/usr/src/kernels/4.18.0-553.157.1.el8_10.x86_64/include/linux
NameSizeModeActions
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avf/-0755rm
bcma/-0755rm
byteorder/-0755rm
can/-0755rm
ceph/-0755rm
clk/-0755rm
crush/-0755rm
decompress/-0755rm
dma/-0755rm
dsa/-0755rm
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iio/-0755rm
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irqchip/-0755rm
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lockd/-0755rm
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mlx5/-0755rm
mmc/-0755rm
mtd/-0755rm
mux/-0755rm
net/-0755rm
netfilter/-0755rm
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netfilter_bridge/-0755rm
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pcs/-0755rm
perf/-0755rm
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platform_data/-0755rm
power/-0755rm
qed/-0755rm
raid/-0755rm
regulator/-0755rm
remoteproc/-0755rm
reset/-0755rm
rpmsg/-0755rm
rtc/-0755rm
sched/-0755rm
soc/-0755rm
soundwire/-0755rm
spi/-0755rm
ssb/-0755rm
sunrpc/-0755rm
ulpi/-0755rm
unaligned/-0755rm
usb/-0755rm
uwb/-0755rm
wimax/-0755rm
8250_pci.h10380644editdlrm
a.out.h3540644editdlrm
acct.h25510644editdlrm
acpi.h431300644editdlrm
acpi_apmt.h3670644editdlrm
acpi_dma.h33000644editdlrm
acpi_iort.h32350644editdlrm
acpi_pmtmr.h6740644editdlrm
adb.h18320644editdlrm
adfs_fs.h5740644editdlrm
adxl.h3100644editdlrm
aer.h18220644editdlrm
agpgart.h39080644editdlrm
agp_backend.h35340644editdlrm
ahci-remap.h6070644editdlrm
ahci_platform.h17720644editdlrm
aio.h6510644editdlrm
alarmtimer.h18750644editdlrm
altera_jtaguart.h3790644editdlrm
altera_uart.h3970644editdlrm
amd-iommu.h69310644editdlrm
amd-pstate.h33560644editdlrm
anon_inodes.h4940644editdlrm
aperture.h16190644editdlrm
apm-emulation.h15750644editdlrm
apm_bios.h27460644editdlrm
apple-gmux.h14590644editdlrm
apple_bl.h4980644editdlrm
arch_topology.h19830644editdlrm
arm-cci.h20580644editdlrm
arm-smccc.h160660644editdlrm
arm_sdei.h26410644editdlrm
array_size.h3320644editdlrm
ascii85.h5320644editdlrm
asn1.h20390644editdlrm
asn1_ber_bytecode.h27830644editdlrm
asn1_decoder.h6750644editdlrm
assoc_array.h31560644editdlrm
assoc_array_priv.h56300644editdlrm
async.h45910644editdlrm
async_tx.h74870644editdlrm
ata.h339800644editdlrm
atalk.h45500644editdlrm
ata_platform.h7290644editdlrm
ath9k_platform.h14770644editdlrm
atm.h2870644editdlrm
atmdev.h104570644editdlrm
atmel-mci.h14290644editdlrm
atmel-ssc.h99710644editdlrm
atmel_pdc.h15020644editdlrm
atmel_tc.h116000644editdlrm
atm_suni.h2530644editdlrm
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atomic.h375460644editdlrm
attribute_container.h27990644editdlrm
audit.h203320644editdlrm
audit_arch.h5590644editdlrm
auto_dev-ioctl.h4540644editdlrm
auto_fs.h4360644editdlrm
auxiliary_bus.h27870644editdlrm
auxvec.h3040644editdlrm
average.h24810644editdlrm
b1pcmcia.h6660644editdlrm
backing-dev-defs.h103270644editdlrm
backing-dev.h122600644editdlrm
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bcd.h5590644editdlrm
bch.h26600644editdlrm
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bcm47xx_sprom.h6000644editdlrm
bcm47xx_wdt.h5550644editdlrm
bcm963xx_nvram.h30360644editdlrm
bcm963xx_tag.h36850644editdlrm
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bio.h206900644editdlrm
bitfield.h58990644editdlrm
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bitops.h88700644editdlrm
bitrev.h25410644editdlrm
bits.h15120644editdlrm
bit_spinlock.h23600644editdlrm
blk-cgroup.h227280644editdlrm
blk-mq-pci.h2690644editdlrm
blk-mq-rdma.h2340644editdlrm
blk-mq-virtio.h2930644editdlrm
blk-mq.h160740644editdlrm
blk-pm.h7170644editdlrm
blkdev.h588980644editdlrm
blkpg.h4360644editdlrm
blktrace_api.h37770644editdlrm
blk_types.h153420644editdlrm
blockgroup_lock.h8100644editdlrm
bma150.h19380644editdlrm
bottom_half.h8030644editdlrm
bpf-cgroup.h198180644editdlrm
bpf-netns.h15590644editdlrm
bpf.h733870644editdlrm
bpfilter.h7910644editdlrm
bpfptr.h17330644editdlrm
bpf_lirc.h6980644editdlrm
bpf_local_storage.h53490644editdlrm
bpf_lsm.h14310644editdlrm
bpf_trace.h1660644editdlrm
bpf_types.h53950644editdlrm
bpf_verifier.h187910644editdlrm
brcmphy.h140230644editdlrm
bsearch.h2750644editdlrm
bsg-lib.h24550644editdlrm
bsg.h10940644editdlrm
btf.h73630644editdlrm
btf_ids.h51740644editdlrm
btree-128.h27370644editdlrm
btree-type.h39910644editdlrm
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buffer_head.h143790644editdlrm
bug.h19670644editdlrm
buildid.h2480644editdlrm
build_bug.h30660644editdlrm
bvec.h41190644editdlrm
c2port.h15290644editdlrm
cache.h21820644editdlrm
cacheinfo.h47960644editdlrm
capability.h81790644editdlrm
cb710.h58270644editdlrm
cciss_ioctl.h10530644editdlrm
ccp.h186970644editdlrm
cc_platform.h31400644editdlrm
cdev.h8450644editdlrm
cdrom.h91930644editdlrm
cfag12864b.h14990644editdlrm
cgroup-defs.h272420644editdlrm
cgroup.h288800644editdlrm
cgroup_rdma.h13580644editdlrm
cgroup_subsys.h12590644editdlrm
circ_buf.h11200644editdlrm
cleancache.h39820644editdlrm
cleanup.h142150644editdlrm
clk-provider.h375420644editdlrm
clk.h251570644editdlrm
clkdev.h16980644editdlrm
clockchips.h74450644editdlrm
clocksource.h91880644editdlrm
clock_cooling.h21060644editdlrm
cm4000_cs.h1990644editdlrm
cma.h12120644editdlrm
cmdline-parser.h12380644editdlrm
cnt32_to_63.h36910644editdlrm
cn_proc.h18900644editdlrm
coda.h22440644editdlrm
coda_psdev.h26920644editdlrm
compaction.h76540644editdlrm
compat.h357390644editdlrm
compat_time.h4990644editdlrm
compiler-clang.h24460644editdlrm
compiler-gcc.h57560644editdlrm
compiler-intel.h9490644editdlrm
compiler.h157180644editdlrm
compiler_attributes.h106000644editdlrm
compiler_types.h69310644editdlrm
completion.h42010644editdlrm
component.h44590644editdlrm
concap.h37780644editdlrm
configfs.h94410644editdlrm
connector.h24900644editdlrm
console.h75040644editdlrm
consolemap.h10680644editdlrm
console_struct.h69660644editdlrm
const.h4210644editdlrm
container.h6680644editdlrm
container_of.h12780644editdlrm
context_tracking.h51680644editdlrm
context_tracking_state.h15290644editdlrm
cookie.h12540644editdlrm
cordic.h17940644editdlrm
coredump.h7970644editdlrm
coresight-pmu.h9890644editdlrm
coresight-stm.h1520644editdlrm
coresight.h96760644editdlrm
counter.h154970644editdlrm
counter_enum.h14630644editdlrm
count_zeros.h16600644editdlrm
cper.h168260644editdlrm
cpu.h79590644editdlrm
cpufeature.h18820644editdlrm
cpufreq.h342480644editdlrm
cpuhotplug.h142690644editdlrm
cpuidle.h130610644editdlrm
cpuidle_haltpoll.h3120644editdlrm
cpumask.h297210644editdlrm
cpuset.h82970644editdlrm
cpu_cooling.h23890644editdlrm
cpu_pm.h28500644editdlrm
cpu_rmap.h19020644editdlrm
crash_core.h32920644editdlrm
crash_dump.h51930644editdlrm
crc-ccitt.h6090644editdlrm
crc-itu-t.h6130644editdlrm
crc-t10dif.h4530644editdlrm
crc4.h1920644editdlrm
crc7.h3160644editdlrm
crc8.h37470644editdlrm
crc16.h6220644editdlrm
crc32.h28940644editdlrm
crc32c.h3310644editdlrm
crc32poly.h6100644editdlrm
cred.h127490644editdlrm
crypto.h593930644editdlrm
cryptohash.h5460644editdlrm
cs5535.h64260644editdlrm
ctype.h17910644editdlrm
cuda.h5010644editdlrm
cxl_err.h4680644editdlrm
cyclades.h106070644editdlrm
damon.h196160644editdlrm
davinci_emac.h11500644editdlrm
dax.h75530644editdlrm
dca.h26980644editdlrm
dcache.h196210644editdlrm
dccp.h109890644editdlrm
dcookies.h13290644editdlrm
debugfs.h119210644editdlrm
debugobjects.h39880644editdlrm
debug_locks.h16270644editdlrm
delay.h23350644editdlrm
delayacct.h62850644editdlrm
delayed_call.h7090644editdlrm
dell-led.h1280644editdlrm
devcoredump.h28490644editdlrm
devfreq-event.h57780644editdlrm
devfreq.h129870644editdlrm
devfreq_cooling.h36080644editdlrm
device-mapper.h195290644editdlrm
device.h672750644editdlrm
device_cgroup.h16800644editdlrm
devm-helpers.h27400644editdlrm
devpts_fs.h13140644editdlrm
dev_printk.h77310644editdlrm
digsig.h13790644editdlrm
dim.h89510644editdlrm
dio.h112290644editdlrm
dirent.h2160644editdlrm
dlm.h72400644editdlrm
dlm_plock.h6780644editdlrm
dm-bufio.h45740644editdlrm
dm-dirty-log.h40380644editdlrm
dm-io.h19800644editdlrm
dm-kcopyd.h30130644editdlrm
dm-region-hash.h31820644editdlrm
dm9000.h11360644editdlrm
dma-buf.h215470644editdlrm
dma-contiguous.h50700644editdlrm
dma-direct.h36810644editdlrm
dma-direction.h4070644editdlrm
dma-fence-array.h29830644editdlrm
dma-fence-chain.h35760644editdlrm
dma-fence-unwrap.h22980644editdlrm
dma-fence.h211620644editdlrm
dma-iommu.h30200644editdlrm
dma-map-ops.h108630644editdlrm
dma-mapping.h231700644editdlrm
dma-resv.h172450644editdlrm
dmaengine.h548910644editdlrm
dmapool.h18320644editdlrm
dmar.h87910644editdlrm
dmi.h43750644editdlrm
dnotify.h10470644editdlrm
dns_resolver.h13390644editdlrm
dqblk_qtree.h22380644editdlrm
dqblk_v1.h3270644editdlrm
dqblk_v2.h4060644editdlrm
drbd.h109230644editdlrm
drbd_genl.h220100644editdlrm
drbd_genl_api.h18080644editdlrm
drbd_limits.h80030644editdlrm
ds2782_battery.h1580644editdlrm
dtlk.h35840644editdlrm
dw_apb_timer.h17430644editdlrm
dynamic_debug.h58310644editdlrm
dynamic_queue_limits.h38120644editdlrm
earlycpio.h3590644editdlrm
ecryptfs.h39150644editdlrm
edac.h207180644editdlrm
edd.h14690644editdlrm
edma.h8070644editdlrm
eeprom_93cx6.h30080644editdlrm
eeprom_93xx46.h7760644editdlrm
efi-bgrt.h6440644editdlrm
efi.h628130644editdlrm
efs_vh.h15850644editdlrm
eisa.h30310644editdlrm
elevator.h60590644editdlrm
elf-fdpic.h22370644editdlrm
elf-randomize.h5830644editdlrm
elf.h15650644editdlrm
elfcore-compat.h12670644editdlrm
elfcore.h21600644editdlrm
elfnote.h36250644editdlrm
enclosure.h47110644editdlrm
energy_model.h59940644editdlrm
err.h15830644editdlrm
errname.h2830644editdlrm
errno.h14240644editdlrm
error-injection.h6070644editdlrm
errqueue.h5240644editdlrm
errseq.h3820644editdlrm
etherdevice.h169170644editdlrm
ethtool.h355800644editdlrm
ethtool_netlink.h19200644editdlrm
eventfd.h21670644editdlrm
eventpoll.h24570644editdlrm
evm.h29850644editdlrm
export.h36970644editdlrm
exportfs.h76920644editdlrm
ext2_fs.h9670644editdlrm
extable.h13090644editdlrm
extcon-provider.h44310644editdlrm
extcon.h102700644editdlrm
f2fs_fs.h185260644editdlrm
f75375s.h5410644editdlrm
falloc.h17190644editdlrm
fanotify.h23360644editdlrm
fault-inject.h19750644editdlrm
fb.h287120644editdlrm
fbcon.h21360644editdlrm
fcdevice.h9880644editdlrm
fcntl.h18080644editdlrm
fd.h4900644editdlrm
fddidevice.h10440644editdlrm
fdtable.h36160644editdlrm
fec.h6090644editdlrm
file.h31470644editdlrm
filter.h427810644editdlrm
fips.h1670644editdlrm
firewire.h138680644editdlrm
firmware-map.h13510644editdlrm
firmware.h58740644editdlrm
fixp-arith.h45160644editdlrm
flat.h16530644editdlrm
flex_array.h44120644editdlrm
flex_proportions.h28810644editdlrm
fmc-sdb.h13190644editdlrm
fmc.h98770644editdlrm
font.h15980644editdlrm
fortify-string.h165500644editdlrm
freezer.h92570644editdlrm
frontswap.h31210644editdlrm
fs.h1189140644editdlrm
fscache-cache.h192540644editdlrm
fscache.h295770644editdlrm
fscrypt.h94410644editdlrm
fscrypt_notsupp.h50770644editdlrm
fscrypt_supp.h74210644editdlrm
fsi.h24240644editdlrm
fsl-diu-fb.h41790644editdlrm
fsldma.h3980644editdlrm
fsl_devices.h44300644editdlrm
fsl_hypervisor.h28240644editdlrm
fsl_ifc.h256580644editdlrm
fsnotify.h77960644editdlrm
fsnotify_backend.h206650644editdlrm
fs_context.h90970644editdlrm
fs_enet_pd.h34570644editdlrm
fs_parser.h47500644editdlrm
fs_pin.h6190644editdlrm
fs_stack.h8110644editdlrm
fs_struct.h17510644editdlrm
fs_uart_pd.h15230644editdlrm
ftrace.h336190644editdlrm
ftrace_irq.h11630644editdlrm
futex.h24970644editdlrm
fwnode.h75790644editdlrm
gameport.h56950644editdlrm
gcd.h1930644editdlrm
genalloc.h79500644editdlrm
generic-radix-tree.h66710644editdlrm
genetlink.h13790644editdlrm
genhd.h160760644editdlrm
genl_magic_func.h118690644editdlrm
genl_magic_struct.h78050644editdlrm
getcpu.h6410644editdlrm
gfp.h242080644editdlrm
glob.h2560644editdlrm
goldfish.h6050644editdlrm
gpio-pxa.h5710644editdlrm
gpio.h54780644editdlrm
gpio_keys.h17820644editdlrm
hardirq.h32640644editdlrm
hash.h29980644editdlrm
hashtable.h68050644editdlrm
hdlc.h34130644editdlrm
hdlcdrv.h64700644editdlrm
hdmi.h128510644editdlrm
hid-debug.h14580644editdlrm
hid-roccat.h4840644editdlrm
hid-sensor-hub.h91900644editdlrm
hid-sensor-ids.h76170644editdlrm
hid.h383390644editdlrm
hidden.h9660644editdlrm
hiddev.h14580644editdlrm
hidraw.h11460644editdlrm
highmem-internal.h49520644editdlrm
highmem.h82350644editdlrm
highuid.h31940644editdlrm
hil.h188570644editdlrm
hil_mlc.h52490644editdlrm
hippidevice.h12630644editdlrm
hmm.h46560644editdlrm
host1x.h86180644editdlrm
hpet.h26150644editdlrm
hp_sdc.h143520644editdlrm
hrtimer.h166510644editdlrm
hrtimer_defs.h6600644editdlrm
htcpld.h6170644editdlrm
hugetlb.h274960644editdlrm
hugetlb_cgroup.h70560644editdlrm
hugetlb_inline.h3740644editdlrm
huge_mm.h157430644editdlrm
hwmon-sysfs.h20240644editdlrm
hwmon-vid.h15180644editdlrm
hwmon.h140840644editdlrm
hwspinlock.h130440644editdlrm
hw_breakpoint.h44050644editdlrm
hw_random.h23770644editdlrm
hyperv.h500100644editdlrm
hypervisor.h7480644editdlrm
i2c-algo-bit.h23220644editdlrm
i2c-algo-pca.h25990644editdlrm
i2c-algo-pcf.h19260644editdlrm
i2c-dev.h3710644editdlrm
i2c-mux.h16680644editdlrm
i2c-pxa.h4380644editdlrm
i2c-smbus.h19910644editdlrm
i2c.h378740644editdlrm
i8042.h21910644editdlrm
i8253.h8090644editdlrm
icmp.h10850644editdlrm
icmpv6.h17320644editdlrm
ide.h474030644editdlrm
idr.h97150644editdlrm
ieee80211.h1530580644editdlrm
ieee802154.h117800644editdlrm
if_arp.h19000644editdlrm
if_bridge.h53800644editdlrm
if_eql.h11000644editdlrm
if_ether.h15060644editdlrm
if_fddi.h35260644editdlrm
if_frad.h29370644editdlrm
if_link.h5920644editdlrm
if_ltalk.h1880644editdlrm
if_macvlan.h27570644editdlrm
if_phonet.h3190644editdlrm
if_pppol2tp.h7270644editdlrm
if_pppox.h29790644editdlrm
if_tap.h22880644editdlrm
if_team.h82970644editdlrm
if_tun.h20500644editdlrm
if_tunnel.h4090644editdlrm
if_vlan.h211240644editdlrm
igmp.h47530644editdlrm
ihex.h20010644editdlrm
ima.h34960644editdlrm
imx-media.h8110644editdlrm
in.h25920644editdlrm
in6.h18930644editdlrm
indirect_call_wrapper.h21910644editdlrm
inet.h29180644editdlrm
inetdevice.h86580644editdlrm
inet_diag.h26060644editdlrm
init.h97780644editdlrm
initrd.h7890644editdlrm
init_ohci1394_dma.h1960644editdlrm
init_task.h14070644editdlrm
inotify.h7130644editdlrm
input-polldev.h20740644editdlrm
input.h190020644editdlrm
instrumented.h28680644editdlrm
integrity.h10740644editdlrm
intel-iommu.h320630644editdlrm
intel-ish-client-if.h40910644editdlrm
intel-pti.h16000644editdlrm
intel_rapl.h42650644editdlrm
intel_th.h25010644editdlrm
interrupt.h247770644editdlrm
interval_tree.h8310644editdlrm
interval_tree_generic.h75130644editdlrm
io-64-nonatomic-hi-lo.h24560644editdlrm
io-64-nonatomic-lo-hi.h24560644editdlrm
io-mapping.h52220644editdlrm
io-pgtable.h84980644editdlrm
io.h62010644editdlrm
ioasid.h21740644editdlrm
ioc3.h32140644editdlrm
ioc4.h59200644editdlrm
iocontext.h48780644editdlrm
iomap.h138930644editdlrm
iommu-helper.h11460644editdlrm
iommu.h371800644editdlrm
iopoll.h81750644editdlrm
ioport.h126860644editdlrm
ioprio.h24640644editdlrm
iosys-map.h153110644editdlrm
iova.h42650644editdlrm
ip.h12350644editdlrm
ipack.h90620644editdlrm
ipc.h6130644editdlrm
ipc_namespace.h46820644editdlrm
ipmi-fru.h36940644editdlrm
ipmi.h116330644editdlrm
ipmi_smi.h110220644editdlrm
ipv6.h92830644editdlrm
ipv6_route.h5940644editdlrm
irq.h417830644editdlrm
irqbypass.h36810644editdlrm
irqchip.h15970644editdlrm
irqdesc.h84600644editdlrm
irqdomain.h206450644editdlrm
irqflags.h81050644editdlrm
irqhandler.h3620644editdlrm
irqnr.h8560644editdlrm
irqreturn.h5030644editdlrm
irq_cpustat.h8450644editdlrm
irq_poll.h5750644editdlrm
irq_sim.h9710644editdlrm
irq_work.h19240644editdlrm
isa.h21660644editdlrm
isapnp.h38960644editdlrm
iscsi_boot_sysfs.h41850644editdlrm
iscsi_ibft.h13060644editdlrm
isdn.h235450644editdlrm
isdnif.h197230644editdlrm
isdn_divertif.h13010644editdlrm
isdn_ppp.h67970644editdlrm
isicom.h15280644editdlrm
ism.h22730644editdlrm
iversion.h126700644editdlrm
jbd2.h479710644editdlrm
jhash.h47350644editdlrm
jiffies.h163400644editdlrm
journal-head.h29340644editdlrm
joystick.h4370644editdlrm
jump_label.h153760644editdlrm
jump_label_ratelimit.h28670644editdlrm
jz4740-adc.h10230644editdlrm
jz4780-nemc.h11850644editdlrm
kallsyms.h43350644editdlrm
kasan-checks.h14950644editdlrm
kasan.h126780644editdlrm
kbd_diacr.h1980644editdlrm
kbd_kern.h39310644editdlrm
kbuild.h3800644editdlrm
kconfig.h24810644editdlrm
kcore.h8910644editdlrm
kcov.h24630644editdlrm
kcsan-checks.h88590644editdlrm
kcsan.h19480644editdlrm
kdb.h74780644editdlrm
kdebug.h4870644editdlrm
kdev_t.h17440644editdlrm
kernel-page-flags.h5050644editdlrm
kernel.h206160644editdlrm
kernelcapi.h45520644editdlrm
kernel_stat.h30310644editdlrm
kernfs.h193360644editdlrm
kern_levels.h16110644editdlrm
kexec.h108960644editdlrm
key-type.h65830644editdlrm
key.h131490644editdlrm
keyboard.h6650644editdlrm
kfifo.h254310644editdlrm
kgdb.h115690644editdlrm
khugepaged.h28320644editdlrm
klist.h19260644editdlrm
kmemleak.h39540644editdlrm
kmod.h17520644editdlrm
kmsg_dump.h26270644editdlrm
kobject.h77270644editdlrm
kobject_ns.h19340644editdlrm
kobj_map.h5450644editdlrm
kprobes.h132220644editdlrm
kref.h33610644editdlrm
ks0108.h9600644editdlrm
ks8842.h12230644editdlrm
ks8851_mll.h10630644editdlrm
ksm.h27530644editdlrm
kstrtox.h67510644editdlrm
kthread.h79240644editdlrm
ktime.h66070644editdlrm
kvm_dirty_ring.h26330644editdlrm
kvm_host.h657100644editdlrm
kvm_irqfd.h24580644editdlrm
kvm_para.h4020644editdlrm
kvm_types.h32640644editdlrm
l2tp.h2610644editdlrm
lapb.h17520644editdlrm
latencytop.h12070644editdlrm
lcd.h38670644editdlrm
lcm.h2750644editdlrm
led-class-flash.h56190644editdlrm
led-lm3530.h37930644editdlrm
leds-bd2802.h6420644editdlrm
leds-lp3944.h10990644editdlrm
leds-lp3952.h25590644editdlrm
leds-pca9532.h10310644editdlrm
leds-regulator.h13170644editdlrm
leds-tca6507.h10420644editdlrm
leds.h156230644editdlrm
leds_pwm.h4070644editdlrm
libata.h685400644editdlrm
libfdt.h2020644editdlrm
libfdt_env.h4910644editdlrm
libgcc.h10990644editdlrm
libnvdimm.h98730644editdlrm
libps2.h20770644editdlrm
license.h3740644editdlrm
lightnvm.h119800644editdlrm
limits.h7150644editdlrm
linear_range.h16450644editdlrm
linkage.h93310644editdlrm
linkmode.h25590644editdlrm
linux_logo.h19560644editdlrm
lis3lv02d.h51250644editdlrm
list.h321050644editdlrm
list_bl.h49050644editdlrm
list_lru.h81930644editdlrm
list_nulls.h43220644editdlrm
list_sort.h3070644editdlrm
livepatch.h91090644editdlrm
llc.h7490644editdlrm
llist.h93680644editdlrm
local_lock.h13620644editdlrm
local_lock_internal.h34990644editdlrm
lockdep.h215850644editdlrm
lockdep_types.h53080644editdlrm
lockref.h14400644editdlrm
log2.h65420644editdlrm
logic_pio.h32570644editdlrm
lp.h28270644editdlrm
lru_cache.h127220644editdlrm
lsm_audit.h27910644editdlrm
lsm_hooks.h708180644editdlrm
lsm_hook_defs.h204550644editdlrm
lz4.h270720644editdlrm
lzo.h14040644editdlrm
mailbox_client.h18370644editdlrm
mailbox_controller.h55020644editdlrm
maple.h27750644editdlrm
marvell_phy.h16910644editdlrm
math.h51850644editdlrm
math64.h76620644editdlrm
max17040_battery.h4740644editdlrm
mbcache.h22080644editdlrm
mbus.h31680644editdlrm
mc6821.h12090644editdlrm
mc146818rtc.h45670644editdlrm
mcb.h39750644editdlrm
mdev.h58590644editdlrm
mdio-bitbang.h11490644editdlrm
mdio-gpio.h1770644editdlrm
mdio-mux.h10210644editdlrm
mdio.h137300644editdlrm
mei_aux.h9290644editdlrm
mei_cl_bus.h41960644editdlrm
memblock.h210090644editdlrm
memcontrol.h462430644editdlrm
memfd.h3650644editdlrm
memory.h40800644editdlrm
memory_hotplug.h109810644editdlrm
mempolicy.h80840644editdlrm
mempool.h34300644editdlrm
memregion.h4170644editdlrm
memremap.h78180644editdlrm
memstick.h99820644editdlrm
mem_encrypt.h9260644editdlrm
mhi.h269080644editdlrm
mhi_ep.h98660644editdlrm
micrel_phy.h15220644editdlrm
microchipphy.h33100644editdlrm
mic_bus.h32720644editdlrm
migrate.h62780644editdlrm
migrate_mode.h7580644editdlrm
mii.h162830644editdlrm
mii_timestamper.h36530644editdlrm
minmax.h63730644editdlrm
min_heap.h33770644editdlrm
miscdevice.h28640644editdlrm
misc_cgroup.h30070644editdlrm
mISDNdsp.h12170644editdlrm
mISDNhw.h59210644editdlrm
mISDNif.h152760644editdlrm
mm-arch-hooks.h6790644editdlrm
mm.h1015570644editdlrm
mman.h33570644editdlrm
mmap_lock.h20860644editdlrm
mmdebug.h23790644editdlrm
mmiotrace.h31220644editdlrm
mmu_context.h4650644editdlrm
mmu_notifier.h284620644editdlrm
mmzone.h516150644editdlrm
mm_inline.h30590644editdlrm
mm_types.h268440644editdlrm
mm_types_task.h24570644editdlrm
mnt_namespace.h5470644editdlrm
module.h236590644editdlrm
moduleloader.h31700644editdlrm
moduleparam.h202750644editdlrm
module_signature.h12500644editdlrm
mod_devicetable.h225130644editdlrm
mount.h37080644editdlrm
mpage.h7370644editdlrm
mpi.h33810644editdlrm
mpls.h3940644editdlrm
mpls_iptunnel.h1780644editdlrm
mroute.h19980644editdlrm
mroute6.h24490644editdlrm
mroute_base.h124330644editdlrm
msdos_fs.h2730644editdlrm
msdos_partition.h16550644editdlrm
msg.h3950644editdlrm
msi.h156650644editdlrm
mutex.h78370644editdlrm
mv643xx.h536570644editdlrm
mv643xx_eth.h20010644editdlrm
mv643xx_i2c.h5450644editdlrm
mvebu-pmsu.h5200644editdlrm
mxm-wmi.h10780644editdlrm
namei.h39460644editdlrm
nd.h76010644editdlrm
net.h124050644editdlrm
netdevice.h1695260644editdlrm
netdev_features.h105190644editdlrm
netfilter.h126770644editdlrm
netfilter_bridge.h19770644editdlrm
netfilter_defs.h4860644editdlrm
netfilter_ingress.h14720644editdlrm
netfilter_ipv4.h10770644editdlrm
netfilter_ipv6.h36980644editdlrm
netlink.h91700644editdlrm
netpoll.h26010644editdlrm
nfs.h11450644editdlrm
nfs3.h2600644editdlrm
nfs4.h195270644editdlrm
nfsacl.h14350644editdlrm
nfs_fs.h185780644editdlrm
nfs_fs_i.h3080644editdlrm
nfs_fs_sb.h105370644editdlrm
nfs_iostat.h42850644editdlrm
nfs_page.h69910644editdlrm
nfs_xdr.h425020644editdlrm
nitro_enclaves.h2670644editdlrm
nl802154.h43360644editdlrm
nls.h31620644editdlrm
nmi.h67580644editdlrm
node.h43990644editdlrm
nodemask.h174400644editdlrm
nospec.h21870644editdlrm
notifier.h84180644editdlrm
nsc_gpio.h14590644editdlrm
nsproxy.h26760644editdlrm
ns_common.h3010644editdlrm
ntb.h536910644editdlrm
ntb_transport.h38920644editdlrm
nubus.h56740644editdlrm
numa.h10040644editdlrm
nvme-fc-driver.h472160644editdlrm
nvme-fc.h99550644editdlrm
nvme-rdma.h25350644editdlrm
nvme-tcp.h45380644editdlrm
nvme.h391280644editdlrm
nvmem-consumer.h44540644editdlrm
nvmem-provider.h32670644editdlrm
nvram.h4950644editdlrm
n_r3964.h41550644editdlrm
objagg.h19830644editdlrm
objtool.h11550644editdlrm
of.h433070644editdlrm
of_address.h46030644editdlrm
of_clk.h7530644editdlrm
of_device.h32270644editdlrm
of_dma.h23530644editdlrm
of_fdt.h41880644editdlrm
of_gpio.h40530644editdlrm
of_graph.h36360644editdlrm
of_iommu.h5050644editdlrm
of_irq.h36910644editdlrm
of_mdio.h32130644editdlrm
of_net.h8870644editdlrm
of_pci.h9150644editdlrm
of_pdt.h12220644editdlrm
of_platform.h39740644editdlrm
of_reserved_mem.h24030644editdlrm
oid_registry.h39660644editdlrm
olpc-ec.h11040644editdlrm
omap-dma.h107540644editdlrm
omap-dmaengine.h5830644editdlrm
omap-gpmc.h30110644editdlrm
omap-iommu.h6850644editdlrm
omap-mailbox.h7770644editdlrm
omapfb.h12460644editdlrm
once.h18800644editdlrm
oom.h33410644editdlrm
openvswitch.h10190644editdlrm
oprofile.h62460644editdlrm
osq_lock.h10660644editdlrm
overflow.h122690644editdlrm
padata.h74310644editdlrm
page-flags-layout.h35010644editdlrm
page-flags.h281560644editdlrm
page-isolation.h21240644editdlrm
pageblock-flags.h33570644editdlrm
pagemap.h246490644editdlrm
pagevec.h23830644editdlrm
pagewalk.h41670644editdlrm
page_counter.h34470644editdlrm
page_ext.h17220644editdlrm
page_idle.h26830644editdlrm
page_owner.h23610644editdlrm
page_ref.h53610644editdlrm
page_reporting.h8340644editdlrm
parman.h29340644editdlrm
parport.h182730644editdlrm
parport_pc.h67130644editdlrm
parser.h11410644editdlrm
pata_arasan_cf_data.h12500644editdlrm
patchkey.h7570644editdlrm
path.h5720644editdlrm
pch_dma.h9990644editdlrm
pci-acpi.h42800644editdlrm
pci-ats.h18020644editdlrm
pci-dma-compat.h37500644editdlrm
pci-ecam.h33580644editdlrm
pci-ep-cfs.h9570644editdlrm
pci-epc.h73360644editdlrm
pci-epf.h48680644editdlrm
pci-p2pdma.h40490644editdlrm
pci.h917980644editdlrm
pci_hotplug.h47520644editdlrm
pci_ids.h1282480644editdlrm
pda_power.h11510644editdlrm
pe.h162040644editdlrm
percpu-defs.h186090644editdlrm
percpu-refcount.h111690644editdlrm
percpu-rwsem.h45730644editdlrm
percpu.h48490644editdlrm
percpu_counter.h43720644editdlrm
perf_event.h507870644editdlrm
perf_regs.h10760644editdlrm
personality.h3930644editdlrm
pfn.h6660644editdlrm
pfn_t.h33100644editdlrm
phonet.h11460644editdlrm
phy.h563860644editdlrm
phylink.h237070644editdlrm
phy_fixed.h18140644editdlrm
phy_led_triggers.h14910644editdlrm
pid.h60590644editdlrm
pid_namespace.h23860644editdlrm
pim.h27370644editdlrm
pipe_fs_i.h64710644editdlrm
pkeys.h9610644editdlrm
pktcdvd.h60110644editdlrm
pl320-ipc.h7580644editdlrm
platform_device.h141600644editdlrm
platform_profile.h11550644editdlrm
pldmfw.h48790644editdlrm
plist.h88940644editdlrm
pm-trace.h9400644editdlrm
pm.h374800644editdlrm
pm2301_charger.h17230644editdlrm
pmbus.h16210644editdlrm
pmu.h23920644editdlrm
pm_clock.h26380644editdlrm
pm_domain.h132930644editdlrm
pm_opp.h115360644editdlrm
pm_qos.h106620644editdlrm
pm_runtime.h103290644editdlrm
pm_wakeirq.h15180644editdlrm
pm_wakeup.h73540644editdlrm
pnfs_osd_xdr.h94900644editdlrm
pnp.h157650644editdlrm
poison.h26510644editdlrm
poll.h41090644editdlrm
posix-clock.h46600644editdlrm
posix-timers.h64600644editdlrm
posix_acl.h31670644editdlrm
posix_acl_xattr.h16210644editdlrm
powercap.h128890644editdlrm
power_supply.h150250644editdlrm
ppp-comp.h31720644editdlrm
ppp_channel.h31460644editdlrm
ppp_defs.h8120644editdlrm
pps-gpio.h10330644editdlrm
pps_kernel.h36200644editdlrm
pr.h5660644editdlrm
prandom.h38860644editdlrm
preempt.h122320644editdlrm
prefetch.h17400644editdlrm
prime_numbers.h13840644editdlrm
printk.h169080644editdlrm
prmt.h1430644editdlrm
processor.h18890644editdlrm
proc_fs.h61380644editdlrm
proc_ns.h28970644editdlrm
profile.h27430644editdlrm
projid.h22690644editdlrm
property.h174100644editdlrm
psci.h19510644editdlrm
pseudo_fs.h3550644editdlrm
psi.h17820644editdlrm
psi_types.h39940644editdlrm
psp-platform-access.h17220644editdlrm
psp-sev.h189210644editdlrm
psp-tee.h23160644editdlrm
psp.h6970644editdlrm
pstore.h77640644editdlrm
pstore_ram.h29800644editdlrm
pti.h1980644editdlrm
ptp_classify.h50070644editdlrm
ptp_clock_kernel.h124310644editdlrm
ptrace.h152100644editdlrm
ptr_ring.h168900644editdlrm
purgatory.h5890644editdlrm
pvclock_gtod.h5480644editdlrm
pwm.h173410644editdlrm
pwm_backlight.h8020644editdlrm
pxa2xx_ssp.h104700644editdlrm
pxa168_eth.h7280644editdlrm
qcom-geni-se.h124710644editdlrm
qcom_scm.h43810644editdlrm
qnx6_fs.h33490644editdlrm
quicklist.h21860644editdlrm
quota.h192310644editdlrm
quotaops.h105530644editdlrm
radix-tree.h179780644editdlrm
raid_class.h21490644editdlrm
ramfs.h6950644editdlrm
random.h38550644editdlrm
range.h7750644editdlrm
ras.h12110644editdlrm
ratelimit.h17610644editdlrm
ratelimit_types.h11700644editdlrm
rational.h6390644editdlrm
rbtree.h97890644editdlrm
rbtree_augmented.h104850644editdlrm
rbtree_latch.h68150644editdlrm
rbtree_types.h9460644editdlrm
rculist.h284440644editdlrm
rculist_bl.h33740644editdlrm
rculist_nulls.h55130644editdlrm
rcupdate.h385480644editdlrm
rcupdate_trace.h28820644editdlrm
rcupdate_wait.h17690644editdlrm
rcutiny.h42320644editdlrm
rcutree.h30770644editdlrm
rcuwait.h19000644editdlrm
rcu_node_tree.h44680644editdlrm
rcu_segcblist.h112920644editdlrm
rcu_sync.h23120644editdlrm
reboot-mode.h6000644editdlrm
reboot.h20980644editdlrm
reciprocal_div.h33560644editdlrm
refcount.h27990644editdlrm
regmap.h544470644editdlrm
regset.h155270644editdlrm
relay.h89080644editdlrm
remoteproc.h200780644editdlrm
resctrl.h88910644editdlrm
reservation.h92260644editdlrm
reset-controller.h30670644editdlrm
reset.h137390644editdlrm
resource.h3390644editdlrm
resource_ext.h25420644editdlrm
restart_block.h11140644editdlrm
rfkill.h110400644editdlrm
rhashtable-types.h37420644editdlrm
rhashtable.h352780644editdlrm
rh_flags.h9050644editdlrm
rh_kabi.h226330644editdlrm
rh_kabi_attributes.h5010644editdlrm
rh_kabi_aux.h9170644editdlrm
rh_kabi_memcg.h37600644editdlrm
rh_tasklist_lock.h9590644editdlrm
rh_waived.h4410644editdlrm
ring_buffer.h73710644editdlrm
rio.h196870644editdlrm
rio_drv.h150610644editdlrm
rio_ids.h13170644editdlrm
rio_regs.h197370644editdlrm
rmap.h110370644editdlrm
rmi.h124790644editdlrm
rndis.h172690644editdlrm
rodata_test.h5590644editdlrm
root_dev.h6190644editdlrm
rpmsg.h71170644editdlrm
rslib.h37540644editdlrm
rtc.h94270644editdlrm
rtmutex.h31470644editdlrm
rtnetlink.h46040644editdlrm
rtsx_common.h14750644editdlrm
rtsx_pci.h411350644editdlrm
rtsx_usb.h163340644editdlrm
rwbase_rt.h8760644editdlrm
rwlock.h40540644editdlrm
rwlock_api_smp.h77360644editdlrm
rwlock_rt.h30530644editdlrm
rwlock_types.h18140644editdlrm
rwsem.h74050644editdlrm
s3c_adc_battery.h9710644editdlrm
sa11x0-dma.h5720644editdlrm
sbitmap.h202030644editdlrm
scatterlist.h180030644editdlrm
scc.h29050644editdlrm
sched.h645760644editdlrm
sched_clock.h16170644editdlrm
scif.h602800644editdlrm
scmi_protocol.h92840644editdlrm
scpi_protocol.h26420644editdlrm
screen_info.h1910644editdlrm
scs.h18280644editdlrm
sctp.h241240644editdlrm
scx200.h18630644editdlrm
scx200_gpio.h24380644editdlrm
sdb.h42700644editdlrm
sdla.h70660644editdlrm
seccomp.h29720644editdlrm
securebits.h2390644editdlrm
security.h521850644editdlrm
sed-opal.h19850644editdlrm
seg6.h1210644editdlrm
seg6_genl.h1360644editdlrm
seg6_hmac.h1360644editdlrm
seg6_iptunnel.h1480644editdlrm
seg6_local.h1000644editdlrm
selection.h15950644editdlrm
sem.h5990644editdlrm
semaphore.h14000644editdlrm
seqlock.h392440644editdlrm
seqno-fence.h40500644editdlrm
seq_buf.h34050644editdlrm
seq_file.h82910644editdlrm
seq_file_net.h7300644editdlrm
serdev.h101010644editdlrm
serial.h6300644editdlrm
serial_8250.h65810644editdlrm
serial_bcm63xx.h48430644editdlrm
serial_core.h180580644editdlrm
serial_max3100.h14230644editdlrm
serial_pnx8xxx.h26700644editdlrm
serial_s3c.h87840644editdlrm
serial_sci.h16110644editdlrm
serio.h45280644editdlrm
set_memory.h14970644editdlrm
sfi.h58900644editdlrm
sfi_acpi.h34720644editdlrm
sfp.h162160644editdlrm
shdma-base.h45200644editdlrm
shm.h9680644editdlrm
shmem_fs.h57790644editdlrm
shrinker.h33650644editdlrm
sh_clk.h60980644editdlrm
sh_dma.h36960644editdlrm
sh_eth.h3690644editdlrm
sh_intc.h35060644editdlrm
sh_timer.h1720644editdlrm
signal.h135130644editdlrm
signalfd.h8170644editdlrm
signal_types.h12410644editdlrm
siox.h20750644editdlrm
siphash.h47380644editdlrm
sirfsoc_dma.h1620644editdlrm
sizes.h14510644editdlrm
skbuff.h1388220644editdlrm
skb_array.h55120644editdlrm
skmsg.h135570644editdlrm
slab.h250990644editdlrm
slab_def.h30090644editdlrm
slimbus.h54100644editdlrm
slub_def.h65880644editdlrm
sm501-regs.h120460644editdlrm
sm501.h47430644editdlrm
smc91x.h16040644editdlrm
smc911x.h2940644editdlrm
smp.h70850644editdlrm
smpboot.h22150644editdlrm
smp_types.h13400644editdlrm
smsc911x.h23400644editdlrm
smscphy.h12830644editdlrm
socket.h144270644editdlrm
sockptr.h22790644editdlrm
sock_diag.h23700644editdlrm
sonet.h4690644editdlrm
sony-laptop.h14410644editdlrm
sonypi.h24100644editdlrm
sort.h2470644editdlrm
sound.h6850644editdlrm
soundcard.h16310644editdlrm
spinlock.h159330644editdlrm
spinlock_api_smp.h53460644editdlrm
spinlock_api_up.h33940644editdlrm
spinlock_rt.h42090644editdlrm
spinlock_types.h18260644editdlrm
spinlock_types_raw.h17260644editdlrm
spinlock_types_up.h7260644editdlrm
spinlock_up.h21260644editdlrm
splice.h29810644editdlrm
spmi.h60940644editdlrm
sram.h8440644editdlrm
srcu.h78580644editdlrm
srcutiny.h34110644editdlrm
srcutree.h54370644editdlrm
ssbi.h11400644editdlrm
stackdepot.h13090644editdlrm
stackprotector.h3610644editdlrm
stacktrace.h43010644editdlrm
start_kernel.h3340644editdlrm
stat.h12120644editdlrm
statfs.h13460644editdlrm
static_call.h70340644editdlrm
static_call_types.h5350644editdlrm
static_key.h300644editdlrm
stddef.h32750644editdlrm
stm.h44530644editdlrm
stmmac.h76070644editdlrm
stmp3xxx_rtc_wdt.h3320644editdlrm
stmp_device.h6190644editdlrm
stop_machine.h48420644editdlrm
string.h99390644editdlrm
stringhash.h27150644editdlrm
stringify.h3410644editdlrm
string_helpers.h30820644editdlrm
sudmac.h12690644editdlrm
sungem_phy.h40310644editdlrm
sunserialcore.h11020644editdlrm
sunxi-rsb.h29550644editdlrm
superhyway.h28780644editdlrm
suspend.h214830644editdlrm
svga.h38370644editdlrm
sw842.h3280644editdlrm
swab.h5690644editdlrm
swait.h102840644editdlrm
swap.h231090644editdlrm
swapfile.h5560644editdlrm
swapops.h88950644editdlrm
swap_cgroup.h9710644editdlrm
swap_slots.h8410644editdlrm
swiotlb.h54720644editdlrm
switchtec.h115300644editdlrm
sxgbe_platform.h13710644editdlrm
synclink.h9890644editdlrm
sync_core.h5810644editdlrm
sync_file.h16060644editdlrm
sys.h9600644editdlrm
syscalls.h519130644editdlrm
syscore_ops.h6350644editdlrm
sysctl.h77700644editdlrm
sysfs.h180900644editdlrm
syslog.h19310644editdlrm
sysrq.h18960644editdlrm
sysv_fs.h92500644editdlrm
sys_soc.h12630644editdlrm
t10-pi.h15380644editdlrm
taskstats_kern.h9570644editdlrm
task_io_accounting.h11590644editdlrm
task_io_accounting_ops.h26100644editdlrm
task_work.h7180644editdlrm
tboot.h40890644editdlrm
tc.h34890644editdlrm
tca6416_keypad.h8470644editdlrm
tcp.h180920644editdlrm
tee_drv.h166850644editdlrm
textsearch.h48420644editdlrm
textsearch_fsm.h12140644editdlrm
tfrc.h19330644editdlrm
thermal.h199280644editdlrm
thinkpad_acpi.h3200644editdlrm
threads.h13090644editdlrm
thread_info.h48690644editdlrm
thunderbolt.h214350644editdlrm
ti-emif-sram.h51500644editdlrm
tick.h96120644editdlrm
tifm.h49200644editdlrm
timb_dma.h17840644editdlrm
timb_gpio.h13080644editdlrm
time.h39160644editdlrm
time32.h60680644editdlrm
time64.h40550644editdlrm
timecounter.h46930644editdlrm
timekeeper_internal.h54550644editdlrm
timekeeping.h73810644editdlrm
timekeeping32.h20550644editdlrm
timer.h70920644editdlrm
timerfd.h5080644editdlrm
timeriomem-rng.h4750644editdlrm
timerqueue.h14980644editdlrm
timex.h64660644editdlrm
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ti_wilink_st.h144040644editdlrm
tnum.h34670644editdlrm
topology.h62840644editdlrm
torture.h49530644editdlrm
toshiba.h9040644editdlrm
tpm.h113450644editdlrm
tpm_command.h8470644editdlrm
tpm_eventlog.h66860644editdlrm
trace.h13110644editdlrm
tracefs.h12210644editdlrm
tracehook.h72330644editdlrm
tracepoint-defs.h9050644editdlrm
tracepoint.h180030644editdlrm
trace_clock.h6670644editdlrm
trace_events.h210350644editdlrm
trace_seq.h41850644editdlrm
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ts-nbus.h5320644editdlrm
tsacct_kern.h12300644editdlrm
tty.h288220644editdlrm
tty_driver.h160170644editdlrm
tty_flip.h15450644editdlrm
tty_ldisc.h79370644editdlrm
typecheck.h7820644editdlrm
types.h56600644editdlrm
u64_stats_sync.h59570644editdlrm
uaccess.h137150644editdlrm
ucb1400.h43670644editdlrm
ucs2_string.h6620644editdlrm
udp.h55520644editdlrm
uidgid.h41710644editdlrm
uio.h97560644editdlrm
uio_driver.h41910644editdlrm
umh.h18370644editdlrm
units.h26850644editdlrm
uprobes.h67830644editdlrm
usb.h817210644editdlrm
usbdevice_fs.h22340644editdlrm
usb_usual.h36710644editdlrm
user-return-notifier.h12050644editdlrm
user.h220644editdlrm
userfaultfd_k.h46510644editdlrm
usermode_driver.h5150644editdlrm
user_namespace.h50840644editdlrm
util_macros.h11970644editdlrm
uts.h3880644editdlrm
utsname.h18280644editdlrm
uuid.h28330644editdlrm
uwb.h258270644editdlrm
vbox_utils.h16750644editdlrm
vdpa.h157560644editdlrm
verification.h19960644editdlrm
vermagic.h11590644editdlrm
vexpress.h14770644editdlrm
vfio.h73320644editdlrm
vfs.h1160644editdlrm
vgaarb.h39720644editdlrm
vga_switcheroo.h88280644editdlrm
vhost_iotlb.h13690644editdlrm
via-core.h74420644editdlrm
via-gpio.h3340644editdlrm
via.h9320644editdlrm
via_i2c.h15160644editdlrm
videodev2.h27690644editdlrm
virtio.h69150644editdlrm
virtio_byteorder.h14910644editdlrm
virtio_caif.h4920644editdlrm
virtio_config.h155170644editdlrm
virtio_console.h19740644editdlrm
virtio_dma_buf.h11470644editdlrm
virtio_net.h49640644editdlrm
virtio_pci_modern.h33790644editdlrm
virtio_ring.h30350644editdlrm
virtio_vsock.h46030644editdlrm
visorbus.h125250644editdlrm
vlynq.h39690644editdlrm
vmacache.h7220644editdlrm
vmalloc.h83670644editdlrm
vme.h57940644editdlrm
vmpressure.h17360644editdlrm
vmstat.h147390644editdlrm
vmw_vmci_api.h29540644editdlrm
vmw_vmci_defs.h309280644editdlrm
vm_event_item.h33850644editdlrm
vringh.h94860644editdlrm
vt.h6110644editdlrm
vtime.h41740644editdlrm
vt_buffer.h15240644editdlrm
vt_kern.h61790644editdlrm
w1-gpio.h6390644editdlrm
w1.h93450644editdlrm
wait.h432920644editdlrm
wait_bit.h115000644editdlrm
wanrouter.h2100644editdlrm
watchdog.h80020644editdlrm
win_minmax.h8320644editdlrm
wireless.h16070644editdlrm
wkup_m3_ipc.h15650644editdlrm
wl12xx.h14220644editdlrm
wm97xx.h108600644editdlrm
wmi.h19890644editdlrm
workqueue.h218560644editdlrm
writeback.h133740644editdlrm
ww_mutex.h130370644editdlrm
xarray.h591010644editdlrm
xattr.h35720644editdlrm
xxhash.h78290644editdlrm
xz.h114310644editdlrm
yam.h28880644editdlrm
z2_battery.h3180644editdlrm
zbud.h7400644editdlrm
zconf.h17700644editdlrm
zlib.h287840644editdlrm
zorro.h40300644editdlrm
zpool.h31020644editdlrm
zsmalloc.h17300644editdlrm
zstd.h498060644editdlrm
zutil.h27930644editdlrm
Edit: /usr/src/kernels/4.18.0-553.157.1.el8_10.x86_64/include/linux/usb.h (81721B)
/* SPDX-License-Identifier: GPL-2.0 */ #ifndef __LINUX_USB_H #define __LINUX_USB_H #include #include #define USB_MAJOR 180 #define USB_DEVICE_MAJOR 189 #ifdef __KERNEL__ #include /* for -ENODEV */ #include /* for mdelay() */ #include /* for in_interrupt() */ #include /* for struct list_head */ #include /* for struct kref */ #include /* for struct device */ #include /* for struct file_operations */ #include /* for struct completion */ #include /* for current && schedule_timeout */ #include /* for struct mutex */ #include /* for runtime PM */ struct usb_device; struct usb_driver; struct wusb_dev; /*-------------------------------------------------------------------------*/ /* * Host-side wrappers for standard USB descriptors ... these are parsed * from the data provided by devices. Parsing turns them from a flat * sequence of descriptors into a hierarchy: * * - devices have one (usually) or more configs; * - configs have one (often) or more interfaces; * - interfaces have one (usually) or more settings; * - each interface setting has zero or (usually) more endpoints. * - a SuperSpeed endpoint has a companion descriptor * * And there might be other descriptors mixed in with those. * * Devices may also have class-specific or vendor-specific descriptors. */ struct ep_device; /** * struct usb_host_endpoint - host-side endpoint descriptor and queue * @desc: descriptor for this endpoint, wMaxPacketSize in native byteorder * @ss_ep_comp: SuperSpeed companion descriptor for this endpoint * @ssp_isoc_ep_comp: SuperSpeedPlus isoc companion descriptor for this endpoint * @urb_list: urbs queued to this endpoint; maintained by usbcore * @hcpriv: for use by HCD; typically holds hardware dma queue head (QH) * with one or more transfer descriptors (TDs) per urb * @ep_dev: ep_device for sysfs info * @extra: descriptors following this endpoint in the configuration * @extralen: how many bytes of "extra" are valid * @enabled: URBs may be submitted to this endpoint * @streams: number of USB-3 streams allocated on the endpoint * * USB requests are always queued to a given endpoint, identified by a * descriptor within an active interface in a given USB configuration. */ struct usb_host_endpoint { struct usb_endpoint_descriptor desc; struct usb_ss_ep_comp_descriptor ss_ep_comp; struct usb_ssp_isoc_ep_comp_descriptor ssp_isoc_ep_comp; struct list_head urb_list; void *hcpriv; struct ep_device *ep_dev; /* For sysfs info */ unsigned char *extra; /* Extra descriptors */ int extralen; int enabled; int streams; }; /* host-side wrapper for one interface setting's parsed descriptors */ struct usb_host_interface { struct usb_interface_descriptor desc; int extralen; unsigned char *extra; /* Extra descriptors */ /* array of desc.bNumEndpoints endpoints associated with this * interface setting. these will be in no particular order. */ struct usb_host_endpoint *endpoint; char *string; /* iInterface string, if present */ }; enum usb_interface_condition { USB_INTERFACE_UNBOUND = 0, USB_INTERFACE_BINDING, USB_INTERFACE_BOUND, USB_INTERFACE_UNBINDING, }; int __must_check usb_find_common_endpoints(struct usb_host_interface *alt, struct usb_endpoint_descriptor **bulk_in, struct usb_endpoint_descriptor **bulk_out, struct usb_endpoint_descriptor **int_in, struct usb_endpoint_descriptor **int_out); int __must_check usb_find_common_endpoints_reverse(struct usb_host_interface *alt, struct usb_endpoint_descriptor **bulk_in, struct usb_endpoint_descriptor **bulk_out, struct usb_endpoint_descriptor **int_in, struct usb_endpoint_descriptor **int_out); static inline int __must_check usb_find_bulk_in_endpoint(struct usb_host_interface *alt, struct usb_endpoint_descriptor **bulk_in) { return usb_find_common_endpoints(alt, bulk_in, NULL, NULL, NULL); } static inline int __must_check usb_find_bulk_out_endpoint(struct usb_host_interface *alt, struct usb_endpoint_descriptor **bulk_out) { return usb_find_common_endpoints(alt, NULL, bulk_out, NULL, NULL); } static inline int __must_check usb_find_int_in_endpoint(struct usb_host_interface *alt, struct usb_endpoint_descriptor **int_in) { return usb_find_common_endpoints(alt, NULL, NULL, int_in, NULL); } static inline int __must_check usb_find_int_out_endpoint(struct usb_host_interface *alt, struct usb_endpoint_descriptor **int_out) { return usb_find_common_endpoints(alt, NULL, NULL, NULL, int_out); } static inline int __must_check usb_find_last_bulk_in_endpoint(struct usb_host_interface *alt, struct usb_endpoint_descriptor **bulk_in) { return usb_find_common_endpoints_reverse(alt, bulk_in, NULL, NULL, NULL); } static inline int __must_check usb_find_last_bulk_out_endpoint(struct usb_host_interface *alt, struct usb_endpoint_descriptor **bulk_out) { return usb_find_common_endpoints_reverse(alt, NULL, bulk_out, NULL, NULL); } static inline int __must_check usb_find_last_int_in_endpoint(struct usb_host_interface *alt, struct usb_endpoint_descriptor **int_in) { return usb_find_common_endpoints_reverse(alt, NULL, NULL, int_in, NULL); } static inline int __must_check usb_find_last_int_out_endpoint(struct usb_host_interface *alt, struct usb_endpoint_descriptor **int_out) { return usb_find_common_endpoints_reverse(alt, NULL, NULL, NULL, int_out); } enum usb_wireless_status { USB_WIRELESS_STATUS_NA = 0, USB_WIRELESS_STATUS_DISCONNECTED, USB_WIRELESS_STATUS_CONNECTED, }; /** * struct usb_interface - what usb device drivers talk to * @altsetting: array of interface structures, one for each alternate * setting that may be selected. Each one includes a set of * endpoint configurations. They will be in no particular order. * @cur_altsetting: the current altsetting. * @num_altsetting: number of altsettings defined. * @intf_assoc: interface association descriptor * @minor: the minor number assigned to this interface, if this * interface is bound to a driver that uses the USB major number. * If this interface does not use the USB major, this field should * be unused. The driver should set this value in the probe() * function of the driver, after it has been assigned a minor * number from the USB core by calling usb_register_dev(). * @condition: binding state of the interface: not bound, binding * (in probe()), bound to a driver, or unbinding (in disconnect()) * @sysfs_files_created: sysfs attributes exist * @ep_devs_created: endpoint child pseudo-devices exist * @unregistering: flag set when the interface is being unregistered * @needs_remote_wakeup: flag set when the driver requires remote-wakeup * capability during autosuspend. * @needs_altsetting0: flag set when a set-interface request for altsetting 0 * has been deferred. * @needs_binding: flag set when the driver should be re-probed or unbound * following a reset or suspend operation it doesn't support. * @authorized: This allows to (de)authorize individual interfaces instead * a whole device in contrast to the device authorization. * @wireless_status: if the USB device uses a receiver/emitter combo, whether * the emitter is connected. * @wireless_status_work: Used for scheduling wireless status changes * from atomic context. * @dev: driver model's view of this device * @usb_dev: if an interface is bound to the USB major, this will point * to the sysfs representation for that device. * @reset_ws: Used for scheduling resets from atomic context. * @resetting_device: USB core reset the device, so use alt setting 0 as * current; needs bandwidth alloc after reset. * * USB device drivers attach to interfaces on a physical device. Each * interface encapsulates a single high level function, such as feeding * an audio stream to a speaker or reporting a change in a volume control. * Many USB devices only have one interface. The protocol used to talk to * an interface's endpoints can be defined in a usb "class" specification, * or by a product's vendor. The (default) control endpoint is part of * every interface, but is never listed among the interface's descriptors. * * The driver that is bound to the interface can use standard driver model * calls such as dev_get_drvdata() on the dev member of this structure. * * Each interface may have alternate settings. The initial configuration * of a device sets altsetting 0, but the device driver can change * that setting using usb_set_interface(). Alternate settings are often * used to control the use of periodic endpoints, such as by having * different endpoints use different amounts of reserved USB bandwidth. * All standards-conformant USB devices that use isochronous endpoints * will use them in non-default settings. * * The USB specification says that alternate setting numbers must run from * 0 to one less than the total number of alternate settings. But some * devices manage to mess this up, and the structures aren't necessarily * stored in numerical order anyhow. Use usb_altnum_to_altsetting() to * look up an alternate setting in the altsetting array based on its number. */ struct usb_interface { /* array of alternate settings for this interface, * stored in no particular order */ struct usb_host_interface *altsetting; struct usb_host_interface *cur_altsetting; /* the currently * active alternate setting */ unsigned num_altsetting; /* number of alternate settings */ /* If there is an interface association descriptor then it will list * the associated interfaces */ struct usb_interface_assoc_descriptor *intf_assoc; int minor; /* minor number this interface is * bound to */ enum usb_interface_condition condition; /* state of binding */ unsigned sysfs_files_created:1; /* the sysfs attributes exist */ unsigned ep_devs_created:1; /* endpoint "devices" exist */ unsigned unregistering:1; /* unregistration is in progress */ unsigned needs_remote_wakeup:1; /* driver requires remote wakeup */ unsigned needs_altsetting0:1; /* switch to altsetting 0 is pending */ unsigned needs_binding:1; /* needs delayed unbind/rebind */ unsigned resetting_device:1; /* true: bandwidth alloc after reset */ unsigned authorized:1; /* used for interface authorization */ enum usb_wireless_status wireless_status; struct work_struct wireless_status_work; struct device dev; /* interface specific device info */ struct device *usb_dev; struct work_struct reset_ws; /* for resets in atomic context */ }; #define to_usb_interface(__dev) container_of_const(__dev, struct usb_interface, dev) static inline void *usb_get_intfdata(struct usb_interface *intf) { return dev_get_drvdata(&intf->dev); } /** * usb_set_intfdata() - associate driver-specific data with an interface * @intf: USB interface * @data: driver data * * Drivers can use this function in their probe() callbacks to associate * driver-specific data with an interface. * * Note that there is generally no need to clear the driver-data pointer even * if some drivers do so for historical or implementation-specific reasons. */ static inline void usb_set_intfdata(struct usb_interface *intf, void *data) { dev_set_drvdata(&intf->dev, data); } struct usb_interface *usb_get_intf(struct usb_interface *intf); void usb_put_intf(struct usb_interface *intf); /* Hard limit */ #define USB_MAXENDPOINTS 30 /* this maximum is arbitrary */ #define USB_MAXINTERFACES 32 #define USB_MAXIADS (USB_MAXINTERFACES/2) bool usb_check_bulk_endpoints( const struct usb_interface *intf, const u8 *ep_addrs); bool usb_check_int_endpoints( const struct usb_interface *intf, const u8 *ep_addrs); /* * USB Resume Timer: Every Host controller driver should drive the resume * signalling on the bus for the amount of time defined by this macro. * * That way we will have a 'stable' behavior among all HCDs supported by Linux. * * Note that the USB Specification states we should drive resume for *at least* * 20 ms, but it doesn't give an upper bound. This creates two possible * situations which we want to avoid: * * (a) sometimes an msleep(20) might expire slightly before 20 ms, which causes * us to fail USB Electrical Tests, thus failing Certification * * (b) Some (many) devices actually need more than 20 ms of resume signalling, * and while we can argue that's against the USB Specification, we don't have * control over which devices a certification laboratory will be using for * certification. If CertLab uses a device which was tested against Windows and * that happens to have relaxed resume signalling rules, we might fall into * situations where we fail interoperability and electrical tests. * * In order to avoid both conditions, we're using a 40 ms resume timeout, which * should cope with both LPJ calibration errors and devices not following every * detail of the USB Specification. */ #define USB_RESUME_TIMEOUT 40 /* ms */ /** * struct usb_interface_cache - long-term representation of a device interface * @num_altsetting: number of altsettings defined. * @ref: reference counter. * @altsetting: variable-length array of interface structures, one for * each alternate setting that may be selected. Each one includes a * set of endpoint configurations. They will be in no particular order. * * These structures persist for the lifetime of a usb_device, unlike * struct usb_interface (which persists only as long as its configuration * is installed). The altsetting arrays can be accessed through these * structures at any time, permitting comparison of configurations and * providing support for the /sys/kernel/debug/usb/devices pseudo-file. */ struct usb_interface_cache { unsigned num_altsetting; /* number of alternate settings */ struct kref ref; /* reference counter */ /* variable-length array of alternate settings for this interface, * stored in no particular order */ struct usb_host_interface altsetting[]; }; #define ref_to_usb_interface_cache(r) \ container_of(r, struct usb_interface_cache, ref) #define altsetting_to_usb_interface_cache(a) \ container_of(a, struct usb_interface_cache, altsetting[0]) /** * struct usb_host_config - representation of a device's configuration * @desc: the device's configuration descriptor. * @string: pointer to the cached version of the iConfiguration string, if * present for this configuration. * @intf_assoc: list of any interface association descriptors in this config * @interface: array of pointers to usb_interface structures, one for each * interface in the configuration. The number of interfaces is stored * in desc.bNumInterfaces. These pointers are valid only while the * configuration is active. * @intf_cache: array of pointers to usb_interface_cache structures, one * for each interface in the configuration. These structures exist * for the entire life of the device. * @extra: pointer to buffer containing all extra descriptors associated * with this configuration (those preceding the first interface * descriptor). * @extralen: length of the extra descriptors buffer. * * USB devices may have multiple configurations, but only one can be active * at any time. Each encapsulates a different operational environment; * for example, a dual-speed device would have separate configurations for * full-speed and high-speed operation. The number of configurations * available is stored in the device descriptor as bNumConfigurations. * * A configuration can contain multiple interfaces. Each corresponds to * a different function of the USB device, and all are available whenever * the configuration is active. The USB standard says that interfaces * are supposed to be numbered from 0 to desc.bNumInterfaces-1, but a lot * of devices get this wrong. In addition, the interface array is not * guaranteed to be sorted in numerical order. Use usb_ifnum_to_if() to * look up an interface entry based on its number. * * Device drivers should not attempt to activate configurations. The choice * of which configuration to install is a policy decision based on such * considerations as available power, functionality provided, and the user's * desires (expressed through userspace tools). However, drivers can call * usb_reset_configuration() to reinitialize the current configuration and * all its interfaces. */ struct usb_host_config { struct usb_config_descriptor desc; char *string; /* iConfiguration string, if present */ /* List of any Interface Association Descriptors in this * configuration. */ struct usb_interface_assoc_descriptor *intf_assoc[USB_MAXIADS]; /* the interfaces associated with this configuration, * stored in no particular order */ struct usb_interface *interface[USB_MAXINTERFACES]; /* Interface information available even when this is not the * active configuration */ struct usb_interface_cache *intf_cache[USB_MAXINTERFACES]; unsigned char *extra; /* Extra descriptors */ int extralen; }; /* USB2.0 and USB3.0 device BOS descriptor set */ struct usb_host_bos { struct usb_bos_descriptor *desc; /* wireless cap descriptor is handled by wusb */ struct usb_ext_cap_descriptor *ext_cap; struct usb_ss_cap_descriptor *ss_cap; struct usb_ssp_cap_descriptor *ssp_cap; struct usb_ss_container_id_descriptor *ss_id; struct usb_ptm_cap_descriptor *ptm_cap; }; int __usb_get_extra_descriptor(char *buffer, unsigned size, unsigned char type, void **ptr, size_t min); #define usb_get_extra_descriptor(ifpoint, type, ptr) \ __usb_get_extra_descriptor((ifpoint)->extra, \ (ifpoint)->extralen, \ type, (void **)ptr, sizeof(**(ptr))) /* ----------------------------------------------------------------------- */ /* USB device number allocation bitmap */ struct usb_devmap { unsigned long devicemap[128 / (8*sizeof(unsigned long))]; }; /* * Allocated per bus (tree of devices) we have: */ struct usb_bus { struct device *controller; /* host side hardware */ struct device *sysdev; /* as seen from firmware or bus */ int busnum; /* Bus number (in order of reg) */ const char *bus_name; /* stable id (PCI slot_name etc) */ u8 uses_pio_for_control; /* * Does the host controller use PIO * for control transfers? */ u8 otg_port; /* 0, or number of OTG/HNP port */ unsigned is_b_host:1; /* true during some HNP roleswitches */ unsigned b_hnp_enable:1; /* OTG: did A-Host enable HNP? */ unsigned no_stop_on_short:1; /* * Quirk: some controllers don't stop * the ep queue on a short transfer * with the URB_SHORT_NOT_OK flag set. */ unsigned no_sg_constraint:1; /* no sg constraint */ unsigned sg_tablesize; /* 0 or largest number of sg list entries */ int devnum_next; /* Next open device number in * round-robin allocation */ struct mutex devnum_next_mutex; /* devnum_next mutex */ struct usb_devmap devmap; /* device address allocation map */ struct usb_device *root_hub; /* Root hub */ struct usb_bus *hs_companion; /* Companion EHCI bus, if any */ int bandwidth_allocated; /* on this bus: how much of the time * reserved for periodic (intr/iso) * requests is used, on average? * Units: microseconds/frame. * Limits: Full/low speed reserve 90%, * while high speed reserves 80%. */ int bandwidth_int_reqs; /* number of Interrupt requests */ int bandwidth_isoc_reqs; /* number of Isoc. requests */ unsigned resuming_ports; /* bit array: resuming root-hub ports */ #if defined(CONFIG_USB_MON) || defined(CONFIG_USB_MON_MODULE) struct mon_bus *mon_bus; /* non-null when associated */ int monitored; /* non-zero when monitored */ #endif }; struct usb_dev_state; /* ----------------------------------------------------------------------- */ struct usb_tt; enum usb_port_connect_type { USB_PORT_CONNECT_TYPE_UNKNOWN = 0, USB_PORT_CONNECT_TYPE_HOT_PLUG, USB_PORT_CONNECT_TYPE_HARD_WIRED, USB_PORT_NOT_USED, }; /* * USB port quirks. */ /* For the given port, prefer the old (faster) enumeration scheme. */ #define USB_PORT_QUIRK_OLD_SCHEME BIT(0) /* Decrease TRSTRCY to 10ms during device enumeration. */ #define USB_PORT_QUIRK_FAST_ENUM BIT(1) /* * USB 2.0 Link Power Management (LPM) parameters. */ struct usb2_lpm_parameters { /* Best effort service latency indicate how long the host will drive * resume on an exit from L1. */ unsigned int besl; /* Timeout value in microseconds for the L1 inactivity (LPM) timer. * When the timer counts to zero, the parent hub will initiate a LPM * transition to L1. */ int timeout; }; /* * USB 3.0 Link Power Management (LPM) parameters. * * PEL and SEL are USB 3.0 Link PM latencies for device-initiated LPM exit. * MEL is the USB 3.0 Link PM latency for host-initiated LPM exit. * All three are stored in nanoseconds. */ struct usb3_lpm_parameters { /* * Maximum exit latency (MEL) for the host to send a packet to the * device (either a Ping for isoc endpoints, or a data packet for * interrupt endpoints), the hubs to decode the packet, and for all hubs * in the path to transition the links to U0. */ unsigned int mel; /* * Maximum exit latency for a device-initiated LPM transition to bring * all links into U0. Abbreviated as "PEL" in section 9.4.12 of the USB * 3.0 spec, with no explanation of what "P" stands for. "Path"? */ unsigned int pel; /* * The System Exit Latency (SEL) includes PEL, and three other * latencies. After a device initiates a U0 transition, it will take * some time from when the device sends the ERDY to when it will finally * receive the data packet. Basically, SEL should be the worse-case * latency from when a device starts initiating a U0 transition to when * it will get data. */ unsigned int sel; /* * The idle timeout value that is currently programmed into the parent * hub for this device. When the timer counts to zero, the parent hub * will initiate an LPM transition to either U1 or U2. */ int timeout; }; /** * struct usb_device - kernel's representation of a USB device * @devnum: device number; address on a USB bus * @devpath: device ID string for use in messages (e.g., /port/...) * @route: tree topology hex string for use with xHCI * @state: device state: configured, not attached, etc. * @speed: device speed: high/full/low (or error) * @rx_lanes: number of rx lanes in use, USB 3.2 adds dual-lane support * @tx_lanes: number of tx lanes in use, USB 3.2 adds dual-lane support * @ssp_rate: SuperSpeed Plus phy signaling rate and lane count * @tt: Transaction Translator info; used with low/full speed dev, highspeed hub * @ttport: device port on that tt hub * @toggle: one bit for each endpoint, with ([0] = IN, [1] = OUT) endpoints * @parent: our hub, unless we're the root * @bus: bus we're part of * @ep0: endpoint 0 data (default control pipe) * @dev: generic device interface * @descriptor: USB device descriptor * @bos: USB device BOS descriptor set * @config: all of the device's configs * @actconfig: the active configuration * @ep_in: array of IN endpoints * @ep_out: array of OUT endpoints * @rawdescriptors: raw descriptors for each config * @bus_mA: Current available from the bus * @portnum: parent port number (origin 1) * @level: number of USB hub ancestors * @devaddr: device address, XHCI: assigned by HW, others: same as devnum * @can_submit: URBs may be submitted * @persist_enabled: USB_PERSIST enabled for this device * @reset_in_progress: the device is being reset * @have_langid: whether string_langid is valid * @authorized: policy has said we can use it; * (user space) policy determines if we authorize this device to be * used or not. By default, wired USB devices are authorized. * WUSB devices are not, until we authorize them from user space. * FIXME -- complete doc * @authenticated: Crypto authentication passed * @wusb: device is Wireless USB * @lpm_capable: device supports LPM * @lpm_devinit_allow: Allow USB3 device initiated LPM, exit latency is in range * @usb2_hw_lpm_capable: device can perform USB2 hardware LPM * @usb2_hw_lpm_besl_capable: device can perform USB2 hardware BESL LPM * @usb2_hw_lpm_enabled: USB2 hardware LPM is enabled * @usb2_hw_lpm_allowed: Userspace allows USB 2.0 LPM to be enabled * @usb3_lpm_u1_enabled: USB3 hardware U1 LPM enabled * @usb3_lpm_u2_enabled: USB3 hardware U2 LPM enabled * @string_langid: language ID for strings * @product: iProduct string, if present (static) * @manufacturer: iManufacturer string, if present (static) * @serial: iSerialNumber string, if present (static) * @filelist: usbfs files that are open to this device * @maxchild: number of ports if hub * @quirks: quirks of the whole device * @urbnum: number of URBs submitted for the whole device * @active_duration: total time device is not suspended * @connect_time: time device was first connected * @do_remote_wakeup: remote wakeup should be enabled * @reset_resume: needs reset instead of resume * @port_is_suspended: the upstream port is suspended (L2 or U3) * @wusb_dev: if this is a Wireless USB device, link to the WUSB * specific data for the device. * @slot_id: Slot ID assigned by xHCI * @removable: Device can be physically removed from this port * @l1_params: best effor service latency for USB2 L1 LPM state, and L1 timeout. * @u1_params: exit latencies for USB3 U1 LPM state, and hub-initiated timeout. * @u2_params: exit latencies for USB3 U2 LPM state, and hub-initiated timeout. * @lpm_disable_count: Ref count used by usb_disable_lpm() and usb_enable_lpm() * to keep track of the number of functions that require USB 3.0 Link Power * Management to be disabled for this usb_device. This count should only * be manipulated by those functions, with the bandwidth_mutex is held. * @hub_delay: cached value consisting of: * parent->hub_delay + wHubDelay + tTPTransmissionDelay (40ns) * Will be used as wValue for SetIsochDelay requests. * @use_generic_driver: ask driver core to reprobe using the generic driver. * * Notes: * Usbcore drivers should not set usbdev->state directly. Instead use * usb_set_device_state(). */ struct usb_device { int devnum; char devpath[16]; u32 route; enum usb_device_state state; enum usb_device_speed speed; unsigned int rx_lanes; unsigned int tx_lanes; enum usb_ssp_rate ssp_rate; struct usb_tt *tt; int ttport; unsigned int toggle[2]; struct usb_device *parent; struct usb_bus *bus; struct usb_host_endpoint ep0; struct device dev; struct usb_device_descriptor descriptor; struct usb_host_bos *bos; struct usb_host_config *config; struct usb_host_config *actconfig; struct usb_host_endpoint *ep_in[16]; struct usb_host_endpoint *ep_out[16]; char **rawdescriptors; unsigned short bus_mA; u8 portnum; u8 level; u8 devaddr; unsigned can_submit:1; unsigned persist_enabled:1; unsigned reset_in_progress:1; unsigned have_langid:1; unsigned authorized:1; unsigned authenticated:1; unsigned wusb:1; unsigned lpm_capable:1; unsigned lpm_devinit_allow:1; unsigned usb2_hw_lpm_capable:1; unsigned usb2_hw_lpm_besl_capable:1; unsigned usb2_hw_lpm_enabled:1; unsigned usb2_hw_lpm_allowed:1; unsigned usb3_lpm_u1_enabled:1; unsigned usb3_lpm_u2_enabled:1; int string_langid; /* static strings from the device */ char *product; char *manufacturer; char *serial; struct list_head filelist; int maxchild; u32 quirks; atomic_t urbnum; unsigned long active_duration; unsigned long connect_time; unsigned do_remote_wakeup:1; unsigned reset_resume:1; unsigned port_is_suspended:1; struct wusb_dev *wusb_dev; int slot_id; struct usb2_lpm_parameters l1_params; struct usb3_lpm_parameters u1_params; struct usb3_lpm_parameters u2_params; unsigned lpm_disable_count; u16 hub_delay; unsigned use_generic_driver:1; }; #define to_usb_device(__dev) container_of_const(__dev, struct usb_device, dev) static inline struct usb_device *__intf_to_usbdev(struct usb_interface *intf) { return to_usb_device(intf->dev.parent); } static inline const struct usb_device *__intf_to_usbdev_const(const struct usb_interface *intf) { return to_usb_device((const struct device *)intf->dev.parent); } #define interface_to_usbdev(intf) \ _Generic((intf), \ const struct usb_interface *: __intf_to_usbdev_const, \ struct usb_interface *: __intf_to_usbdev)(intf) extern struct usb_device *usb_get_dev(struct usb_device *dev); extern void usb_put_dev(struct usb_device *dev); extern struct usb_device *usb_hub_find_child(struct usb_device *hdev, int port1); /** * usb_hub_for_each_child - iterate over all child devices on the hub * @hdev: USB device belonging to the usb hub * @port1: portnum associated with child device * @child: child device pointer */ #define usb_hub_for_each_child(hdev, port1, child) \ for (port1 = 1, child = usb_hub_find_child(hdev, port1); \ port1 <= hdev->maxchild; \ child = usb_hub_find_child(hdev, ++port1)) \ if (!child) continue; else /* USB device locking */ #define usb_lock_device(udev) device_lock(&(udev)->dev) #define usb_unlock_device(udev) device_unlock(&(udev)->dev) #define usb_lock_device_interruptible(udev) device_lock_interruptible(&(udev)->dev) #define usb_trylock_device(udev) device_trylock(&(udev)->dev) extern int usb_lock_device_for_reset(struct usb_device *udev, const struct usb_interface *iface); /* USB port reset for device reinitialization */ extern int usb_reset_device(struct usb_device *dev); extern void usb_queue_reset_device(struct usb_interface *dev); extern struct device *usb_intf_get_dma_device(struct usb_interface *intf); #ifdef CONFIG_ACPI extern int usb_acpi_set_power_state(struct usb_device *hdev, int index, bool enable); extern bool usb_acpi_power_manageable(struct usb_device *hdev, int index); extern int usb_acpi_port_lpm_incapable(struct usb_device *hdev, int index); #else static inline int usb_acpi_set_power_state(struct usb_device *hdev, int index, bool enable) { return 0; } static inline bool usb_acpi_power_manageable(struct usb_device *hdev, int index) { return true; } static inline int usb_acpi_port_lpm_incapable(struct usb_device *hdev, int index) { return 0; } #endif /* USB autosuspend and autoresume */ #ifdef CONFIG_PM extern void usb_enable_autosuspend(struct usb_device *udev); extern void usb_disable_autosuspend(struct usb_device *udev); extern int usb_autopm_get_interface(struct usb_interface *intf); extern void usb_autopm_put_interface(struct usb_interface *intf); extern int usb_autopm_get_interface_async(struct usb_interface *intf); extern void usb_autopm_put_interface_async(struct usb_interface *intf); extern void usb_autopm_get_interface_no_resume(struct usb_interface *intf); extern void usb_autopm_put_interface_no_suspend(struct usb_interface *intf); static inline void usb_mark_last_busy(struct usb_device *udev) { pm_runtime_mark_last_busy(&udev->dev); } #else static inline int usb_enable_autosuspend(struct usb_device *udev) { return 0; } static inline int usb_disable_autosuspend(struct usb_device *udev) { return 0; } static inline int usb_autopm_get_interface(struct usb_interface *intf) { return 0; } static inline int usb_autopm_get_interface_async(struct usb_interface *intf) { return 0; } static inline void usb_autopm_put_interface(struct usb_interface *intf) { } static inline void usb_autopm_put_interface_async(struct usb_interface *intf) { } static inline void usb_autopm_get_interface_no_resume( struct usb_interface *intf) { } static inline void usb_autopm_put_interface_no_suspend( struct usb_interface *intf) { } static inline void usb_mark_last_busy(struct usb_device *udev) { } #endif extern int usb_disable_lpm(struct usb_device *udev); extern void usb_enable_lpm(struct usb_device *udev); /* Same as above, but these functions lock/unlock the bandwidth_mutex. */ extern int usb_unlocked_disable_lpm(struct usb_device *udev); extern void usb_unlocked_enable_lpm(struct usb_device *udev); extern int usb_disable_ltm(struct usb_device *udev); extern void usb_enable_ltm(struct usb_device *udev); static inline bool usb_device_supports_ltm(struct usb_device *udev) { if (udev->speed < USB_SPEED_SUPER || !udev->bos || !udev->bos->ss_cap) return false; return udev->bos->ss_cap->bmAttributes & USB_LTM_SUPPORT; } static inline bool usb_device_no_sg_constraint(struct usb_device *udev) { return udev && udev->bus && udev->bus->no_sg_constraint; } /*-------------------------------------------------------------------------*/ /* for drivers using iso endpoints */ extern int usb_get_current_frame_number(struct usb_device *usb_dev); /* Sets up a group of bulk endpoints to support multiple stream IDs. */ extern int usb_alloc_streams(struct usb_interface *interface, struct usb_host_endpoint **eps, unsigned int num_eps, unsigned int num_streams, gfp_t mem_flags); /* Reverts a group of bulk endpoints back to not using stream IDs. */ extern int usb_free_streams(struct usb_interface *interface, struct usb_host_endpoint **eps, unsigned int num_eps, gfp_t mem_flags); /* used these for multi-interface device registration */ extern int usb_driver_claim_interface(struct usb_driver *driver, struct usb_interface *iface, void *data); /** * usb_interface_claimed - returns true iff an interface is claimed * @iface: the interface being checked * * Return: %true (nonzero) iff the interface is claimed, else %false * (zero). * * Note: * Callers must own the driver model's usb bus readlock. So driver * probe() entries don't need extra locking, but other call contexts * may need to explicitly claim that lock. * */ static inline int usb_interface_claimed(struct usb_interface *iface) { return (iface->dev.driver != NULL); } extern void usb_driver_release_interface(struct usb_driver *driver, struct usb_interface *iface); int usb_set_wireless_status(struct usb_interface *iface, enum usb_wireless_status status); const struct usb_device_id *usb_match_id(struct usb_interface *interface, const struct usb_device_id *id); extern int usb_match_one_id(struct usb_interface *interface, const struct usb_device_id *id); extern int usb_for_each_dev(void *data, int (*fn)(struct usb_device *, void *)); extern struct usb_interface *usb_find_interface(struct usb_driver *drv, int minor); extern struct usb_interface *usb_ifnum_to_if(const struct usb_device *dev, unsigned ifnum); extern struct usb_host_interface *usb_altnum_to_altsetting( const struct usb_interface *intf, unsigned int altnum); extern struct usb_host_interface *usb_find_alt_setting( struct usb_host_config *config, unsigned int iface_num, unsigned int alt_num); /* port claiming functions */ int usb_hub_claim_port(struct usb_device *hdev, unsigned port1, struct usb_dev_state *owner); int usb_hub_release_port(struct usb_device *hdev, unsigned port1, struct usb_dev_state *owner); /** * usb_make_path - returns stable device path in the usb tree * @dev: the device whose path is being constructed * @buf: where to put the string * @size: how big is "buf"? * * Return: Length of the string (> 0) or negative if size was too small. * * Note: * This identifier is intended to be "stable", reflecting physical paths in * hardware such as physical bus addresses for host controllers or ports on * USB hubs. That makes it stay the same until systems are physically * reconfigured, by re-cabling a tree of USB devices or by moving USB host * controllers. Adding and removing devices, including virtual root hubs * in host controller driver modules, does not change these path identifiers; * neither does rebooting or re-enumerating. These are more useful identifiers * than changeable ("unstable") ones like bus numbers or device addresses. * * With a partial exception for devices connected to USB 2.0 root hubs, these * identifiers are also predictable. So long as the device tree isn't changed, * plugging any USB device into a given hub port always gives it the same path. * Because of the use of "companion" controllers, devices connected to ports on * USB 2.0 root hubs (EHCI host controllers) will get one path ID if they are * high speed, and a different one if they are full or low speed. */ static inline int usb_make_path(struct usb_device *dev, char *buf, size_t size) { int actual; actual = snprintf(buf, size, "usb-%s-%s", dev->bus->bus_name, dev->devpath); return (actual >= (int)size) ? -1 : actual; } /*-------------------------------------------------------------------------*/ #define USB_DEVICE_ID_MATCH_DEVICE \ (USB_DEVICE_ID_MATCH_VENDOR | USB_DEVICE_ID_MATCH_PRODUCT) #define USB_DEVICE_ID_MATCH_DEV_RANGE \ (USB_DEVICE_ID_MATCH_DEV_LO | USB_DEVICE_ID_MATCH_DEV_HI) #define USB_DEVICE_ID_MATCH_DEVICE_AND_VERSION \ (USB_DEVICE_ID_MATCH_DEVICE | USB_DEVICE_ID_MATCH_DEV_RANGE) #define USB_DEVICE_ID_MATCH_DEV_INFO \ (USB_DEVICE_ID_MATCH_DEV_CLASS | \ USB_DEVICE_ID_MATCH_DEV_SUBCLASS | \ USB_DEVICE_ID_MATCH_DEV_PROTOCOL) #define USB_DEVICE_ID_MATCH_INT_INFO \ (USB_DEVICE_ID_MATCH_INT_CLASS | \ USB_DEVICE_ID_MATCH_INT_SUBCLASS | \ USB_DEVICE_ID_MATCH_INT_PROTOCOL) /** * USB_DEVICE - macro used to describe a specific usb device * @vend: the 16 bit USB Vendor ID * @prod: the 16 bit USB Product ID * * This macro is used to create a struct usb_device_id that matches a * specific device. */ #define USB_DEVICE(vend, prod) \ .match_flags = USB_DEVICE_ID_MATCH_DEVICE, \ .idVendor = (vend), \ .idProduct = (prod) /** * USB_DEVICE_VER - describe a specific usb device with a version range * @vend: the 16 bit USB Vendor ID * @prod: the 16 bit USB Product ID * @lo: the bcdDevice_lo value * @hi: the bcdDevice_hi value * * This macro is used to create a struct usb_device_id that matches a * specific device, with a version range. */ #define USB_DEVICE_VER(vend, prod, lo, hi) \ .match_flags = USB_DEVICE_ID_MATCH_DEVICE_AND_VERSION, \ .idVendor = (vend), \ .idProduct = (prod), \ .bcdDevice_lo = (lo), \ .bcdDevice_hi = (hi) /** * USB_DEVICE_INTERFACE_CLASS - describe a usb device with a specific interface class * @vend: the 16 bit USB Vendor ID * @prod: the 16 bit USB Product ID * @cl: bInterfaceClass value * * This macro is used to create a struct usb_device_id that matches a * specific interface class of devices. */ #define USB_DEVICE_INTERFACE_CLASS(vend, prod, cl) \ .match_flags = USB_DEVICE_ID_MATCH_DEVICE | \ USB_DEVICE_ID_MATCH_INT_CLASS, \ .idVendor = (vend), \ .idProduct = (prod), \ .bInterfaceClass = (cl) /** * USB_DEVICE_INTERFACE_PROTOCOL - describe a usb device with a specific interface protocol * @vend: the 16 bit USB Vendor ID * @prod: the 16 bit USB Product ID * @pr: bInterfaceProtocol value * * This macro is used to create a struct usb_device_id that matches a * specific interface protocol of devices. */ #define USB_DEVICE_INTERFACE_PROTOCOL(vend, prod, pr) \ .match_flags = USB_DEVICE_ID_MATCH_DEVICE | \ USB_DEVICE_ID_MATCH_INT_PROTOCOL, \ .idVendor = (vend), \ .idProduct = (prod), \ .bInterfaceProtocol = (pr) /** * USB_DEVICE_INTERFACE_NUMBER - describe a usb device with a specific interface number * @vend: the 16 bit USB Vendor ID * @prod: the 16 bit USB Product ID * @num: bInterfaceNumber value * * This macro is used to create a struct usb_device_id that matches a * specific interface number of devices. */ #define USB_DEVICE_INTERFACE_NUMBER(vend, prod, num) \ .match_flags = USB_DEVICE_ID_MATCH_DEVICE | \ USB_DEVICE_ID_MATCH_INT_NUMBER, \ .idVendor = (vend), \ .idProduct = (prod), \ .bInterfaceNumber = (num) /** * USB_DEVICE_INFO - macro used to describe a class of usb devices * @cl: bDeviceClass value * @sc: bDeviceSubClass value * @pr: bDeviceProtocol value * * This macro is used to create a struct usb_device_id that matches a * specific class of devices. */ #define USB_DEVICE_INFO(cl, sc, pr) \ .match_flags = USB_DEVICE_ID_MATCH_DEV_INFO, \ .bDeviceClass = (cl), \ .bDeviceSubClass = (sc), \ .bDeviceProtocol = (pr) /** * USB_INTERFACE_INFO - macro used to describe a class of usb interfaces * @cl: bInterfaceClass value * @sc: bInterfaceSubClass value * @pr: bInterfaceProtocol value * * This macro is used to create a struct usb_device_id that matches a * specific class of interfaces. */ #define USB_INTERFACE_INFO(cl, sc, pr) \ .match_flags = USB_DEVICE_ID_MATCH_INT_INFO, \ .bInterfaceClass = (cl), \ .bInterfaceSubClass = (sc), \ .bInterfaceProtocol = (pr) /** * USB_DEVICE_AND_INTERFACE_INFO - describe a specific usb device with a class of usb interfaces * @vend: the 16 bit USB Vendor ID * @prod: the 16 bit USB Product ID * @cl: bInterfaceClass value * @sc: bInterfaceSubClass value * @pr: bInterfaceProtocol value * * This macro is used to create a struct usb_device_id that matches a * specific device with a specific class of interfaces. * * This is especially useful when explicitly matching devices that have * vendor specific bDeviceClass values, but standards-compliant interfaces. */ #define USB_DEVICE_AND_INTERFACE_INFO(vend, prod, cl, sc, pr) \ .match_flags = USB_DEVICE_ID_MATCH_INT_INFO \ | USB_DEVICE_ID_MATCH_DEVICE, \ .idVendor = (vend), \ .idProduct = (prod), \ .bInterfaceClass = (cl), \ .bInterfaceSubClass = (sc), \ .bInterfaceProtocol = (pr) /** * USB_VENDOR_AND_INTERFACE_INFO - describe a specific usb vendor with a class of usb interfaces * @vend: the 16 bit USB Vendor ID * @cl: bInterfaceClass value * @sc: bInterfaceSubClass value * @pr: bInterfaceProtocol value * * This macro is used to create a struct usb_device_id that matches a * specific vendor with a specific class of interfaces. * * This is especially useful when explicitly matching devices that have * vendor specific bDeviceClass values, but standards-compliant interfaces. */ #define USB_VENDOR_AND_INTERFACE_INFO(vend, cl, sc, pr) \ .match_flags = USB_DEVICE_ID_MATCH_INT_INFO \ | USB_DEVICE_ID_MATCH_VENDOR, \ .idVendor = (vend), \ .bInterfaceClass = (cl), \ .bInterfaceSubClass = (sc), \ .bInterfaceProtocol = (pr) /* ----------------------------------------------------------------------- */ /* Stuff for dynamic usb ids */ struct usb_dynids { spinlock_t lock; struct list_head list; }; struct usb_dynid { struct list_head node; struct usb_device_id id; }; extern ssize_t usb_store_new_id(struct usb_dynids *dynids, const struct usb_device_id *id_table, struct device_driver *driver, const char *buf, size_t count); extern ssize_t usb_show_dynids(struct usb_dynids *dynids, char *buf); /** * struct usbdrv_wrap - wrapper for driver-model structure * @driver: The driver-model core driver structure. * @for_devices: Non-zero for device drivers, 0 for interface drivers. */ struct usbdrv_wrap { struct device_driver driver; int for_devices; }; /** * struct usb_driver - identifies USB interface driver to usbcore * @name: The driver name should be unique among USB drivers, * and should normally be the same as the module name. * @probe: Called to see if the driver is willing to manage a particular * interface on a device. If it is, probe returns zero and uses * usb_set_intfdata() to associate driver-specific data with the * interface. It may also use usb_set_interface() to specify the * appropriate altsetting. If unwilling to manage the interface, * return -ENODEV, if genuine IO errors occurred, an appropriate * negative errno value. * @disconnect: Called when the interface is no longer accessible, usually * because its device has been (or is being) disconnected or the * driver module is being unloaded. * @unlocked_ioctl: Used for drivers that want to talk to userspace through * the "usbfs" filesystem. This lets devices provide ways to * expose information to user space regardless of where they * do (or don't) show up otherwise in the filesystem. * @suspend: Called when the device is going to be suspended by the * system either from system sleep or runtime suspend context. The * return value will be ignored in system sleep context, so do NOT * try to continue using the device if suspend fails in this case. * Instead, let the resume or reset-resume routine recover from * the failure. * @resume: Called when the device is being resumed by the system. * @reset_resume: Called when the suspended device has been reset instead * of being resumed. * @pre_reset: Called by usb_reset_device() when the device is about to be * reset. This routine must not return until the driver has no active * URBs for the device, and no more URBs may be submitted until the * post_reset method is called. * @post_reset: Called by usb_reset_device() after the device * has been reset * @id_table: USB drivers use ID table to support hotplugging. * Export this with MODULE_DEVICE_TABLE(usb,...). This must be set * or your driver's probe function will never get called. * @dev_groups: Attributes attached to the device that will be created once it * is bound to the driver. * @dynids: used internally to hold the list of dynamically added device * ids for this driver. * @drvwrap: Driver-model core structure wrapper. * @no_dynamic_id: if set to 1, the USB core will not allow dynamic ids to be * added to this driver by preventing the sysfs file from being created. * @supports_autosuspend: if set to 0, the USB core will not allow autosuspend * for interfaces bound to this driver. * @soft_unbind: if set to 1, the USB core will not kill URBs and disable * endpoints before calling the driver's disconnect method. * @disable_hub_initiated_lpm: if set to 1, the USB core will not allow hubs * to initiate lower power link state transitions when an idle timeout * occurs. Device-initiated USB 3.0 link PM will still be allowed. * * USB interface drivers must provide a name, probe() and disconnect() * methods, and an id_table. Other driver fields are optional. * * The id_table is used in hotplugging. It holds a set of descriptors, * and specialized data may be associated with each entry. That table * is used by both user and kernel mode hotplugging support. * * The probe() and disconnect() methods are called in a context where * they can sleep, but they should avoid abusing the privilege. Most * work to connect to a device should be done when the device is opened, * and undone at the last close. The disconnect code needs to address * concurrency issues with respect to open() and close() methods, as * well as forcing all pending I/O requests to complete (by unlinking * them as necessary, and blocking until the unlinks complete). */ struct usb_driver { const char *name; int (*probe) (struct usb_interface *intf, const struct usb_device_id *id); void (*disconnect) (struct usb_interface *intf); int (*unlocked_ioctl) (struct usb_interface *intf, unsigned int code, void *buf); int (*suspend) (struct usb_interface *intf, pm_message_t message); int (*resume) (struct usb_interface *intf); int (*reset_resume)(struct usb_interface *intf); int (*pre_reset)(struct usb_interface *intf); int (*post_reset)(struct usb_interface *intf); const struct usb_device_id *id_table; const struct attribute_group **dev_groups; struct usb_dynids dynids; struct usbdrv_wrap drvwrap; unsigned int no_dynamic_id:1; unsigned int supports_autosuspend:1; unsigned int disable_hub_initiated_lpm:1; unsigned int soft_unbind:1; }; #define to_usb_driver(d) container_of(d, struct usb_driver, drvwrap.driver) /** * struct usb_device_driver - identifies USB device driver to usbcore * @name: The driver name should be unique among USB drivers, * and should normally be the same as the module name. * @match: If set, used for better device/driver matching. * @probe: Called to see if the driver is willing to manage a particular * device. If it is, probe returns zero and uses dev_set_drvdata() * to associate driver-specific data with the device. If unwilling * to manage the device, return a negative errno value. * @disconnect: Called when the device is no longer accessible, usually * because it has been (or is being) disconnected or the driver's * module is being unloaded. * @suspend: Called when the device is going to be suspended by the system. * @resume: Called when the device is being resumed by the system. * @dev_groups: Attributes attached to the device that will be created once it * is bound to the driver. * @drvwrap: Driver-model core structure wrapper. * @id_table: used with @match() to select better matching driver at * probe() time. * @supports_autosuspend: if set to 0, the USB core will not allow autosuspend * for devices bound to this driver. * @generic_subclass: if set to 1, the generic USB driver's probe, disconnect, * resume and suspend functions will be called in addition to the driver's * own, so this part of the setup does not need to be replicated. * * USB drivers must provide all the fields listed above except drvwrap, * match, and id_table. */ struct usb_device_driver { const char *name; bool (*match) (struct usb_device *udev); int (*probe) (struct usb_device *udev); void (*disconnect) (struct usb_device *udev); int (*suspend) (struct usb_device *udev, pm_message_t message); int (*resume) (struct usb_device *udev, pm_message_t message); const struct attribute_group **dev_groups; struct usbdrv_wrap drvwrap; const struct usb_device_id *id_table; unsigned int supports_autosuspend:1; unsigned int generic_subclass:1; }; #define to_usb_device_driver(d) container_of(d, struct usb_device_driver, \ drvwrap.driver) /** * struct usb_class_driver - identifies a USB driver that wants to use the USB major number * @name: the usb class device name for this driver. Will show up in sysfs. * @devnode: Callback to provide a naming hint for a possible * device node to create. * @fops: pointer to the struct file_operations of this driver. * @minor_base: the start of the minor range for this driver. * * This structure is used for the usb_register_dev() and * usb_deregister_dev() functions, to consolidate a number of the * parameters used for them. */ struct usb_class_driver { char *name; char *(*devnode)(const struct device *dev, umode_t *mode); const struct file_operations *fops; int minor_base; }; /* * use these in module_init()/module_exit() * and don't forget MODULE_DEVICE_TABLE(usb, ...) */ extern int usb_register_driver(struct usb_driver *, struct module *, const char *); /* use a define to avoid include chaining to get THIS_MODULE & friends */ #define usb_register(driver) \ usb_register_driver(driver, THIS_MODULE, KBUILD_MODNAME) extern void usb_deregister(struct usb_driver *); /** * module_usb_driver() - Helper macro for registering a USB driver * @__usb_driver: usb_driver struct * * Helper macro for USB drivers which do not do anything special in module * init/exit. This eliminates a lot of boilerplate. Each module may only * use this macro once, and calling it replaces module_init() and module_exit() */ #define module_usb_driver(__usb_driver) \ module_driver(__usb_driver, usb_register, \ usb_deregister) extern int usb_register_device_driver(struct usb_device_driver *, struct module *); extern void usb_deregister_device_driver(struct usb_device_driver *); extern int usb_register_dev(struct usb_interface *intf, struct usb_class_driver *class_driver); extern void usb_deregister_dev(struct usb_interface *intf, struct usb_class_driver *class_driver); extern int usb_disabled(void); /* ----------------------------------------------------------------------- */ /* * URB support, for asynchronous request completions */ /* * urb->transfer_flags: * * Note: URB_DIR_IN/OUT is automatically set in usb_submit_urb(). */ #define URB_SHORT_NOT_OK 0x0001 /* report short reads as errors */ #define URB_ISO_ASAP 0x0002 /* iso-only; use the first unexpired * slot in the schedule */ #define URB_NO_TRANSFER_DMA_MAP 0x0004 /* urb->transfer_dma valid on submit */ #define URB_ZERO_PACKET 0x0040 /* Finish bulk OUT with short packet */ #define URB_NO_INTERRUPT 0x0080 /* HINT: no non-error interrupt * needed */ #define URB_FREE_BUFFER 0x0100 /* Free transfer buffer with the URB */ /* The following flags are used internally by usbcore and HCDs */ #define URB_DIR_IN 0x0200 /* Transfer from device to host */ #define URB_DIR_OUT 0 #define URB_DIR_MASK URB_DIR_IN #define URB_DMA_MAP_SINGLE 0x00010000 /* Non-scatter-gather mapping */ #define URB_DMA_MAP_PAGE 0x00020000 /* HCD-unsupported S-G */ #define URB_DMA_MAP_SG 0x00040000 /* HCD-supported S-G */ #define URB_MAP_LOCAL 0x00080000 /* HCD-local-memory mapping */ #define URB_SETUP_MAP_SINGLE 0x00100000 /* Setup packet DMA mapped */ #define URB_SETUP_MAP_LOCAL 0x00200000 /* HCD-local setup packet */ #define URB_DMA_SG_COMBINED 0x00400000 /* S-G entries were combined */ #define URB_ALIGNED_TEMP_BUFFER 0x00800000 /* Temp buffer was alloc'd */ struct usb_iso_packet_descriptor { unsigned int offset; unsigned int length; /* expected length */ unsigned int actual_length; int status; }; struct urb; struct usb_anchor { struct list_head urb_list; wait_queue_head_t wait; spinlock_t lock; atomic_t suspend_wakeups; unsigned int poisoned:1; }; static inline void init_usb_anchor(struct usb_anchor *anchor) { memset(anchor, 0, sizeof(*anchor)); INIT_LIST_HEAD(&anchor->urb_list); init_waitqueue_head(&anchor->wait); spin_lock_init(&anchor->lock); } typedef void (*usb_complete_t)(struct urb *); /** * struct urb - USB Request Block * @urb_list: For use by current owner of the URB. * @anchor_list: membership in the list of an anchor * @anchor: to anchor URBs to a common mooring * @ep: Points to the endpoint's data structure. Will eventually * replace @pipe. * @pipe: Holds endpoint number, direction, type, and more. * Create these values with the eight macros available; * usb_{snd,rcv}TYPEpipe(dev,endpoint), where the TYPE is "ctrl" * (control), "bulk", "int" (interrupt), or "iso" (isochronous). * For example usb_sndbulkpipe() or usb_rcvintpipe(). Endpoint * numbers range from zero to fifteen. Note that "in" endpoint two * is a different endpoint (and pipe) from "out" endpoint two. * The current configuration controls the existence, type, and * maximum packet size of any given endpoint. * @stream_id: the endpoint's stream ID for bulk streams * @dev: Identifies the USB device to perform the request. * @status: This is read in non-iso completion functions to get the * status of the particular request. ISO requests only use it * to tell whether the URB was unlinked; detailed status for * each frame is in the fields of the iso_frame-desc. * @transfer_flags: A variety of flags may be used to affect how URB * submission, unlinking, or operation are handled. Different * kinds of URB can use different flags. * @transfer_buffer: This identifies the buffer to (or from) which the I/O * request will be performed unless URB_NO_TRANSFER_DMA_MAP is set * (however, do not leave garbage in transfer_buffer even then). * This buffer must be suitable for DMA; allocate it with * kmalloc() or equivalent. For transfers to "in" endpoints, contents * of this buffer will be modified. This buffer is used for the data * stage of control transfers. * @transfer_dma: When transfer_flags includes URB_NO_TRANSFER_DMA_MAP, * the device driver is saying that it provided this DMA address, * which the host controller driver should use in preference to the * transfer_buffer. * @sg: scatter gather buffer list, the buffer size of each element in * the list (except the last) must be divisible by the endpoint's * max packet size if no_sg_constraint isn't set in 'struct usb_bus' * @num_mapped_sgs: (internal) number of mapped sg entries * @num_sgs: number of entries in the sg list * @transfer_buffer_length: How big is transfer_buffer. The transfer may * be broken up into chunks according to the current maximum packet * size for the endpoint, which is a function of the configuration * and is encoded in the pipe. When the length is zero, neither * transfer_buffer nor transfer_dma is used. * @actual_length: This is read in non-iso completion functions, and * it tells how many bytes (out of transfer_buffer_length) were * transferred. It will normally be the same as requested, unless * either an error was reported or a short read was performed. * The URB_SHORT_NOT_OK transfer flag may be used to make such * short reads be reported as errors. * @setup_packet: Only used for control transfers, this points to eight bytes * of setup data. Control transfers always start by sending this data * to the device. Then transfer_buffer is read or written, if needed. * @setup_dma: DMA pointer for the setup packet. The caller must not use * this field; setup_packet must point to a valid buffer. * @start_frame: Returns the initial frame for isochronous transfers. * @number_of_packets: Lists the number of ISO transfer buffers. * @interval: Specifies the polling interval for interrupt or isochronous * transfers. The units are frames (milliseconds) for full and low * speed devices, and microframes (1/8 millisecond) for highspeed * and SuperSpeed devices. * @error_count: Returns the number of ISO transfers that reported errors. * @context: For use in completion functions. This normally points to * request-specific driver context. * @complete: Completion handler. This URB is passed as the parameter to the * completion function. The completion function may then do what * it likes with the URB, including resubmitting or freeing it. * @iso_frame_desc: Used to provide arrays of ISO transfer buffers and to * collect the transfer status for each buffer. * * This structure identifies USB transfer requests. URBs must be allocated by * calling usb_alloc_urb() and freed with a call to usb_free_urb(). * Initialization may be done using various usb_fill_*_urb() functions. URBs * are submitted using usb_submit_urb(), and pending requests may be canceled * using usb_unlink_urb() or usb_kill_urb(). * * Data Transfer Buffers: * * Normally drivers provide I/O buffers allocated with kmalloc() or otherwise * taken from the general page pool. That is provided by transfer_buffer * (control requests also use setup_packet), and host controller drivers * perform a dma mapping (and unmapping) for each buffer transferred. Those * mapping operations can be expensive on some platforms (perhaps using a dma * bounce buffer or talking to an IOMMU), * although they're cheap on commodity x86 and ppc hardware. * * Alternatively, drivers may pass the URB_NO_TRANSFER_DMA_MAP transfer flag, * which tells the host controller driver that no such mapping is needed for * the transfer_buffer since * the device driver is DMA-aware. For example, a device driver might * allocate a DMA buffer with usb_alloc_coherent() or call usb_buffer_map(). * When this transfer flag is provided, host controller drivers will * attempt to use the dma address found in the transfer_dma * field rather than determining a dma address themselves. * * Note that transfer_buffer must still be set if the controller * does not support DMA (as indicated by hcd_uses_dma()) and when talking * to root hub. If you have to transfer between highmem zone and the device * on such controller, create a bounce buffer or bail out with an error. * If transfer_buffer cannot be set (is in highmem) and the controller is DMA * capable, assign NULL to it, so that usbmon knows not to use the value. * The setup_packet must always be set, so it cannot be located in highmem. * * Initialization: * * All URBs submitted must initialize the dev, pipe, transfer_flags (may be * zero), and complete fields. All URBs must also initialize * transfer_buffer and transfer_buffer_length. They may provide the * URB_SHORT_NOT_OK transfer flag, indicating that short reads are * to be treated as errors; that flag is invalid for write requests. * * Bulk URBs may * use the URB_ZERO_PACKET transfer flag, indicating that bulk OUT transfers * should always terminate with a short packet, even if it means adding an * extra zero length packet. * * Control URBs must provide a valid pointer in the setup_packet field. * Unlike the transfer_buffer, the setup_packet may not be mapped for DMA * beforehand. * * Interrupt URBs must provide an interval, saying how often (in milliseconds * or, for highspeed devices, 125 microsecond units) * to poll for transfers. After the URB has been submitted, the interval * field reflects how the transfer was actually scheduled. * The polling interval may be more frequent than requested. * For example, some controllers have a maximum interval of 32 milliseconds, * while others support intervals of up to 1024 milliseconds. * Isochronous URBs also have transfer intervals. (Note that for isochronous * endpoints, as well as high speed interrupt endpoints, the encoding of * the transfer interval in the endpoint descriptor is logarithmic. * Device drivers must convert that value to linear units themselves.) * * If an isochronous endpoint queue isn't already running, the host * controller will schedule a new URB to start as soon as bandwidth * utilization allows. If the queue is running then a new URB will be * scheduled to start in the first transfer slot following the end of the * preceding URB, if that slot has not already expired. If the slot has * expired (which can happen when IRQ delivery is delayed for a long time), * the scheduling behavior depends on the URB_ISO_ASAP flag. If the flag * is clear then the URB will be scheduled to start in the expired slot, * implying that some of its packets will not be transferred; if the flag * is set then the URB will be scheduled in the first unexpired slot, * breaking the queue's synchronization. Upon URB completion, the * start_frame field will be set to the (micro)frame number in which the * transfer was scheduled. Ranges for frame counter values are HC-specific * and can go from as low as 256 to as high as 65536 frames. * * Isochronous URBs have a different data transfer model, in part because * the quality of service is only "best effort". Callers provide specially * allocated URBs, with number_of_packets worth of iso_frame_desc structures * at the end. Each such packet is an individual ISO transfer. Isochronous * URBs are normally queued, submitted by drivers to arrange that * transfers are at least double buffered, and then explicitly resubmitted * in completion handlers, so * that data (such as audio or video) streams at as constant a rate as the * host controller scheduler can support. * * Completion Callbacks: * * The completion callback is made in_interrupt(), and one of the first * things that a completion handler should do is check the status field. * The status field is provided for all URBs. It is used to report * unlinked URBs, and status for all non-ISO transfers. It should not * be examined before the URB is returned to the completion handler. * * The context field is normally used to link URBs back to the relevant * driver or request state. * * When the completion callback is invoked for non-isochronous URBs, the * actual_length field tells how many bytes were transferred. This field * is updated even when the URB terminated with an error or was unlinked. * * ISO transfer status is reported in the status and actual_length fields * of the iso_frame_desc array, and the number of errors is reported in * error_count. Completion callbacks for ISO transfers will normally * (re)submit URBs to ensure a constant transfer rate. * * Note that even fields marked "public" should not be touched by the driver * when the urb is owned by the hcd, that is, since the call to * usb_submit_urb() till the entry into the completion routine. */ struct urb { /* private: usb core and host controller only fields in the urb */ struct kref kref; /* reference count of the URB */ int unlinked; /* unlink error code */ void *hcpriv; /* private data for host controller */ atomic_t use_count; /* concurrent submissions counter */ atomic_t reject; /* submissions will fail */ /* public: documented fields in the urb that can be used by drivers */ struct list_head urb_list; /* list head for use by the urb's * current owner */ struct list_head anchor_list; /* the URB may be anchored */ struct usb_anchor *anchor; struct usb_device *dev; /* (in) pointer to associated device */ struct usb_host_endpoint *ep; /* (internal) pointer to endpoint */ unsigned int pipe; /* (in) pipe information */ unsigned int stream_id; /* (in) stream ID */ int status; /* (return) non-ISO status */ unsigned int transfer_flags; /* (in) URB_SHORT_NOT_OK | ...*/ void *transfer_buffer; /* (in) associated data buffer */ dma_addr_t transfer_dma; /* (in) dma addr for transfer_buffer */ struct scatterlist *sg; /* (in) scatter gather buffer list */ int num_mapped_sgs; /* (internal) mapped sg entries */ int num_sgs; /* (in) number of entries in the sg list */ u32 transfer_buffer_length; /* (in) data buffer length */ u32 actual_length; /* (return) actual transfer length */ unsigned char *setup_packet; /* (in) setup packet (control only) */ dma_addr_t setup_dma; /* (in) dma addr for setup_packet */ int start_frame; /* (modify) start frame (ISO) */ int number_of_packets; /* (in) number of ISO packets */ int interval; /* (modify) transfer interval * (INT/ISO) */ int error_count; /* (return) number of ISO errors */ void *context; /* (in) context for completion */ usb_complete_t complete; /* (in) completion routine */ struct usb_iso_packet_descriptor iso_frame_desc[]; /* (in) ISO ONLY */ }; /* ----------------------------------------------------------------------- */ /** * usb_fill_control_urb - initializes a control urb * @urb: pointer to the urb to initialize. * @dev: pointer to the struct usb_device for this urb. * @pipe: the endpoint pipe * @setup_packet: pointer to the setup_packet buffer. The buffer must be * suitable for DMA. * @transfer_buffer: pointer to the transfer buffer. The buffer must be * suitable for DMA. * @buffer_length: length of the transfer buffer * @complete_fn: pointer to the usb_complete_t function * @context: what to set the urb context to. * * Initializes a control urb with the proper information needed to submit * it to a device. * * The transfer buffer and the setup_packet buffer will most likely be filled * or read via DMA. The simplest way to get a buffer that can be DMAed to is * allocating it via kmalloc() or equivalent, even for very small buffers. * If the buffers are embedded in a bigger structure, there is a risk that * the buffer itself, the previous fields and/or the next fields are corrupted * due to cache incoherencies; or slowed down if they are evicted from the * cache. For more information, check &struct urb. * */ static inline void usb_fill_control_urb(struct urb *urb, struct usb_device *dev, unsigned int pipe, unsigned char *setup_packet, void *transfer_buffer, int buffer_length, usb_complete_t complete_fn, void *context) { urb->dev = dev; urb->pipe = pipe; urb->setup_packet = setup_packet; urb->transfer_buffer = transfer_buffer; urb->transfer_buffer_length = buffer_length; urb->complete = complete_fn; urb->context = context; } /** * usb_fill_bulk_urb - macro to help initialize a bulk urb * @urb: pointer to the urb to initialize. * @dev: pointer to the struct usb_device for this urb. * @pipe: the endpoint pipe * @transfer_buffer: pointer to the transfer buffer. The buffer must be * suitable for DMA. * @buffer_length: length of the transfer buffer * @complete_fn: pointer to the usb_complete_t function * @context: what to set the urb context to. * * Initializes a bulk urb with the proper information needed to submit it * to a device. * * Refer to usb_fill_control_urb() for a description of the requirements for * transfer_buffer. */ static inline void usb_fill_bulk_urb(struct urb *urb, struct usb_device *dev, unsigned int pipe, void *transfer_buffer, int buffer_length, usb_complete_t complete_fn, void *context) { urb->dev = dev; urb->pipe = pipe; urb->transfer_buffer = transfer_buffer; urb->transfer_buffer_length = buffer_length; urb->complete = complete_fn; urb->context = context; } /** * usb_fill_int_urb - macro to help initialize a interrupt urb * @urb: pointer to the urb to initialize. * @dev: pointer to the struct usb_device for this urb. * @pipe: the endpoint pipe * @transfer_buffer: pointer to the transfer buffer. The buffer must be * suitable for DMA. * @buffer_length: length of the transfer buffer * @complete_fn: pointer to the usb_complete_t function * @context: what to set the urb context to. * @interval: what to set the urb interval to, encoded like * the endpoint descriptor's bInterval value. * * Initializes a interrupt urb with the proper information needed to submit * it to a device. * * Refer to usb_fill_control_urb() for a description of the requirements for * transfer_buffer. * * Note that High Speed and SuperSpeed(+) interrupt endpoints use a logarithmic * encoding of the endpoint interval, and express polling intervals in * microframes (eight per millisecond) rather than in frames (one per * millisecond). * * Wireless USB also uses the logarithmic encoding, but specifies it in units of * 128us instead of 125us. For Wireless USB devices, the interval is passed * through to the host controller, rather than being translated into microframe * units. */ static inline void usb_fill_int_urb(struct urb *urb, struct usb_device *dev, unsigned int pipe, void *transfer_buffer, int buffer_length, usb_complete_t complete_fn, void *context, int interval) { urb->dev = dev; urb->pipe = pipe; urb->transfer_buffer = transfer_buffer; urb->transfer_buffer_length = buffer_length; urb->complete = complete_fn; urb->context = context; if (dev->speed == USB_SPEED_HIGH || dev->speed >= USB_SPEED_SUPER) { /* make sure interval is within allowed range */ interval = clamp(interval, 1, 16); urb->interval = 1 << (interval - 1); } else { urb->interval = interval; } urb->start_frame = -1; } extern void usb_init_urb(struct urb *urb); extern struct urb *usb_alloc_urb(int iso_packets, gfp_t mem_flags); extern void usb_free_urb(struct urb *urb); #define usb_put_urb usb_free_urb extern struct urb *usb_get_urb(struct urb *urb); extern int usb_submit_urb(struct urb *urb, gfp_t mem_flags); extern int usb_unlink_urb(struct urb *urb); extern void usb_kill_urb(struct urb *urb); extern void usb_poison_urb(struct urb *urb); extern void usb_unpoison_urb(struct urb *urb); extern void usb_block_urb(struct urb *urb); extern void usb_kill_anchored_urbs(struct usb_anchor *anchor); extern void usb_poison_anchored_urbs(struct usb_anchor *anchor); extern void usb_unpoison_anchored_urbs(struct usb_anchor *anchor); extern void usb_unlink_anchored_urbs(struct usb_anchor *anchor); extern void usb_anchor_suspend_wakeups(struct usb_anchor *anchor); extern void usb_anchor_resume_wakeups(struct usb_anchor *anchor); extern void usb_anchor_urb(struct urb *urb, struct usb_anchor *anchor); extern void usb_unanchor_urb(struct urb *urb); extern int usb_wait_anchor_empty_timeout(struct usb_anchor *anchor, unsigned int timeout); extern struct urb *usb_get_from_anchor(struct usb_anchor *anchor); extern void usb_scuttle_anchored_urbs(struct usb_anchor *anchor); extern int usb_anchor_empty(struct usb_anchor *anchor); #define usb_unblock_urb usb_unpoison_urb /** * usb_urb_dir_in - check if an URB describes an IN transfer * @urb: URB to be checked * * Return: 1 if @urb describes an IN transfer (device-to-host), * otherwise 0. */ static inline int usb_urb_dir_in(struct urb *urb) { return (urb->transfer_flags & URB_DIR_MASK) == URB_DIR_IN; } /** * usb_urb_dir_out - check if an URB describes an OUT transfer * @urb: URB to be checked * * Return: 1 if @urb describes an OUT transfer (host-to-device), * otherwise 0. */ static inline int usb_urb_dir_out(struct urb *urb) { return (urb->transfer_flags & URB_DIR_MASK) == URB_DIR_OUT; } int usb_pipe_type_check(struct usb_device *dev, unsigned int pipe); int usb_urb_ep_type_check(const struct urb *urb); void *usb_alloc_coherent(struct usb_device *dev, size_t size, gfp_t mem_flags, dma_addr_t *dma); void usb_free_coherent(struct usb_device *dev, size_t size, void *addr, dma_addr_t dma); #if 0 struct urb *usb_buffer_map(struct urb *urb); void usb_buffer_dmasync(struct urb *urb); void usb_buffer_unmap(struct urb *urb); #endif struct scatterlist; int usb_buffer_map_sg(const struct usb_device *dev, int is_in, struct scatterlist *sg, int nents); #if 0 void usb_buffer_dmasync_sg(const struct usb_device *dev, int is_in, struct scatterlist *sg, int n_hw_ents); #endif void usb_buffer_unmap_sg(const struct usb_device *dev, int is_in, struct scatterlist *sg, int n_hw_ents); /*-------------------------------------------------------------------* * SYNCHRONOUS CALL SUPPORT * *-------------------------------------------------------------------*/ extern int usb_control_msg(struct usb_device *dev, unsigned int pipe, __u8 request, __u8 requesttype, __u16 value, __u16 index, void *data, __u16 size, int timeout); extern int usb_interrupt_msg(struct usb_device *usb_dev, unsigned int pipe, void *data, int len, int *actual_length, int timeout); extern int usb_bulk_msg(struct usb_device *usb_dev, unsigned int pipe, void *data, int len, int *actual_length, int timeout); /* wrappers around usb_control_msg() for the most common standard requests */ int usb_control_msg_send(struct usb_device *dev, __u8 endpoint, __u8 request, __u8 requesttype, __u16 value, __u16 index, const void *data, __u16 size, int timeout, gfp_t memflags); int usb_control_msg_recv(struct usb_device *dev, __u8 endpoint, __u8 request, __u8 requesttype, __u16 value, __u16 index, void *data, __u16 size, int timeout, gfp_t memflags); extern int usb_get_descriptor(struct usb_device *dev, unsigned char desctype, unsigned char descindex, void *buf, int size); extern int usb_get_status(struct usb_device *dev, int recip, int type, int target, void *data); static inline int usb_get_std_status(struct usb_device *dev, int recip, int target, void *data) { return usb_get_status(dev, recip, USB_STATUS_TYPE_STANDARD, target, data); } static inline int usb_get_ptm_status(struct usb_device *dev, void *data) { return usb_get_status(dev, USB_RECIP_DEVICE, USB_STATUS_TYPE_PTM, 0, data); } extern int usb_string(struct usb_device *dev, int index, char *buf, size_t size); extern char *usb_cache_string(struct usb_device *udev, int index); /* wrappers that also update important state inside usbcore */ extern int usb_clear_halt(struct usb_device *dev, int pipe); extern int usb_reset_configuration(struct usb_device *dev); extern int usb_set_interface(struct usb_device *dev, int ifnum, int alternate); extern void usb_reset_endpoint(struct usb_device *dev, unsigned int epaddr); /* this request isn't really synchronous, but it belongs with the others */ extern int usb_driver_set_configuration(struct usb_device *udev, int config); /* choose and set configuration for device */ extern int usb_choose_configuration(struct usb_device *udev); extern int usb_set_configuration(struct usb_device *dev, int configuration); /* * timeouts, in milliseconds, used for sending/receiving control messages * they typically complete within a few frames (msec) after they're issued * USB identifies 5 second timeouts, maybe more in a few cases, and a few * slow devices (like some MGE Ellipse UPSes) actually push that limit. */ #define USB_CTRL_GET_TIMEOUT 5000 #define USB_CTRL_SET_TIMEOUT 5000 /** * struct usb_sg_request - support for scatter/gather I/O * @status: zero indicates success, else negative errno * @bytes: counts bytes transferred. * * These requests are initialized using usb_sg_init(), and then are used * as request handles passed to usb_sg_wait() or usb_sg_cancel(). Most * members of the request object aren't for driver access. * * The status and bytecount values are valid only after usb_sg_wait() * returns. If the status is zero, then the bytecount matches the total * from the request. * * After an error completion, drivers may need to clear a halt condition * on the endpoint. */ struct usb_sg_request { int status; size_t bytes; /* private: * members below are private to usbcore, * and are not provided for driver access! */ spinlock_t lock; struct usb_device *dev; int pipe; int entries; struct urb **urbs; int count; struct completion complete; }; int usb_sg_init( struct usb_sg_request *io, struct usb_device *dev, unsigned pipe, unsigned period, struct scatterlist *sg, int nents, size_t length, gfp_t mem_flags ); void usb_sg_cancel(struct usb_sg_request *io); void usb_sg_wait(struct usb_sg_request *io); /* ----------------------------------------------------------------------- */ /* * For various legacy reasons, Linux has a small cookie that's paired with * a struct usb_device to identify an endpoint queue. Queue characteristics * are defined by the endpoint's descriptor. This cookie is called a "pipe", * an unsigned int encoded as: * * - direction: bit 7 (0 = Host-to-Device [Out], * 1 = Device-to-Host [In] ... * like endpoint bEndpointAddress) * - device address: bits 8-14 ... bit positions known to uhci-hcd * - endpoint: bits 15-18 ... bit positions known to uhci-hcd * - pipe type: bits 30-31 (00 = isochronous, 01 = interrupt, * 10 = control, 11 = bulk) * * Given the device address and endpoint descriptor, pipes are redundant. */ /* NOTE: these are not the standard USB_ENDPOINT_XFER_* values!! */ /* (yet ... they're the values used by usbfs) */ #define PIPE_ISOCHRONOUS 0 #define PIPE_INTERRUPT 1 #define PIPE_CONTROL 2 #define PIPE_BULK 3 #define usb_pipein(pipe) ((pipe) & USB_DIR_IN) #define usb_pipeout(pipe) (!usb_pipein(pipe)) #define usb_pipedevice(pipe) (((pipe) >> 8) & 0x7f) #define usb_pipeendpoint(pipe) (((pipe) >> 15) & 0xf) #define usb_pipetype(pipe) (((pipe) >> 30) & 3) #define usb_pipeisoc(pipe) (usb_pipetype((pipe)) == PIPE_ISOCHRONOUS) #define usb_pipeint(pipe) (usb_pipetype((pipe)) == PIPE_INTERRUPT) #define usb_pipecontrol(pipe) (usb_pipetype((pipe)) == PIPE_CONTROL) #define usb_pipebulk(pipe) (usb_pipetype((pipe)) == PIPE_BULK) static inline unsigned int __create_pipe(struct usb_device *dev, unsigned int endpoint) { return (dev->devnum << 8) | (endpoint << 15); } /* Create various pipes... */ #define usb_sndctrlpipe(dev, endpoint) \ ((PIPE_CONTROL << 30) | __create_pipe(dev, endpoint)) #define usb_rcvctrlpipe(dev, endpoint) \ ((PIPE_CONTROL << 30) | __create_pipe(dev, endpoint) | USB_DIR_IN) #define usb_sndisocpipe(dev, endpoint) \ ((PIPE_ISOCHRONOUS << 30) | __create_pipe(dev, endpoint)) #define usb_rcvisocpipe(dev, endpoint) \ ((PIPE_ISOCHRONOUS << 30) | __create_pipe(dev, endpoint) | USB_DIR_IN) #define usb_sndbulkpipe(dev, endpoint) \ ((PIPE_BULK << 30) | __create_pipe(dev, endpoint)) #define usb_rcvbulkpipe(dev, endpoint) \ ((PIPE_BULK << 30) | __create_pipe(dev, endpoint) | USB_DIR_IN) #define usb_sndintpipe(dev, endpoint) \ ((PIPE_INTERRUPT << 30) | __create_pipe(dev, endpoint)) #define usb_rcvintpipe(dev, endpoint) \ ((PIPE_INTERRUPT << 30) | __create_pipe(dev, endpoint) | USB_DIR_IN) static inline struct usb_host_endpoint * usb_pipe_endpoint(struct usb_device *dev, unsigned int pipe) { struct usb_host_endpoint **eps; eps = usb_pipein(pipe) ? dev->ep_in : dev->ep_out; return eps[usb_pipeendpoint(pipe)]; } static inline u16 usb_maxpacket(struct usb_device *udev, int pipe) { struct usb_host_endpoint *ep; unsigned epnum = usb_pipeendpoint(pipe); if (usb_pipeout(pipe)) ep = udev->ep_out[epnum]; else ep = udev->ep_in[epnum]; if (!ep) return 0; /* NOTE: only 0x07ff bits are for packet size... */ return usb_endpoint_maxp(&ep->desc); } /* translate USB error codes to codes user space understands */ static inline int usb_translate_errors(int error_code) { switch (error_code) { case 0: case -ENOMEM: case -ENODEV: case -EOPNOTSUPP: return error_code; default: return -EIO; } } /* Events from the usb core */ #define USB_DEVICE_ADD 0x0001 #define USB_DEVICE_REMOVE 0x0002 #define USB_BUS_ADD 0x0003 #define USB_BUS_REMOVE 0x0004 extern void usb_register_notify(struct notifier_block *nb); extern void usb_unregister_notify(struct notifier_block *nb); /* debugfs stuff */ extern struct dentry *usb_debug_root; /* LED triggers */ enum usb_led_event { USB_LED_EVENT_HOST = 0, USB_LED_EVENT_GADGET = 1, }; #ifdef CONFIG_USB_LED_TRIG extern void usb_led_activity(enum usb_led_event ev); #else static inline void usb_led_activity(enum usb_led_event ev) {} #endif #endif /* __KERNEL__ */ #endif