk, TK_MIRROR | TK_CLOCK_WAS_SET);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
touch_softlockup_watchdog();
/* Resume the clockevent device(s) and hrtimers */
tick_resume();
/* Notify timerfd as resume is equivalent to clock_was_set() */
timerfd_resume();
}
int timekeeping_suspend(void)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned long flags;
struct timespec64 delta, delta_delta;
static struct timespec64 old_delta;
struct clocksource *curr_clock;
u64 cycle_now;
read_persistent_clock64(&timekeeping_suspend_time);
/*
* On some systems the persistent_clock can not be detected at
* timekeeping_init by its return value, so if we see a valid
* value returned, update the persistent_clock_exists flag.
*/
if (timekeeping_suspend_time.tv_sec || timekeeping_suspend_time.tv_nsec)
persistent_clock_exists = true;
suspend_timing_needed = true;
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
timekeeping_forward_now(tk);
timekeeping_suspended = 1;
/*
* Since we've called forward_now, cycle_last stores the value
* just read from the current clocksource. Save this to potentially
* use in suspend timing.
*/
curr_clock = tk->tkr_mono.clock;
cycle_now = tk->tkr_mono.cycle_last;
clocksource_start_suspend_timing(curr_clock, cycle_now);
if (persistent_clock_exists) {
/*
* To avoid drift caused by repeated suspend/resumes,
* which each can add ~1 second drift error,
* try to compensate so the difference in system time
* and persistent_clock time stays close to constant.
*/
delta = timespec64_sub(tk_xtime(tk), timekeeping_suspend_time);
delta_delta = timespec64_sub(delta, old_delta);
if (abs(delta_delta.tv_sec) >= 2) {
/*
* if delta_delta is too large, assume time correction
* has occurred and set old_delta to the current delta.
*/
old_delta = delta;
} else {
/* Otherwise try to adjust old_system to compensate */
timekeeping_suspend_time =
timespec64_add(timekeeping_suspend_time, delta_delta);
}
}
timekeeping_update(tk, TK_MIRROR);
halt_fast_timekeeper(tk);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
tick_suspend();
clocksource_suspend();
clockevents_suspend();
return 0;
}
/* sysfs resume/suspend bits for timekeeping */
static struct syscore_ops timekeeping_syscore_ops = {
.resume = timekeeping_resume,
.suspend = timekeeping_suspend,
};
static int __init timekeeping_init_ops(void)
{
register_syscore_ops(&timekeeping_syscore_ops);
return 0;
}
device_initcall(timekeeping_init_ops);
/*
* Apply a multiplier adjustment to the timekeeper
*/
static __always_inline void timekeeping_apply_adjustment(struct timekeeper *tk,
s64 offset,
s32 mult_adj)
{
s64 interval = tk->cycle_interval;
if (mult_adj == 0) {
return;
} else if (mult_adj == -1) {
interval = -interval;
offset = -offset;
} else if (mult_adj != 1) {
interval *= mult_adj;
offset *= mult_adj;
}
/*
* So the following can be confusing.
*
* To keep things simple, lets assume mult_adj == 1 for now.
*
* When mult_adj != 1, remember that the interval and offset values
* have been appropriately scaled so the math is the same.
*
* The basic idea here is that we're increasing the multiplier
* by one, this causes the xtime_interval to be incremented by
* one cycle_interval. This is because:
* xtime_interval = cycle_interval * mult
* So if mult is being incremented by one:
* xtime_interval = cycle_interval * (mult + 1)
* Its the same as:
* xtime_interval = (cycle_interval * mult) + cycle_interval
* Which can be shortened to:
* xtime_interval += cycle_interval
*
* So offset stores the non-accumulated cycles. Thus the current
* time (in shifted nanoseconds) is:
* now = (offset * adj) + xtime_nsec
* Now, even though we're adjusting the clock frequency, we have
* to keep time consistent. In other words, we can't jump back
* in time, and we also want to avoid jumping forward in time.
*
* So given the same offset value, we need the time to be the same
* both before and after the freq adjustment.
* now = (offset * adj_1) + xtime_nsec_1
* now = (offset * adj_2) + xtime_nsec_2
* So:
* (offset * adj_1) + xtime_nsec_1 =
* (offset * adj_2) + xtime_nsec_2
* And we know:
* adj_2 = adj_1 + 1
* So:
* (offset * adj_1) + xtime_nsec_1 =
* (offset * (adj_1+1)) + xtime_nsec_2
* (offset * adj_1) + xtime_nsec_1 =
* (offset * adj_1) + offset + xtime_nsec_2
* Canceling the sides:
* xtime_nsec_1 = offset + xtime_nsec_2
* Which gives us:
* xtime_nsec_2 = xtime_nsec_1 - offset
* Which simplifies to:
* xtime_nsec -= offset
*/
if ((mult_adj > 0) && (tk->tkr_mono.mult + mult_adj < mult_adj)) {
/* NTP adjustment caused clocksource mult overflow */
WARN_ON_ONCE(1);
return;
}
tk->tkr_mono.mult += mult_adj;
tk->xtime_interval += interval;
tk->tkr_mono.xtime_nsec -= offset;
}
/*
* Adjust the timekeeper's multiplier to the correct frequency
* and also to reduce the accumulated error value.
*/
static void timekeeping_adjust(struct timekeeper *tk, s64 offset)
{
u32 mult;
/*
* Determine the multiplier from the current NTP tick length.
* Avoid expensive division when the tick length doesn't change.
*/
if (likely(tk->ntp_tick == ntp_tick_length())) {
mult = tk->tkr_mono.mult - tk->ntp_err_mult;
} else {
tk->ntp_tick = ntp_tick_length();
mult = div64_u64((tk->ntp_tick >> tk->ntp_error_shift) -
tk->xtime_remainder, tk->cycle_interval);
}
/*
* If the clock is behind the NTP time, increase the multiplier by 1
* to catch up with it. If it's ahead and there was a remainder in the
* tick division, the clock will slow down. Otherwise it will stay
* ahead until the tick length changes to a non-divisible value.
*/
tk->ntp_err_mult = tk->ntp_error > 0 ? 1 : 0;
mult += tk->ntp_err_mult;
timekeeping_apply_adjustment(tk, offset, mult - tk->tkr_mono.mult);
if (unlikely(tk->tkr_mono.clock->maxadj &&
(abs(tk->tkr_mono.mult - tk->tkr_mono.clock->mult)
> tk->tkr_mono.clock->maxadj))) {
printk_once(KERN_WARNING
"Adjusting %s more than 11%% (%ld vs %ld)\n",
tk->tkr_mono.clock->name, (long)tk->tkr_mono.mult,
(long)tk->tkr_mono.clock->mult + tk->tkr_mono.clock->maxadj);
}
/*
* It may be possible that when we entered this function, xtime_nsec
* was very small. Further, if we're slightly speeding the clocksource
* in the code above, its possible the required corrective factor to
* xtime_nsec could cause it to underflow.
*
* Now, since we have already accumulated the second and the NTP
* subsystem has been notified via second_overflow(), we need to skip
* the next update.
*/
if (unlikely((s64)tk->tkr_mono.xtime_nsec < 0)) {
tk->tkr_mono.xtime_nsec += (u64)NSEC_PER_SEC <<
tk->tkr_mono.shift;
tk->xtime_sec--;
tk->skip_second_overflow = 1;
}
}
/*
* accumulate_nsecs_to_secs - Accumulates nsecs into secs
*
* Helper function that accumulates the nsecs greater than a second
* from the xtime_nsec field to the xtime_secs field.
* It also calls into the NTP code to handle leapsecond processing.
*/
static inline unsigned int accumulate_nsecs_to_secs(struct timekeeper *tk)
{
u64 nsecps = (u64)NSEC_PER_SEC << tk->tkr_mono.shift;
unsigned int clock_set = 0;
while (tk->tkr_mono.xtime_nsec >= nsecps) {
int leap;
tk->tkr_mono.xtime_nsec -= nsecps;
tk->xtime_sec++;
/*
* Skip NTP update if this second was accumulated before,
* i.e. xtime_nsec underflowed in timekeeping_adjust()
*/
if (unlikely(tk->skip_second_overflow)) {
tk->skip_second_overflow = 0;
continue;
}
/* Figure out if its a leap sec and apply if needed */
leap = second_overflow(tk->xtime_sec);
if (unlikely(leap)) {
struct timespec64 ts;
tk->xtime_sec += leap;
ts.tv_sec = leap;
ts.tv_nsec = 0;
tk_set_wall_to_mono(tk,
timespec64_sub(tk->wall_to_monotonic, ts));
__timekeeping_set_tai_offset(tk, tk->tai_offset - leap);
clock_set = TK_CLOCK_WAS_SET;
}
}
return clock_set;
}
/*
* logarithmic_accumulation - shifted accumulation of cycles
*
* This functions accumulates a shifted interval of cycles into
* a shifted interval nanoseconds. Allows for O(log) accumulation
* loop.
*
* Returns the unconsumed cycles.
*/
static u64 logarithmic_accumulation(struct timekeeper *tk, u64 offset,
u32 shift, unsigned int *clock_set)
{
u64 interval = tk->cycle_interval << shift;
u64 snsec_per_sec;
/* If the offset is smaller than a shifted interval, do nothing */
if (offset < interval)
return offset;
/* Accumulate one shifted interval */
offset -= interval;
tk->tkr_mono.cycle_last += interval;
tk->tkr_raw.cycle_last += interval;
tk->tkr_mono.xtime_nsec += tk->xtime_interval << shift;
*clock_set |= accumulate_nsecs_to_secs(tk);
/* Accumulate raw time */
tk->tkr_raw.xtime_nsec += tk->raw_interval << shift;
snsec_per_sec = (u64)NSEC_PER_SEC << tk->tkr_raw.shift;
while (tk->tkr_raw.xtime_nsec >= snsec_per_sec) {
tk->tkr_raw.xtime_nsec -= snsec_per_sec;
tk->raw_sec++;
}
/* Accumulate error between NTP and clock interval */
tk->ntp_error += tk->ntp_tick << shift;
tk->ntp_error -= (tk->xtime_interval + tk->xtime_remainder) <<
(tk->ntp_error_shift + shift);
return offset;
}
/*
* timekeeping_advance - Updates the timekeeper to the current time and
* current NTP tick length
*/
static bool timekeeping_advance(enum timekeeping_adv_mode mode)
{
struct timekeeper *real_tk = &tk_core.timekeeper;
struct timekeeper *tk = &shadow_timekeeper;
u64 offset;
int shift = 0, maxshift;
unsigned int clock_set = 0;
unsigned long flags;
raw_spin_lock_irqsave(&timekeeper_lock, flags);
/* Make sure we're fully resumed: */
if (unlikely(timekeeping_suspended))
goto out;
offset = clocksource_delta(tk_clock_read(&tk->tkr_mono),
tk->tkr_mono.cycle_last, tk->tkr_mono.mask,
tk->tkr_mono.clock->max_raw_delta);
/* Check if there's really nothing to do */
if (offset < real_tk->cycle_interval && mode == TK_ADV_TICK)
goto out;
/*
* With NO_HZ we may have to accumulate many cycle_intervals
* (think "ticks") worth of time at once. To do this efficiently,
* we calculate the largest doubling multiple of cycle_intervals
* that is smaller than the offset. We then accumulate that
* chunk in one go, and then try to consume the next smaller
* doubled multiple.
*/
shift = ilog2(offset) - ilog2(tk->cycle_interval);
shift = max(0, shift);
/* Bound shift to one less than what overflows tick_length */
maxshift = (64 - (ilog2(ntp_tick_length())+1)) - 1;
shift = min(shift, maxshift);
while (offset >= tk->cycle_interval) {
offset = logarithmic_accumulation(tk, offset, shift,
&clock_set);
if (offset < tk->cycle_interval<<shift)
shift--;
}
/* Adjust the multiplier to correct NTP error */
timekeeping_adjust(tk, offset);
/*
* Finally, make sure that after the rounding
* xtime_nsec isn't larger than NSEC_PER_SEC
*/
clock_set |= accumulate_nsecs_to_secs(tk);
write_seqcount_begin(&tk_core.seq);
/*
* Update the real timekeeper.
*
* We could avoid this memcpy by switching pointers, but that
* requires changes to all other timekeeper usage sites as
* well, i.e. move the timekeeper pointer getter into the
* spinlocked/seqcount protected sections. And we trade this
* memcpy under the tk_core.seq against one before we start
* updating.
*/
timekeeping_update(tk, clock_set);
memcpy(real_tk, tk, sizeof(*tk));
/* The memcpy must come last. Do not put anything here! */
write_seqcount_end(&tk_core.seq);
out:
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
return !!clock_set;
}
/**
* update_wall_time - Uses the current clocksource to increment the wall time
*
*/
void update_wall_time(void)
{
if (timekeeping_advance(TK_ADV_TICK))
clock_was_set_delayed();
}
/**
* getboottime64 - Return the real time of system boot.
* @ts: pointer to the timespec64 to be set
*
* Returns the wall-time of boot in a timespec64.
*
* This is based on the wall_to_monotonic offset and the total suspend
* time. Calls to settimeofday will affect the value returned (which
* basically means that however wrong your real time clock is at boot time,
* you get the right time here).
*/
void getboottime64(struct timespec64 *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
ktime_t t = ktime_sub(tk->offs_real, tk->offs_boot);
*ts = ktime_to_timespec64(t);
}
EXPORT_SYMBOL_GPL(getboottime64);
void ktime_get_coarse_real_ts64(struct timespec64 *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
do {
seq = read_seqcount_begin(&tk_core.seq);
*ts = tk_xtime(tk);
} while (read_seqcount_retry(&tk_core.seq, seq));
}
EXPORT_SYMBOL(ktime_get_coarse_real_ts64);
void ktime_get_coarse_ts64(struct timespec64 *ts)
{
struct timekeeper *tk = &tk_core.timekeeper;
struct timespec64 now, mono;
unsigned int seq;
do {
seq = read_seqcount_begin(&tk_core.seq);
now = tk_xtime(tk);
mono = tk->wall_to_monotonic;
} while (read_seqcount_retry(&tk_core.seq, seq));
set_normalized_timespec64(ts, now.tv_sec + mono.tv_sec,
now.tv_nsec + mono.tv_nsec);
}
EXPORT_SYMBOL(ktime_get_coarse_ts64);
/*
* Must hold jiffies_lock
*/
void do_timer(unsigned long ticks)
{
jiffies_64 += ticks;
calc_global_load();
}
/**
* ktime_get_update_offsets_now - hrtimer helper
* @cwsseq: pointer to check and store the clock was set sequence number
* @offs_real: pointer to storage for monotonic -> realtime offset
* @offs_boot: pointer to storage for monotonic -> boottime offset
* @offs_tai: pointer to storage for monotonic -> clock tai offset
*
* Returns current monotonic time and updates the offsets if the
* sequence number in @cwsseq and timekeeper.clock_was_set_seq are
* different.
*
* Called from hrtimer_interrupt() or retrigger_next_event()
*/
ktime_t ktime_get_update_offsets_now(unsigned int *cwsseq, ktime_t *offs_real,
ktime_t *offs_boot, ktime_t *offs_tai)
{
struct timekeeper *tk = &tk_core.timekeeper;
unsigned int seq;
ktime_t base;
u64 nsecs;
do {
seq = read_seqcount_begin(&tk_core.seq);
base = tk->tkr_mono.base;
nsecs = timekeeping_get_ns(&tk->tkr_mono);
base = ktime_add_ns(base, nsecs);
if (*cwsseq != tk->clock_was_set_seq) {
*cwsseq = tk->clock_was_set_seq;
*offs_real = tk->offs_real;
*offs_boot = tk->offs_boot;
*offs_tai = tk->offs_tai;
}
/* Handle leapsecond insertion adjustments */
if (unlikely(base >= tk->next_leap_ktime))
*offs_real = ktime_sub(tk->offs_real, ktime_set(1, 0));
} while (read_seqcount_retry(&tk_core.seq, seq));
return base;
}
/*
* timekeeping_validate_timex - Ensures the timex is ok for use in do_adjtimex
*/
static int timekeeping_validate_timex(const struct __kernel_timex *txc)
{
if (txc->modes & ADJ_ADJTIME) {
/* singleshot must not be used with any other mode bits */
if (!(txc->modes & ADJ_OFFSET_SINGLESHOT))
return -EINVAL;
if (!(txc->modes & ADJ_OFFSET_READONLY) &&
!capable(CAP_SYS_TIME))
return -EPERM;
} else {
/* In order to modify anything, you gotta be super-user! */
if (txc->modes && !capable(CAP_SYS_TIME))
return -EPERM;
/*
* if the quartz is off by more than 10% then
* something is VERY wrong!
*/
if (txc->modes & ADJ_TICK &&
(txc->tick < 900000/USER_HZ ||
txc->tick > 1100000/USER_HZ))
return -EINVAL;
}
if (txc->modes & ADJ_SETOFFSET) {
/* In order to inject time, you gotta be super-user! */
if (!capable(CAP_SYS_TIME))
return -EPERM;
/*
* Validate if a timespec/timeval used to inject a time
* offset is valid. Offsets can be positive or negative, so
* we don't check tv_sec. The value of the timeval/timespec
* is the sum of its fields,but *NOTE*:
* The field tv_usec/tv_nsec must always be non-negative and
* we can't have more nanoseconds/microseconds than a second.
*/
if (txc->time.tv_usec < 0)
return -EINVAL;
if (txc->modes & ADJ_NANO) {
if (txc->time.tv_usec >= NSEC_PER_SEC)
return -EINVAL;
} else {
if (txc->time.tv_usec >= USEC_PER_SEC)
return -EINVAL;
}
}
/*
* Check for potential multiplication overflows that can
* only happen on 64-bit systems:
*/
if ((txc->modes & ADJ_FREQUENCY) && (BITS_PER_LONG == 64)) {
if (LLONG_MIN / PPM_SCALE > txc->freq)
return -EINVAL;
if (LLONG_MAX / PPM_SCALE < txc->freq)
return -EINVAL;
}
return 0;
}
/**
* random_get_entropy_fallback - Returns the raw clock source value,
* used by random.c for platforms with no valid random_get_entropy().
*/
unsigned long random_get_entropy_fallback(void)
{
struct tk_read_base *tkr = &tk_core.timekeeper.tkr_mono;
struct clocksource *clock = READ_ONCE(tkr->clock);
if (unlikely(timekeeping_suspended || !clock))
return 0;
return clock->read(clock);
}
EXPORT_SYMBOL_GPL(random_get_entropy_fallback);
/**
* do_adjtimex() - Accessor function to NTP __do_adjtimex function
* @txc: Pointer to kernel_timex structure containing NTP parameters
*/
int do_adjtimex(struct __kernel_timex *txc)
{
struct timekeeper *tk = &tk_core.timekeeper;
struct audit_ntp_data ad;
bool offset_set = false;
bool clock_set = false;
struct timespec64 ts;
unsigned long flags;
s32 orig_tai, tai;
int ret;
/* Validate the data before disabling interrupts */
ret = timekeeping_validate_timex(txc);
if (ret)
return ret;
add_device_randomness(txc, sizeof(*txc));
if (txc->modes & ADJ_SETOFFSET) {
struct timespec64 delta;
delta.tv_sec = txc->time.tv_sec;
delta.tv_nsec = txc->time.tv_usec;
if (!(txc->modes & ADJ_NANO))
delta.tv_nsec *= 1000;
ret = timekeeping_inject_offset(&delta);
if (ret)
return ret;
offset_set = delta.tv_sec != 0;
audit_tk_injoffset(delta);
}
audit_ntp_init(&ad);
ktime_get_real_ts64(&ts);
add_device_randomness(&ts, sizeof(ts));
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
orig_tai = tai = tk->tai_offset;
ret = __do_adjtimex(txc, &ts, &tai, &ad);
if (tai != orig_tai) {
__timekeeping_set_tai_offset(tk, tai);
timekeeping_update(tk, TK_MIRROR | TK_CLOCK_WAS_SET);
clock_set = true;
}
tk_update_leap_state(tk);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
audit_ntp_log(&ad);
/* Update the multiplier immediately if frequency was set directly */
if (txc->modes & (ADJ_FREQUENCY | ADJ_TICK))
clock_set |= timekeeping_advance(TK_ADV_FREQ);
if (clock_set)
clock_was_set(CLOCK_SET_WALL);
ntp_notify_cmos_timer(offset_set);
return ret;
}
#ifdef CONFIG_NTP_PPS
/**
* hardpps() - Accessor function to NTP __hardpps function
* @phase_ts: Pointer to timespec64 structure representing phase timestamp
* @raw_ts: Pointer to timespec64 structure representing raw timestamp
*/
void hardpps(const struct timespec64 *phase_ts, const struct timespec64 *raw_ts)
{
unsigned long flags;
raw_spin_lock_irqsave(&timekeeper_lock, flags);
write_seqcount_begin(&tk_core.seq);
__hardpps(phase_ts, raw_ts);
write_seqcount_end(&tk_core.seq);
raw_spin_unlock_irqrestore(&timekeeper_lock, flags);
}
EXPORT_SYMBOL(hardpps);
#endif /* CONFIG_NTP_PPS */