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amba
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drwxr-xr-x
2021-04-21 07:33
bcma
[ DIR ]
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byteorder
[ DIR ]
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can
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clk
[ DIR ]
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decompress
[ DIR ]
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dma
[ DIR ]
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fpga
[ DIR ]
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fsl
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gpio
[ DIR ]
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hsi
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i2c
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iio
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input
[ DIR ]
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irqchip
[ DIR ]
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isdn
[ DIR ]
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lockd
[ DIR ]
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mfd
[ DIR ]
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mlx4
[ DIR ]
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mlx5
[ DIR ]
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mmc
[ DIR ]
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mtd
[ DIR ]
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netfilter
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netfilter_arp
[ DIR ]
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netfilter_bridge
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netfilter_ipv4
[ DIR ]
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netfilter_ipv6
[ DIR ]
drwxr-xr-x
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perf
[ DIR ]
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phy
[ DIR ]
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pinctrl
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platform_data
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power
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qed
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raid
[ DIR ]
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regulator
[ DIR ]
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reset
[ DIR ]
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rtc
[ DIR ]
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sched
[ DIR ]
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soc
[ DIR ]
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spi
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ssb
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sunrpc
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ulpi
[ DIR ]
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unaligned
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usb
[ DIR ]
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uwb
[ DIR ]
drwxr-xr-x
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wimax
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drwxr-xr-x
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8250_pci.h
999
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2016-01-11 00:01
a.out.h
315
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acct.h
2.51
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acpi.h
28.55
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2021-04-16 11:57
acpi_dma.h
3.22
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2016-01-11 00:01
acpi_pmtmr.h
635
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2016-01-11 00:01
adb.h
1.75
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adfs_fs.h
535
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aer.h
1.66
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agp_backend.h
3.45
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agpgart.h
3.82
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ahci_platform.h
1.49
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aio.h
879
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alarmtimer.h
1.64
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altera_jtaguart.h
340
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altera_uart.h
358
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amd-iommu.h
5.93
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amifd.h
1.95
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amifdreg.h
2.61
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amigaffs.h
2.86
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anon_inodes.h
455
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apm-emulation.h
1.54
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apm_bios.h
2.68
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apple_bl.h
459
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arm-cci.h
2.01
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arm-smccc.h
9.44
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2021-04-16 11:57
asn1.h
1.99
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2016-01-11 00:01
asn1_ber_bytecode.h
2.72
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asn1_decoder.h
675
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assoc_array.h
3.07
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assoc_array_priv.h
5.49
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2016-01-11 00:01
async.h
1.65
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2016-01-11 00:01
async_tx.h
6.76
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2016-01-11 00:01
ata.h
29.47
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2021-04-16 11:57
ata_platform.h
690
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2016-01-11 00:01
atalk.h
4.32
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2021-04-16 11:57
ath9k_platform.h
1.36
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2016-01-11 00:01
atm.h
248
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2016-01-11 00:01
atm_suni.h
253
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2016-01-11 00:01
atm_tcp.h
472
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2016-01-11 00:01
atmdev.h
9.52
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2016-01-11 00:01
atmel-mci.h
1.31
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2016-01-11 00:01
atmel-ssc.h
9.68
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2016-01-11 00:01
atmel_pdc.h
1.47
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2016-01-11 00:01
atmel_serial.h
7.66
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2016-01-11 00:01
atmel_tc.h
11.33
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2016-01-11 00:01
atomic.h
14.97
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2021-04-16 11:57
attribute_container.h
2.47
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2016-01-11 00:01
audit.h
17.56
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2021-04-16 11:57
auto_dev-ioctl.h
5.06
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2016-01-11 00:01
auto_fs.h
657
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2016-01-11 00:01
auxvec.h
265
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average.h
1.48
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2016-01-11 00:01
b1pcmcia.h
666
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backing-dev-defs.h
7.81
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2021-04-16 11:57
backing-dev.h
14.39
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backlight.h
5.14
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2016-01-11 00:01
balloon_compaction.h
6.91
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2016-01-11 00:01
basic_mmio_gpio.h
2.23
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bcd.h
520
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2016-01-11 00:01
bch.h
2.6
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2016-01-11 00:01
bcm47xx_nvram.h
1.19
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bcm47xx_wdt.h
617
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bfin_mac.h
559
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binfmts.h
3.96
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2016-01-11 00:01
bio.h
21.38
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bit_spinlock.h
2.27
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2016-01-11 00:01
bitmap.h
13.04
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2021-04-16 11:57
bitops.h
5.46
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bitrev.h
2
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bits.h
833
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blk-cgroup.h
21.95
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2016-01-11 00:01
blk-iopoll.h
1.13
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2016-01-11 00:01
blk-mq.h
7.56
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2021-04-16 11:57
blk_types.h
8.43
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2016-01-11 00:01
blkdev.h
50.19
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2021-04-16 11:57
blkpg.h
397
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2016-01-11 00:01
blktrace_api.h
3.4
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2021-04-16 11:57
blockgroup_lock.h
1.14
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2016-01-11 00:01
bma150.h
1.89
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2016-01-11 00:01
bootmem.h
10.61
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bottom_half.h
764
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bpf.h
7.13
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2021-04-16 11:57
brcmphy.h
8.66
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2016-01-11 00:01
bsearch.h
236
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bsg-lib.h
1.98
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bsg.h
734
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btree-128.h
2.63
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2016-01-11 00:01
btree-type.h
3.86
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2016-01-11 00:01
btree.h
6.8
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btrfs.h
106
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buffer_head.h
12.73
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2021-04-16 11:57
bug.h
3.63
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2021-04-16 11:57
c2port.h
1.59
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2016-01-11 00:01
cache.h
2.09
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2021-04-16 11:57
cacheinfo.h
3.04
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capability.h
7.68
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cb710.h
5.69
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2016-01-11 00:01
cciss_ioctl.h
1014
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2016-01-11 00:01
ccp.h
15.37
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2016-01-11 00:01
cdev.h
787
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cdrom.h
8.66
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cfag12864b.h
2.1
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2016-01-11 00:01
cgroup-defs.h
16.01
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2021-04-16 11:57
cgroup.h
20.73
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2021-04-16 11:57
cgroup_subsys.h
1.39
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2016-01-11 00:01
circ_buf.h
1.05
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2016-01-11 00:01
cleancache.h
3.86
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2016-01-11 00:01
clk-provider.h
27.54
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2021-04-16 11:57
clk.h
13.74
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2016-01-11 00:01
clkdev.h
1.32
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2016-01-11 00:01
clksrc-dbx500-prcmu.h
455
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2016-01-11 00:01
clock_cooling.h
2.06
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2016-01-11 00:01
clockchips.h
7.3
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2016-01-11 00:01
clocksource.h
7.59
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2016-01-11 00:01
cm4000_cs.h
160
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2016-01-11 00:01
cma.h
920
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2016-01-11 00:01
cmdline-parser.h
1.17
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cn_proc.h
1.85
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2016-01-11 00:01
cnt32_to_63.h
3.6
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2016-01-11 00:01
coda.h
2.16
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2021-04-16 11:57
coda_psdev.h
2.97
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2021-04-16 11:57
compaction.h
5.74
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2021-04-16 11:57
compat.h
25.59
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compiler-clang.h
525
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compiler-gcc.h
11.09
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compiler-intel.h
1.13
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2016-01-11 00:01
compiler.h
16.7
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2021-04-16 11:57
completion.h
3.47
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2016-01-11 00:01
component.h
1.14
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2016-01-11 00:01
concap.h
3.69
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2016-01-11 00:01
configfs.h
6.88
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2016-01-11 00:01
connector.h
2.43
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2016-01-11 00:01
console.h
6.08
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console_struct.h
5.13
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2016-01-11 00:01
consolemap.h
1
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container.h
668
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2016-01-11 00:01
context_tracking.h
3.15
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2016-01-11 00:01
context_tracking_state.h
1.34
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2016-01-11 00:01
cordic.h
1.75
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2016-01-11 00:01
coredump.h
744
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coresight.h
8.7
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2016-01-11 00:01
count_zeros.h
1.62
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2016-01-11 00:01
cper.h
12.57
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2016-01-11 00:01
cpu.h
10.25
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cpu_cooling.h
3.88
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2016-01-11 00:01
cpu_pm.h
2.78
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cpu_rmap.h
1.86
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cpufeature.h
1.85
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cpufreq-dt.h
569
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cpufreq.h
19.01
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cpuidle.h
8.07
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cpumask.h
24.06
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cpuset.h
6.11
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cputime.h
334
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crash_dump.h
2.82
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crc-ccitt.h
330
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crc-itu-t.h
613
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crc-t10dif.h
376
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crc16.h
622
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crc32.h
2.83
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crc32c.h
254
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crc7.h
277
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crc8.h
3.65
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cred.h
12.26
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crypto.h
62.6
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cryptohash.h
448
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2016-01-11 00:01
cs5535.h
6.28
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ctype.h
1.69
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cuda.h
462
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2016-01-11 00:01
cyclades.h
10.26
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2016-01-11 00:01
davinci_emac.h
1.12
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2016-01-11 00:01
dax.h
1.45
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2016-01-11 00:01
dca.h
2.62
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dcache.h
18.9
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dccp.h
10.69
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dcookies.h
1.25
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2016-01-11 00:01
debug_locks.h
1.48
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debugfs.h
9.86
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debugobjects.h
3.65
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2016-01-11 00:01
delay.h
1.39
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2016-01-11 00:01
delayacct.h
4
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2016-01-11 00:01
dell-led.h
133
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2016-01-11 00:01
devcoredump.h
986
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2016-01-11 00:01
devfreq-event.h
5.64
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devfreq.h
10.5
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2016-01-11 00:01
devfreq_cooling.h
2.56
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2021-04-16 11:57
device-mapper.h
16.3
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2021-04-16 11:57
device.h
47.02
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device_cgroup.h
597
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devpts_fs.h
1.1
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digsig.h
1.35
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dim.h
8.98
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dio.h
10.93
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dirent.h
177
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dlm.h
6.01
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dlm_plock.h
678
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dm-dirty-log.h
3.94
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1.91
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2.85
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3.11
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dm9000.h
1.11
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dma-attrs.h
1.87
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dma-buf.h
8.85
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dma-contiguous.h
4.45
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dma-debug.h
5.09
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dma-direction.h
299
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dma-iommu.h
2.73
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dma-mapping.h
9.4
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dma_remapping.h
1.38
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dmaengine.h
40.34
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dmapool.h
1.09
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2016-01-11 00:01
dmar.h
7.82
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dmi.h
4.01
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dnotify.h
1008
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dns_resolver.h
1.31
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dqblk_qtree.h
2.06
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dqblk_v1.h
288
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dqblk_v2.h
367
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drbd.h
10.26
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drbd_genl.h
15.8
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drbd_genl_api.h
1.73
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drbd_limits.h
7.09
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ds1286.h
1.19
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ds17287rtc.h
2.61
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ds2782_battery.h
119
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dtlk.h
3.46
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2016-01-11 00:01
dw_apb_timer.h
1.71
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dynamic_debug.h
3.91
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dynamic_queue_limits.h
3.66
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earlycpio.h
320
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ecryptfs.h
3.79
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edac.h
24.46
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edd.h
1.43
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edma.h
807
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eeprom_93cx6.h
2.94
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eeprom_93xx46.h
422
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efi-bgrt.h
427
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efi.h
37.01
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efs_vh.h
1.51
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eisa.h
2.92
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2016-01-11 00:01
elevator.h
6.94
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elf-fdpic.h
2.18
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2016-01-11 00:01
elf-randomize.h
544
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2016-01-11 00:01
elf.h
1.44
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elfcore-compat.h
1.2
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elfcore.h
2.42
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elfnote.h
3.5
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enclosure.h
4.6
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err.h
1.48
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errno.h
1.24
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errqueue.h
450
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etherdevice.h
13.77
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ethtool.h
15.11
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eventfd.h
2.05
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eventpoll.h
2.01
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evm.h
2.48
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export.h
2.73
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exportfs.h
7.78
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ext2_fs.h
928
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extcon.h
11.03
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f2fs_fs.h
16.54
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f75375s.h
541
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falloc.h
719
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fanotify.h
206
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fault-inject.h
1.84
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fb.h
28.61
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2021-04-16 11:57
fcdevice.h
988
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fcntl.h
1.23
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fd.h
451
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fddidevice.h
1.08
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fdtable.h
3.2
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fec.h
609
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2016-01-11 00:01
fence.h
12.72
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file.h
1.79
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filter.h
16.17
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fips.h
128
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firewire.h
13.36
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firmware-map.h
1.32
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firmware.h
2.01
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fixp-arith.h
4.41
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flat.h
1.58
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flex_array.h
2.43
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flex_proportions.h
2.78
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fmc-sdb.h
1.25
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fmc.h
8.34
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font.h
1.6
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freezer.h
8.65
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frontswap.h
2.69
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fs.h
101.49
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fs_enet_pd.h
3.38
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fs_pin.h
580
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fs_stack.h
772
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fs_struct.h
999
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fs_uart_pd.h
1.49
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fscache-cache.h
18.39
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fscache.h
27.87
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fsl-diu-fb.h
4.08
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fsl_devices.h
4.28
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fsl_hypervisor.h
2.76
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fsl_ifc.h
24.76
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fsldma.h
398
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fsnotify.h
7.68
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fsnotify_backend.h
16.77
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ftrace.h
29
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ftrace_irq.h
298
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2016-01-11 00:01
futex.h
2.35
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fwnode.h
630
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gameport.h
5.56
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gcd.h
154
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genalloc.h
4.84
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genetlink.h
1.35
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genhd.h
22.75
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genl_magic_func.h
11.91
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genl_magic_struct.h
7.47
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2021-04-16 11:57
getcpu.h
602
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2016-01-11 00:01
gfp.h
21.65
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glob.h
217
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goldfish.h
566
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gpio-fan.h
802
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2016-01-11 00:01
gpio-pxa.h
532
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gpio.h
5.15
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gpio_keys.h
1.66
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gpio_mouse.h
1.46
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hardirq.h
1.7
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hash.h
2.67
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hashtable.h
6.46
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hdlc.h
3.43
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hdlcdrv.h
6.28
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hdmi.h
9.27
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hid-debug.h
2.07
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hid-roccat.h
688
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2016-01-11 00:01
hid-sensor-hub.h
8.67
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hid-sensor-ids.h
6.66
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hid.h
34.79
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hiddev.h
1.88
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hidraw.h
1.49
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highmem.h
5.8
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highuid.h
3.08
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hil.h
18.42
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hil_mlc.h
5.13
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hippidevice.h
1.29
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2016-01-11 00:01
host1x.h
7.72
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hp_sdc.h
14.02
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hpet.h
2.52
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hrtimer.h
14.1
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2021-04-16 11:57
htcpld.h
578
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htirq.h
1.04
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huge_mm.h
6.97
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hugetlb.h
15.3
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hugetlb_cgroup.h
2.97
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hugetlb_inline.h
329
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hw_breakpoint.h
3.81
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hw_random.h
2.11
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hwmon-sysfs.h
1.98
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hwmon-vid.h
1.48
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hwmon.h
1.01
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hwspinlock.h
11.06
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2016-01-11 00:01
hyperv.h
42.12
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i2c-algo-bit.h
2.24
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i2c-algo-pca.h
2.85
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2021-04-16 11:57
i2c-algo-pcf.h
1.88
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i2c-dev.h
1.03
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2016-01-11 00:01
i2c-gpio.h
1.31
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2016-01-11 00:01
i2c-mux-gpio.h
1.35
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i2c-mux-pinctrl.h
1.44
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i2c-mux.h
1.64
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2016-01-11 00:01
i2c-ocores.h
757
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i2c-omap.h
1.17
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i2c-pca-platform.h
402
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i2c-pnx.h
923
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i2c-pxa.h
399
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i2c-smbus.h
1.72
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i2c-xiic.h
1.41
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i2c.h
24.57
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i7300_idle.h
1.91
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i8042.h
2.14
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i8253.h
809
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icmp.h
863
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2016-01-11 00:01
icmpv6.h
1.11
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ide.h
45.45
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idr.h
5.49
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2016-01-11 00:01
ieee80211.h
76.64
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2021-04-16 11:57
ieee802154.h
9.65
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2016-01-11 00:01
if_arp.h
1.52
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if_bridge.h
1.98
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if_eql.h
1.07
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if_ether.h
1.35
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if_fddi.h
3.44
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2016-01-11 00:01
if_frad.h
2.88
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if_link.h
495
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2016-01-11 00:01
if_ltalk.h
149
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if_macvlan.h
2.83
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2016-01-11 00:01
if_phonet.h
274
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if_pppol2tp.h
727
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if_pppox.h
3.11
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if_team.h
7.52
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if_tun.h
1011
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if_tunnel.h
370
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if_vlan.h
17.76
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igmp.h
4.24
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ihex.h
1.92
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ima.h
1.95
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in.h
2.43
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in6.h
1.85
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inet.h
2.61
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inet_diag.h
1.44
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inet_lro.h
3.58
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inetdevice.h
7.72
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init.h
9.58
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init_ohci1394_dma.h
157
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init_task.h
7.44
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initrd.h
583
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inotify.h
657
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2016-01-11 00:01
input-polldev.h
2.17
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input.h
18.49
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integrity.h
1.02
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2016-01-11 00:01
intel-iommu.h
17.05
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intel-svm.h
4.33
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2016-01-11 00:01
intel_pmic_gpio.h
372
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2016-01-11 00:01
interrupt.h
19.76
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interval_tree.h
757
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interval_tree_generic.h
6.96
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io-64-nonatomic-hi-lo.h
610
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io-64-nonatomic-lo-hi.h
610
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io-mapping.h
3.71
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io.h
5.27
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ioc3.h
3.14
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ioc4.h
5.78
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mutex-debug.h
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node.h
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nodemask.h
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nospec.h
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notifier.h
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nsproxy.h
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nvmem-consumer.h
4.11
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nvmem-provider.h
1.06
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4.19
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4.37
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1.4
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olpc-ec.h
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9.94
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once.h
1.65
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3.17
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openvswitch.h
844
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6.1
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1
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3.08
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pagevec.h
1.7
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parport.h
17.82
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parport_pc.h
6.52
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parser.h
982
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pata_arasan_cf_data.h
1.22
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patchkey.h
718
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path.h
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999
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pci-acpi.h
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pci-aspm.h
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pci-ats.h
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415
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pci-ecam.h
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pci.h
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pci_hotplug.h
6.79
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pci_ids.h
116.76
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pcieport_if.h
2.16
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pda_power.h
1.12
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pe.h
15.48
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percpu-defs.h
18.81
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percpu-refcount.h
9.92
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percpu-rwsem.h
1.47
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percpu.h
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percpu_counter.h
4.21
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percpu_ida.h
2.28
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perf_event.h
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perf_regs.h
969
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personality.h
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385
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phonet.h
1.12
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phy.h
26.59
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phy_fixed.h
1.58
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pid.h
5.83
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pid_namespace.h
2.35
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pim.h
518
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pipe_fs_i.h
5.4
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pktcdvd.h
5.87
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pl320-ipc.h
758
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platform_device.h
12.37
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plist.h
8.69
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pm-trace.h
728
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32.04
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1.68
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2.12
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4.09
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8.28
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6.18
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2.3
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poison.h
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poll.h
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posix-clock.h
5.44
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posix-timers.h
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posix_acl.h
3.58
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posix_acl_xattr.h
2.2
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power_supply.h
12.09
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powercap.h
12.58
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ppp-comp.h
3.1
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3.07
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ppp_defs.h
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pps-gpio.h
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3.56
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pr.h
527
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prandom.h
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preempt.h
8.61
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prefetch.h
1.5
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proc_fs.h
3.19
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proc_ns.h
2.18
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profile.h
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projid.h
2.18
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property.h
7.54
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proportions.h
3.19
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psci.h
1.79
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pstore.h
2.54
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pstore_ram.h
2.7
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pti.h
1.53
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ptp_classify.h
2.89
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ptp_clock_kernel.h
6.52
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ptrace.h
15.21
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pvclock_gtod.h
509
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pwm.h
8.44
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pwm_backlight.h
701
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pxa168_eth.h
689
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pxa2xx_ssp.h
9.75
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qcom_scm.h
1.25
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qnx6_fs.h
3.23
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quicklist.h
2.1
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quota.h
18.12
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quotaops.h
10.15
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radix-tree.h
17.93
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raid_class.h
2.08
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ramfs.h
723
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random.h
1.81
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range.h
612
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ras.h
352
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ratelimit.h
1.89
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rational.h
600
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rbtree.h
4.38
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rbtree_augmented.h
7.5
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rbtree_latch.h
6.58
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rcu_sync.h
2.51
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rculist.h
19.93
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rculist_bl.h
4.32
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rculist_nulls.h
4.3
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rcupdate.h
40.18
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rcutiny.h
4.31
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rcutree.h
3.64
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reboot.h
1.91
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reciprocal_div.h
993
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regmap.h
35.16
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regset.h
13
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relay.h
8.61
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remoteproc.h
17.47
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reservation.h
4.41
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reset-controller.h
1.89
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reset.h
2.38
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resource.h
306
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resource_ext.h
2.22
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rfkill-gpio.h
1.13
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rfkill-regulator.h
1.38
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rfkill.h
9.49
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rhashtable.h
27.07
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ring_buffer.h
6.7
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rio.h
16.47
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rio_drv.h
14.01
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rio_ids.h
1.22
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rio_regs.h
14.73
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rmap.h
8.04
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rndis.h
16.83
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root_dev.h
540
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rotary_encoder.h
362
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rpmsg.h
11.41
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rslib.h
2.99
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rtc-ds2404.h
467
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rtc-v3020.h
1.03
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rtc.h
6.9
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rtmutex.h
2.82
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rtnetlink.h
3.9
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rwlock.h
4.29
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rwlock_api_smp.h
7.63
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rwlock_types.h
1.18
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rwsem-spinlock.h
1.47
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rwsem.h
5.12
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rxrpc.h
2.33
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2016-01-11 00:01
s3c_adc_battery.h
932
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sa11x0-dma.h
572
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scatterlist.h
11.58
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scc.h
2.8
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sched.h
94.27
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sched_clock.h
559
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scif.h
58.85
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scpi_protocol.h
2.36
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screen_info.h
152
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sctp.h
21.93
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scx200.h
1.78
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scx200_gpio.h
2.34
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sdb.h
4.13
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sdla.h
6.9
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seccomp.h
2.7
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securebits.h
200
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security.h
44.34
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selection.h
1.34
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selinux.h
910
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sem.h
1.3
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semaphore.h
1.36
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seq_buf.h
3.11
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seq_file.h
6.63
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seq_file_net.h
674
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seqlock.h
16.34
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seqno-fence.h
3.91
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serial.h
630
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serial_8250.h
5.35
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serial_bcm63xx.h
4.69
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serial_core.h
16.06
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serial_max3100.h
1.39
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serial_pnx8xxx.h
2.61
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serial_s3c.h
9.24
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serial_sci.h
1.78
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serio.h
4.38
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sfi.h
5.73
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sfi_acpi.h
3.39
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sh_clk.h
6.09
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sh_dma.h
3.61
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sh_eth.h
396
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sh_intc.h
3.39
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sh_timer.h
133
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shdma-base.h
4.41
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shm.h
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Save
Rename
/* * Scatterlist Cryptographic API. * * Copyright (c) 2002 James Morris <jmorris@intercode.com.au> * Copyright (c) 2002 David S. Miller (davem@redhat.com) * Copyright (c) 2005 Herbert Xu <herbert@gondor.apana.org.au> * * Portions derived from Cryptoapi, by Alexander Kjeldaas <astor@fast.no> * and Nettle, by Niels Möller. * * This program is free software; you can redistribute it and/or modify it * under the terms of the GNU General Public License as published by the Free * Software Foundation; either version 2 of the License, or (at your option) * any later version. * */ #ifndef _LINUX_CRYPTO_H #define _LINUX_CRYPTO_H #include <linux/atomic.h> #include <linux/kernel.h> #include <linux/list.h> #include <linux/bug.h> #include <linux/slab.h> #include <linux/string.h> #include <linux/uaccess.h> /* * Autoloaded crypto modules should only use a prefixed name to avoid allowing * arbitrary modules to be loaded. Loading from userspace may still need the * unprefixed names, so retains those aliases as well. * This uses __MODULE_INFO directly instead of MODULE_ALIAS because pre-4.3 * gcc (e.g. avr32 toolchain) uses __LINE__ for uniqueness, and this macro * expands twice on the same line. Instead, use a separate base name for the * alias. */ #define MODULE_ALIAS_CRYPTO(name) \ __MODULE_INFO(alias, alias_userspace, name); \ __MODULE_INFO(alias, alias_crypto, "crypto-" name) /* * Algorithm masks and types. */ #define CRYPTO_ALG_TYPE_MASK 0x0000000f #define CRYPTO_ALG_TYPE_CIPHER 0x00000001 #define CRYPTO_ALG_TYPE_COMPRESS 0x00000002 #define CRYPTO_ALG_TYPE_AEAD 0x00000003 #define CRYPTO_ALG_TYPE_BLKCIPHER 0x00000004 #define CRYPTO_ALG_TYPE_ABLKCIPHER 0x00000005 #define CRYPTO_ALG_TYPE_GIVCIPHER 0x00000006 #define CRYPTO_ALG_TYPE_DIGEST 0x00000008 #define CRYPTO_ALG_TYPE_HASH 0x00000008 #define CRYPTO_ALG_TYPE_SHASH 0x00000009 #define CRYPTO_ALG_TYPE_AHASH 0x0000000a #define CRYPTO_ALG_TYPE_KPP 0x0000000b #define CRYPTO_ALG_TYPE_RNG 0x0000000c #define CRYPTO_ALG_TYPE_AKCIPHER 0x0000000d #define CRYPTO_ALG_TYPE_PCOMPRESS 0x0000000f #define CRYPTO_ALG_TYPE_HASH_MASK 0x0000000e #define CRYPTO_ALG_TYPE_AHASH_MASK 0x0000000c #define CRYPTO_ALG_TYPE_BLKCIPHER_MASK 0x0000000c #define CRYPTO_ALG_LARVAL 0x00000010 #define CRYPTO_ALG_DEAD 0x00000020 #define CRYPTO_ALG_DYING 0x00000040 #define CRYPTO_ALG_ASYNC 0x00000080 /* * Set this bit if and only if the algorithm requires another algorithm of * the same type to handle corner cases. */ #define CRYPTO_ALG_NEED_FALLBACK 0x00000100 /* * This bit is set for symmetric key ciphers that have already been wrapped * with a generic IV generator to prevent them from being wrapped again. */ #define CRYPTO_ALG_GENIV 0x00000200 /* * Set if the algorithm has passed automated run-time testing. Note that * if there is no run-time testing for a given algorithm it is considered * to have passed. */ #define CRYPTO_ALG_TESTED 0x00000400 /* * Set if the algorithm is an instance that is build from templates. */ #define CRYPTO_ALG_INSTANCE 0x00000800 /* Set this bit if the algorithm provided is hardware accelerated but * not available to userspace via instruction set or so. */ #define CRYPTO_ALG_KERN_DRIVER_ONLY 0x00001000 /* * Mark a cipher as a service implementation only usable by another * cipher and never by a normal user of the kernel crypto API */ #define CRYPTO_ALG_INTERNAL 0x00002000 /* * Transform masks and values (for crt_flags). */ #define CRYPTO_TFM_REQ_MASK 0x000fff00 #define CRYPTO_TFM_RES_MASK 0xfff00000 #define CRYPTO_TFM_REQ_WEAK_KEY 0x00000100 #define CRYPTO_TFM_REQ_MAY_SLEEP 0x00000200 #define CRYPTO_TFM_REQ_MAY_BACKLOG 0x00000400 #define CRYPTO_TFM_RES_WEAK_KEY 0x00100000 #define CRYPTO_TFM_RES_BAD_KEY_LEN 0x00200000 #define CRYPTO_TFM_RES_BAD_KEY_SCHED 0x00400000 #define CRYPTO_TFM_RES_BAD_BLOCK_LEN 0x00800000 #define CRYPTO_TFM_RES_BAD_FLAGS 0x01000000 /* * Miscellaneous stuff. */ #define CRYPTO_MAX_ALG_NAME 64 /* * The macro CRYPTO_MINALIGN_ATTR (along with the void * type in the actual * declaration) is used to ensure that the crypto_tfm context structure is * aligned correctly for the given architecture so that there are no alignment * faults for C data types. In particular, this is required on platforms such * as arm where pointers are 32-bit aligned but there are data types such as * u64 which require 64-bit alignment. */ #define CRYPTO_MINALIGN ARCH_KMALLOC_MINALIGN #define CRYPTO_MINALIGN_ATTR __attribute__ ((__aligned__(CRYPTO_MINALIGN))) struct scatterlist; struct crypto_ablkcipher; struct crypto_async_request; struct crypto_blkcipher; struct crypto_hash; struct crypto_tfm; struct crypto_type; struct skcipher_givcrypt_request; typedef void (*crypto_completion_t)(struct crypto_async_request *req, int err); /** * DOC: Block Cipher Context Data Structures * * These data structures define the operating context for each block cipher * type. */ struct crypto_async_request { struct list_head list; crypto_completion_t complete; void *data; struct crypto_tfm *tfm; u32 flags; }; struct ablkcipher_request { struct crypto_async_request base; unsigned int nbytes; void *info; struct scatterlist *src; struct scatterlist *dst; void *__ctx[] CRYPTO_MINALIGN_ATTR; }; struct blkcipher_desc { struct crypto_blkcipher *tfm; void *info; u32 flags; }; struct cipher_desc { struct crypto_tfm *tfm; void (*crfn)(struct crypto_tfm *tfm, u8 *dst, const u8 *src); unsigned int (*prfn)(const struct cipher_desc *desc, u8 *dst, const u8 *src, unsigned int nbytes); void *info; }; struct hash_desc { struct crypto_hash *tfm; u32 flags; }; /** * DOC: Block Cipher Algorithm Definitions * * These data structures define modular crypto algorithm implementations, * managed via crypto_register_alg() and crypto_unregister_alg(). */ /** * struct ablkcipher_alg - asynchronous block cipher definition * @min_keysize: Minimum key size supported by the transformation. This is the * smallest key length supported by this transformation algorithm. * This must be set to one of the pre-defined values as this is * not hardware specific. Possible values for this field can be * found via git grep "_MIN_KEY_SIZE" include/crypto/ * @max_keysize: Maximum key size supported by the transformation. This is the * largest key length supported by this transformation algorithm. * This must be set to one of the pre-defined values as this is * not hardware specific. Possible values for this field can be * found via git grep "_MAX_KEY_SIZE" include/crypto/ * @setkey: Set key for the transformation. This function is used to either * program a supplied key into the hardware or store the key in the * transformation context for programming it later. Note that this * function does modify the transformation context. This function can * be called multiple times during the existence of the transformation * object, so one must make sure the key is properly reprogrammed into * the hardware. This function is also responsible for checking the key * length for validity. In case a software fallback was put in place in * the @cra_init call, this function might need to use the fallback if * the algorithm doesn't support all of the key sizes. * @encrypt: Encrypt a scatterlist of blocks. This function is used to encrypt * the supplied scatterlist containing the blocks of data. The crypto * API consumer is responsible for aligning the entries of the * scatterlist properly and making sure the chunks are correctly * sized. In case a software fallback was put in place in the * @cra_init call, this function might need to use the fallback if * the algorithm doesn't support all of the key sizes. In case the * key was stored in transformation context, the key might need to be * re-programmed into the hardware in this function. This function * shall not modify the transformation context, as this function may * be called in parallel with the same transformation object. * @decrypt: Decrypt a single block. This is a reverse counterpart to @encrypt * and the conditions are exactly the same. * @givencrypt: Update the IV for encryption. With this function, a cipher * implementation may provide the function on how to update the IV * for encryption. * @givdecrypt: Update the IV for decryption. This is the reverse of * @givencrypt . * @geniv: The transformation implementation may use an "IV generator" provided * by the kernel crypto API. Several use cases have a predefined * approach how IVs are to be updated. For such use cases, the kernel * crypto API provides ready-to-use implementations that can be * referenced with this variable. * @ivsize: IV size applicable for transformation. The consumer must provide an * IV of exactly that size to perform the encrypt or decrypt operation. * * All fields except @givencrypt , @givdecrypt , @geniv and @ivsize are * mandatory and must be filled. */ struct ablkcipher_alg { int (*setkey)(struct crypto_ablkcipher *tfm, const u8 *key, unsigned int keylen); int (*encrypt)(struct ablkcipher_request *req); int (*decrypt)(struct ablkcipher_request *req); int (*givencrypt)(struct skcipher_givcrypt_request *req); int (*givdecrypt)(struct skcipher_givcrypt_request *req); const char *geniv; unsigned int min_keysize; unsigned int max_keysize; unsigned int ivsize; }; /** * struct blkcipher_alg - synchronous block cipher definition * @min_keysize: see struct ablkcipher_alg * @max_keysize: see struct ablkcipher_alg * @setkey: see struct ablkcipher_alg * @encrypt: see struct ablkcipher_alg * @decrypt: see struct ablkcipher_alg * @geniv: see struct ablkcipher_alg * @ivsize: see struct ablkcipher_alg * * All fields except @geniv and @ivsize are mandatory and must be filled. */ struct blkcipher_alg { int (*setkey)(struct crypto_tfm *tfm, const u8 *key, unsigned int keylen); int (*encrypt)(struct blkcipher_desc *desc, struct scatterlist *dst, struct scatterlist *src, unsigned int nbytes); int (*decrypt)(struct blkcipher_desc *desc, struct scatterlist *dst, struct scatterlist *src, unsigned int nbytes); const char *geniv; unsigned int min_keysize; unsigned int max_keysize; unsigned int ivsize; }; /** * struct cipher_alg - single-block symmetric ciphers definition * @cia_min_keysize: Minimum key size supported by the transformation. This is * the smallest key length supported by this transformation * algorithm. This must be set to one of the pre-defined * values as this is not hardware specific. Possible values * for this field can be found via git grep "_MIN_KEY_SIZE" * include/crypto/ * @cia_max_keysize: Maximum key size supported by the transformation. This is * the largest key length supported by this transformation * algorithm. This must be set to one of the pre-defined values * as this is not hardware specific. Possible values for this * field can be found via git grep "_MAX_KEY_SIZE" * include/crypto/ * @cia_setkey: Set key for the transformation. This function is used to either * program a supplied key into the hardware or store the key in the * transformation context for programming it later. Note that this * function does modify the transformation context. This function * can be called multiple times during the existence of the * transformation object, so one must make sure the key is properly * reprogrammed into the hardware. This function is also * responsible for checking the key length for validity. * @cia_encrypt: Encrypt a single block. This function is used to encrypt a * single block of data, which must be @cra_blocksize big. This * always operates on a full @cra_blocksize and it is not possible * to encrypt a block of smaller size. The supplied buffers must * therefore also be at least of @cra_blocksize size. Both the * input and output buffers are always aligned to @cra_alignmask. * In case either of the input or output buffer supplied by user * of the crypto API is not aligned to @cra_alignmask, the crypto * API will re-align the buffers. The re-alignment means that a * new buffer will be allocated, the data will be copied into the * new buffer, then the processing will happen on the new buffer, * then the data will be copied back into the original buffer and * finally the new buffer will be freed. In case a software * fallback was put in place in the @cra_init call, this function * might need to use the fallback if the algorithm doesn't support * all of the key sizes. In case the key was stored in * transformation context, the key might need to be re-programmed * into the hardware in this function. This function shall not * modify the transformation context, as this function may be * called in parallel with the same transformation object. * @cia_decrypt: Decrypt a single block. This is a reverse counterpart to * @cia_encrypt, and the conditions are exactly the same. * * All fields are mandatory and must be filled. */ struct cipher_alg { unsigned int cia_min_keysize; unsigned int cia_max_keysize; int (*cia_setkey)(struct crypto_tfm *tfm, const u8 *key, unsigned int keylen); void (*cia_encrypt)(struct crypto_tfm *tfm, u8 *dst, const u8 *src); void (*cia_decrypt)(struct crypto_tfm *tfm, u8 *dst, const u8 *src); }; struct compress_alg { int (*coa_compress)(struct crypto_tfm *tfm, const u8 *src, unsigned int slen, u8 *dst, unsigned int *dlen); int (*coa_decompress)(struct crypto_tfm *tfm, const u8 *src, unsigned int slen, u8 *dst, unsigned int *dlen); }; #define cra_ablkcipher cra_u.ablkcipher #define cra_blkcipher cra_u.blkcipher #define cra_cipher cra_u.cipher #define cra_compress cra_u.compress /** * struct crypto_alg - definition of a cryptograpic cipher algorithm * @cra_flags: Flags describing this transformation. See include/linux/crypto.h * CRYPTO_ALG_* flags for the flags which go in here. Those are * used for fine-tuning the description of the transformation * algorithm. * @cra_blocksize: Minimum block size of this transformation. The size in bytes * of the smallest possible unit which can be transformed with * this algorithm. The users must respect this value. * In case of HASH transformation, it is possible for a smaller * block than @cra_blocksize to be passed to the crypto API for * transformation, in case of any other transformation type, an * error will be returned upon any attempt to transform smaller * than @cra_blocksize chunks. * @cra_ctxsize: Size of the operational context of the transformation. This * value informs the kernel crypto API about the memory size * needed to be allocated for the transformation context. * @cra_alignmask: Alignment mask for the input and output data buffer. The data * buffer containing the input data for the algorithm must be * aligned to this alignment mask. The data buffer for the * output data must be aligned to this alignment mask. Note that * the Crypto API will do the re-alignment in software, but * only under special conditions and there is a performance hit. * The re-alignment happens at these occasions for different * @cra_u types: cipher -- For both input data and output data * buffer; ahash -- For output hash destination buf; shash -- * For output hash destination buf. * This is needed on hardware which is flawed by design and * cannot pick data from arbitrary addresses. * @cra_priority: Priority of this transformation implementation. In case * multiple transformations with same @cra_name are available to * the Crypto API, the kernel will use the one with highest * @cra_priority. * @cra_name: Generic name (usable by multiple implementations) of the * transformation algorithm. This is the name of the transformation * itself. This field is used by the kernel when looking up the * providers of particular transformation. * @cra_driver_name: Unique name of the transformation provider. This is the * name of the provider of the transformation. This can be any * arbitrary value, but in the usual case, this contains the * name of the chip or provider and the name of the * transformation algorithm. * @cra_type: Type of the cryptographic transformation. This is a pointer to * struct crypto_type, which implements callbacks common for all * transformation types. There are multiple options: * &crypto_blkcipher_type, &crypto_ablkcipher_type, * &crypto_ahash_type, &crypto_rng_type. * This field might be empty. In that case, there are no common * callbacks. This is the case for: cipher, compress, shash. * @cra_u: Callbacks implementing the transformation. This is a union of * multiple structures. Depending on the type of transformation selected * by @cra_type and @cra_flags above, the associated structure must be * filled with callbacks. This field might be empty. This is the case * for ahash, shash. * @cra_init: Initialize the cryptographic transformation object. This function * is used to initialize the cryptographic transformation object. * This function is called only once at the instantiation time, right * after the transformation context was allocated. In case the * cryptographic hardware has some special requirements which need to * be handled by software, this function shall check for the precise * requirement of the transformation and put any software fallbacks * in place. * @cra_exit: Deinitialize the cryptographic transformation object. This is a * counterpart to @cra_init, used to remove various changes set in * @cra_init. * @cra_module: Owner of this transformation implementation. Set to THIS_MODULE * @cra_list: internally used * @cra_users: internally used * @cra_refcnt: internally used * @cra_destroy: internally used * * The struct crypto_alg describes a generic Crypto API algorithm and is common * for all of the transformations. Any variable not documented here shall not * be used by a cipher implementation as it is internal to the Crypto API. */ struct crypto_alg { struct list_head cra_list; struct list_head cra_users; u32 cra_flags; unsigned int cra_blocksize; unsigned int cra_ctxsize; unsigned int cra_alignmask; int cra_priority; atomic_t cra_refcnt; char cra_name[CRYPTO_MAX_ALG_NAME]; char cra_driver_name[CRYPTO_MAX_ALG_NAME]; const struct crypto_type *cra_type; union { struct ablkcipher_alg ablkcipher; struct blkcipher_alg blkcipher; struct cipher_alg cipher; struct compress_alg compress; } cra_u; int (*cra_init)(struct crypto_tfm *tfm); void (*cra_exit)(struct crypto_tfm *tfm); void (*cra_destroy)(struct crypto_alg *alg); struct module *cra_module; } CRYPTO_MINALIGN_ATTR; /* * Algorithm registration interface. */ int crypto_register_alg(struct crypto_alg *alg); int crypto_unregister_alg(struct crypto_alg *alg); int crypto_register_algs(struct crypto_alg *algs, int count); int crypto_unregister_algs(struct crypto_alg *algs, int count); /* * Algorithm query interface. */ int crypto_has_alg(const char *name, u32 type, u32 mask); /* * Transforms: user-instantiated objects which encapsulate algorithms * and core processing logic. Managed via crypto_alloc_*() and * crypto_free_*(), as well as the various helpers below. */ struct ablkcipher_tfm { int (*setkey)(struct crypto_ablkcipher *tfm, const u8 *key, unsigned int keylen); int (*encrypt)(struct ablkcipher_request *req); int (*decrypt)(struct ablkcipher_request *req); int (*givencrypt)(struct skcipher_givcrypt_request *req); int (*givdecrypt)(struct skcipher_givcrypt_request *req); struct crypto_ablkcipher *base; unsigned int ivsize; unsigned int reqsize; }; struct blkcipher_tfm { void *iv; int (*setkey)(struct crypto_tfm *tfm, const u8 *key, unsigned int keylen); int (*encrypt)(struct blkcipher_desc *desc, struct scatterlist *dst, struct scatterlist *src, unsigned int nbytes); int (*decrypt)(struct blkcipher_desc *desc, struct scatterlist *dst, struct scatterlist *src, unsigned int nbytes); }; struct cipher_tfm { int (*cit_setkey)(struct crypto_tfm *tfm, const u8 *key, unsigned int keylen); void (*cit_encrypt_one)(struct crypto_tfm *tfm, u8 *dst, const u8 *src); void (*cit_decrypt_one)(struct crypto_tfm *tfm, u8 *dst, const u8 *src); }; struct hash_tfm { int (*init)(struct hash_desc *desc); int (*update)(struct hash_desc *desc, struct scatterlist *sg, unsigned int nsg); int (*final)(struct hash_desc *desc, u8 *out); int (*digest)(struct hash_desc *desc, struct scatterlist *sg, unsigned int nsg, u8 *out); int (*setkey)(struct crypto_hash *tfm, const u8 *key, unsigned int keylen); unsigned int digestsize; }; struct compress_tfm { int (*cot_compress)(struct crypto_tfm *tfm, const u8 *src, unsigned int slen, u8 *dst, unsigned int *dlen); int (*cot_decompress)(struct crypto_tfm *tfm, const u8 *src, unsigned int slen, u8 *dst, unsigned int *dlen); }; #define crt_ablkcipher crt_u.ablkcipher #define crt_blkcipher crt_u.blkcipher #define crt_cipher crt_u.cipher #define crt_hash crt_u.hash #define crt_compress crt_u.compress struct crypto_tfm { u32 crt_flags; union { struct ablkcipher_tfm ablkcipher; struct blkcipher_tfm blkcipher; struct cipher_tfm cipher; struct hash_tfm hash; struct compress_tfm compress; } crt_u; void (*exit)(struct crypto_tfm *tfm); struct crypto_alg *__crt_alg; void *__crt_ctx[] CRYPTO_MINALIGN_ATTR; }; struct crypto_ablkcipher { struct crypto_tfm base; }; struct crypto_blkcipher { struct crypto_tfm base; }; struct crypto_cipher { struct crypto_tfm base; }; struct crypto_comp { struct crypto_tfm base; }; struct crypto_hash { struct crypto_tfm base; }; enum { CRYPTOA_UNSPEC, CRYPTOA_ALG, CRYPTOA_TYPE, CRYPTOA_U32, __CRYPTOA_MAX, }; #define CRYPTOA_MAX (__CRYPTOA_MAX - 1) /* Maximum number of (rtattr) parameters for each template. */ #define CRYPTO_MAX_ATTRS 32 struct crypto_attr_alg { char name[CRYPTO_MAX_ALG_NAME]; }; struct crypto_attr_type { u32 type; u32 mask; }; struct crypto_attr_u32 { u32 num; }; /* * Transform user interface. */ struct crypto_tfm *crypto_alloc_base(const char *alg_name, u32 type, u32 mask); void crypto_destroy_tfm(void *mem, struct crypto_tfm *tfm); static inline void crypto_free_tfm(struct crypto_tfm *tfm) { return crypto_destroy_tfm(tfm, tfm); } int alg_test(const char *driver, const char *alg, u32 type, u32 mask); /* * Transform helpers which query the underlying algorithm. */ static inline const char *crypto_tfm_alg_name(struct crypto_tfm *tfm) { return tfm->__crt_alg->cra_name; } static inline const char *crypto_tfm_alg_driver_name(struct crypto_tfm *tfm) { return tfm->__crt_alg->cra_driver_name; } static inline int crypto_tfm_alg_priority(struct crypto_tfm *tfm) { return tfm->__crt_alg->cra_priority; } static inline u32 crypto_tfm_alg_type(struct crypto_tfm *tfm) { return tfm->__crt_alg->cra_flags & CRYPTO_ALG_TYPE_MASK; } static inline unsigned int crypto_tfm_alg_blocksize(struct crypto_tfm *tfm) { return tfm->__crt_alg->cra_blocksize; } static inline unsigned int crypto_tfm_alg_alignmask(struct crypto_tfm *tfm) { return tfm->__crt_alg->cra_alignmask; } static inline u32 crypto_tfm_get_flags(struct crypto_tfm *tfm) { return tfm->crt_flags; } static inline void crypto_tfm_set_flags(struct crypto_tfm *tfm, u32 flags) { tfm->crt_flags |= flags; } static inline void crypto_tfm_clear_flags(struct crypto_tfm *tfm, u32 flags) { tfm->crt_flags &= ~flags; } static inline void *crypto_tfm_ctx(struct crypto_tfm *tfm) { return tfm->__crt_ctx; } static inline unsigned int crypto_tfm_ctx_alignment(void) { struct crypto_tfm *tfm; return __alignof__(tfm->__crt_ctx); } /* * API wrappers. */ static inline struct crypto_ablkcipher *__crypto_ablkcipher_cast( struct crypto_tfm *tfm) { return (struct crypto_ablkcipher *)tfm; } static inline u32 crypto_skcipher_type(u32 type) { type &= ~(CRYPTO_ALG_TYPE_MASK | CRYPTO_ALG_GENIV); type |= CRYPTO_ALG_TYPE_BLKCIPHER; return type; } static inline u32 crypto_skcipher_mask(u32 mask) { mask &= ~(CRYPTO_ALG_TYPE_MASK | CRYPTO_ALG_GENIV); mask |= CRYPTO_ALG_TYPE_BLKCIPHER_MASK; return mask; } /** * DOC: Asynchronous Block Cipher API * * Asynchronous block cipher API is used with the ciphers of type * CRYPTO_ALG_TYPE_ABLKCIPHER (listed as type "ablkcipher" in /proc/crypto). * * Asynchronous cipher operations imply that the function invocation for a * cipher request returns immediately before the completion of the operation. * The cipher request is scheduled as a separate kernel thread and therefore * load-balanced on the different CPUs via the process scheduler. To allow * the kernel crypto API to inform the caller about the completion of a cipher * request, the caller must provide a callback function. That function is * invoked with the cipher handle when the request completes. * * To support the asynchronous operation, additional information than just the * cipher handle must be supplied to the kernel crypto API. That additional * information is given by filling in the ablkcipher_request data structure. * * For the asynchronous block cipher API, the state is maintained with the tfm * cipher handle. A single tfm can be used across multiple calls and in * parallel. For asynchronous block cipher calls, context data supplied and * only used by the caller can be referenced the request data structure in * addition to the IV used for the cipher request. The maintenance of such * state information would be important for a crypto driver implementer to * have, because when calling the callback function upon completion of the * cipher operation, that callback function may need some information about * which operation just finished if it invoked multiple in parallel. This * state information is unused by the kernel crypto API. */ /** * crypto_alloc_ablkcipher() - allocate asynchronous block cipher handle * @alg_name: is the cra_name / name or cra_driver_name / driver name of the * ablkcipher cipher * @type: specifies the type of the cipher * @mask: specifies the mask for the cipher * * Allocate a cipher handle for an ablkcipher. The returned struct * crypto_ablkcipher is the cipher handle that is required for any subsequent * API invocation for that ablkcipher. * * Return: allocated cipher handle in case of success; IS_ERR() is true in case * of an error, PTR_ERR() returns the error code. */ struct crypto_ablkcipher *crypto_alloc_ablkcipher(const char *alg_name, u32 type, u32 mask); static inline struct crypto_tfm *crypto_ablkcipher_tfm( struct crypto_ablkcipher *tfm) { return &tfm->base; } /** * crypto_free_ablkcipher() - zeroize and free cipher handle * @tfm: cipher handle to be freed */ static inline void crypto_free_ablkcipher(struct crypto_ablkcipher *tfm) { crypto_free_tfm(crypto_ablkcipher_tfm(tfm)); } /** * crypto_has_ablkcipher() - Search for the availability of an ablkcipher. * @alg_name: is the cra_name / name or cra_driver_name / driver name of the * ablkcipher * @type: specifies the type of the cipher * @mask: specifies the mask for the cipher * * Return: true when the ablkcipher is known to the kernel crypto API; false * otherwise */ static inline int crypto_has_ablkcipher(const char *alg_name, u32 type, u32 mask) { return crypto_has_alg(alg_name, crypto_skcipher_type(type), crypto_skcipher_mask(mask)); } static inline struct ablkcipher_tfm *crypto_ablkcipher_crt( struct crypto_ablkcipher *tfm) { return &crypto_ablkcipher_tfm(tfm)->crt_ablkcipher; } /** * crypto_ablkcipher_ivsize() - obtain IV size * @tfm: cipher handle * * The size of the IV for the ablkcipher referenced by the cipher handle is * returned. This IV size may be zero if the cipher does not need an IV. * * Return: IV size in bytes */ static inline unsigned int crypto_ablkcipher_ivsize( struct crypto_ablkcipher *tfm) { return crypto_ablkcipher_crt(tfm)->ivsize; } /** * crypto_ablkcipher_blocksize() - obtain block size of cipher * @tfm: cipher handle * * The block size for the ablkcipher referenced with the cipher handle is * returned. The caller may use that information to allocate appropriate * memory for the data returned by the encryption or decryption operation * * Return: block size of cipher */ static inline unsigned int crypto_ablkcipher_blocksize( struct crypto_ablkcipher *tfm) { return crypto_tfm_alg_blocksize(crypto_ablkcipher_tfm(tfm)); } static inline unsigned int crypto_ablkcipher_alignmask( struct crypto_ablkcipher *tfm) { return crypto_tfm_alg_alignmask(crypto_ablkcipher_tfm(tfm)); } static inline u32 crypto_ablkcipher_get_flags(struct crypto_ablkcipher *tfm) { return crypto_tfm_get_flags(crypto_ablkcipher_tfm(tfm)); } static inline void crypto_ablkcipher_set_flags(struct crypto_ablkcipher *tfm, u32 flags) { crypto_tfm_set_flags(crypto_ablkcipher_tfm(tfm), flags); } static inline void crypto_ablkcipher_clear_flags(struct crypto_ablkcipher *tfm, u32 flags) { crypto_tfm_clear_flags(crypto_ablkcipher_tfm(tfm), flags); } /** * crypto_ablkcipher_setkey() - set key for cipher * @tfm: cipher handle * @key: buffer holding the key * @keylen: length of the key in bytes * * The caller provided key is set for the ablkcipher referenced by the cipher * handle. * * Note, the key length determines the cipher type. Many block ciphers implement * different cipher modes depending on the key size, such as AES-128 vs AES-192 * vs. AES-256. When providing a 16 byte key for an AES cipher handle, AES-128 * is performed. * * Return: 0 if the setting of the key was successful; < 0 if an error occurred */ static inline int crypto_ablkcipher_setkey(struct crypto_ablkcipher *tfm, const u8 *key, unsigned int keylen) { struct ablkcipher_tfm *crt = crypto_ablkcipher_crt(tfm); return crt->setkey(crt->base, key, keylen); } /** * crypto_ablkcipher_reqtfm() - obtain cipher handle from request * @req: ablkcipher_request out of which the cipher handle is to be obtained * * Return the crypto_ablkcipher handle when furnishing an ablkcipher_request * data structure. * * Return: crypto_ablkcipher handle */ static inline struct crypto_ablkcipher *crypto_ablkcipher_reqtfm( struct ablkcipher_request *req) { return __crypto_ablkcipher_cast(req->base.tfm); } /** * crypto_ablkcipher_encrypt() - encrypt plaintext * @req: reference to the ablkcipher_request handle that holds all information * needed to perform the cipher operation * * Encrypt plaintext data using the ablkcipher_request handle. That data * structure and how it is filled with data is discussed with the * ablkcipher_request_* functions. * * Return: 0 if the cipher operation was successful; < 0 if an error occurred */ static inline int crypto_ablkcipher_encrypt(struct ablkcipher_request *req) { struct ablkcipher_tfm *crt = crypto_ablkcipher_crt(crypto_ablkcipher_reqtfm(req)); return crt->encrypt(req); } /** * crypto_ablkcipher_decrypt() - decrypt ciphertext * @req: reference to the ablkcipher_request handle that holds all information * needed to perform the cipher operation * * Decrypt ciphertext data using the ablkcipher_request handle. That data * structure and how it is filled with data is discussed with the * ablkcipher_request_* functions. * * Return: 0 if the cipher operation was successful; < 0 if an error occurred */ static inline int crypto_ablkcipher_decrypt(struct ablkcipher_request *req) { struct ablkcipher_tfm *crt = crypto_ablkcipher_crt(crypto_ablkcipher_reqtfm(req)); return crt->decrypt(req); } /** * DOC: Asynchronous Cipher Request Handle * * The ablkcipher_request data structure contains all pointers to data * required for the asynchronous cipher operation. This includes the cipher * handle (which can be used by multiple ablkcipher_request instances), pointer * to plaintext and ciphertext, asynchronous callback function, etc. It acts * as a handle to the ablkcipher_request_* API calls in a similar way as * ablkcipher handle to the crypto_ablkcipher_* API calls. */ /** * crypto_ablkcipher_reqsize() - obtain size of the request data structure * @tfm: cipher handle * * Return: number of bytes */ static inline unsigned int crypto_ablkcipher_reqsize( struct crypto_ablkcipher *tfm) { return crypto_ablkcipher_crt(tfm)->reqsize; } /** * ablkcipher_request_set_tfm() - update cipher handle reference in request * @req: request handle to be modified * @tfm: cipher handle that shall be added to the request handle * * Allow the caller to replace the existing ablkcipher handle in the request * data structure with a different one. */ static inline void ablkcipher_request_set_tfm( struct ablkcipher_request *req, struct crypto_ablkcipher *tfm) { req->base.tfm = crypto_ablkcipher_tfm(crypto_ablkcipher_crt(tfm)->base); } static inline struct ablkcipher_request *ablkcipher_request_cast( struct crypto_async_request *req) { return container_of(req, struct ablkcipher_request, base); } /** * ablkcipher_request_alloc() - allocate request data structure * @tfm: cipher handle to be registered with the request * @gfp: memory allocation flag that is handed to kmalloc by the API call. * * Allocate the request data structure that must be used with the ablkcipher * encrypt and decrypt API calls. During the allocation, the provided ablkcipher * handle is registered in the request data structure. * * Return: allocated request handle in case of success; IS_ERR() is true in case * of an error, PTR_ERR() returns the error code. */ static inline struct ablkcipher_request *ablkcipher_request_alloc( struct crypto_ablkcipher *tfm, gfp_t gfp) { struct ablkcipher_request *req; req = kmalloc(sizeof(struct ablkcipher_request) + crypto_ablkcipher_reqsize(tfm), gfp); if (likely(req)) ablkcipher_request_set_tfm(req, tfm); return req; } /** * ablkcipher_request_free() - zeroize and free request data structure * @req: request data structure cipher handle to be freed */ static inline void ablkcipher_request_free(struct ablkcipher_request *req) { kzfree(req); } /** * ablkcipher_request_set_callback() - set asynchronous callback function * @req: request handle * @flags: specify zero or an ORing of the flags * CRYPTO_TFM_REQ_MAY_BACKLOG the request queue may back log and * increase the wait queue beyond the initial maximum size; * CRYPTO_TFM_REQ_MAY_SLEEP the request processing may sleep * @compl: callback function pointer to be registered with the request handle * @data: The data pointer refers to memory that is not used by the kernel * crypto API, but provided to the callback function for it to use. Here, * the caller can provide a reference to memory the callback function can * operate on. As the callback function is invoked asynchronously to the * related functionality, it may need to access data structures of the * related functionality which can be referenced using this pointer. The * callback function can access the memory via the "data" field in the * crypto_async_request data structure provided to the callback function. * * This function allows setting the callback function that is triggered once the * cipher operation completes. * * The callback function is registered with the ablkcipher_request handle and * must comply with the following template * * void callback_function(struct crypto_async_request *req, int error) */ static inline void ablkcipher_request_set_callback( struct ablkcipher_request *req, u32 flags, crypto_completion_t compl, void *data) { req->base.complete = compl; req->base.data = data; req->base.flags = flags; } /** * ablkcipher_request_set_crypt() - set data buffers * @req: request handle * @src: source scatter / gather list * @dst: destination scatter / gather list * @nbytes: number of bytes to process from @src * @iv: IV for the cipher operation which must comply with the IV size defined * by crypto_ablkcipher_ivsize * * This function allows setting of the source data and destination data * scatter / gather lists. * * For encryption, the source is treated as the plaintext and the * destination is the ciphertext. For a decryption operation, the use is * reversed - the source is the ciphertext and the destination is the plaintext. */ static inline void ablkcipher_request_set_crypt( struct ablkcipher_request *req, struct scatterlist *src, struct scatterlist *dst, unsigned int nbytes, void *iv) { req->src = src; req->dst = dst; req->nbytes = nbytes; req->info = iv; } /** * DOC: Synchronous Block Cipher API * * The synchronous block cipher API is used with the ciphers of type * CRYPTO_ALG_TYPE_BLKCIPHER (listed as type "blkcipher" in /proc/crypto) * * Synchronous calls, have a context in the tfm. But since a single tfm can be * used in multiple calls and in parallel, this info should not be changeable * (unless a lock is used). This applies, for example, to the symmetric key. * However, the IV is changeable, so there is an iv field in blkcipher_tfm * structure for synchronous blkcipher api. So, its the only state info that can * be kept for synchronous calls without using a big lock across a tfm. * * The block cipher API allows the use of a complete cipher, i.e. a cipher * consisting of a template (a block chaining mode) and a single block cipher * primitive (e.g. AES). * * The plaintext data buffer and the ciphertext data buffer are pointed to * by using scatter/gather lists. The cipher operation is performed * on all segments of the provided scatter/gather lists. * * The kernel crypto API supports a cipher operation "in-place" which means that * the caller may provide the same scatter/gather list for the plaintext and * cipher text. After the completion of the cipher operation, the plaintext * data is replaced with the ciphertext data in case of an encryption and vice * versa for a decryption. The caller must ensure that the scatter/gather lists * for the output data point to sufficiently large buffers, i.e. multiples of * the block size of the cipher. */ static inline struct crypto_blkcipher *__crypto_blkcipher_cast( struct crypto_tfm *tfm) { return (struct crypto_blkcipher *)tfm; } static inline struct crypto_blkcipher *crypto_blkcipher_cast( struct crypto_tfm *tfm) { BUG_ON(crypto_tfm_alg_type(tfm) != CRYPTO_ALG_TYPE_BLKCIPHER); return __crypto_blkcipher_cast(tfm); } /** * crypto_alloc_blkcipher() - allocate synchronous block cipher handle * @alg_name: is the cra_name / name or cra_driver_name / driver name of the * blkcipher cipher * @type: specifies the type of the cipher * @mask: specifies the mask for the cipher * * Allocate a cipher handle for a block cipher. The returned struct * crypto_blkcipher is the cipher handle that is required for any subsequent * API invocation for that block cipher. * * Return: allocated cipher handle in case of success; IS_ERR() is true in case * of an error, PTR_ERR() returns the error code. */ static inline struct crypto_blkcipher *crypto_alloc_blkcipher( const char *alg_name, u32 type, u32 mask) { type &= ~CRYPTO_ALG_TYPE_MASK; type |= CRYPTO_ALG_TYPE_BLKCIPHER; mask |= CRYPTO_ALG_TYPE_MASK; return __crypto_blkcipher_cast(crypto_alloc_base(alg_name, type, mask)); } static inline struct crypto_tfm *crypto_blkcipher_tfm( struct crypto_blkcipher *tfm) { return &tfm->base; } /** * crypto_free_blkcipher() - zeroize and free the block cipher handle * @tfm: cipher handle to be freed */ static inline void crypto_free_blkcipher(struct crypto_blkcipher *tfm) { crypto_free_tfm(crypto_blkcipher_tfm(tfm)); } /** * crypto_has_blkcipher() - Search for the availability of a block cipher * @alg_name: is the cra_name / name or cra_driver_name / driver name of the * block cipher * @type: specifies the type of the cipher * @mask: specifies the mask for the cipher * * Return: true when the block cipher is known to the kernel crypto API; false * otherwise */ static inline int crypto_has_blkcipher(const char *alg_name, u32 type, u32 mask) { type &= ~CRYPTO_ALG_TYPE_MASK; type |= CRYPTO_ALG_TYPE_BLKCIPHER; mask |= CRYPTO_ALG_TYPE_MASK; return crypto_has_alg(alg_name, type, mask); } /** * crypto_blkcipher_name() - return the name / cra_name from the cipher handle * @tfm: cipher handle * * Return: The character string holding the name of the cipher */ static inline const char *crypto_blkcipher_name(struct crypto_blkcipher *tfm) { return crypto_tfm_alg_name(crypto_blkcipher_tfm(tfm)); } static inline struct blkcipher_tfm *crypto_blkcipher_crt( struct crypto_blkcipher *tfm) { return &crypto_blkcipher_tfm(tfm)->crt_blkcipher; } static inline struct blkcipher_alg *crypto_blkcipher_alg( struct crypto_blkcipher *tfm) { return &crypto_blkcipher_tfm(tfm)->__crt_alg->cra_blkcipher; } /** * crypto_blkcipher_ivsize() - obtain IV size * @tfm: cipher handle * * The size of the IV for the block cipher referenced by the cipher handle is * returned. This IV size may be zero if the cipher does not need an IV. * * Return: IV size in bytes */ static inline unsigned int crypto_blkcipher_ivsize(struct crypto_blkcipher *tfm) { return crypto_blkcipher_alg(tfm)->ivsize; } /** * crypto_blkcipher_blocksize() - obtain block size of cipher * @tfm: cipher handle * * The block size for the block cipher referenced with the cipher handle is * returned. The caller may use that information to allocate appropriate * memory for the data returned by the encryption or decryption operation. * * Return: block size of cipher */ static inline unsigned int crypto_blkcipher_blocksize( struct crypto_blkcipher *tfm) { return crypto_tfm_alg_blocksize(crypto_blkcipher_tfm(tfm)); } static inline unsigned int crypto_blkcipher_alignmask( struct crypto_blkcipher *tfm) { return crypto_tfm_alg_alignmask(crypto_blkcipher_tfm(tfm)); } static inline u32 crypto_blkcipher_get_flags(struct crypto_blkcipher *tfm) { return crypto_tfm_get_flags(crypto_blkcipher_tfm(tfm)); } static inline void crypto_blkcipher_set_flags(struct crypto_blkcipher *tfm, u32 flags) { crypto_tfm_set_flags(crypto_blkcipher_tfm(tfm), flags); } static inline void crypto_blkcipher_clear_flags(struct crypto_blkcipher *tfm, u32 flags) { crypto_tfm_clear_flags(crypto_blkcipher_tfm(tfm), flags); } /** * crypto_blkcipher_setkey() - set key for cipher * @tfm: cipher handle * @key: buffer holding the key * @keylen: length of the key in bytes * * The caller provided key is set for the block cipher referenced by the cipher * handle. * * Note, the key length determines the cipher type. Many block ciphers implement * different cipher modes depending on the key size, such as AES-128 vs AES-192 * vs. AES-256. When providing a 16 byte key for an AES cipher handle, AES-128 * is performed. * * Return: 0 if the setting of the key was successful; < 0 if an error occurred */ static inline int crypto_blkcipher_setkey(struct crypto_blkcipher *tfm, const u8 *key, unsigned int keylen) { return crypto_blkcipher_crt(tfm)->setkey(crypto_blkcipher_tfm(tfm), key, keylen); } /** * crypto_blkcipher_encrypt() - encrypt plaintext * @desc: reference to the block cipher handle with meta data * @dst: scatter/gather list that is filled by the cipher operation with the * ciphertext * @src: scatter/gather list that holds the plaintext * @nbytes: number of bytes of the plaintext to encrypt. * * Encrypt plaintext data using the IV set by the caller with a preceding * call of crypto_blkcipher_set_iv. * * The blkcipher_desc data structure must be filled by the caller and can * reside on the stack. The caller must fill desc as follows: desc.tfm is filled * with the block cipher handle; desc.flags is filled with either * CRYPTO_TFM_REQ_MAY_SLEEP or 0. * * Return: 0 if the cipher operation was successful; < 0 if an error occurred */ static inline int crypto_blkcipher_encrypt(struct blkcipher_desc *desc, struct scatterlist *dst, struct scatterlist *src, unsigned int nbytes) { desc->info = crypto_blkcipher_crt(desc->tfm)->iv; return crypto_blkcipher_crt(desc->tfm)->encrypt(desc, dst, src, nbytes); } /** * crypto_blkcipher_encrypt_iv() - encrypt plaintext with dedicated IV * @desc: reference to the block cipher handle with meta data * @dst: scatter/gather list that is filled by the cipher operation with the * ciphertext * @src: scatter/gather list that holds the plaintext * @nbytes: number of bytes of the plaintext to encrypt. * * Encrypt plaintext data with the use of an IV that is solely used for this * cipher operation. Any previously set IV is not used. * * The blkcipher_desc data structure must be filled by the caller and can * reside on the stack. The caller must fill desc as follows: desc.tfm is filled * with the block cipher handle; desc.info is filled with the IV to be used for * the current operation; desc.flags is filled with either * CRYPTO_TFM_REQ_MAY_SLEEP or 0. * * Return: 0 if the cipher operation was successful; < 0 if an error occurred */ static inline int crypto_blkcipher_encrypt_iv(struct blkcipher_desc *desc, struct scatterlist *dst, struct scatterlist *src, unsigned int nbytes) { return crypto_blkcipher_crt(desc->tfm)->encrypt(desc, dst, src, nbytes); } /** * crypto_blkcipher_decrypt() - decrypt ciphertext * @desc: reference to the block cipher handle with meta data * @dst: scatter/gather list that is filled by the cipher operation with the * plaintext * @src: scatter/gather list that holds the ciphertext * @nbytes: number of bytes of the ciphertext to decrypt. * * Decrypt ciphertext data using the IV set by the caller with a preceding * call of crypto_blkcipher_set_iv. * * The blkcipher_desc data structure must be filled by the caller as documented * for the crypto_blkcipher_encrypt call above. * * Return: 0 if the cipher operation was successful; < 0 if an error occurred * */ static inline int crypto_blkcipher_decrypt(struct blkcipher_desc *desc, struct scatterlist *dst, struct scatterlist *src, unsigned int nbytes) { desc->info = crypto_blkcipher_crt(desc->tfm)->iv; return crypto_blkcipher_crt(desc->tfm)->decrypt(desc, dst, src, nbytes); } /** * crypto_blkcipher_decrypt_iv() - decrypt ciphertext with dedicated IV * @desc: reference to the block cipher handle with meta data * @dst: scatter/gather list that is filled by the cipher operation with the * plaintext * @src: scatter/gather list that holds the ciphertext * @nbytes: number of bytes of the ciphertext to decrypt. * * Decrypt ciphertext data with the use of an IV that is solely used for this * cipher operation. Any previously set IV is not used. * * The blkcipher_desc data structure must be filled by the caller as documented * for the crypto_blkcipher_encrypt_iv call above. * * Return: 0 if the cipher operation was successful; < 0 if an error occurred */ static inline int crypto_blkcipher_decrypt_iv(struct blkcipher_desc *desc, struct scatterlist *dst, struct scatterlist *src, unsigned int nbytes) { return crypto_blkcipher_crt(desc->tfm)->decrypt(desc, dst, src, nbytes); } /** * crypto_blkcipher_set_iv() - set IV for cipher * @tfm: cipher handle * @src: buffer holding the IV * @len: length of the IV in bytes * * The caller provided IV is set for the block cipher referenced by the cipher * handle. */ static inline void crypto_blkcipher_set_iv(struct crypto_blkcipher *tfm, const u8 *src, unsigned int len) { memcpy(crypto_blkcipher_crt(tfm)->iv, src, len); } /** * crypto_blkcipher_get_iv() - obtain IV from cipher * @tfm: cipher handle * @dst: buffer filled with the IV * @len: length of the buffer dst * * The caller can obtain the IV set for the block cipher referenced by the * cipher handle and store it into the user-provided buffer. If the buffer * has an insufficient space, the IV is truncated to fit the buffer. */ static inline void crypto_blkcipher_get_iv(struct crypto_blkcipher *tfm, u8 *dst, unsigned int len) { memcpy(dst, crypto_blkcipher_crt(tfm)->iv, len); } /** * DOC: Single Block Cipher API * * The single block cipher API is used with the ciphers of type * CRYPTO_ALG_TYPE_CIPHER (listed as type "cipher" in /proc/crypto). * * Using the single block cipher API calls, operations with the basic cipher * primitive can be implemented. These cipher primitives exclude any block * chaining operations including IV handling. * * The purpose of this single block cipher API is to support the implementation * of templates or other concepts that only need to perform the cipher operation * on one block at a time. Templates invoke the underlying cipher primitive * block-wise and process either the input or the output data of these cipher * operations. */ static inline struct crypto_cipher *__crypto_cipher_cast(struct crypto_tfm *tfm) { return (struct crypto_cipher *)tfm; } static inline struct crypto_cipher *crypto_cipher_cast(struct crypto_tfm *tfm) { BUG_ON(crypto_tfm_alg_type(tfm) != CRYPTO_ALG_TYPE_CIPHER); return __crypto_cipher_cast(tfm); } /** * crypto_alloc_cipher() - allocate single block cipher handle * @alg_name: is the cra_name / name or cra_driver_name / driver name of the * single block cipher * @type: specifies the type of the cipher * @mask: specifies the mask for the cipher * * Allocate a cipher handle for a single block cipher. The returned struct * crypto_cipher is the cipher handle that is required for any subsequent API * invocation for that single block cipher. * * Return: allocated cipher handle in case of success; IS_ERR() is true in case * of an error, PTR_ERR() returns the error code. */ static inline struct crypto_cipher *crypto_alloc_cipher(const char *alg_name, u32 type, u32 mask) { type &= ~CRYPTO_ALG_TYPE_MASK; type |= CRYPTO_ALG_TYPE_CIPHER; mask |= CRYPTO_ALG_TYPE_MASK; return __crypto_cipher_cast(crypto_alloc_base(alg_name, type, mask)); } static inline struct crypto_tfm *crypto_cipher_tfm(struct crypto_cipher *tfm) { return &tfm->base; } /** * crypto_free_cipher() - zeroize and free the single block cipher handle * @tfm: cipher handle to be freed */ static inline void crypto_free_cipher(struct crypto_cipher *tfm) { crypto_free_tfm(crypto_cipher_tfm(tfm)); } /** * crypto_has_cipher() - Search for the availability of a single block cipher * @alg_name: is the cra_name / name or cra_driver_name / driver name of the * single block cipher * @type: specifies the type of the cipher * @mask: specifies the mask for the cipher * * Return: true when the single block cipher is known to the kernel crypto API; * false otherwise */ static inline int crypto_has_cipher(const char *alg_name, u32 type, u32 mask) { type &= ~CRYPTO_ALG_TYPE_MASK; type |= CRYPTO_ALG_TYPE_CIPHER; mask |= CRYPTO_ALG_TYPE_MASK; return crypto_has_alg(alg_name, type, mask); } static inline struct cipher_tfm *crypto_cipher_crt(struct crypto_cipher *tfm) { return &crypto_cipher_tfm(tfm)->crt_cipher; } /** * crypto_cipher_blocksize() - obtain block size for cipher * @tfm: cipher handle * * The block size for the single block cipher referenced with the cipher handle * tfm is returned. The caller may use that information to allocate appropriate * memory for the data returned by the encryption or decryption operation * * Return: block size of cipher */ static inline unsigned int crypto_cipher_blocksize(struct crypto_cipher *tfm) { return crypto_tfm_alg_blocksize(crypto_cipher_tfm(tfm)); } static inline unsigned int crypto_cipher_alignmask(struct crypto_cipher *tfm) { return crypto_tfm_alg_alignmask(crypto_cipher_tfm(tfm)); } static inline u32 crypto_cipher_get_flags(struct crypto_cipher *tfm) { return crypto_tfm_get_flags(crypto_cipher_tfm(tfm)); } static inline void crypto_cipher_set_flags(struct crypto_cipher *tfm, u32 flags) { crypto_tfm_set_flags(crypto_cipher_tfm(tfm), flags); } static inline void crypto_cipher_clear_flags(struct crypto_cipher *tfm, u32 flags) { crypto_tfm_clear_flags(crypto_cipher_tfm(tfm), flags); } /** * crypto_cipher_setkey() - set key for cipher * @tfm: cipher handle * @key: buffer holding the key * @keylen: length of the key in bytes * * The caller provided key is set for the single block cipher referenced by the * cipher handle. * * Note, the key length determines the cipher type. Many block ciphers implement * different cipher modes depending on the key size, such as AES-128 vs AES-192 * vs. AES-256. When providing a 16 byte key for an AES cipher handle, AES-128 * is performed. * * Return: 0 if the setting of the key was successful; < 0 if an error occurred */ static inline int crypto_cipher_setkey(struct crypto_cipher *tfm, const u8 *key, unsigned int keylen) { return crypto_cipher_crt(tfm)->cit_setkey(crypto_cipher_tfm(tfm), key, keylen); } /** * crypto_cipher_encrypt_one() - encrypt one block of plaintext * @tfm: cipher handle * @dst: points to the buffer that will be filled with the ciphertext * @src: buffer holding the plaintext to be encrypted * * Invoke the encryption operation of one block. The caller must ensure that * the plaintext and ciphertext buffers are at least one block in size. */ static inline void crypto_cipher_encrypt_one(struct crypto_cipher *tfm, u8 *dst, const u8 *src) { crypto_cipher_crt(tfm)->cit_encrypt_one(crypto_cipher_tfm(tfm), dst, src); } /** * crypto_cipher_decrypt_one() - decrypt one block of ciphertext * @tfm: cipher handle * @dst: points to the buffer that will be filled with the plaintext * @src: buffer holding the ciphertext to be decrypted * * Invoke the decryption operation of one block. The caller must ensure that * the plaintext and ciphertext buffers are at least one block in size. */ static inline void crypto_cipher_decrypt_one(struct crypto_cipher *tfm, u8 *dst, const u8 *src) { crypto_cipher_crt(tfm)->cit_decrypt_one(crypto_cipher_tfm(tfm), dst, src); } /** * DOC: Synchronous Message Digest API * * The synchronous message digest API is used with the ciphers of type * CRYPTO_ALG_TYPE_HASH (listed as type "hash" in /proc/crypto) */ static inline struct crypto_hash *__crypto_hash_cast(struct crypto_tfm *tfm) { return (struct crypto_hash *)tfm; } static inline struct crypto_hash *crypto_hash_cast(struct crypto_tfm *tfm) { BUG_ON((crypto_tfm_alg_type(tfm) ^ CRYPTO_ALG_TYPE_HASH) & CRYPTO_ALG_TYPE_HASH_MASK); return __crypto_hash_cast(tfm); } /** * crypto_alloc_hash() - allocate synchronous message digest handle * @alg_name: is the cra_name / name or cra_driver_name / driver name of the * message digest cipher * @type: specifies the type of the cipher * @mask: specifies the mask for the cipher * * Allocate a cipher handle for a message digest. The returned struct * crypto_hash is the cipher handle that is required for any subsequent * API invocation for that message digest. * * Return: allocated cipher handle in case of success; IS_ERR() is true in case * of an error, PTR_ERR() returns the error code. */ static inline struct crypto_hash *crypto_alloc_hash(const char *alg_name, u32 type, u32 mask) { type &= ~CRYPTO_ALG_TYPE_MASK; mask &= ~CRYPTO_ALG_TYPE_MASK; type |= CRYPTO_ALG_TYPE_HASH; mask |= CRYPTO_ALG_TYPE_HASH_MASK; return __crypto_hash_cast(crypto_alloc_base(alg_name, type, mask)); } static inline struct crypto_tfm *crypto_hash_tfm(struct crypto_hash *tfm) { return &tfm->base; } /** * crypto_free_hash() - zeroize and free message digest handle * @tfm: cipher handle to be freed */ static inline void crypto_free_hash(struct crypto_hash *tfm) { crypto_free_tfm(crypto_hash_tfm(tfm)); } /** * crypto_has_hash() - Search for the availability of a message digest * @alg_name: is the cra_name / name or cra_driver_name / driver name of the * message digest cipher * @type: specifies the type of the cipher * @mask: specifies the mask for the cipher * * Return: true when the message digest cipher is known to the kernel crypto * API; false otherwise */ static inline int crypto_has_hash(const char *alg_name, u32 type, u32 mask) { type &= ~CRYPTO_ALG_TYPE_MASK; mask &= ~CRYPTO_ALG_TYPE_MASK; type |= CRYPTO_ALG_TYPE_HASH; mask |= CRYPTO_ALG_TYPE_HASH_MASK; return crypto_has_alg(alg_name, type, mask); } static inline struct hash_tfm *crypto_hash_crt(struct crypto_hash *tfm) { return &crypto_hash_tfm(tfm)->crt_hash; } /** * crypto_hash_blocksize() - obtain block size for message digest * @tfm: cipher handle * * The block size for the message digest cipher referenced with the cipher * handle is returned. * * Return: block size of cipher */ static inline unsigned int crypto_hash_blocksize(struct crypto_hash *tfm) { return crypto_tfm_alg_blocksize(crypto_hash_tfm(tfm)); } static inline unsigned int crypto_hash_alignmask(struct crypto_hash *tfm) { return crypto_tfm_alg_alignmask(crypto_hash_tfm(tfm)); } /** * crypto_hash_digestsize() - obtain message digest size * @tfm: cipher handle * * The size for the message digest created by the message digest cipher * referenced with the cipher handle is returned. * * Return: message digest size */ static inline unsigned int crypto_hash_digestsize(struct crypto_hash *tfm) { return crypto_hash_crt(tfm)->digestsize; } static inline u32 crypto_hash_get_flags(struct crypto_hash *tfm) { return crypto_tfm_get_flags(crypto_hash_tfm(tfm)); } static inline void crypto_hash_set_flags(struct crypto_hash *tfm, u32 flags) { crypto_tfm_set_flags(crypto_hash_tfm(tfm), flags); } static inline void crypto_hash_clear_flags(struct crypto_hash *tfm, u32 flags) { crypto_tfm_clear_flags(crypto_hash_tfm(tfm), flags); } /** * crypto_hash_init() - (re)initialize message digest handle * @desc: cipher request handle that to be filled by caller -- * desc.tfm is filled with the hash cipher handle; * desc.flags is filled with either CRYPTO_TFM_REQ_MAY_SLEEP or 0. * * The call (re-)initializes the message digest referenced by the hash cipher * request handle. Any potentially existing state created by previous * operations is discarded. * * Return: 0 if the message digest initialization was successful; < 0 if an * error occurred */ static inline int crypto_hash_init(struct hash_desc *desc) { return crypto_hash_crt(desc->tfm)->init(desc); } /** * crypto_hash_update() - add data to message digest for processing * @desc: cipher request handle * @sg: scatter / gather list pointing to the data to be added to the message * digest * @nbytes: number of bytes to be processed from @sg * * Updates the message digest state of the cipher handle pointed to by the * hash cipher request handle with the input data pointed to by the * scatter/gather list. * * Return: 0 if the message digest update was successful; < 0 if an error * occurred */ static inline int crypto_hash_update(struct hash_desc *desc, struct scatterlist *sg, unsigned int nbytes) { return crypto_hash_crt(desc->tfm)->update(desc, sg, nbytes); } /** * crypto_hash_final() - calculate message digest * @desc: cipher request handle * @out: message digest output buffer -- The caller must ensure that the out * buffer has a sufficient size (e.g. by using the crypto_hash_digestsize * function). * * Finalize the message digest operation and create the message digest * based on all data added to the cipher handle. The message digest is placed * into the output buffer. * * Return: 0 if the message digest creation was successful; < 0 if an error * occurred */ static inline int crypto_hash_final(struct hash_desc *desc, u8 *out) { return crypto_hash_crt(desc->tfm)->final(desc, out); } /** * crypto_hash_digest() - calculate message digest for a buffer * @desc: see crypto_hash_final() * @sg: see crypto_hash_update() * @nbytes: see crypto_hash_update() * @out: see crypto_hash_final() * * This function is a "short-hand" for the function calls of crypto_hash_init, * crypto_hash_update and crypto_hash_final. The parameters have the same * meaning as discussed for those separate three functions. * * Return: 0 if the message digest creation was successful; < 0 if an error * occurred */ static inline int crypto_hash_digest(struct hash_desc *desc, struct scatterlist *sg, unsigned int nbytes, u8 *out) { return crypto_hash_crt(desc->tfm)->digest(desc, sg, nbytes, out); } /** * crypto_hash_setkey() - set key for message digest * @hash: cipher handle * @key: buffer holding the key * @keylen: length of the key in bytes * * The caller provided key is set for the message digest cipher. The cipher * handle must point to a keyed hash in order for this function to succeed. * * Return: 0 if the setting of the key was successful; < 0 if an error occurred */ static inline int crypto_hash_setkey(struct crypto_hash *hash, const u8 *key, unsigned int keylen) { return crypto_hash_crt(hash)->setkey(hash, key, keylen); } static inline struct crypto_comp *__crypto_comp_cast(struct crypto_tfm *tfm) { return (struct crypto_comp *)tfm; } static inline struct crypto_comp *crypto_comp_cast(struct crypto_tfm *tfm) { BUG_ON((crypto_tfm_alg_type(tfm) ^ CRYPTO_ALG_TYPE_COMPRESS) & CRYPTO_ALG_TYPE_MASK); return __crypto_comp_cast(tfm); } static inline struct crypto_comp *crypto_alloc_comp(const char *alg_name, u32 type, u32 mask) { type &= ~CRYPTO_ALG_TYPE_MASK; type |= CRYPTO_ALG_TYPE_COMPRESS; mask |= CRYPTO_ALG_TYPE_MASK; return __crypto_comp_cast(crypto_alloc_base(alg_name, type, mask)); } static inline struct crypto_tfm *crypto_comp_tfm(struct crypto_comp *tfm) { return &tfm->base; } static inline void crypto_free_comp(struct crypto_comp *tfm) { crypto_free_tfm(crypto_comp_tfm(tfm)); } static inline int crypto_has_comp(const char *alg_name, u32 type, u32 mask) { type &= ~CRYPTO_ALG_TYPE_MASK; type |= CRYPTO_ALG_TYPE_COMPRESS; mask |= CRYPTO_ALG_TYPE_MASK; return crypto_has_alg(alg_name, type, mask); } static inline const char *crypto_comp_name(struct crypto_comp *tfm) { return crypto_tfm_alg_name(crypto_comp_tfm(tfm)); } static inline struct compress_tfm *crypto_comp_crt(struct crypto_comp *tfm) { return &crypto_comp_tfm(tfm)->crt_compress; } static inline int crypto_comp_compress(struct crypto_comp *tfm, const u8 *src, unsigned int slen, u8 *dst, unsigned int *dlen) { return crypto_comp_crt(tfm)->cot_compress(crypto_comp_tfm(tfm), src, slen, dst, dlen); } static inline int crypto_comp_decompress(struct crypto_comp *tfm, const u8 *src, unsigned int slen, u8 *dst, unsigned int *dlen) { return crypto_comp_crt(tfm)->cot_decompress(crypto_comp_tfm(tfm), src, slen, dst, dlen); } #endif /* _LINUX_CRYPTO_H */