init: loosen serialize_overlap restrictions
[fio.git] / fio.1
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523bad63 1.TH fio 1 "August 2017" "User Manual"
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2.SH NAME
3fio \- flexible I/O tester
4.SH SYNOPSIS
5.B fio
6[\fIoptions\fR] [\fIjobfile\fR]...
7.SH DESCRIPTION
8.B fio
9is a tool that will spawn a number of threads or processes doing a
10particular type of I/O action as specified by the user.
11The typical use of fio is to write a job file matching the I/O load
12one wants to simulate.
13.SH OPTIONS
14.TP
49da1240 15.BI \-\-debug \fR=\fPtype
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16Enable verbose tracing \fItype\fR of various fio actions. May be `all' for all \fItype\fRs
17or individual types separated by a comma (e.g. `\-\-debug=file,mem' will enable
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18file and memory debugging). `help' will list all available tracing options.
19.TP
7db7a5a0 20.BI \-\-parse\-only
bdd88be3 21Parse options only, don't start any I/O.
49da1240 22.TP
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DZ
23.BI \-\-merge\-blktrace\-only
24Merge blktraces only, don't start any I/O.
25.TP
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26.BI \-\-output \fR=\fPfilename
27Write output to \fIfilename\fR.
28.TP
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29.BI \-\-output\-format \fR=\fPformat
30Set the reporting \fIformat\fR to `normal', `terse', `json', or
31`json+'. Multiple formats can be selected, separate by a comma. `terse'
32is a CSV based format. `json+' is like `json', except it adds a full
513e37ee 33dump of the latency buckets.
e28ee21d 34.TP
7db7a5a0 35.BI \-\-bandwidth\-log
d23ae827 36Generate aggregate bandwidth logs.
d60e92d1 37.TP
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38.BI \-\-minimal
39Print statistics in a terse, semicolon\-delimited format.
d60e92d1 40.TP
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41.BI \-\-append\-terse
42Print statistics in selected mode AND terse, semicolon\-delimited format.
43\fBDeprecated\fR, use \fB\-\-output\-format\fR instead to select multiple formats.
f6a7df53 44.TP
065248bf 45.BI \-\-terse\-version \fR=\fPversion
7db7a5a0 46Set terse \fIversion\fR output format (default `3', or `2', `4', `5').
49da1240 47.TP
7db7a5a0 48.BI \-\-version
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49Print version information and exit.
50.TP
7db7a5a0 51.BI \-\-help
bdd88be3 52Print a summary of the command line options and exit.
49da1240 53.TP
7db7a5a0 54.BI \-\-cpuclock\-test
bdd88be3 55Perform test and validation of internal CPU clock.
fec0f21c 56.TP
bdd88be3 57.BI \-\-crctest \fR=\fP[test]
7db7a5a0 58Test the speed of the built\-in checksumming functions. If no argument is given,
bdd88be3 59all of them are tested. Alternatively, a comma separated list can be passed, in which
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60case the given ones are tested.
61.TP
49da1240 62.BI \-\-cmdhelp \fR=\fPcommand
bdd88be3 63Print help information for \fIcommand\fR. May be `all' for all commands.
49da1240 64.TP
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65.BI \-\-enghelp \fR=\fP[ioengine[,command]]
66List all commands defined by \fIioengine\fR, or print help for \fIcommand\fR
67defined by \fIioengine\fR. If no \fIioengine\fR is given, list all
68available ioengines.
de890a1e 69.TP
d60e92d1 70.BI \-\-showcmd \fR=\fPjobfile
7db7a5a0 71Convert \fIjobfile\fR to a set of command\-line options.
d60e92d1 72.TP
bdd88be3 73.BI \-\-readonly
4027b2a1 74Turn on safety read\-only checks, preventing writes and trims. The \fB\-\-readonly\fR
bdd88be3 75option is an extra safety guard to prevent users from accidentally starting
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VF
76a write or trim workload when that is not desired. Fio will only modify the
77device under test if `rw=write/randwrite/rw/randrw/trim/randtrim/trimwrite'
78is given. This safety net can be used as an extra precaution.
bdd88be3 79.TP
d60e92d1 80.BI \-\-eta \fR=\fPwhen
7db7a5a0 81Specifies when real\-time ETA estimate should be printed. \fIwhen\fR may
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82be `always', `never' or `auto'. `auto' is the default, it prints ETA when
83requested if the output is a TTY. `always' disregards the output type, and
84prints ETA when requested. `never' never prints ETA.
85.TP
86.BI \-\-eta\-interval \fR=\fPtime
87By default, fio requests client ETA status roughly every second. With this
88option, the interval is configurable. Fio imposes a minimum allowed time to
89avoid flooding the console, less than 250 msec is not supported.
d60e92d1 90.TP
30b5d57f 91.BI \-\-eta\-newline \fR=\fPtime
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92Force a new line for every \fItime\fR period passed. When the unit is omitted,
93the value is interpreted in seconds.
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94.TP
95.BI \-\-status\-interval \fR=\fPtime
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VF
96Force a full status dump of cumulative (from job start) values at \fItime\fR
97intervals. This option does *not* provide per-period measurements. So
98values such as bandwidth are running averages. When the time unit is omitted,
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99\fItime\fR is interpreted in seconds. Note that using this option with
100`\-\-output-format=json' will yield output that technically isn't valid json,
101since the output will be collated sets of valid json. It will need to be split
102into valid sets of json after the run.
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103.TP
104.BI \-\-section \fR=\fPname
105Only run specified section \fIname\fR in job file. Multiple sections can be specified.
7db7a5a0 106The \fB\-\-section\fR option allows one to combine related jobs into one file.
bdd88be3 107E.g. one job file could define light, moderate, and heavy sections. Tell
7db7a5a0 108fio to run only the "heavy" section by giving `\-\-section=heavy'
bdd88be3 109command line option. One can also specify the "write" operations in one
7db7a5a0 110section and "verify" operation in another section. The \fB\-\-section\fR option
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111only applies to job sections. The reserved *global* section is always
112parsed and used.
c0a5d35e 113.TP
49da1240 114.BI \-\-alloc\-size \fR=\fPkb
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115Set the internal smalloc pool size to \fIkb\fR in KiB. The
116\fB\-\-alloc\-size\fR switch allows one to use a larger pool size for smalloc.
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117If running large jobs with randommap enabled, fio can run out of memory.
118Smalloc is an internal allocator for shared structures from a fixed size
119memory pool and can grow to 16 pools. The pool size defaults to 16MiB.
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120NOTE: While running `.fio_smalloc.*' backing store files are visible
121in `/tmp'.
d60e92d1 122.TP
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123.BI \-\-warnings\-fatal
124All fio parser warnings are fatal, causing fio to exit with an error.
9183788d 125.TP
49da1240 126.BI \-\-max\-jobs \fR=\fPnr
7db7a5a0 127Set the maximum number of threads/processes to support to \fInr\fR.
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128NOTE: On Linux, it may be necessary to increase the shared-memory limit
129(`/proc/sys/kernel/shmmax') if fio runs into errors while creating jobs.
d60e92d1 130.TP
49da1240 131.BI \-\-server \fR=\fPargs
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132Start a backend server, with \fIargs\fR specifying what to listen to.
133See \fBCLIENT/SERVER\fR section.
f57a9c59 134.TP
49da1240 135.BI \-\-daemonize \fR=\fPpidfile
7db7a5a0 136Background a fio server, writing the pid to the given \fIpidfile\fR file.
49da1240 137.TP
bdd88be3 138.BI \-\-client \fR=\fPhostname
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139Instead of running the jobs locally, send and run them on the given \fIhostname\fR
140or set of \fIhostname\fRs. See \fBCLIENT/SERVER\fR section.
bdd88be3 141.TP
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142.BI \-\-remote\-config \fR=\fPfile
143Tell fio server to load this local \fIfile\fR.
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144.TP
145.BI \-\-idle\-prof \fR=\fPoption
7db7a5a0 146Report CPU idleness. \fIoption\fR is one of the following:
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147.RS
148.RS
149.TP
150.B calibrate
151Run unit work calibration only and exit.
152.TP
153.B system
154Show aggregate system idleness and unit work.
155.TP
156.B percpu
7db7a5a0 157As \fBsystem\fR but also show per CPU idleness.
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158.RE
159.RE
160.TP
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161.BI \-\-inflate\-log \fR=\fPlog
162Inflate and output compressed \fIlog\fR.
bdd88be3 163.TP
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164.BI \-\-trigger\-file \fR=\fPfile
165Execute trigger command when \fIfile\fR exists.
bdd88be3 166.TP
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167.BI \-\-trigger\-timeout \fR=\fPtime
168Execute trigger at this \fItime\fR.
bdd88be3 169.TP
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170.BI \-\-trigger \fR=\fPcommand
171Set this \fIcommand\fR as local trigger.
bdd88be3 172.TP
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173.BI \-\-trigger\-remote \fR=\fPcommand
174Set this \fIcommand\fR as remote trigger.
bdd88be3 175.TP
7db7a5a0 176.BI \-\-aux\-path \fR=\fPpath
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177Use the directory specified by \fIpath\fP for generated state files instead
178of the current working directory.
d60e92d1 179.SH "JOB FILE FORMAT"
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180Any parameters following the options will be assumed to be job files, unless
181they match a job file parameter. Multiple job files can be listed and each job
7db7a5a0 182file will be regarded as a separate group. Fio will \fBstonewall\fR execution
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183between each group.
184
185Fio accepts one or more job files describing what it is
186supposed to do. The job file format is the classic ini file, where the names
187enclosed in [] brackets define the job name. You are free to use any ASCII name
188you want, except *global* which has special meaning. Following the job name is
189a sequence of zero or more parameters, one per line, that define the behavior of
190the job. If the first character in a line is a ';' or a '#', the entire line is
191discarded as a comment.
192
193A *global* section sets defaults for the jobs described in that file. A job may
194override a *global* section parameter, and a job file may even have several
195*global* sections if so desired. A job is only affected by a *global* section
196residing above it.
197
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198The \fB\-\-cmdhelp\fR option also lists all options. If used with an \fIcommand\fR
199argument, \fB\-\-cmdhelp\fR will detail the given \fIcommand\fR.
7a14cf18 200
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201See the `examples/' directory for inspiration on how to write job files. Note
202the copyright and license requirements currently apply to
203`examples/' files.
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204.SH "JOB FILE PARAMETERS"
205Some parameters take an option of a given type, such as an integer or a
206string. Anywhere a numeric value is required, an arithmetic expression may be
207used, provided it is surrounded by parentheses. Supported operators are:
d59aa780 208.RS
7db7a5a0 209.P
d59aa780 210.B addition (+)
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211.P
212.B subtraction (\-)
213.P
d59aa780 214.B multiplication (*)
7db7a5a0 215.P
d59aa780 216.B division (/)
7db7a5a0 217.P
d59aa780 218.B modulus (%)
7db7a5a0 219.P
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220.B exponentiation (^)
221.RE
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222.P
223For time values in expressions, units are microseconds by default. This is
224different than for time values not in expressions (not enclosed in
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225parentheses).
226.SH "PARAMETER TYPES"
227The following parameter types are used.
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228.TP
229.I str
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230String. A sequence of alphanumeric characters.
231.TP
232.I time
233Integer with possible time suffix. Without a unit value is interpreted as
234seconds unless otherwise specified. Accepts a suffix of 'd' for days, 'h' for
235hours, 'm' for minutes, 's' for seconds, 'ms' (or 'msec') for milliseconds and 'us'
236(or 'usec') for microseconds. For example, use 10m for 10 minutes.
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237.TP
238.I int
6d500c2e
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239Integer. A whole number value, which may contain an integer prefix
240and an integer suffix.
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241.RS
242.RS
243.P
6b86fc18 244[*integer prefix*] **number** [*integer suffix*]
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245.RE
246.P
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247The optional *integer prefix* specifies the number's base. The default
248is decimal. *0x* specifies hexadecimal.
0b43a833 249.P
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250The optional *integer suffix* specifies the number's units, and includes an
251optional unit prefix and an optional unit. For quantities of data, the
252default unit is bytes. For quantities of time, the default unit is seconds
253unless otherwise specified.
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254.P
255With `kb_base=1000', fio follows international standards for unit
7db7a5a0 256prefixes. To specify power\-of\-10 decimal values defined in the
6b86fc18 257International System of Units (SI):
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258.RS
259.P
7db7a5a0 260.PD 0
eccce61a 261K means kilo (K) or 1000
7db7a5a0 262.P
eccce61a 263M means mega (M) or 1000**2
7db7a5a0 264.P
eccce61a 265G means giga (G) or 1000**3
7db7a5a0 266.P
eccce61a 267T means tera (T) or 1000**4
7db7a5a0 268.P
eccce61a 269P means peta (P) or 1000**5
7db7a5a0 270.PD
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271.RE
272.P
7db7a5a0 273To specify power\-of\-2 binary values defined in IEC 80000\-13:
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274.RS
275.P
7db7a5a0 276.PD 0
eccce61a 277Ki means kibi (Ki) or 1024
7db7a5a0 278.P
eccce61a 279Mi means mebi (Mi) or 1024**2
7db7a5a0 280.P
eccce61a 281Gi means gibi (Gi) or 1024**3
7db7a5a0 282.P
eccce61a 283Ti means tebi (Ti) or 1024**4
7db7a5a0 284.P
eccce61a 285Pi means pebi (Pi) or 1024**5
7db7a5a0 286.PD
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287.RE
288.P
289With `kb_base=1024' (the default), the unit prefixes are opposite
7db7a5a0 290from those specified in the SI and IEC 80000\-13 standards to provide
6b86fc18 291compatibility with old scripts. For example, 4k means 4096.
0b43a833 292.P
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293For quantities of data, an optional unit of 'B' may be included
294(e.g., 'kB' is the same as 'k').
0b43a833 295.P
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296The *integer suffix* is not case sensitive (e.g., m/mi mean mebi/mega,
297not milli). 'b' and 'B' both mean byte, not bit.
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298.P
299Examples with `kb_base=1000':
300.RS
301.P
7db7a5a0 302.PD 0
6d500c2e 3034 KiB: 4096, 4096b, 4096B, 4k, 4kb, 4kB, 4K, 4KB
7db7a5a0 304.P
6d500c2e 3051 MiB: 1048576, 1m, 1024k
7db7a5a0 306.P
6d500c2e 3071 MB: 1000000, 1mi, 1000ki
7db7a5a0 308.P
6d500c2e 3091 TiB: 1073741824, 1t, 1024m, 1048576k
7db7a5a0 310.P
6d500c2e 3111 TB: 1000000000, 1ti, 1000mi, 1000000ki
7db7a5a0 312.PD
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313.RE
314.P
315Examples with `kb_base=1024' (default):
316.RS
317.P
7db7a5a0 318.PD 0
6d500c2e 3194 KiB: 4096, 4096b, 4096B, 4k, 4kb, 4kB, 4K, 4KB
7db7a5a0 320.P
6d500c2e 3211 MiB: 1048576, 1m, 1024k
7db7a5a0 322.P
6d500c2e 3231 MB: 1000000, 1mi, 1000ki
7db7a5a0 324.P
6d500c2e 3251 TiB: 1073741824, 1t, 1024m, 1048576k
7db7a5a0 326.P
6d500c2e 3271 TB: 1000000000, 1ti, 1000mi, 1000000ki
7db7a5a0 328.PD
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329.RE
330.P
6d500c2e 331To specify times (units are not case sensitive):
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332.RS
333.P
7db7a5a0 334.PD 0
6d500c2e 335D means days
7db7a5a0 336.P
6d500c2e 337H means hours
7db7a5a0 338.P
6d500c2e 339M mean minutes
7db7a5a0 340.P
6d500c2e 341s or sec means seconds (default)
7db7a5a0 342.P
6d500c2e 343ms or msec means milliseconds
7db7a5a0 344.P
6d500c2e 345us or usec means microseconds
7db7a5a0 346.PD
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347.RE
348.P
6b86fc18 349If the option accepts an upper and lower range, use a colon ':' or
7db7a5a0 350minus '\-' to separate such values. See \fIirange\fR parameter type.
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351If the lower value specified happens to be larger than the upper value
352the two values are swapped.
0b43a833 353.RE
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354.TP
355.I bool
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356Boolean. Usually parsed as an integer, however only defined for
357true and false (1 and 0).
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358.TP
359.I irange
6b86fc18 360Integer range with suffix. Allows value range to be given, such as
7db7a5a0 3611024\-4096. A colon may also be used as the separator, e.g. 1k:4k. If the
6b86fc18 362option allows two sets of ranges, they can be specified with a ',' or '/'
7db7a5a0 363delimiter: 1k\-4k/8k\-32k. Also see \fIint\fR parameter type.
83349190
YH
364.TP
365.I float_list
6b86fc18 366A list of floating point numbers, separated by a ':' character.
523bad63 367.SH "JOB PARAMETERS"
54eb4569 368With the above in mind, here follows the complete list of fio job parameters.
523bad63 369.SS "Units"
d60e92d1 370.TP
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371.BI kb_base \fR=\fPint
372Select the interpretation of unit prefixes in input parameters.
373.RS
374.RS
d60e92d1 375.TP
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376.B 1000
377Inputs comply with IEC 80000\-13 and the International
378System of Units (SI). Use:
379.RS
380.P
381.PD 0
382\- power\-of\-2 values with IEC prefixes (e.g., KiB)
383.P
384\- power\-of\-10 values with SI prefixes (e.g., kB)
385.PD
386.RE
387.TP
388.B 1024
389Compatibility mode (default). To avoid breaking old scripts:
390.P
391.RS
392.PD 0
393\- power\-of\-2 values with SI prefixes
394.P
395\- power\-of\-10 values with IEC prefixes
396.PD
397.RE
398.RE
399.P
400See \fBbs\fR for more details on input parameters.
401.P
402Outputs always use correct prefixes. Most outputs include both
403side\-by\-side, like:
404.P
405.RS
406bw=2383.3kB/s (2327.4KiB/s)
407.RE
408.P
409If only one value is reported, then kb_base selects the one to use:
410.P
411.RS
412.PD 0
4131000 \-\- SI prefixes
414.P
4151024 \-\- IEC prefixes
416.PD
417.RE
418.RE
419.TP
420.BI unit_base \fR=\fPint
421Base unit for reporting. Allowed values are:
422.RS
423.RS
424.TP
425.B 0
426Use auto\-detection (default).
427.TP
428.B 8
429Byte based.
430.TP
431.B 1
432Bit based.
433.RE
434.RE
435.SS "Job description"
436.TP
437.BI name \fR=\fPstr
438ASCII name of the job. This may be used to override the name printed by fio
439for this job. Otherwise the job name is used. On the command line this
440parameter has the special purpose of also signaling the start of a new job.
9cc8cb91 441.TP
d60e92d1 442.BI description \fR=\fPstr
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443Text description of the job. Doesn't do anything except dump this text
444description when this job is run. It's not parsed.
445.TP
446.BI loops \fR=\fPint
447Run the specified number of iterations of this job. Used to repeat the same
448workload a given number of times. Defaults to 1.
449.TP
450.BI numjobs \fR=\fPint
451Create the specified number of clones of this job. Each clone of job
452is spawned as an independent thread or process. May be used to setup a
453larger number of threads/processes doing the same thing. Each thread is
454reported separately; to see statistics for all clones as a whole, use
455\fBgroup_reporting\fR in conjunction with \fBnew_group\fR.
456See \fB\-\-max\-jobs\fR. Default: 1.
457.SS "Time related parameters"
458.TP
459.BI runtime \fR=\fPtime
460Tell fio to terminate processing after the specified period of time. It
461can be quite hard to determine for how long a specified job will run, so
462this parameter is handy to cap the total runtime to a given time. When
f1dd3fb1 463the unit is omitted, the value is interpreted in seconds.
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464.TP
465.BI time_based
466If set, fio will run for the duration of the \fBruntime\fR specified
467even if the file(s) are completely read or written. It will simply loop over
468the same workload as many times as the \fBruntime\fR allows.
469.TP
470.BI startdelay \fR=\fPirange(int)
471Delay the start of job for the specified amount of time. Can be a single
472value or a range. When given as a range, each thread will choose a value
473randomly from within the range. Value is in seconds if a unit is omitted.
474.TP
475.BI ramp_time \fR=\fPtime
476If set, fio will run the specified workload for this amount of time before
477logging any performance numbers. Useful for letting performance settle
478before logging results, thus minimizing the runtime required for stable
479results. Note that the \fBramp_time\fR is considered lead in time for a job,
480thus it will increase the total runtime if a special timeout or
481\fBruntime\fR is specified. When the unit is omitted, the value is
482given in seconds.
483.TP
484.BI clocksource \fR=\fPstr
485Use the given clocksource as the base of timing. The supported options are:
486.RS
487.RS
488.TP
489.B gettimeofday
490\fBgettimeofday\fR\|(2)
491.TP
492.B clock_gettime
493\fBclock_gettime\fR\|(2)
494.TP
495.B cpu
496Internal CPU clock source
497.RE
498.P
499\fBcpu\fR is the preferred clocksource if it is reliable, as it is very fast (and
500fio is heavy on time calls). Fio will automatically use this clocksource if
501it's supported and considered reliable on the system it is running on,
502unless another clocksource is specifically set. For x86/x86\-64 CPUs, this
503means supporting TSC Invariant.
504.RE
505.TP
506.BI gtod_reduce \fR=\fPbool
507Enable all of the \fBgettimeofday\fR\|(2) reducing options
508(\fBdisable_clat\fR, \fBdisable_slat\fR, \fBdisable_bw_measurement\fR) plus
509reduce precision of the timeout somewhat to really shrink the
510\fBgettimeofday\fR\|(2) call count. With this option enabled, we only do
511about 0.4% of the \fBgettimeofday\fR\|(2) calls we would have done if all
512time keeping was enabled.
513.TP
514.BI gtod_cpu \fR=\fPint
515Sometimes it's cheaper to dedicate a single thread of execution to just
516getting the current time. Fio (and databases, for instance) are very
517intensive on \fBgettimeofday\fR\|(2) calls. With this option, you can set
518one CPU aside for doing nothing but logging current time to a shared memory
519location. Then the other threads/processes that run I/O workloads need only
520copy that segment, instead of entering the kernel with a
521\fBgettimeofday\fR\|(2) call. The CPU set aside for doing these time
522calls will be excluded from other uses. Fio will manually clear it from the
523CPU mask of other jobs.
524.SS "Target file/device"
d60e92d1
AC
525.TP
526.BI directory \fR=\fPstr
523bad63
TK
527Prefix \fBfilename\fRs with this directory. Used to place files in a different
528location than `./'. You can specify a number of directories by
529separating the names with a ':' character. These directories will be
530assigned equally distributed to job clones created by \fBnumjobs\fR as
531long as they are using generated filenames. If specific \fBfilename\fR(s) are
532set fio will use the first listed directory, and thereby matching the
f4401bf8
SW
533\fBfilename\fR semantic (which generates a file for each clone if not
534specified, but lets all clones use the same file if set).
523bad63
TK
535.RS
536.P
ffc90a44 537See the \fBfilename\fR option for information on how to escape ':' and '\\'
523bad63 538characters within the directory path itself.
f4401bf8
SW
539.P
540Note: To control the directory fio will use for internal state files
541use \fB\-\-aux\-path\fR.
523bad63 542.RE
d60e92d1
AC
543.TP
544.BI filename \fR=\fPstr
523bad63
TK
545Fio normally makes up a \fBfilename\fR based on the job name, thread number, and
546file number (see \fBfilename_format\fR). If you want to share files
547between threads in a job or several
548jobs with fixed file paths, specify a \fBfilename\fR for each of them to override
549the default. If the ioengine is file based, you can specify a number of files
550by separating the names with a ':' colon. So if you wanted a job to open
551`/dev/sda' and `/dev/sdb' as the two working files, you would use
552`filename=/dev/sda:/dev/sdb'. This also means that whenever this option is
553specified, \fBnrfiles\fR is ignored. The size of regular files specified
554by this option will be \fBsize\fR divided by number of files unless an
555explicit size is specified by \fBfilesize\fR.
556.RS
557.P
ffc90a44 558Each colon and backslash in the wanted path must be escaped with a '\\'
523bad63
TK
559character. For instance, if the path is `/dev/dsk/foo@3,0:c' then you
560would use `filename=/dev/dsk/foo@3,0\\:c' and if the path is
ffc90a44 561`F:\\filename' then you would use `filename=F\\:\\\\filename'.
523bad63 562.P
ffc90a44
SW
563On Windows, disk devices are accessed as `\\\\.\\PhysicalDrive0' for
564the first device, `\\\\.\\PhysicalDrive1' for the second etc.
523bad63
TK
565Note: Windows and FreeBSD prevent write access to areas
566of the disk containing in\-use data (e.g. filesystems).
567.P
568The filename `\-' is a reserved name, meaning *stdin* or *stdout*. Which
569of the two depends on the read/write direction set.
570.RE
d60e92d1 571.TP
de98bd30 572.BI filename_format \fR=\fPstr
523bad63
TK
573If sharing multiple files between jobs, it is usually necessary to have fio
574generate the exact names that you want. By default, fio will name a file
de98bd30 575based on the default file format specification of
523bad63 576`jobname.jobnumber.filenumber'. With this option, that can be
de98bd30
JA
577customized. Fio will recognize and replace the following keywords in this
578string:
579.RS
580.RS
581.TP
582.B $jobname
583The name of the worker thread or process.
584.TP
585.B $jobnum
586The incremental number of the worker thread or process.
587.TP
588.B $filenum
589The incremental number of the file for that worker thread or process.
590.RE
591.P
523bad63
TK
592To have dependent jobs share a set of files, this option can be set to have
593fio generate filenames that are shared between the two. For instance, if
594`testfiles.$filenum' is specified, file number 4 for any job will be
595named `testfiles.4'. The default of `$jobname.$jobnum.$filenum'
de98bd30 596will be used if no other format specifier is given.
645943c0
JB
597.P
598If you specify a path then the directories will be created up to the main
599directory for the file. So for example if you specify `a/b/c/$jobnum` then the
600directories a/b/c will be created before the file setup part of the job. If you
601specify \fBdirectory\fR then the path will be relative that directory, otherwise
602it is treated as the absolute path.
de98bd30 603.RE
de98bd30 604.TP
922a5be8 605.BI unique_filename \fR=\fPbool
523bad63
TK
606To avoid collisions between networked clients, fio defaults to prefixing any
607generated filenames (with a directory specified) with the source of the
608client connecting. To disable this behavior, set this option to 0.
609.TP
610.BI opendir \fR=\fPstr
611Recursively open any files below directory \fIstr\fR.
922a5be8 612.TP
3ce9dcaf 613.BI lockfile \fR=\fPstr
523bad63
TK
614Fio defaults to not locking any files before it does I/O to them. If a file
615or file descriptor is shared, fio can serialize I/O to that file to make the
616end result consistent. This is usual for emulating real workloads that share
617files. The lock modes are:
3ce9dcaf
JA
618.RS
619.RS
620.TP
621.B none
523bad63 622No locking. The default.
3ce9dcaf
JA
623.TP
624.B exclusive
523bad63 625Only one thread or process may do I/O at a time, excluding all others.
3ce9dcaf
JA
626.TP
627.B readwrite
523bad63
TK
628Read\-write locking on the file. Many readers may
629access the file at the same time, but writes get exclusive access.
3ce9dcaf 630.RE
ce594fbe 631.RE
523bad63
TK
632.TP
633.BI nrfiles \fR=\fPint
634Number of files to use for this job. Defaults to 1. The size of files
635will be \fBsize\fR divided by this unless explicit size is specified by
636\fBfilesize\fR. Files are created for each thread separately, and each
637file will have a file number within its name by default, as explained in
638\fBfilename\fR section.
639.TP
640.BI openfiles \fR=\fPint
641Number of files to keep open at the same time. Defaults to the same as
642\fBnrfiles\fR, can be set smaller to limit the number simultaneous
643opens.
644.TP
645.BI file_service_type \fR=\fPstr
646Defines how fio decides which file from a job to service next. The following
647types are defined:
648.RS
649.RS
650.TP
651.B random
652Choose a file at random.
653.TP
654.B roundrobin
655Round robin over opened files. This is the default.
656.TP
657.B sequential
658Finish one file before moving on to the next. Multiple files can
659still be open depending on \fBopenfiles\fR.
660.TP
661.B zipf
662Use a Zipf distribution to decide what file to access.
663.TP
664.B pareto
665Use a Pareto distribution to decide what file to access.
666.TP
667.B normal
668Use a Gaussian (normal) distribution to decide what file to access.
669.TP
670.B gauss
671Alias for normal.
672.RE
3ce9dcaf 673.P
523bad63
TK
674For \fBrandom\fR, \fBroundrobin\fR, and \fBsequential\fR, a postfix can be appended to
675tell fio how many I/Os to issue before switching to a new file. For example,
676specifying `file_service_type=random:8' would cause fio to issue
6778 I/Os before selecting a new file at random. For the non\-uniform
678distributions, a floating point postfix can be given to influence how the
679distribution is skewed. See \fBrandom_distribution\fR for a description
680of how that would work.
681.RE
682.TP
683.BI ioscheduler \fR=\fPstr
684Attempt to switch the device hosting the file to the specified I/O scheduler
685before running.
686.TP
687.BI create_serialize \fR=\fPbool
688If true, serialize the file creation for the jobs. This may be handy to
689avoid interleaving of data files, which may greatly depend on the filesystem
690used and even the number of processors in the system. Default: true.
691.TP
692.BI create_fsync \fR=\fPbool
693\fBfsync\fR\|(2) the data file after creation. This is the default.
694.TP
695.BI create_on_open \fR=\fPbool
696If true, don't pre\-create files but allow the job's open() to create a file
697when it's time to do I/O. Default: false \-\- pre\-create all necessary files
698when the job starts.
699.TP
700.BI create_only \fR=\fPbool
701If true, fio will only run the setup phase of the job. If files need to be
702laid out or updated on disk, only that will be done \-\- the actual job contents
703are not executed. Default: false.
704.TP
705.BI allow_file_create \fR=\fPbool
706If true, fio is permitted to create files as part of its workload. If this
707option is false, then fio will error out if
708the files it needs to use don't already exist. Default: true.
709.TP
710.BI allow_mounted_write \fR=\fPbool
711If this isn't set, fio will abort jobs that are destructive (e.g. that write)
712to what appears to be a mounted device or partition. This should help catch
713creating inadvertently destructive tests, not realizing that the test will
714destroy data on the mounted file system. Note that some platforms don't allow
715writing against a mounted device regardless of this option. Default: false.
716.TP
717.BI pre_read \fR=\fPbool
718If this is given, files will be pre\-read into memory before starting the
719given I/O operation. This will also clear the \fBinvalidate\fR flag,
720since it is pointless to pre\-read and then drop the cache. This will only
721work for I/O engines that are seek\-able, since they allow you to read the
722same data multiple times. Thus it will not work on non\-seekable I/O engines
723(e.g. network, splice). Default: false.
724.TP
725.BI unlink \fR=\fPbool
726Unlink the job files when done. Not the default, as repeated runs of that
727job would then waste time recreating the file set again and again. Default:
728false.
729.TP
730.BI unlink_each_loop \fR=\fPbool
731Unlink job files after each iteration or loop. Default: false.
732.TP
7b865a2f
BVA
733.BI zonemode \fR=\fPstr
734Accepted values are:
735.RS
736.RS
737.TP
738.B none
739The \fBzonerange\fR, \fBzonesize\fR and \fBzoneskip\fR parameters are ignored.
740.TP
741.B strided
742I/O happens in a single zone until \fBzonesize\fR bytes have been transferred.
743After that number of bytes has been transferred processing of the next zone
744starts.
745.TP
746.B zbd
747Zoned block device mode. I/O happens sequentially in each zone, even if random
748I/O has been selected. Random I/O happens across all zones instead of being
749restricted to a single zone.
750.RE
751.RE
523bad63
TK
752.TP
753.BI zonerange \fR=\fPint
7b865a2f 754Size of a single zone. See also \fBzonesize\fR and \fBzoneskip\fR.
5faddc64
BVA
755.TP
756.BI zonesize \fR=\fPint
7b865a2f
BVA
757For \fBzonemode\fR=strided, this is the number of bytes to transfer before
758skipping \fBzoneskip\fR bytes. If this parameter is smaller than
759\fBzonerange\fR then only a fraction of each zone with \fBzonerange\fR bytes
760will be accessed. If this parameter is larger than \fBzonerange\fR then each
761zone will be accessed multiple times before skipping to the next zone.
762
763For \fBzonemode\fR=zbd, this is the size of a single zone. The \fBzonerange\fR
764parameter is ignored in this mode.
523bad63
TK
765.TP
766.BI zoneskip \fR=\fPint
7b865a2f
BVA
767For \fBzonemode\fR=strided, the number of bytes to skip after \fBzonesize\fR
768bytes of data have been transferred. This parameter must be zero for
769\fBzonemode\fR=zbd.
5faddc64 770
bfbdd35b
BVA
771.TP
772.BI read_beyond_wp \fR=\fPbool
773This parameter applies to \fBzonemode=zbd\fR only.
774
775Zoned block devices are block devices that consist of multiple zones. Each
776zone has a type, e.g. conventional or sequential. A conventional zone can be
777written at any offset that is a multiple of the block size. Sequential zones
778must be written sequentially. The position at which a write must occur is
779called the write pointer. A zoned block device can be either drive
780managed, host managed or host aware. For host managed devices the host must
781ensure that writes happen sequentially. Fio recognizes host managed devices
782and serializes writes to sequential zones for these devices.
783
784If a read occurs in a sequential zone beyond the write pointer then the zoned
785block device will complete the read without reading any data from the storage
786medium. Since such reads lead to unrealistically high bandwidth and IOPS
787numbers fio only reads beyond the write pointer if explicitly told to do
788so. Default: false.
59b07544
BVA
789.TP
790.BI max_open_zones \fR=\fPint
791When running a random write test across an entire drive many more zones will be
792open than in a typical application workload. Hence this command line option
793that allows to limit the number of open zones. The number of open zones is
794defined as the number of zones to which write commands are issued.
a7c2b6fc
BVA
795.TP
796.BI zone_reset_threshold \fR=\fPfloat
797A number between zero and one that indicates the ratio of logical blocks with
798data to the total number of logical blocks in the test above which zones
799should be reset periodically.
800.TP
801.BI zone_reset_frequency \fR=\fPfloat
802A number between zero and one that indicates how often a zone reset should be
803issued if the zone reset threshold has been exceeded. A zone reset is
804submitted after each (1 / zone_reset_frequency) write requests. This and the
805previous parameter can be used to simulate garbage collection activity.
bfbdd35b 806
523bad63
TK
807.SS "I/O type"
808.TP
809.BI direct \fR=\fPbool
810If value is true, use non\-buffered I/O. This is usually O_DIRECT. Note that
8e889110 811OpenBSD and ZFS on Solaris don't support direct I/O. On Windows the synchronous
523bad63
TK
812ioengines don't support direct I/O. Default: false.
813.TP
814.BI atomic \fR=\fPbool
815If value is true, attempt to use atomic direct I/O. Atomic writes are
816guaranteed to be stable once acknowledged by the operating system. Only
817Linux supports O_ATOMIC right now.
818.TP
819.BI buffered \fR=\fPbool
820If value is true, use buffered I/O. This is the opposite of the
821\fBdirect\fR option. Defaults to true.
d60e92d1
AC
822.TP
823.BI readwrite \fR=\fPstr "\fR,\fP rw" \fR=\fPstr
523bad63 824Type of I/O pattern. Accepted values are:
d60e92d1
AC
825.RS
826.RS
827.TP
828.B read
d1429b5c 829Sequential reads.
d60e92d1
AC
830.TP
831.B write
d1429b5c 832Sequential writes.
d60e92d1 833.TP
fa769d44 834.B trim
3740cfc8 835Sequential trims (Linux block devices and SCSI character devices only).
fa769d44 836.TP
d60e92d1 837.B randread
d1429b5c 838Random reads.
d60e92d1
AC
839.TP
840.B randwrite
d1429b5c 841Random writes.
d60e92d1 842.TP
fa769d44 843.B randtrim
3740cfc8 844Random trims (Linux block devices and SCSI character devices only).
fa769d44 845.TP
523bad63
TK
846.B rw,readwrite
847Sequential mixed reads and writes.
d60e92d1 848.TP
ff6bb260 849.B randrw
523bad63 850Random mixed reads and writes.
82a90686
JA
851.TP
852.B trimwrite
523bad63
TK
853Sequential trim+write sequences. Blocks will be trimmed first,
854then the same blocks will be written to.
d60e92d1
AC
855.RE
856.P
523bad63
TK
857Fio defaults to read if the option is not specified. For the mixed I/O
858types, the default is to split them 50/50. For certain types of I/O the
859result may still be skewed a bit, since the speed may be different.
860.P
861It is possible to specify the number of I/Os to do before getting a new
862offset by appending `:<nr>' to the end of the string given. For a
863random read, it would look like `rw=randread:8' for passing in an offset
864modifier with a value of 8. If the suffix is used with a sequential I/O
865pattern, then the `<nr>' value specified will be added to the generated
866offset for each I/O turning sequential I/O into sequential I/O with holes.
867For instance, using `rw=write:4k' will skip 4k for every write. Also see
868the \fBrw_sequencer\fR option.
d60e92d1
AC
869.RE
870.TP
38dad62d 871.BI rw_sequencer \fR=\fPstr
523bad63
TK
872If an offset modifier is given by appending a number to the `rw=\fIstr\fR'
873line, then this option controls how that number modifies the I/O offset
874being generated. Accepted values are:
38dad62d
JA
875.RS
876.RS
877.TP
878.B sequential
523bad63 879Generate sequential offset.
38dad62d
JA
880.TP
881.B identical
523bad63 882Generate the same offset.
38dad62d
JA
883.RE
884.P
523bad63
TK
885\fBsequential\fR is only useful for random I/O, where fio would normally
886generate a new random offset for every I/O. If you append e.g. 8 to randread,
887you would get a new random offset for every 8 I/Os. The result would be a
888seek for only every 8 I/Os, instead of for every I/O. Use `rw=randread:8'
889to specify that. As sequential I/O is already sequential, setting
890\fBsequential\fR for that would not result in any differences. \fBidentical\fR
891behaves in a similar fashion, except it sends the same offset 8 number of
892times before generating a new offset.
38dad62d 893.RE
90fef2d1 894.TP
771e58be
JA
895.BI unified_rw_reporting \fR=\fPbool
896Fio normally reports statistics on a per data direction basis, meaning that
523bad63
TK
897reads, writes, and trims are accounted and reported separately. If this
898option is set fio sums the results and report them as "mixed" instead.
771e58be 899.TP
d60e92d1 900.BI randrepeat \fR=\fPbool
523bad63
TK
901Seed the random number generator used for random I/O patterns in a
902predictable way so the pattern is repeatable across runs. Default: true.
56e2a5fc
CE
903.TP
904.BI allrandrepeat \fR=\fPbool
905Seed all random number generators in a predictable way so results are
523bad63 906repeatable across runs. Default: false.
d60e92d1 907.TP
04778baf
JA
908.BI randseed \fR=\fPint
909Seed the random number generators based on this seed value, to be able to
910control what sequence of output is being generated. If not set, the random
911sequence depends on the \fBrandrepeat\fR setting.
912.TP
a596f047 913.BI fallocate \fR=\fPstr
523bad63
TK
914Whether pre\-allocation is performed when laying down files.
915Accepted values are:
a596f047
EG
916.RS
917.RS
918.TP
919.B none
523bad63 920Do not pre\-allocate space.
a596f047 921.TP
2c3e17be 922.B native
523bad63
TK
923Use a platform's native pre\-allocation call but fall back to
924\fBnone\fR behavior if it fails/is not implemented.
2c3e17be 925.TP
a596f047 926.B posix
523bad63 927Pre\-allocate via \fBposix_fallocate\fR\|(3).
a596f047
EG
928.TP
929.B keep
523bad63
TK
930Pre\-allocate via \fBfallocate\fR\|(2) with
931FALLOC_FL_KEEP_SIZE set.
a596f047
EG
932.TP
933.B 0
523bad63 934Backward\-compatible alias for \fBnone\fR.
a596f047
EG
935.TP
936.B 1
523bad63 937Backward\-compatible alias for \fBposix\fR.
a596f047
EG
938.RE
939.P
523bad63
TK
940May not be available on all supported platforms. \fBkeep\fR is only available
941on Linux. If using ZFS on Solaris this cannot be set to \fBposix\fR
942because ZFS doesn't support pre\-allocation. Default: \fBnative\fR if any
943pre\-allocation methods are available, \fBnone\fR if not.
a596f047 944.RE
7bc8c2cf 945.TP
ecb2083d 946.BI fadvise_hint \fR=\fPstr
c712c97a
JA
947Use \fBposix_fadvise\fR\|(2) or \fBposix_madvise\fR\|(2) to advise the kernel
948what I/O patterns are likely to be issued. Accepted values are:
ecb2083d
JA
949.RS
950.RS
951.TP
952.B 0
953Backwards compatible hint for "no hint".
954.TP
955.B 1
956Backwards compatible hint for "advise with fio workload type". This
523bad63 957uses FADV_RANDOM for a random workload, and FADV_SEQUENTIAL
ecb2083d
JA
958for a sequential workload.
959.TP
960.B sequential
523bad63 961Advise using FADV_SEQUENTIAL.
ecb2083d
JA
962.TP
963.B random
523bad63 964Advise using FADV_RANDOM.
ecb2083d
JA
965.RE
966.RE
d60e92d1 967.TP
8f4b9f24 968.BI write_hint \fR=\fPstr
523bad63
TK
969Use \fBfcntl\fR\|(2) to advise the kernel what life time to expect
970from a write. Only supported on Linux, as of version 4.13. Accepted
8f4b9f24
JA
971values are:
972.RS
973.RS
974.TP
975.B none
976No particular life time associated with this file.
977.TP
978.B short
979Data written to this file has a short life time.
980.TP
981.B medium
982Data written to this file has a medium life time.
983.TP
984.B long
985Data written to this file has a long life time.
986.TP
987.B extreme
988Data written to this file has a very long life time.
989.RE
523bad63
TK
990.P
991The values are all relative to each other, and no absolute meaning
992should be associated with them.
8f4b9f24 993.RE
37659335 994.TP
523bad63
TK
995.BI offset \fR=\fPint
996Start I/O at the provided offset in the file, given as either a fixed size in
83c8b093
JF
997bytes or a percentage. If a percentage is given, the generated offset will be
998aligned to the minimum \fBblocksize\fR or to the value of \fBoffset_align\fR if
999provided. Data before the given offset will not be touched. This
523bad63
TK
1000effectively caps the file size at `real_size \- offset'. Can be combined with
1001\fBsize\fR to constrain the start and end range of the I/O workload.
1002A percentage can be specified by a number between 1 and 100 followed by '%',
1003for example, `offset=20%' to specify 20%.
6d500c2e 1004.TP
83c8b093
JF
1005.BI offset_align \fR=\fPint
1006If set to non-zero value, the byte offset generated by a percentage \fBoffset\fR
1007is aligned upwards to this value. Defaults to 0 meaning that a percentage
1008offset is aligned to the minimum block size.
1009.TP
523bad63
TK
1010.BI offset_increment \fR=\fPint
1011If this is provided, then the real offset becomes `\fBoffset\fR + \fBoffset_increment\fR
1012* thread_number', where the thread number is a counter that starts at 0 and
1013is incremented for each sub\-job (i.e. when \fBnumjobs\fR option is
1014specified). This option is useful if there are several jobs which are
1015intended to operate on a file in parallel disjoint segments, with even
1016spacing between the starting points.
6d500c2e 1017.TP
523bad63
TK
1018.BI number_ios \fR=\fPint
1019Fio will normally perform I/Os until it has exhausted the size of the region
1020set by \fBsize\fR, or if it exhaust the allocated time (or hits an error
1021condition). With this setting, the range/size can be set independently of
1022the number of I/Os to perform. When fio reaches this number, it will exit
1023normally and report status. Note that this does not extend the amount of I/O
1024that will be done, it will only stop fio if this condition is met before
1025other end\-of\-job criteria.
d60e92d1 1026.TP
523bad63
TK
1027.BI fsync \fR=\fPint
1028If writing to a file, issue an \fBfsync\fR\|(2) (or its equivalent) of
1029the dirty data for every number of blocks given. For example, if you give 32
1030as a parameter, fio will sync the file after every 32 writes issued. If fio is
1031using non\-buffered I/O, we may not sync the file. The exception is the sg
1032I/O engine, which synchronizes the disk cache anyway. Defaults to 0, which
1033means fio does not periodically issue and wait for a sync to complete. Also
1034see \fBend_fsync\fR and \fBfsync_on_close\fR.
6d500c2e 1035.TP
523bad63
TK
1036.BI fdatasync \fR=\fPint
1037Like \fBfsync\fR but uses \fBfdatasync\fR\|(2) to only sync data and
1038not metadata blocks. In Windows, FreeBSD, and DragonFlyBSD there is no
1039\fBfdatasync\fR\|(2) so this falls back to using \fBfsync\fR\|(2).
1040Defaults to 0, which means fio does not periodically issue and wait for a
1041data\-only sync to complete.
d60e92d1 1042.TP
523bad63
TK
1043.BI write_barrier \fR=\fPint
1044Make every N\-th write a barrier write.
901bb994 1045.TP
523bad63
TK
1046.BI sync_file_range \fR=\fPstr:int
1047Use \fBsync_file_range\fR\|(2) for every \fIint\fR number of write
1048operations. Fio will track range of writes that have happened since the last
1049\fBsync_file_range\fR\|(2) call. \fIstr\fR can currently be one or more of:
1050.RS
1051.RS
fd68418e 1052.TP
523bad63
TK
1053.B wait_before
1054SYNC_FILE_RANGE_WAIT_BEFORE
c5751c62 1055.TP
523bad63
TK
1056.B write
1057SYNC_FILE_RANGE_WRITE
c5751c62 1058.TP
523bad63
TK
1059.B wait_after
1060SYNC_FILE_RANGE_WRITE_AFTER
2fa5a241 1061.RE
523bad63
TK
1062.P
1063So if you do `sync_file_range=wait_before,write:8', fio would use
1064`SYNC_FILE_RANGE_WAIT_BEFORE | SYNC_FILE_RANGE_WRITE' for every 8
1065writes. Also see the \fBsync_file_range\fR\|(2) man page. This option is
1066Linux specific.
2fa5a241 1067.RE
ce35b1ec 1068.TP
523bad63
TK
1069.BI overwrite \fR=\fPbool
1070If true, writes to a file will always overwrite existing data. If the file
1071doesn't already exist, it will be created before the write phase begins. If
1072the file exists and is large enough for the specified write phase, nothing
1073will be done. Default: false.
5c94b008 1074.TP
523bad63
TK
1075.BI end_fsync \fR=\fPbool
1076If true, \fBfsync\fR\|(2) file contents when a write stage has completed.
1077Default: false.
d60e92d1 1078.TP
523bad63
TK
1079.BI fsync_on_close \fR=\fPbool
1080If true, fio will \fBfsync\fR\|(2) a dirty file on close. This differs
1081from \fBend_fsync\fR in that it will happen on every file close, not
1082just at the end of the job. Default: false.
d60e92d1 1083.TP
523bad63
TK
1084.BI rwmixread \fR=\fPint
1085Percentage of a mixed workload that should be reads. Default: 50.
1086.TP
1087.BI rwmixwrite \fR=\fPint
1088Percentage of a mixed workload that should be writes. If both
1089\fBrwmixread\fR and \fBrwmixwrite\fR is given and the values do not
1090add up to 100%, the latter of the two will be used to override the
1091first. This may interfere with a given rate setting, if fio is asked to
1092limit reads or writes to a certain rate. If that is the case, then the
1093distribution may be skewed. Default: 50.
1094.TP
1095.BI random_distribution \fR=\fPstr:float[,str:float][,str:float]
1096By default, fio will use a completely uniform random distribution when asked
1097to perform random I/O. Sometimes it is useful to skew the distribution in
1098specific ways, ensuring that some parts of the data is more hot than others.
1099fio includes the following distribution models:
d60e92d1
AC
1100.RS
1101.RS
1102.TP
1103.B random
523bad63 1104Uniform random distribution
8c07860d
JA
1105.TP
1106.B zipf
523bad63 1107Zipf distribution
8c07860d
JA
1108.TP
1109.B pareto
523bad63 1110Pareto distribution
8c07860d 1111.TP
dd3503d3 1112.B normal
523bad63 1113Normal (Gaussian) distribution
dd3503d3 1114.TP
523bad63
TK
1115.B zoned
1116Zoned random distribution
59466396
JA
1117.B zoned_abs
1118Zoned absolute random distribution
d60e92d1
AC
1119.RE
1120.P
523bad63
TK
1121When using a \fBzipf\fR or \fBpareto\fR distribution, an input value is also
1122needed to define the access pattern. For \fBzipf\fR, this is the `Zipf theta'.
1123For \fBpareto\fR, it's the `Pareto power'. Fio includes a test
1124program, \fBfio\-genzipf\fR, that can be used visualize what the given input
1125values will yield in terms of hit rates. If you wanted to use \fBzipf\fR with
1126a `theta' of 1.2, you would use `random_distribution=zipf:1.2' as the
1127option. If a non\-uniform model is used, fio will disable use of the random
1128map. For the \fBnormal\fR distribution, a normal (Gaussian) deviation is
1129supplied as a value between 0 and 100.
1130.P
1131For a \fBzoned\fR distribution, fio supports specifying percentages of I/O
1132access that should fall within what range of the file or device. For
1133example, given a criteria of:
d60e92d1 1134.RS
523bad63
TK
1135.P
1136.PD 0
113760% of accesses should be to the first 10%
1138.P
113930% of accesses should be to the next 20%
1140.P
11418% of accesses should be to the next 30%
1142.P
11432% of accesses should be to the next 40%
1144.PD
1145.RE
1146.P
1147we can define that through zoning of the random accesses. For the above
1148example, the user would do:
1149.RS
1150.P
1151random_distribution=zoned:60/10:30/20:8/30:2/40
1152.RE
1153.P
59466396
JA
1154A \fBzoned_abs\fR distribution works exactly like the\fBzoned\fR, except that
1155it takes absolute sizes. For example, let's say you wanted to define access
1156according to the following criteria:
1157.RS
1158.P
1159.PD 0
116060% of accesses should be to the first 20G
1161.P
116230% of accesses should be to the next 100G
1163.P
116410% of accesses should be to the next 500G
1165.PD
1166.RE
1167.P
1168we can define an absolute zoning distribution with:
1169.RS
1170.P
1171random_distribution=zoned:60/10:30/20:8/30:2/40
1172.RE
1173.P
6a16ece8
JA
1174For both \fBzoned\fR and \fBzoned_abs\fR, fio supports defining up to 256
1175separate zones.
1176.P
59466396 1177Similarly to how \fBbssplit\fR works for setting ranges and percentages
523bad63
TK
1178of block sizes. Like \fBbssplit\fR, it's possible to specify separate
1179zones for reads, writes, and trims. If just one set is given, it'll apply to
1180all of them.
1181.RE
1182.TP
1183.BI percentage_random \fR=\fPint[,int][,int]
1184For a random workload, set how big a percentage should be random. This
1185defaults to 100%, in which case the workload is fully random. It can be set
1186from anywhere from 0 to 100. Setting it to 0 would make the workload fully
1187sequential. Any setting in between will result in a random mix of sequential
1188and random I/O, at the given percentages. Comma\-separated values may be
1189specified for reads, writes, and trims as described in \fBblocksize\fR.
1190.TP
1191.BI norandommap
1192Normally fio will cover every block of the file when doing random I/O. If
1193this option is given, fio will just get a new random offset without looking
1194at past I/O history. This means that some blocks may not be read or written,
1195and that some blocks may be read/written more than once. If this option is
1196used with \fBverify\fR and multiple blocksizes (via \fBbsrange\fR),
1197only intact blocks are verified, i.e., partially\-overwritten blocks are
47e6a6e5
SW
1198ignored. With an async I/O engine and an I/O depth > 1, it is possible for
1199the same block to be overwritten, which can cause verification errors. Either
1200do not use norandommap in this case, or also use the lfsr random generator.
523bad63
TK
1201.TP
1202.BI softrandommap \fR=\fPbool
1203See \fBnorandommap\fR. If fio runs with the random block map enabled and
1204it fails to allocate the map, if this option is set it will continue without
1205a random block map. As coverage will not be as complete as with random maps,
1206this option is disabled by default.
1207.TP
1208.BI random_generator \fR=\fPstr
1209Fio supports the following engines for generating I/O offsets for random I/O:
1210.RS
1211.RS
1212.TP
1213.B tausworthe
1214Strong 2^88 cycle random number generator.
1215.TP
1216.B lfsr
1217Linear feedback shift register generator.
1218.TP
1219.B tausworthe64
1220Strong 64\-bit 2^258 cycle random number generator.
1221.RE
1222.P
1223\fBtausworthe\fR is a strong random number generator, but it requires tracking
1224on the side if we want to ensure that blocks are only read or written
1225once. \fBlfsr\fR guarantees that we never generate the same offset twice, and
1226it's also less computationally expensive. It's not a true random generator,
1227however, though for I/O purposes it's typically good enough. \fBlfsr\fR only
1228works with single block sizes, not with workloads that use multiple block
1229sizes. If used with such a workload, fio may read or write some blocks
1230multiple times. The default value is \fBtausworthe\fR, unless the required
1231space exceeds 2^32 blocks. If it does, then \fBtausworthe64\fR is
1232selected automatically.
1233.RE
1234.SS "Block size"
1235.TP
1236.BI blocksize \fR=\fPint[,int][,int] "\fR,\fB bs" \fR=\fPint[,int][,int]
1237The block size in bytes used for I/O units. Default: 4096. A single value
1238applies to reads, writes, and trims. Comma\-separated values may be
1239specified for reads, writes, and trims. A value not terminated in a comma
1240applies to subsequent types. Examples:
1241.RS
1242.RS
1243.P
1244.PD 0
1245bs=256k means 256k for reads, writes and trims.
1246.P
1247bs=8k,32k means 8k for reads, 32k for writes and trims.
1248.P
1249bs=8k,32k, means 8k for reads, 32k for writes, and default for trims.
1250.P
1251bs=,8k means default for reads, 8k for writes and trims.
1252.P
1253bs=,8k, means default for reads, 8k for writes, and default for trims.
1254.PD
1255.RE
1256.RE
1257.TP
1258.BI blocksize_range \fR=\fPirange[,irange][,irange] "\fR,\fB bsrange" \fR=\fPirange[,irange][,irange]
1259A range of block sizes in bytes for I/O units. The issued I/O unit will
1260always be a multiple of the minimum size, unless
1261\fBblocksize_unaligned\fR is set.
1262Comma\-separated ranges may be specified for reads, writes, and trims as
1263described in \fBblocksize\fR. Example:
1264.RS
1265.RS
1266.P
1267bsrange=1k\-4k,2k\-8k
1268.RE
1269.RE
1270.TP
1271.BI bssplit \fR=\fPstr[,str][,str]
1272Sometimes you want even finer grained control of the block sizes issued, not
1273just an even split between them. This option allows you to weight various
1274block sizes, so that you are able to define a specific amount of block sizes
1275issued. The format for this option is:
1276.RS
1277.RS
1278.P
1279bssplit=blocksize/percentage:blocksize/percentage
1280.RE
1281.P
1282for as many block sizes as needed. So if you want to define a workload that
1283has 50% 64k blocks, 10% 4k blocks, and 40% 32k blocks, you would write:
1284.RS
1285.P
1286bssplit=4k/10:64k/50:32k/40
1287.RE
1288.P
1289Ordering does not matter. If the percentage is left blank, fio will fill in
1290the remaining values evenly. So a bssplit option like this one:
1291.RS
1292.P
1293bssplit=4k/50:1k/:32k/
1294.RE
1295.P
1296would have 50% 4k ios, and 25% 1k and 32k ios. The percentages always add up
1297to 100, if bssplit is given a range that adds up to more, it will error out.
1298.P
1299Comma\-separated values may be specified for reads, writes, and trims as
1300described in \fBblocksize\fR.
1301.P
1302If you want a workload that has 50% 2k reads and 50% 4k reads, while having
130390% 4k writes and 10% 8k writes, you would specify:
1304.RS
1305.P
cf04b906 1306bssplit=2k/50:4k/50,4k/90:8k/10
523bad63 1307.RE
6a16ece8
JA
1308.P
1309Fio supports defining up to 64 different weights for each data direction.
523bad63
TK
1310.RE
1311.TP
1312.BI blocksize_unaligned "\fR,\fB bs_unaligned"
1313If set, fio will issue I/O units with any size within
1314\fBblocksize_range\fR, not just multiples of the minimum size. This
1315typically won't work with direct I/O, as that normally requires sector
1316alignment.
1317.TP
1318.BI bs_is_seq_rand \fR=\fPbool
1319If this option is set, fio will use the normal read,write blocksize settings
1320as sequential,random blocksize settings instead. Any random read or write
1321will use the WRITE blocksize settings, and any sequential read or write will
1322use the READ blocksize settings.
1323.TP
1324.BI blockalign \fR=\fPint[,int][,int] "\fR,\fB ba" \fR=\fPint[,int][,int]
1325Boundary to which fio will align random I/O units. Default:
1326\fBblocksize\fR. Minimum alignment is typically 512b for using direct
1327I/O, though it usually depends on the hardware block size. This option is
1328mutually exclusive with using a random map for files, so it will turn off
1329that option. Comma\-separated values may be specified for reads, writes, and
1330trims as described in \fBblocksize\fR.
1331.SS "Buffers and memory"
1332.TP
1333.BI zero_buffers
1334Initialize buffers with all zeros. Default: fill buffers with random data.
1335.TP
1336.BI refill_buffers
1337If this option is given, fio will refill the I/O buffers on every
1338submit. The default is to only fill it at init time and reuse that
1339data. Only makes sense if zero_buffers isn't specified, naturally. If data
1340verification is enabled, \fBrefill_buffers\fR is also automatically enabled.
1341.TP
1342.BI scramble_buffers \fR=\fPbool
1343If \fBrefill_buffers\fR is too costly and the target is using data
1344deduplication, then setting this option will slightly modify the I/O buffer
1345contents to defeat normal de\-dupe attempts. This is not enough to defeat
1346more clever block compression attempts, but it will stop naive dedupe of
1347blocks. Default: true.
1348.TP
1349.BI buffer_compress_percentage \fR=\fPint
72592780
SW
1350If this is set, then fio will attempt to provide I/O buffer content
1351(on WRITEs) that compresses to the specified level. Fio does this by
1352providing a mix of random data followed by fixed pattern data. The
1353fixed pattern is either zeros, or the pattern specified by
1354\fBbuffer_pattern\fR. If the \fBbuffer_pattern\fR option is used, it
1355might skew the compression ratio slightly. Setting
1356\fBbuffer_compress_percentage\fR to a value other than 100 will also
1357enable \fBrefill_buffers\fR in order to reduce the likelihood that
1358adjacent blocks are so similar that they over compress when seen
1359together. See \fBbuffer_compress_chunk\fR for how to set a finer or
1360coarser granularity of the random/fixed data regions. Defaults to unset
1361i.e., buffer data will not adhere to any compression level.
523bad63
TK
1362.TP
1363.BI buffer_compress_chunk \fR=\fPint
72592780
SW
1364This setting allows fio to manage how big the random/fixed data region
1365is when using \fBbuffer_compress_percentage\fR. When
1366\fBbuffer_compress_chunk\fR is set to some non-zero value smaller than the
1367block size, fio can repeat the random/fixed region throughout the I/O
1368buffer at the specified interval (which particularly useful when
1369bigger block sizes are used for a job). When set to 0, fio will use a
1370chunk size that matches the block size resulting in a single
1371random/fixed region within the I/O buffer. Defaults to 512. When the
1372unit is omitted, the value is interpreted in bytes.
523bad63
TK
1373.TP
1374.BI buffer_pattern \fR=\fPstr
1375If set, fio will fill the I/O buffers with this pattern or with the contents
1376of a file. If not set, the contents of I/O buffers are defined by the other
1377options related to buffer contents. The setting can be any pattern of bytes,
1378and can be prefixed with 0x for hex values. It may also be a string, where
1379the string must then be wrapped with "". Or it may also be a filename,
1380where the filename must be wrapped with '' in which case the file is
1381opened and read. Note that not all the file contents will be read if that
1382would cause the buffers to overflow. So, for example:
1383.RS
1384.RS
1385.P
1386.PD 0
1387buffer_pattern='filename'
1388.P
1389or:
1390.P
1391buffer_pattern="abcd"
1392.P
1393or:
1394.P
1395buffer_pattern=\-12
1396.P
1397or:
1398.P
1399buffer_pattern=0xdeadface
1400.PD
1401.RE
1402.P
1403Also you can combine everything together in any order:
1404.RS
1405.P
1406buffer_pattern=0xdeadface"abcd"\-12'filename'
1407.RE
1408.RE
1409.TP
1410.BI dedupe_percentage \fR=\fPint
1411If set, fio will generate this percentage of identical buffers when
1412writing. These buffers will be naturally dedupable. The contents of the
1413buffers depend on what other buffer compression settings have been set. It's
1414possible to have the individual buffers either fully compressible, or not at
72592780
SW
1415all \-\- this option only controls the distribution of unique buffers. Setting
1416this option will also enable \fBrefill_buffers\fR to prevent every buffer
1417being identical.
523bad63
TK
1418.TP
1419.BI invalidate \fR=\fPbool
1420Invalidate the buffer/page cache parts of the files to be used prior to
1421starting I/O if the platform and file type support it. Defaults to true.
1422This will be ignored if \fBpre_read\fR is also specified for the
1423same job.
1424.TP
1425.BI sync \fR=\fPbool
1426Use synchronous I/O for buffered writes. For the majority of I/O engines,
1427this means using O_SYNC. Default: false.
1428.TP
1429.BI iomem \fR=\fPstr "\fR,\fP mem" \fR=\fPstr
1430Fio can use various types of memory as the I/O unit buffer. The allowed
1431values are:
1432.RS
1433.RS
1434.TP
1435.B malloc
1436Use memory from \fBmalloc\fR\|(3) as the buffers. Default memory type.
1437.TP
1438.B shm
1439Use shared memory as the buffers. Allocated through \fBshmget\fR\|(2).
1440.TP
1441.B shmhuge
1442Same as \fBshm\fR, but use huge pages as backing.
1443.TP
1444.B mmap
1445Use \fBmmap\fR\|(2) to allocate buffers. May either be anonymous memory, or can
1446be file backed if a filename is given after the option. The format
1447is `mem=mmap:/path/to/file'.
1448.TP
1449.B mmaphuge
1450Use a memory mapped huge file as the buffer backing. Append filename
1451after mmaphuge, ala `mem=mmaphuge:/hugetlbfs/file'.
1452.TP
1453.B mmapshared
1454Same as \fBmmap\fR, but use a MMAP_SHARED mapping.
1455.TP
1456.B cudamalloc
1457Use GPU memory as the buffers for GPUDirect RDMA benchmark.
1458The \fBioengine\fR must be \fBrdma\fR.
1459.RE
1460.P
1461The area allocated is a function of the maximum allowed bs size for the job,
1462multiplied by the I/O depth given. Note that for \fBshmhuge\fR and
1463\fBmmaphuge\fR to work, the system must have free huge pages allocated. This
1464can normally be checked and set by reading/writing
1465`/proc/sys/vm/nr_hugepages' on a Linux system. Fio assumes a huge page
1466is 4MiB in size. So to calculate the number of huge pages you need for a
1467given job file, add up the I/O depth of all jobs (normally one unless
1468\fBiodepth\fR is used) and multiply by the maximum bs set. Then divide
1469that number by the huge page size. You can see the size of the huge pages in
1470`/proc/meminfo'. If no huge pages are allocated by having a non\-zero
1471number in `nr_hugepages', using \fBmmaphuge\fR or \fBshmhuge\fR will fail. Also
1472see \fBhugepage\-size\fR.
1473.P
1474\fBmmaphuge\fR also needs to have hugetlbfs mounted and the file location
1475should point there. So if it's mounted in `/huge', you would use
1476`mem=mmaphuge:/huge/somefile'.
1477.RE
1478.TP
1479.BI iomem_align \fR=\fPint "\fR,\fP mem_align" \fR=\fPint
1480This indicates the memory alignment of the I/O memory buffers. Note that
1481the given alignment is applied to the first I/O unit buffer, if using
1482\fBiodepth\fR the alignment of the following buffers are given by the
1483\fBbs\fR used. In other words, if using a \fBbs\fR that is a
1484multiple of the page sized in the system, all buffers will be aligned to
1485this value. If using a \fBbs\fR that is not page aligned, the alignment
1486of subsequent I/O memory buffers is the sum of the \fBiomem_align\fR and
1487\fBbs\fR used.
1488.TP
1489.BI hugepage\-size \fR=\fPint
1490Defines the size of a huge page. Must at least be equal to the system
1491setting, see `/proc/meminfo'. Defaults to 4MiB. Should probably
1492always be a multiple of megabytes, so using `hugepage\-size=Xm' is the
1493preferred way to set this to avoid setting a non\-pow\-2 bad value.
1494.TP
1495.BI lockmem \fR=\fPint
1496Pin the specified amount of memory with \fBmlock\fR\|(2). Can be used to
1497simulate a smaller amount of memory. The amount specified is per worker.
1498.SS "I/O size"
1499.TP
1500.BI size \fR=\fPint
1501The total size of file I/O for each thread of this job. Fio will run until
1502this many bytes has been transferred, unless runtime is limited by other options
1503(such as \fBruntime\fR, for instance, or increased/decreased by \fBio_size\fR).
1504Fio will divide this size between the available files determined by options
1505such as \fBnrfiles\fR, \fBfilename\fR, unless \fBfilesize\fR is
1506specified by the job. If the result of division happens to be 0, the size is
1507set to the physical size of the given files or devices if they exist.
1508If this option is not specified, fio will use the full size of the given
1509files or devices. If the files do not exist, size must be given. It is also
1510possible to give size as a percentage between 1 and 100. If `size=20%' is
1511given, fio will use 20% of the full size of the given files or devices.
1512Can be combined with \fBoffset\fR to constrain the start and end range
1513that I/O will be done within.
1514.TP
1515.BI io_size \fR=\fPint "\fR,\fB io_limit" \fR=\fPint
1516Normally fio operates within the region set by \fBsize\fR, which means
1517that the \fBsize\fR option sets both the region and size of I/O to be
1518performed. Sometimes that is not what you want. With this option, it is
1519possible to define just the amount of I/O that fio should do. For instance,
1520if \fBsize\fR is set to 20GiB and \fBio_size\fR is set to 5GiB, fio
1521will perform I/O within the first 20GiB but exit when 5GiB have been
1522done. The opposite is also possible \-\- if \fBsize\fR is set to 20GiB,
1523and \fBio_size\fR is set to 40GiB, then fio will do 40GiB of I/O within
1524the 0..20GiB region.
1525.TP
1526.BI filesize \fR=\fPirange(int)
1527Individual file sizes. May be a range, in which case fio will select sizes
1528for files at random within the given range and limited to \fBsize\fR in
1529total (if that is given). If not given, each created file is the same size.
1530This option overrides \fBsize\fR in terms of file size, which means
1531this value is used as a fixed size or possible range of each file.
1532.TP
1533.BI file_append \fR=\fPbool
1534Perform I/O after the end of the file. Normally fio will operate within the
1535size of a file. If this option is set, then fio will append to the file
1536instead. This has identical behavior to setting \fBoffset\fR to the size
1537of a file. This option is ignored on non\-regular files.
1538.TP
1539.BI fill_device \fR=\fPbool "\fR,\fB fill_fs" \fR=\fPbool
1540Sets size to something really large and waits for ENOSPC (no space left on
1541device) as the terminating condition. Only makes sense with sequential
1542write. For a read workload, the mount point will be filled first then I/O
1543started on the result. This option doesn't make sense if operating on a raw
1544device node, since the size of that is already known by the file system.
1545Additionally, writing beyond end\-of\-device will not return ENOSPC there.
1546.SS "I/O engine"
1547.TP
1548.BI ioengine \fR=\fPstr
1549Defines how the job issues I/O to the file. The following types are defined:
1550.RS
1551.RS
1552.TP
1553.B sync
1554Basic \fBread\fR\|(2) or \fBwrite\fR\|(2)
1555I/O. \fBlseek\fR\|(2) is used to position the I/O location.
1556See \fBfsync\fR and \fBfdatasync\fR for syncing write I/Os.
1557.TP
1558.B psync
1559Basic \fBpread\fR\|(2) or \fBpwrite\fR\|(2) I/O. Default on
1560all supported operating systems except for Windows.
1561.TP
1562.B vsync
1563Basic \fBreadv\fR\|(2) or \fBwritev\fR\|(2) I/O. Will emulate
1564queuing by coalescing adjacent I/Os into a single submission.
1565.TP
1566.B pvsync
1567Basic \fBpreadv\fR\|(2) or \fBpwritev\fR\|(2) I/O.
a46c5e01 1568.TP
2cafffbe
JA
1569.B pvsync2
1570Basic \fBpreadv2\fR\|(2) or \fBpwritev2\fR\|(2) I/O.
1571.TP
d60e92d1 1572.B libaio
523bad63
TK
1573Linux native asynchronous I/O. Note that Linux may only support
1574queued behavior with non\-buffered I/O (set `direct=1' or
1575`buffered=0').
1576This engine defines engine specific options.
d60e92d1
AC
1577.TP
1578.B posixaio
523bad63
TK
1579POSIX asynchronous I/O using \fBaio_read\fR\|(3) and
1580\fBaio_write\fR\|(3).
03e20d68
BC
1581.TP
1582.B solarisaio
1583Solaris native asynchronous I/O.
1584.TP
1585.B windowsaio
38f8c318 1586Windows native asynchronous I/O. Default on Windows.
d60e92d1
AC
1587.TP
1588.B mmap
523bad63
TK
1589File is memory mapped with \fBmmap\fR\|(2) and data copied
1590to/from using \fBmemcpy\fR\|(3).
d60e92d1
AC
1591.TP
1592.B splice
523bad63
TK
1593\fBsplice\fR\|(2) is used to transfer the data and
1594\fBvmsplice\fR\|(2) to transfer data from user space to the
1595kernel.
d60e92d1 1596.TP
d60e92d1 1597.B sg
523bad63
TK
1598SCSI generic sg v3 I/O. May either be synchronous using the SG_IO
1599ioctl, or if the target is an sg character device we use
1600\fBread\fR\|(2) and \fBwrite\fR\|(2) for asynchronous
1601I/O. Requires \fBfilename\fR option to specify either block or
3740cfc8
VF
1602character devices. This engine supports trim operations. The
1603sg engine includes engine specific options.
d60e92d1
AC
1604.TP
1605.B null
523bad63
TK
1606Doesn't transfer any data, just pretends to. This is mainly used to
1607exercise fio itself and for debugging/testing purposes.
d60e92d1
AC
1608.TP
1609.B net
523bad63
TK
1610Transfer over the network to given `host:port'. Depending on the
1611\fBprotocol\fR used, the \fBhostname\fR, \fBport\fR,
1612\fBlisten\fR and \fBfilename\fR options are used to specify
1613what sort of connection to make, while the \fBprotocol\fR option
1614determines which protocol will be used. This engine defines engine
1615specific options.
d60e92d1
AC
1616.TP
1617.B netsplice
523bad63
TK
1618Like \fBnet\fR, but uses \fBsplice\fR\|(2) and
1619\fBvmsplice\fR\|(2) to map data and send/receive.
1620This engine defines engine specific options.
d60e92d1 1621.TP
53aec0a4 1622.B cpuio
523bad63
TK
1623Doesn't transfer any data, but burns CPU cycles according to the
1624\fBcpuload\fR and \fBcpuchunks\fR options. Setting
1625\fBcpuload\fR\=85 will cause that job to do nothing but burn 85%
1626of the CPU. In case of SMP machines, use `numjobs=<nr_of_cpu>'
1627to get desired CPU usage, as the cpuload only loads a
1628single CPU at the desired rate. A job never finishes unless there is
1629at least one non\-cpuio job.
d60e92d1
AC
1630.TP
1631.B guasi
f1dd3fb1 1632The GUASI I/O engine is the Generic Userspace Asynchronous Syscall
523bad63
TK
1633Interface approach to async I/O. See \fIhttp://www.xmailserver.org/guasi\-lib.html\fR
1634for more info on GUASI.
d60e92d1 1635.TP
21b8aee8 1636.B rdma
523bad63
TK
1637The RDMA I/O engine supports both RDMA memory semantics
1638(RDMA_WRITE/RDMA_READ) and channel semantics (Send/Recv) for the
609ac152
SB
1639InfiniBand, RoCE and iWARP protocols. This engine defines engine
1640specific options.
d54fce84
DM
1641.TP
1642.B falloc
523bad63
TK
1643I/O engine that does regular fallocate to simulate data transfer as
1644fio ioengine.
1645.RS
1646.P
1647.PD 0
1648DDIR_READ does fallocate(,mode = FALLOC_FL_KEEP_SIZE,).
1649.P
1650DIR_WRITE does fallocate(,mode = 0).
1651.P
1652DDIR_TRIM does fallocate(,mode = FALLOC_FL_KEEP_SIZE|FALLOC_FL_PUNCH_HOLE).
1653.PD
1654.RE
1655.TP
1656.B ftruncate
1657I/O engine that sends \fBftruncate\fR\|(2) operations in response
1658to write (DDIR_WRITE) events. Each ftruncate issued sets the file's
1659size to the current block offset. \fBblocksize\fR is ignored.
d54fce84
DM
1660.TP
1661.B e4defrag
523bad63
TK
1662I/O engine that does regular EXT4_IOC_MOVE_EXT ioctls to simulate
1663defragment activity in request to DDIR_WRITE event.
0d978694 1664.TP
d5f9b0ea
IF
1665.B rados
1666I/O engine supporting direct access to Ceph Reliable Autonomic Distributed
1667Object Store (RADOS) via librados. This ioengine defines engine specific
1668options.
1669.TP
0d978694 1670.B rbd
523bad63
TK
1671I/O engine supporting direct access to Ceph Rados Block Devices
1672(RBD) via librbd without the need to use the kernel rbd driver. This
1673ioengine defines engine specific options.
a7c386f4 1674.TP
c2f6a13d
LMB
1675.B http
1676I/O engine supporting GET/PUT requests over HTTP(S) with libcurl to
1677a WebDAV or S3 endpoint. This ioengine defines engine specific options.
1678
1679This engine only supports direct IO of iodepth=1; you need to scale this
1680via numjobs. blocksize defines the size of the objects to be created.
1681
1682TRIM is translated to object deletion.
1683.TP
a7c386f4 1684.B gfapi
523bad63
TK
1685Using GlusterFS libgfapi sync interface to direct access to
1686GlusterFS volumes without having to go through FUSE. This ioengine
1687defines engine specific options.
cc47f094 1688.TP
1689.B gfapi_async
523bad63
TK
1690Using GlusterFS libgfapi async interface to direct access to
1691GlusterFS volumes without having to go through FUSE. This ioengine
1692defines engine specific options.
1b10477b 1693.TP
b74e419e 1694.B libhdfs
523bad63
TK
1695Read and write through Hadoop (HDFS). The \fBfilename\fR option
1696is used to specify host,port of the hdfs name\-node to connect. This
1697engine interprets offsets a little differently. In HDFS, files once
1698created cannot be modified so random writes are not possible. To
1699imitate this the libhdfs engine expects a bunch of small files to be
1700created over HDFS and will randomly pick a file from them
1701based on the offset generated by fio backend (see the example
1702job file to create such files, use `rw=write' option). Please
1703note, it may be necessary to set environment variables to work
1704with HDFS/libhdfs properly. Each job uses its own connection to
1705HDFS.
65fa28ca
DE
1706.TP
1707.B mtd
523bad63
TK
1708Read, write and erase an MTD character device (e.g.,
1709`/dev/mtd0'). Discards are treated as erases. Depending on the
1710underlying device type, the I/O may have to go in a certain pattern,
1711e.g., on NAND, writing sequentially to erase blocks and discarding
1712before overwriting. The \fBtrimwrite\fR mode works well for this
65fa28ca 1713constraint.
5c4ef02e
JA
1714.TP
1715.B pmemblk
523bad63 1716Read and write using filesystem DAX to a file on a filesystem
363a5f65 1717mounted with DAX on a persistent memory device through the PMDK
523bad63 1718libpmemblk library.
104ee4de 1719.TP
523bad63
TK
1720.B dev\-dax
1721Read and write using device DAX to a persistent memory device (e.g.,
363a5f65 1722/dev/dax0.0) through the PMDK libpmem library.
d60e92d1 1723.TP
523bad63
TK
1724.B external
1725Prefix to specify loading an external I/O engine object file. Append
1726the engine filename, e.g. `ioengine=external:/tmp/foo.o' to load
d243fd6d
TK
1727ioengine `foo.o' in `/tmp'. The path can be either
1728absolute or relative. See `engines/skeleton_external.c' in the fio source for
1729details of writing an external I/O engine.
1216cc5a
JB
1730.TP
1731.B filecreate
b71968b1
SW
1732Simply create the files and do no I/O to them. You still need to set
1733\fBfilesize\fR so that all the accounting still occurs, but no actual I/O will be
1734done other than creating the file.
ae0db592
TI
1735.TP
1736.B libpmem
1737Read and write using mmap I/O to a file on a filesystem
363a5f65 1738mounted with DAX on a persistent memory device through the PMDK
ae0db592 1739libpmem library.
07751e10
JA
1740.TP
1741.B ime_psync
1742Synchronous read and write using DDN's Infinite Memory Engine (IME). This
1743engine is very basic and issues calls to IME whenever an IO is queued.
1744.TP
1745.B ime_psyncv
1746Synchronous read and write using DDN's Infinite Memory Engine (IME). This
1747engine uses iovecs and will try to stack as much IOs as possible (if the IOs
1748are "contiguous" and the IO depth is not exceeded) before issuing a call to IME.
1749.TP
1750.B ime_aio
1751Asynchronous read and write using DDN's Infinite Memory Engine (IME). This
1752engine will try to stack as much IOs as possible by creating requests for IME.
1753FIO will then decide when to commit these requests.
523bad63
TK
1754.SS "I/O engine specific parameters"
1755In addition, there are some parameters which are only valid when a specific
1756\fBioengine\fR is in use. These are used identically to normal parameters,
1757with the caveat that when used on the command line, they must come after the
1758\fBioengine\fR that defines them is selected.
d60e92d1 1759.TP
523bad63
TK
1760.BI (libaio)userspace_reap
1761Normally, with the libaio engine in use, fio will use the
1762\fBio_getevents\fR\|(3) system call to reap newly returned events. With
1763this flag turned on, the AIO ring will be read directly from user\-space to
1764reap events. The reaping mode is only enabled when polling for a minimum of
17650 events (e.g. when `iodepth_batch_complete=0').
3ce9dcaf 1766.TP
523bad63
TK
1767.BI (pvsync2)hipri
1768Set RWF_HIPRI on I/O, indicating to the kernel that it's of higher priority
1769than normal.
82407585 1770.TP
523bad63
TK
1771.BI (pvsync2)hipri_percentage
1772When hipri is set this determines the probability of a pvsync2 I/O being high
1773priority. The default is 100%.
d60e92d1 1774.TP
523bad63
TK
1775.BI (cpuio)cpuload \fR=\fPint
1776Attempt to use the specified percentage of CPU cycles. This is a mandatory
1777option when using cpuio I/O engine.
997b5680 1778.TP
523bad63
TK
1779.BI (cpuio)cpuchunks \fR=\fPint
1780Split the load into cycles of the given time. In microseconds.
1ad01bd1 1781.TP
523bad63
TK
1782.BI (cpuio)exit_on_io_done \fR=\fPbool
1783Detect when I/O threads are done, then exit.
d60e92d1 1784.TP
523bad63
TK
1785.BI (libhdfs)namenode \fR=\fPstr
1786The hostname or IP address of a HDFS cluster namenode to contact.
d01612f3 1787.TP
523bad63
TK
1788.BI (libhdfs)port
1789The listening port of the HFDS cluster namenode.
d60e92d1 1790.TP
523bad63
TK
1791.BI (netsplice,net)port
1792The TCP or UDP port to bind to or connect to. If this is used with
1793\fBnumjobs\fR to spawn multiple instances of the same job type, then
1794this will be the starting port number since fio will use a range of
1795ports.
d60e92d1 1796.TP
609ac152
SB
1797.BI (rdma)port
1798The port to use for RDMA-CM communication. This should be the same
1799value on the client and the server side.
1800.TP
1801.BI (netsplice,net, rdma)hostname \fR=\fPstr
1802The hostname or IP address to use for TCP, UDP or RDMA-CM based I/O.
1803If the job is a TCP listener or UDP reader, the hostname is not used
1804and must be omitted unless it is a valid UDP multicast address.
591e9e06 1805.TP
523bad63
TK
1806.BI (netsplice,net)interface \fR=\fPstr
1807The IP address of the network interface used to send or receive UDP
1808multicast.
ddf24e42 1809.TP
523bad63
TK
1810.BI (netsplice,net)ttl \fR=\fPint
1811Time\-to\-live value for outgoing UDP multicast packets. Default: 1.
d60e92d1 1812.TP
523bad63
TK
1813.BI (netsplice,net)nodelay \fR=\fPbool
1814Set TCP_NODELAY on TCP connections.
fa769d44 1815.TP
523bad63
TK
1816.BI (netsplice,net)protocol \fR=\fPstr "\fR,\fP proto" \fR=\fPstr
1817The network protocol to use. Accepted values are:
1818.RS
e76b1da4
JA
1819.RS
1820.TP
523bad63
TK
1821.B tcp
1822Transmission control protocol.
e76b1da4 1823.TP
523bad63
TK
1824.B tcpv6
1825Transmission control protocol V6.
e76b1da4 1826.TP
523bad63
TK
1827.B udp
1828User datagram protocol.
1829.TP
1830.B udpv6
1831User datagram protocol V6.
e76b1da4 1832.TP
523bad63
TK
1833.B unix
1834UNIX domain socket.
e76b1da4
JA
1835.RE
1836.P
523bad63
TK
1837When the protocol is TCP or UDP, the port must also be given, as well as the
1838hostname if the job is a TCP listener or UDP reader. For unix sockets, the
1839normal \fBfilename\fR option should be used and the port is invalid.
1840.RE
1841.TP
1842.BI (netsplice,net)listen
1843For TCP network connections, tell fio to listen for incoming connections
1844rather than initiating an outgoing connection. The \fBhostname\fR must
1845be omitted if this option is used.
1846.TP
1847.BI (netsplice,net)pingpong
1848Normally a network writer will just continue writing data, and a network
1849reader will just consume packages. If `pingpong=1' is set, a writer will
1850send its normal payload to the reader, then wait for the reader to send the
1851same payload back. This allows fio to measure network latencies. The
1852submission and completion latencies then measure local time spent sending or
1853receiving, and the completion latency measures how long it took for the
1854other end to receive and send back. For UDP multicast traffic
1855`pingpong=1' should only be set for a single reader when multiple readers
1856are listening to the same address.
1857.TP
1858.BI (netsplice,net)window_size \fR=\fPint
1859Set the desired socket buffer size for the connection.
e76b1da4 1860.TP
523bad63
TK
1861.BI (netsplice,net)mss \fR=\fPint
1862Set the TCP maximum segment size (TCP_MAXSEG).
d60e92d1 1863.TP
523bad63
TK
1864.BI (e4defrag)donorname \fR=\fPstr
1865File will be used as a block donor (swap extents between files).
d60e92d1 1866.TP
523bad63
TK
1867.BI (e4defrag)inplace \fR=\fPint
1868Configure donor file blocks allocation strategy:
1869.RS
1870.RS
d60e92d1 1871.TP
523bad63
TK
1872.B 0
1873Default. Preallocate donor's file on init.
d60e92d1 1874.TP
523bad63
TK
1875.B 1
1876Allocate space immediately inside defragment event, and free right
1877after event.
1878.RE
1879.RE
d60e92d1 1880.TP
d5f9b0ea 1881.BI (rbd,rados)clustername \fR=\fPstr
523bad63 1882Specifies the name of the Ceph cluster.
92d42d69 1883.TP
523bad63
TK
1884.BI (rbd)rbdname \fR=\fPstr
1885Specifies the name of the RBD.
92d42d69 1886.TP
d5f9b0ea
IF
1887.BI (rbd,rados)pool \fR=\fPstr
1888Specifies the name of the Ceph pool containing RBD or RADOS data.
92d42d69 1889.TP
d5f9b0ea 1890.BI (rbd,rados)clientname \fR=\fPstr
523bad63
TK
1891Specifies the username (without the 'client.' prefix) used to access the
1892Ceph cluster. If the \fBclustername\fR is specified, the \fBclientname\fR shall be
1893the full *type.id* string. If no type. prefix is given, fio will add 'client.'
1894by default.
92d42d69 1895.TP
d5f9b0ea
IF
1896.BI (rbd,rados)busy_poll \fR=\fPbool
1897Poll store instead of waiting for completion. Usually this provides better
1898throughput at cost of higher(up to 100%) CPU utilization.
1899.TP
c2f6a13d
LMB
1900.BI (http)http_host \fR=\fPstr
1901Hostname to connect to. For S3, this could be the bucket name. Default
1902is \fBlocalhost\fR
1903.TP
1904.BI (http)http_user \fR=\fPstr
1905Username for HTTP authentication.
1906.TP
1907.BI (http)http_pass \fR=\fPstr
1908Password for HTTP authentication.
1909.TP
09fd2966
LMB
1910.BI (http)https \fR=\fPstr
1911Whether to use HTTPS instead of plain HTTP. \fRon\fP enables HTTPS;
1912\fRinsecure\fP will enable HTTPS, but disable SSL peer verification (use
1913with caution!). Default is \fBoff\fR.
c2f6a13d 1914.TP
09fd2966
LMB
1915.BI (http)http_mode \fR=\fPstr
1916Which HTTP access mode to use: webdav, swift, or s3. Default is
1917\fBwebdav\fR.
c2f6a13d
LMB
1918.TP
1919.BI (http)http_s3_region \fR=\fPstr
1920The S3 region/zone to include in the request. Default is \fBus-east-1\fR.
1921.TP
1922.BI (http)http_s3_key \fR=\fPstr
1923The S3 secret key.
1924.TP
1925.BI (http)http_s3_keyid \fR=\fPstr
1926The S3 key/access id.
1927.TP
09fd2966
LMB
1928.BI (http)http_swift_auth_token \fR=\fPstr
1929The Swift auth token. See the example configuration file on how to
1930retrieve this.
1931.TP
c2f6a13d
LMB
1932.BI (http)http_verbose \fR=\fPint
1933Enable verbose requests from libcurl. Useful for debugging. 1 turns on
1934verbose logging from libcurl, 2 additionally enables HTTP IO tracing.
1935Default is \fB0\fR
1936.TP
523bad63
TK
1937.BI (mtd)skip_bad \fR=\fPbool
1938Skip operations against known bad blocks.
8116fd24 1939.TP
523bad63
TK
1940.BI (libhdfs)hdfsdirectory
1941libhdfs will create chunk in this HDFS directory.
e0a04ac1 1942.TP
523bad63
TK
1943.BI (libhdfs)chunk_size
1944The size of the chunk to use for each file.
609ac152
SB
1945.TP
1946.BI (rdma)verb \fR=\fPstr
1947The RDMA verb to use on this side of the RDMA ioengine
1948connection. Valid values are write, read, send and recv. These
1949correspond to the equivalent RDMA verbs (e.g. write = rdma_write
1950etc.). Note that this only needs to be specified on the client side of
1951the connection. See the examples folder.
1952.TP
1953.BI (rdma)bindname \fR=\fPstr
1954The name to use to bind the local RDMA-CM connection to a local RDMA
1955device. This could be a hostname or an IPv4 or IPv6 address. On the
1956server side this will be passed into the rdma_bind_addr() function and
1957on the client site it will be used in the rdma_resolve_add()
1958function. This can be useful when multiple paths exist between the
1959client and the server or in certain loopback configurations.
52b81b7c
KD
1960.TP
1961.BI (sg)readfua \fR=\fPbool
1962With readfua option set to 1, read operations include the force
1963unit access (fua) flag. Default: 0.
1964.TP
1965.BI (sg)writefua \fR=\fPbool
1966With writefua option set to 1, write operations include the force
1967unit access (fua) flag. Default: 0.
2c3a9150
VF
1968.TP
1969.BI (sg)sg_write_mode \fR=\fPstr
1970Specify the type of write commands to issue. This option can take three
1971values:
1972.RS
1973.RS
1974.TP
1975.B write (default)
1976Write opcodes are issued as usual
1977.TP
1978.B verify
1979Issue WRITE AND VERIFY commands. The BYTCHK bit is set to 0. This
1980directs the device to carry out a medium verification with no data
1981comparison. The writefua option is ignored with this selection.
1982.TP
1983.B same
1984Issue WRITE SAME commands. This transfers a single block to the device
1985and writes this same block of data to a contiguous sequence of LBAs
1986beginning at the specified offset. fio's block size parameter
1987specifies the amount of data written with each command. However, the
1988amount of data actually transferred to the device is equal to the
1989device's block (sector) size. For a device with 512 byte sectors,
1990blocksize=8k will write 16 sectors with each command. fio will still
1991generate 8k of data for each command butonly the first 512 bytes will
1992be used and transferred to the device. The writefua option is ignored
1993with this selection.
1994
523bad63
TK
1995.SS "I/O depth"
1996.TP
1997.BI iodepth \fR=\fPint
1998Number of I/O units to keep in flight against the file. Note that
1999increasing \fBiodepth\fR beyond 1 will not affect synchronous ioengines (except
2000for small degrees when \fBverify_async\fR is in use). Even async
2001engines may impose OS restrictions causing the desired depth not to be
2002achieved. This may happen on Linux when using libaio and not setting
2003`direct=1', since buffered I/O is not async on that OS. Keep an
2004eye on the I/O depth distribution in the fio output to verify that the
2005achieved depth is as expected. Default: 1.
2006.TP
2007.BI iodepth_batch_submit \fR=\fPint "\fR,\fP iodepth_batch" \fR=\fPint
2008This defines how many pieces of I/O to submit at once. It defaults to 1
2009which means that we submit each I/O as soon as it is available, but can be
2010raised to submit bigger batches of I/O at the time. If it is set to 0 the
2011\fBiodepth\fR value will be used.
2012.TP
2013.BI iodepth_batch_complete_min \fR=\fPint "\fR,\fP iodepth_batch_complete" \fR=\fPint
2014This defines how many pieces of I/O to retrieve at once. It defaults to 1
2015which means that we'll ask for a minimum of 1 I/O in the retrieval process
2016from the kernel. The I/O retrieval will go on until we hit the limit set by
2017\fBiodepth_low\fR. If this variable is set to 0, then fio will always
2018check for completed events before queuing more I/O. This helps reduce I/O
2019latency, at the cost of more retrieval system calls.
2020.TP
2021.BI iodepth_batch_complete_max \fR=\fPint
2022This defines maximum pieces of I/O to retrieve at once. This variable should
2023be used along with \fBiodepth_batch_complete_min\fR=\fIint\fR variable,
2024specifying the range of min and max amount of I/O which should be
2025retrieved. By default it is equal to \fBiodepth_batch_complete_min\fR
2026value. Example #1:
e0a04ac1 2027.RS
e0a04ac1 2028.RS
e0a04ac1 2029.P
523bad63
TK
2030.PD 0
2031iodepth_batch_complete_min=1
e0a04ac1 2032.P
523bad63
TK
2033iodepth_batch_complete_max=<iodepth>
2034.PD
e0a04ac1
JA
2035.RE
2036.P
523bad63
TK
2037which means that we will retrieve at least 1 I/O and up to the whole
2038submitted queue depth. If none of I/O has been completed yet, we will wait.
2039Example #2:
e8b1961d 2040.RS
523bad63
TK
2041.P
2042.PD 0
2043iodepth_batch_complete_min=0
2044.P
2045iodepth_batch_complete_max=<iodepth>
2046.PD
e8b1961d
JA
2047.RE
2048.P
523bad63
TK
2049which means that we can retrieve up to the whole submitted queue depth, but
2050if none of I/O has been completed yet, we will NOT wait and immediately exit
2051the system call. In this example we simply do polling.
2052.RE
e8b1961d 2053.TP
523bad63
TK
2054.BI iodepth_low \fR=\fPint
2055The low water mark indicating when to start filling the queue
2056again. Defaults to the same as \fBiodepth\fR, meaning that fio will
2057attempt to keep the queue full at all times. If \fBiodepth\fR is set to
2058e.g. 16 and \fBiodepth_low\fR is set to 4, then after fio has filled the queue of
205916 requests, it will let the depth drain down to 4 before starting to fill
2060it again.
d60e92d1 2061.TP
523bad63
TK
2062.BI serialize_overlap \fR=\fPbool
2063Serialize in-flight I/Os that might otherwise cause or suffer from data races.
2064When two or more I/Os are submitted simultaneously, there is no guarantee that
2065the I/Os will be processed or completed in the submitted order. Further, if
2066two or more of those I/Os are writes, any overlapping region between them can
2067become indeterminate/undefined on certain storage. These issues can cause
2068verification to fail erratically when at least one of the racing I/Os is
2069changing data and the overlapping region has a non-zero size. Setting
2070\fBserialize_overlap\fR tells fio to avoid provoking this behavior by explicitly
2071serializing in-flight I/Os that have a non-zero overlap. Note that setting
2072this option can reduce both performance and the \fBiodepth\fR achieved.
2073Additionally this option does not work when \fBio_submit_mode\fR is set to
2074offload. Default: false.
d60e92d1 2075.TP
523bad63
TK
2076.BI io_submit_mode \fR=\fPstr
2077This option controls how fio submits the I/O to the I/O engine. The default
2078is `inline', which means that the fio job threads submit and reap I/O
2079directly. If set to `offload', the job threads will offload I/O submission
2080to a dedicated pool of I/O threads. This requires some coordination and thus
2081has a bit of extra overhead, especially for lower queue depth I/O where it
2082can increase latencies. The benefit is that fio can manage submission rates
2083independently of the device completion rates. This avoids skewed latency
2084reporting if I/O gets backed up on the device side (the coordinated omission
2085problem).
2086.SS "I/O rate"
d60e92d1 2087.TP
523bad63
TK
2088.BI thinktime \fR=\fPtime
2089Stall the job for the specified period of time after an I/O has completed before issuing the
2090next. May be used to simulate processing being done by an application.
2091When the unit is omitted, the value is interpreted in microseconds. See
2092\fBthinktime_blocks\fR and \fBthinktime_spin\fR.
d60e92d1 2093.TP
523bad63
TK
2094.BI thinktime_spin \fR=\fPtime
2095Only valid if \fBthinktime\fR is set \- pretend to spend CPU time doing
2096something with the data received, before falling back to sleeping for the
2097rest of the period specified by \fBthinktime\fR. When the unit is
2098omitted, the value is interpreted in microseconds.
d60e92d1
AC
2099.TP
2100.BI thinktime_blocks \fR=\fPint
523bad63
TK
2101Only valid if \fBthinktime\fR is set \- control how many blocks to issue,
2102before waiting \fBthinktime\fR usecs. If not set, defaults to 1 which will make
2103fio wait \fBthinktime\fR usecs after every block. This effectively makes any
2104queue depth setting redundant, since no more than 1 I/O will be queued
2105before we have to complete it and do our \fBthinktime\fR. In other words, this
2106setting effectively caps the queue depth if the latter is larger.
d60e92d1 2107.TP
6d500c2e 2108.BI rate \fR=\fPint[,int][,int]
523bad63
TK
2109Cap the bandwidth used by this job. The number is in bytes/sec, the normal
2110suffix rules apply. Comma\-separated values may be specified for reads,
2111writes, and trims as described in \fBblocksize\fR.
2112.RS
2113.P
2114For example, using `rate=1m,500k' would limit reads to 1MiB/sec and writes to
2115500KiB/sec. Capping only reads or writes can be done with `rate=,500k' or
2116`rate=500k,' where the former will only limit writes (to 500KiB/sec) and the
2117latter will only limit reads.
2118.RE
d60e92d1 2119.TP
6d500c2e 2120.BI rate_min \fR=\fPint[,int][,int]
523bad63
TK
2121Tell fio to do whatever it can to maintain at least this bandwidth. Failing
2122to meet this requirement will cause the job to exit. Comma\-separated values
2123may be specified for reads, writes, and trims as described in
2124\fBblocksize\fR.
d60e92d1 2125.TP
6d500c2e 2126.BI rate_iops \fR=\fPint[,int][,int]
523bad63
TK
2127Cap the bandwidth to this number of IOPS. Basically the same as
2128\fBrate\fR, just specified independently of bandwidth. If the job is
2129given a block size range instead of a fixed value, the smallest block size
2130is used as the metric. Comma\-separated values may be specified for reads,
2131writes, and trims as described in \fBblocksize\fR.
d60e92d1 2132.TP
6d500c2e 2133.BI rate_iops_min \fR=\fPint[,int][,int]
523bad63
TK
2134If fio doesn't meet this rate of I/O, it will cause the job to exit.
2135Comma\-separated values may be specified for reads, writes, and trims as
2136described in \fBblocksize\fR.
d60e92d1 2137.TP
6de65959 2138.BI rate_process \fR=\fPstr
523bad63
TK
2139This option controls how fio manages rated I/O submissions. The default is
2140`linear', which submits I/O in a linear fashion with fixed delays between
2141I/Os that gets adjusted based on I/O completion rates. If this is set to
2142`poisson', fio will submit I/O based on a more real world random request
6de65959 2143flow, known as the Poisson process
523bad63 2144(\fIhttps://en.wikipedia.org/wiki/Poisson_point_process\fR). The lambda will be
5d02b083 214510^6 / IOPS for the given workload.
1a9bf814
JA
2146.TP
2147.BI rate_ignore_thinktime \fR=\fPbool
2148By default, fio will attempt to catch up to the specified rate setting, if any
2149kind of thinktime setting was used. If this option is set, then fio will
2150ignore the thinktime and continue doing IO at the specified rate, instead of
2151entering a catch-up mode after thinktime is done.
523bad63 2152.SS "I/O latency"
ff6bb260 2153.TP
523bad63 2154.BI latency_target \fR=\fPtime
3e260a46 2155If set, fio will attempt to find the max performance point that the given
523bad63
TK
2156workload will run at while maintaining a latency below this target. When
2157the unit is omitted, the value is interpreted in microseconds. See
2158\fBlatency_window\fR and \fBlatency_percentile\fR.
3e260a46 2159.TP
523bad63 2160.BI latency_window \fR=\fPtime
3e260a46 2161Used with \fBlatency_target\fR to specify the sample window that the job
523bad63
TK
2162is run at varying queue depths to test the performance. When the unit is
2163omitted, the value is interpreted in microseconds.
3e260a46
JA
2164.TP
2165.BI latency_percentile \fR=\fPfloat
523bad63
TK
2166The percentage of I/Os that must fall within the criteria specified by
2167\fBlatency_target\fR and \fBlatency_window\fR. If not set, this
2168defaults to 100.0, meaning that all I/Os must be equal or below to the value
2169set by \fBlatency_target\fR.
2170.TP
2171.BI max_latency \fR=\fPtime
2172If set, fio will exit the job with an ETIMEDOUT error if it exceeds this
2173maximum latency. When the unit is omitted, the value is interpreted in
2174microseconds.
2175.TP
2176.BI rate_cycle \fR=\fPint
2177Average bandwidth for \fBrate\fR and \fBrate_min\fR over this number
2178of milliseconds. Defaults to 1000.
2179.SS "I/O replay"
2180.TP
2181.BI write_iolog \fR=\fPstr
2182Write the issued I/O patterns to the specified file. See
2183\fBread_iolog\fR. Specify a separate file for each job, otherwise the
2184iologs will be interspersed and the file may be corrupt.
2185.TP
2186.BI read_iolog \fR=\fPstr
2187Open an iolog with the specified filename and replay the I/O patterns it
2188contains. This can be used to store a workload and replay it sometime
2189later. The iolog given may also be a blktrace binary file, which allows fio
2190to replay a workload captured by blktrace. See
2191\fBblktrace\fR\|(8) for how to capture such logging data. For blktrace
2192replay, the file needs to be turned into a blkparse binary data file first
2193(`blkparse <device> \-o /dev/null \-d file_for_fio.bin').
c70c7f58
AK
2194You can specify a number of files by separating the names with a ':' character.
2195See the \fBfilename\fR option for information on how to escape ':' and '\'
2196characters within the file names. These files will be sequentially assigned to
2197job clones created by \fBnumjobs\fR.
3e260a46 2198.TP
98e7161c
AK
2199.BI read_iolog_chunked \fR=\fPbool
2200Determines how iolog is read. If false (default) entire \fBread_iolog\fR will
2201be read at once. If selected true, input from iolog will be read gradually.
2202Useful when iolog is very large, or it is generated.
2203.TP
b9921d1a
DZ
2204.BI merge_blktrace_file \fR=\fPstr
2205When specified, rather than replaying the logs passed to \fBread_iolog\fR,
2206the logs go through a merge phase which aggregates them into a single blktrace.
2207The resulting file is then passed on as the \fBread_iolog\fR parameter. The
2208intention here is to make the order of events consistent. This limits the
2209influence of the scheduler compared to replaying multiple blktraces via
2210concurrent jobs.
2211.TP
87a48ada
DZ
2212.BI merge_blktrace_scalars \fR=\fPfloat_list
2213This is a percentage based option that is index paired with the list of files
2214passed to \fBread_iolog\fR. When merging is performed, scale the time of each
2215event by the corresponding amount. For example,
2216`\-\-merge_blktrace_scalars="50:100"' runs the first trace in halftime and the
2217second trace in realtime. This knob is separately tunable from
2218\fBreplay_time_scale\fR which scales the trace during runtime and will not
2219change the output of the merge unlike this option.
2220.TP
55bfd8c8
DZ
2221.BI merge_blktrace_iters \fR=\fPfloat_list
2222This is a whole number option that is index paired with the list of files
2223passed to \fBread_iolog\fR. When merging is performed, run each trace for
2224the specified number of iterations. For example,
2225`\-\-merge_blktrace_iters="2:1"' runs the first trace for two iterations
2226and the second trace for one iteration.
2227.TP
523bad63
TK
2228.BI replay_no_stall \fR=\fPbool
2229When replaying I/O with \fBread_iolog\fR the default behavior is to
2230attempt to respect the timestamps within the log and replay them with the
2231appropriate delay between IOPS. By setting this variable fio will not
2232respect the timestamps and attempt to replay them as fast as possible while
2233still respecting ordering. The result is the same I/O pattern to a given
2234device, but different timings.
2235.TP
6dd7fa77
JA
2236.BI replay_time_scale \fR=\fPint
2237When replaying I/O with \fBread_iolog\fR, fio will honor the original timing
2238in the trace. With this option, it's possible to scale the time. It's a
2239percentage option, if set to 50 it means run at 50% the original IO rate in
2240the trace. If set to 200, run at twice the original IO rate. Defaults to 100.
2241.TP
523bad63
TK
2242.BI replay_redirect \fR=\fPstr
2243While replaying I/O patterns using \fBread_iolog\fR the default behavior
2244is to replay the IOPS onto the major/minor device that each IOP was recorded
2245from. This is sometimes undesirable because on a different machine those
2246major/minor numbers can map to a different device. Changing hardware on the
2247same system can also result in a different major/minor mapping.
2248\fBreplay_redirect\fR causes all I/Os to be replayed onto the single specified
2249device regardless of the device it was recorded
2250from. i.e. `replay_redirect=/dev/sdc' would cause all I/O
2251in the blktrace or iolog to be replayed onto `/dev/sdc'. This means
2252multiple devices will be replayed onto a single device, if the trace
2253contains multiple devices. If you want multiple devices to be replayed
2254concurrently to multiple redirected devices you must blkparse your trace
2255into separate traces and replay them with independent fio invocations.
2256Unfortunately this also breaks the strict time ordering between multiple
2257device accesses.
2258.TP
2259.BI replay_align \fR=\fPint
350a535d
DZ
2260Force alignment of the byte offsets in a trace to this value. The value
2261must be a power of 2.
523bad63
TK
2262.TP
2263.BI replay_scale \fR=\fPint
350a535d
DZ
2264Scale bye offsets down by this factor when replaying traces. Should most
2265likely use \fBreplay_align\fR as well.
523bad63
TK
2266.SS "Threads, processes and job synchronization"
2267.TP
38f68906
JA
2268.BI replay_skip \fR=\fPstr
2269Sometimes it's useful to skip certain IO types in a replay trace. This could
2270be, for instance, eliminating the writes in the trace. Or not replaying the
2271trims/discards, if you are redirecting to a device that doesn't support them.
2272This option takes a comma separated list of read, write, trim, sync.
2273.TP
523bad63
TK
2274.BI thread
2275Fio defaults to creating jobs by using fork, however if this option is
2276given, fio will create jobs by using POSIX Threads' function
2277\fBpthread_create\fR\|(3) to create threads instead.
2278.TP
2279.BI wait_for \fR=\fPstr
2280If set, the current job won't be started until all workers of the specified
2281waitee job are done.
2282.\" ignore blank line here from HOWTO as it looks normal without it
2283\fBwait_for\fR operates on the job name basis, so there are a few
2284limitations. First, the waitee must be defined prior to the waiter job
2285(meaning no forward references). Second, if a job is being referenced as a
2286waitee, it must have a unique name (no duplicate waitees).
2287.TP
2288.BI nice \fR=\fPint
2289Run the job with the given nice value. See man \fBnice\fR\|(2).
2290.\" ignore blank line here from HOWTO as it looks normal without it
2291On Windows, values less than \-15 set the process class to "High"; \-1 through
2292\-15 set "Above Normal"; 1 through 15 "Below Normal"; and above 15 "Idle"
2293priority class.
2294.TP
2295.BI prio \fR=\fPint
2296Set the I/O priority value of this job. Linux limits us to a positive value
2297between 0 and 7, with 0 being the highest. See man
2298\fBionice\fR\|(1). Refer to an appropriate manpage for other operating
2299systems since meaning of priority may differ.
2300.TP
2301.BI prioclass \fR=\fPint
2302Set the I/O priority class. See man \fBionice\fR\|(1).
15501535 2303.TP
d60e92d1 2304.BI cpus_allowed \fR=\fPstr
523bad63 2305Controls the same options as \fBcpumask\fR, but accepts a textual
b570e037
SW
2306specification of the permitted CPUs instead and CPUs are indexed from 0. So
2307to use CPUs 0 and 5 you would specify `cpus_allowed=0,5'. This option also
2308allows a range of CPUs to be specified \-\- say you wanted a binding to CPUs
23090, 5, and 8 to 15, you would set `cpus_allowed=0,5,8\-15'.
2310.RS
2311.P
2312On Windows, when `cpus_allowed' is unset only CPUs from fio's current
2313processor group will be used and affinity settings are inherited from the
2314system. An fio build configured to target Windows 7 makes options that set
2315CPUs processor group aware and values will set both the processor group
2316and a CPU from within that group. For example, on a system where processor
2317group 0 has 40 CPUs and processor group 1 has 32 CPUs, `cpus_allowed'
2318values between 0 and 39 will bind CPUs from processor group 0 and
2319`cpus_allowed' values between 40 and 71 will bind CPUs from processor
2320group 1. When using `cpus_allowed_policy=shared' all CPUs specified by a
2321single `cpus_allowed' option must be from the same processor group. For
2322Windows fio builds not built for Windows 7, CPUs will only be selected from
2323(and be relative to) whatever processor group fio happens to be running in
2324and CPUs from other processor groups cannot be used.
2325.RE
d60e92d1 2326.TP
c2acfbac 2327.BI cpus_allowed_policy \fR=\fPstr
523bad63
TK
2328Set the policy of how fio distributes the CPUs specified by
2329\fBcpus_allowed\fR or \fBcpumask\fR. Two policies are supported:
c2acfbac
JA
2330.RS
2331.RS
2332.TP
2333.B shared
2334All jobs will share the CPU set specified.
2335.TP
2336.B split
2337Each job will get a unique CPU from the CPU set.
2338.RE
2339.P
523bad63
TK
2340\fBshared\fR is the default behavior, if the option isn't specified. If
2341\fBsplit\fR is specified, then fio will will assign one cpu per job. If not
2342enough CPUs are given for the jobs listed, then fio will roundrobin the CPUs
2343in the set.
c2acfbac 2344.RE
c2acfbac 2345.TP
b570e037
SW
2346.BI cpumask \fR=\fPint
2347Set the CPU affinity of this job. The parameter given is a bit mask of
2348allowed CPUs the job may run on. So if you want the allowed CPUs to be 1
2349and 5, you would pass the decimal value of (1 << 1 | 1 << 5), or 34. See man
2350\fBsched_setaffinity\fR\|(2). This may not work on all supported
2351operating systems or kernel versions. This option doesn't work well for a
2352higher CPU count than what you can store in an integer mask, so it can only
2353control cpus 1\-32. For boxes with larger CPU counts, use
2354\fBcpus_allowed\fR.
2355.TP
d0b937ed 2356.BI numa_cpu_nodes \fR=\fPstr
cecbfd47 2357Set this job running on specified NUMA nodes' CPUs. The arguments allow
523bad63
TK
2358comma delimited list of cpu numbers, A\-B ranges, or `all'. Note, to enable
2359NUMA options support, fio must be built on a system with libnuma\-dev(el)
2360installed.
d0b937ed
YR
2361.TP
2362.BI numa_mem_policy \fR=\fPstr
523bad63
TK
2363Set this job's memory policy and corresponding NUMA nodes. Format of the
2364arguments:
39c7a2ca
VF
2365.RS
2366.RS
523bad63
TK
2367.P
2368<mode>[:<nodelist>]
39c7a2ca 2369.RE
523bad63 2370.P
f1dd3fb1 2371`mode' is one of the following memory policies: `default', `prefer',
523bad63
TK
2372`bind', `interleave' or `local'. For `default' and `local' memory
2373policies, no node needs to be specified. For `prefer', only one node is
2374allowed. For `bind' and `interleave' the `nodelist' may be as
2375follows: a comma delimited list of numbers, A\-B ranges, or `all'.
39c7a2ca
VF
2376.RE
2377.TP
523bad63
TK
2378.BI cgroup \fR=\fPstr
2379Add job to this control group. If it doesn't exist, it will be created. The
2380system must have a mounted cgroup blkio mount point for this to work. If
2381your system doesn't have it mounted, you can do so with:
d60e92d1
AC
2382.RS
2383.RS
d60e92d1 2384.P
523bad63
TK
2385# mount \-t cgroup \-o blkio none /cgroup
2386.RE
d60e92d1
AC
2387.RE
2388.TP
523bad63
TK
2389.BI cgroup_weight \fR=\fPint
2390Set the weight of the cgroup to this value. See the documentation that comes
2391with the kernel, allowed values are in the range of 100..1000.
d60e92d1 2392.TP
523bad63
TK
2393.BI cgroup_nodelete \fR=\fPbool
2394Normally fio will delete the cgroups it has created after the job
2395completion. To override this behavior and to leave cgroups around after the
2396job completion, set `cgroup_nodelete=1'. This can be useful if one wants
2397to inspect various cgroup files after job completion. Default: false.
c8eeb9df 2398.TP
523bad63
TK
2399.BI flow_id \fR=\fPint
2400The ID of the flow. If not specified, it defaults to being a global
2401flow. See \fBflow\fR.
d60e92d1 2402.TP
523bad63
TK
2403.BI flow \fR=\fPint
2404Weight in token\-based flow control. If this value is used, then there is
2405a 'flow counter' which is used to regulate the proportion of activity between
2406two or more jobs. Fio attempts to keep this flow counter near zero. The
2407\fBflow\fR parameter stands for how much should be added or subtracted to the
2408flow counter on each iteration of the main I/O loop. That is, if one job has
2409`flow=8' and another job has `flow=\-1', then there will be a roughly 1:8
2410ratio in how much one runs vs the other.
d60e92d1 2411.TP
523bad63
TK
2412.BI flow_watermark \fR=\fPint
2413The maximum value that the absolute value of the flow counter is allowed to
2414reach before the job must wait for a lower value of the counter.
6b7f6851 2415.TP
523bad63
TK
2416.BI flow_sleep \fR=\fPint
2417The period of time, in microseconds, to wait after the flow watermark has
2418been exceeded before retrying operations.
25460cf6 2419.TP
523bad63
TK
2420.BI stonewall "\fR,\fB wait_for_previous"
2421Wait for preceding jobs in the job file to exit, before starting this
2422one. Can be used to insert serialization points in the job file. A stone
2423wall also implies starting a new reporting group, see
2424\fBgroup_reporting\fR.
2378826d 2425.TP
523bad63
TK
2426.BI exitall
2427By default, fio will continue running all other jobs when one job finishes
2428but sometimes this is not the desired action. Setting \fBexitall\fR will
2429instead make fio terminate all other jobs when one job finishes.
e81ecca3 2430.TP
523bad63
TK
2431.BI exec_prerun \fR=\fPstr
2432Before running this job, issue the command specified through
2433\fBsystem\fR\|(3). Output is redirected in a file called `jobname.prerun.txt'.
e9f48479 2434.TP
523bad63
TK
2435.BI exec_postrun \fR=\fPstr
2436After the job completes, issue the command specified though
2437\fBsystem\fR\|(3). Output is redirected in a file called `jobname.postrun.txt'.
d60e92d1 2438.TP
523bad63
TK
2439.BI uid \fR=\fPint
2440Instead of running as the invoking user, set the user ID to this value
2441before the thread/process does any work.
39c1c323 2442.TP
523bad63
TK
2443.BI gid \fR=\fPint
2444Set group ID, see \fBuid\fR.
2445.SS "Verification"
d60e92d1 2446.TP
589e88b7 2447.BI verify_only
523bad63 2448Do not perform specified workload, only verify data still matches previous
5e4c7118 2449invocation of this workload. This option allows one to check data multiple
523bad63
TK
2450times at a later date without overwriting it. This option makes sense only
2451for workloads that write data, and does not support workloads with the
5e4c7118
JA
2452\fBtime_based\fR option set.
2453.TP
d60e92d1 2454.BI do_verify \fR=\fPbool
523bad63
TK
2455Run the verify phase after a write phase. Only valid if \fBverify\fR is
2456set. Default: true.
d60e92d1
AC
2457.TP
2458.BI verify \fR=\fPstr
523bad63
TK
2459If writing to a file, fio can verify the file contents after each iteration
2460of the job. Each verification method also implies verification of special
2461header, which is written to the beginning of each block. This header also
2462includes meta information, like offset of the block, block number, timestamp
2463when block was written, etc. \fBverify\fR can be combined with
2464\fBverify_pattern\fR option. The allowed values are:
d60e92d1
AC
2465.RS
2466.RS
2467.TP
523bad63
TK
2468.B md5
2469Use an md5 sum of the data area and store it in the header of
2470each block.
2471.TP
2472.B crc64
2473Use an experimental crc64 sum of the data area and store it in the
2474header of each block.
2475.TP
2476.B crc32c
2477Use a crc32c sum of the data area and store it in the header of
2478each block. This will automatically use hardware acceleration
2479(e.g. SSE4.2 on an x86 or CRC crypto extensions on ARM64) but will
2480fall back to software crc32c if none is found. Generally the
f1dd3fb1 2481fastest checksum fio supports when hardware accelerated.
523bad63
TK
2482.TP
2483.B crc32c\-intel
2484Synonym for crc32c.
2485.TP
2486.B crc32
2487Use a crc32 sum of the data area and store it in the header of each
2488block.
2489.TP
2490.B crc16
2491Use a crc16 sum of the data area and store it in the header of each
2492block.
2493.TP
2494.B crc7
2495Use a crc7 sum of the data area and store it in the header of each
2496block.
2497.TP
2498.B xxhash
2499Use xxhash as the checksum function. Generally the fastest software
2500checksum that fio supports.
2501.TP
2502.B sha512
2503Use sha512 as the checksum function.
2504.TP
2505.B sha256
2506Use sha256 as the checksum function.
2507.TP
2508.B sha1
2509Use optimized sha1 as the checksum function.
2510.TP
2511.B sha3\-224
2512Use optimized sha3\-224 as the checksum function.
2513.TP
2514.B sha3\-256
2515Use optimized sha3\-256 as the checksum function.
2516.TP
2517.B sha3\-384
2518Use optimized sha3\-384 as the checksum function.
2519.TP
2520.B sha3\-512
2521Use optimized sha3\-512 as the checksum function.
d60e92d1
AC
2522.TP
2523.B meta
523bad63
TK
2524This option is deprecated, since now meta information is included in
2525generic verification header and meta verification happens by
2526default. For detailed information see the description of the
2527\fBverify\fR setting. This option is kept because of
2528compatibility's sake with old configurations. Do not use it.
d60e92d1 2529.TP
59245381 2530.B pattern
523bad63
TK
2531Verify a strict pattern. Normally fio includes a header with some
2532basic information and checksumming, but if this option is set, only
2533the specific pattern set with \fBverify_pattern\fR is verified.
59245381 2534.TP
d60e92d1 2535.B null
523bad63
TK
2536Only pretend to verify. Useful for testing internals with
2537`ioengine=null', not for much else.
d60e92d1 2538.RE
523bad63
TK
2539.P
2540This option can be used for repeated burn\-in tests of a system to make sure
2541that the written data is also correctly read back. If the data direction
2542given is a read or random read, fio will assume that it should verify a
2543previously written file. If the data direction includes any form of write,
2544the verify will be of the newly written data.
47e6a6e5
SW
2545.P
2546To avoid false verification errors, do not use the norandommap option when
2547verifying data with async I/O engines and I/O depths > 1. Or use the
2548norandommap and the lfsr random generator together to avoid writing to the
2549same offset with muliple outstanding I/Os.
d60e92d1
AC
2550.RE
2551.TP
f7fa2653 2552.BI verify_offset \fR=\fPint
d60e92d1 2553Swap the verification header with data somewhere else in the block before
523bad63 2554writing. It is swapped back before verifying.
d60e92d1 2555.TP
f7fa2653 2556.BI verify_interval \fR=\fPint
523bad63
TK
2557Write the verification header at a finer granularity than the
2558\fBblocksize\fR. It will be written for chunks the size of
2559\fBverify_interval\fR. \fBblocksize\fR should divide this evenly.
d60e92d1 2560.TP
996093bb 2561.BI verify_pattern \fR=\fPstr
523bad63
TK
2562If set, fio will fill the I/O buffers with this pattern. Fio defaults to
2563filling with totally random bytes, but sometimes it's interesting to fill
2564with a known pattern for I/O verification purposes. Depending on the width
2565of the pattern, fio will fill 1/2/3/4 bytes of the buffer at the time (it can
2566be either a decimal or a hex number). The \fBverify_pattern\fR if larger than
2567a 32\-bit quantity has to be a hex number that starts with either "0x" or
2568"0X". Use with \fBverify\fR. Also, \fBverify_pattern\fR supports %o
2569format, which means that for each block offset will be written and then
2570verified back, e.g.:
2fa5a241
RP
2571.RS
2572.RS
523bad63
TK
2573.P
2574verify_pattern=%o
2fa5a241 2575.RE
523bad63 2576.P
2fa5a241 2577Or use combination of everything:
2fa5a241 2578.RS
523bad63
TK
2579.P
2580verify_pattern=0xff%o"abcd"\-12
2fa5a241
RP
2581.RE
2582.RE
996093bb 2583.TP
d60e92d1 2584.BI verify_fatal \fR=\fPbool
523bad63
TK
2585Normally fio will keep checking the entire contents before quitting on a
2586block verification failure. If this option is set, fio will exit the job on
2587the first observed failure. Default: false.
d60e92d1 2588.TP
b463e936 2589.BI verify_dump \fR=\fPbool
523bad63
TK
2590If set, dump the contents of both the original data block and the data block
2591we read off disk to files. This allows later analysis to inspect just what
2592kind of data corruption occurred. Off by default.
b463e936 2593.TP
e8462bd8 2594.BI verify_async \fR=\fPint
523bad63
TK
2595Fio will normally verify I/O inline from the submitting thread. This option
2596takes an integer describing how many async offload threads to create for I/O
2597verification instead, causing fio to offload the duty of verifying I/O
2598contents to one or more separate threads. If using this offload option, even
2599sync I/O engines can benefit from using an \fBiodepth\fR setting higher
2600than 1, as it allows them to have I/O in flight while verifies are running.
2601Defaults to 0 async threads, i.e. verification is not asynchronous.
e8462bd8
JA
2602.TP
2603.BI verify_async_cpus \fR=\fPstr
523bad63
TK
2604Tell fio to set the given CPU affinity on the async I/O verification
2605threads. See \fBcpus_allowed\fR for the format used.
e8462bd8 2606.TP
6f87418f
JA
2607.BI verify_backlog \fR=\fPint
2608Fio will normally verify the written contents of a job that utilizes verify
2609once that job has completed. In other words, everything is written then
2610everything is read back and verified. You may want to verify continually
523bad63
TK
2611instead for a variety of reasons. Fio stores the meta data associated with
2612an I/O block in memory, so for large verify workloads, quite a bit of memory
2613would be used up holding this meta data. If this option is enabled, fio will
2614write only N blocks before verifying these blocks.
6f87418f
JA
2615.TP
2616.BI verify_backlog_batch \fR=\fPint
523bad63
TK
2617Control how many blocks fio will verify if \fBverify_backlog\fR is
2618set. If not set, will default to the value of \fBverify_backlog\fR
2619(meaning the entire queue is read back and verified). If
2620\fBverify_backlog_batch\fR is less than \fBverify_backlog\fR then not all
2621blocks will be verified, if \fBverify_backlog_batch\fR is larger than
2622\fBverify_backlog\fR, some blocks will be verified more than once.
2623.TP
2624.BI verify_state_save \fR=\fPbool
2625When a job exits during the write phase of a verify workload, save its
2626current state. This allows fio to replay up until that point, if the verify
2627state is loaded for the verify read phase. The format of the filename is,
2628roughly:
2629.RS
2630.RS
2631.P
2632<type>\-<jobname>\-<jobindex>\-verify.state.
2633.RE
2634.P
2635<type> is "local" for a local run, "sock" for a client/server socket
2636connection, and "ip" (192.168.0.1, for instance) for a networked
2637client/server connection. Defaults to true.
2638.RE
2639.TP
2640.BI verify_state_load \fR=\fPbool
2641If a verify termination trigger was used, fio stores the current write state
2642of each thread. This can be used at verification time so that fio knows how
2643far it should verify. Without this information, fio will run a full
2644verification pass, according to the settings in the job file used. Default
2645false.
6f87418f 2646.TP
fa769d44
SW
2647.BI trim_percentage \fR=\fPint
2648Number of verify blocks to discard/trim.
2649.TP
2650.BI trim_verify_zero \fR=\fPbool
523bad63 2651Verify that trim/discarded blocks are returned as zeros.
fa769d44
SW
2652.TP
2653.BI trim_backlog \fR=\fPint
523bad63 2654Verify that trim/discarded blocks are returned as zeros.
fa769d44
SW
2655.TP
2656.BI trim_backlog_batch \fR=\fPint
523bad63 2657Trim this number of I/O blocks.
fa769d44
SW
2658.TP
2659.BI experimental_verify \fR=\fPbool
2660Enable experimental verification.
523bad63 2661.SS "Steady state"
fa769d44 2662.TP
523bad63
TK
2663.BI steadystate \fR=\fPstr:float "\fR,\fP ss" \fR=\fPstr:float
2664Define the criterion and limit for assessing steady state performance. The
2665first parameter designates the criterion whereas the second parameter sets
2666the threshold. When the criterion falls below the threshold for the
2667specified duration, the job will stop. For example, `iops_slope:0.1%' will
2668direct fio to terminate the job when the least squares regression slope
2669falls below 0.1% of the mean IOPS. If \fBgroup_reporting\fR is enabled
2670this will apply to all jobs in the group. Below is the list of available
2671steady state assessment criteria. All assessments are carried out using only
2672data from the rolling collection window. Threshold limits can be expressed
2673as a fixed value or as a percentage of the mean in the collection window.
2674.RS
1cb049d9
VF
2675.P
2676When using this feature, most jobs should include the \fBtime_based\fR
2677and \fBruntime\fR options or the \fBloops\fR option so that fio does not
2678stop running after it has covered the full size of the specified file(s)
2679or device(s).
2680.RS
523bad63 2681.RS
d60e92d1 2682.TP
523bad63
TK
2683.B iops
2684Collect IOPS data. Stop the job if all individual IOPS measurements
2685are within the specified limit of the mean IOPS (e.g., `iops:2'
2686means that all individual IOPS values must be within 2 of the mean,
2687whereas `iops:0.2%' means that all individual IOPS values must be
2688within 0.2% of the mean IOPS to terminate the job).
d60e92d1 2689.TP
523bad63
TK
2690.B iops_slope
2691Collect IOPS data and calculate the least squares regression
2692slope. Stop the job if the slope falls below the specified limit.
d60e92d1 2693.TP
523bad63
TK
2694.B bw
2695Collect bandwidth data. Stop the job if all individual bandwidth
2696measurements are within the specified limit of the mean bandwidth.
64bbb865 2697.TP
523bad63
TK
2698.B bw_slope
2699Collect bandwidth data and calculate the least squares regression
2700slope. Stop the job if the slope falls below the specified limit.
2701.RE
2702.RE
d1c46c04 2703.TP
523bad63
TK
2704.BI steadystate_duration \fR=\fPtime "\fR,\fP ss_dur" \fR=\fPtime
2705A rolling window of this duration will be used to judge whether steady state
2706has been reached. Data will be collected once per second. The default is 0
2707which disables steady state detection. When the unit is omitted, the
2708value is interpreted in seconds.
0c63576e 2709.TP
523bad63
TK
2710.BI steadystate_ramp_time \fR=\fPtime "\fR,\fP ss_ramp" \fR=\fPtime
2711Allow the job to run for the specified duration before beginning data
2712collection for checking the steady state job termination criterion. The
2713default is 0. When the unit is omitted, the value is interpreted in seconds.
2714.SS "Measurements and reporting"
0c63576e 2715.TP
3a5db920
JA
2716.BI per_job_logs \fR=\fPbool
2717If set, this generates bw/clat/iops log with per file private filenames. If
523bad63
TK
2718not set, jobs with identical names will share the log filename. Default:
2719true.
2720.TP
2721.BI group_reporting
2722It may sometimes be interesting to display statistics for groups of jobs as
2723a whole instead of for each individual job. This is especially true if
2724\fBnumjobs\fR is used; looking at individual thread/process output
2725quickly becomes unwieldy. To see the final report per\-group instead of
2726per\-job, use \fBgroup_reporting\fR. Jobs in a file will be part of the
2727same reporting group, unless if separated by a \fBstonewall\fR, or by
2728using \fBnew_group\fR.
2729.TP
2730.BI new_group
2731Start a new reporting group. See: \fBgroup_reporting\fR. If not given,
2732all jobs in a file will be part of the same reporting group, unless
2733separated by a \fBstonewall\fR.
2734.TP
2735.BI stats \fR=\fPbool
2736By default, fio collects and shows final output results for all jobs
2737that run. If this option is set to 0, then fio will ignore it in
2738the final stat output.
3a5db920 2739.TP
836bad52 2740.BI write_bw_log \fR=\fPstr
523bad63 2741If given, write a bandwidth log for this job. Can be used to store data of
074f0817 2742the bandwidth of the jobs in their lifetime.
523bad63 2743.RS
074f0817
SW
2744.P
2745If no str argument is given, the default filename of
2746`jobname_type.x.log' is used. Even when the argument is given, fio
2747will still append the type of log. So if one specifies:
523bad63
TK
2748.RS
2749.P
074f0817 2750write_bw_log=foo
523bad63
TK
2751.RE
2752.P
074f0817
SW
2753The actual log name will be `foo_bw.x.log' where `x' is the index
2754of the job (1..N, where N is the number of jobs). If
2755\fBper_job_logs\fR is false, then the filename will not include the
2756`.x` job index.
2757.P
2758The included \fBfio_generate_plots\fR script uses gnuplot to turn these
2759text files into nice graphs. See the \fBLOG FILE FORMATS\fR section for how data is
2760structured within the file.
523bad63 2761.RE
901bb994 2762.TP
074f0817
SW
2763.BI write_lat_log \fR=\fPstr
2764Same as \fBwrite_bw_log\fR, except this option creates I/O
2765submission (e.g., `name_slat.x.log'), completion (e.g.,
2766`name_clat.x.log'), and total (e.g., `name_lat.x.log') latency
2767files instead. See \fBwrite_bw_log\fR for details about the
2768filename format and the \fBLOG FILE FORMATS\fR section for how data is structured
2769within the files.
2770.TP
1e613c9c 2771.BI write_hist_log \fR=\fPstr
074f0817
SW
2772Same as \fBwrite_bw_log\fR but writes an I/O completion latency
2773histogram file (e.g., `name_hist.x.log') instead. Note that this
2774file will be empty unless \fBlog_hist_msec\fR has also been set.
2775See \fBwrite_bw_log\fR for details about the filename format and
2776the \fBLOG FILE FORMATS\fR section for how data is structured
2777within the file.
1e613c9c 2778.TP
c8eeb9df 2779.BI write_iops_log \fR=\fPstr
074f0817 2780Same as \fBwrite_bw_log\fR, but writes an IOPS file (e.g.
15417073
SW
2781`name_iops.x.log`) instead. Because fio defaults to individual
2782I/O logging, the value entry in the IOPS log will be 1 unless windowed
2783logging (see \fBlog_avg_msec\fR) has been enabled. See
2784\fBwrite_bw_log\fR for details about the filename format and \fBLOG
2785FILE FORMATS\fR for how data is structured within the file.
c8eeb9df 2786.TP
b8bc8cba
JA
2787.BI log_avg_msec \fR=\fPint
2788By default, fio will log an entry in the iops, latency, or bw log for every
523bad63 2789I/O that completes. When writing to the disk log, that can quickly grow to a
b8bc8cba 2790very large size. Setting this option makes fio average the each log entry
e6989e10 2791over the specified period of time, reducing the resolution of the log. See
523bad63
TK
2792\fBlog_max_value\fR as well. Defaults to 0, logging all entries.
2793Also see \fBLOG FILE FORMATS\fR section.
b8bc8cba 2794.TP
1e613c9c 2795.BI log_hist_msec \fR=\fPint
523bad63
TK
2796Same as \fBlog_avg_msec\fR, but logs entries for completion latency
2797histograms. Computing latency percentiles from averages of intervals using
2798\fBlog_avg_msec\fR is inaccurate. Setting this option makes fio log
2799histogram entries over the specified period of time, reducing log sizes for
2800high IOPS devices while retaining percentile accuracy. See
074f0817
SW
2801\fBlog_hist_coarseness\fR and \fBwrite_hist_log\fR as well.
2802Defaults to 0, meaning histogram logging is disabled.
1e613c9c
KC
2803.TP
2804.BI log_hist_coarseness \fR=\fPint
523bad63
TK
2805Integer ranging from 0 to 6, defining the coarseness of the resolution of
2806the histogram logs enabled with \fBlog_hist_msec\fR. For each increment
2807in coarseness, fio outputs half as many bins. Defaults to 0, for which
2808histogram logs contain 1216 latency bins. See \fBLOG FILE FORMATS\fR section.
2809.TP
2810.BI log_max_value \fR=\fPbool
2811If \fBlog_avg_msec\fR is set, fio logs the average over that window. If
2812you instead want to log the maximum value, set this option to 1. Defaults to
28130, meaning that averaged values are logged.
1e613c9c 2814.TP
ae588852 2815.BI log_offset \fR=\fPbool
523bad63
TK
2816If this is set, the iolog options will include the byte offset for the I/O
2817entry as well as the other data values. Defaults to 0 meaning that
2818offsets are not present in logs. Also see \fBLOG FILE FORMATS\fR section.
ae588852 2819.TP
aee2ab67 2820.BI log_compression \fR=\fPint
523bad63
TK
2821If this is set, fio will compress the I/O logs as it goes, to keep the
2822memory footprint lower. When a log reaches the specified size, that chunk is
2823removed and compressed in the background. Given that I/O logs are fairly
2824highly compressible, this yields a nice memory savings for longer runs. The
2825downside is that the compression will consume some background CPU cycles, so
2826it may impact the run. This, however, is also true if the logging ends up
2827consuming most of the system memory. So pick your poison. The I/O logs are
2828saved normally at the end of a run, by decompressing the chunks and storing
2829them in the specified log file. This feature depends on the availability of
2830zlib.
aee2ab67 2831.TP
c08f9fe2 2832.BI log_compression_cpus \fR=\fPstr
523bad63
TK
2833Define the set of CPUs that are allowed to handle online log compression for
2834the I/O jobs. This can provide better isolation between performance
0cf90a62
SW
2835sensitive jobs, and background compression work. See \fBcpus_allowed\fR for
2836the format used.
c08f9fe2 2837.TP
b26317c9 2838.BI log_store_compressed \fR=\fPbool
c08f9fe2 2839If set, fio will store the log files in a compressed format. They can be
523bad63
TK
2840decompressed with fio, using the \fB\-\-inflate\-log\fR command line
2841parameter. The files will be stored with a `.fz' suffix.
b26317c9 2842.TP
3aea75b1
KC
2843.BI log_unix_epoch \fR=\fPbool
2844If set, fio will log Unix timestamps to the log files produced by enabling
523bad63 2845write_type_log for each log type, instead of the default zero\-based
3aea75b1
KC
2846timestamps.
2847.TP
66347cfa 2848.BI block_error_percentiles \fR=\fPbool
523bad63
TK
2849If set, record errors in trim block\-sized units from writes and trims and
2850output a histogram of how many trims it took to get to errors, and what kind
2851of error was encountered.
d60e92d1 2852.TP
523bad63
TK
2853.BI bwavgtime \fR=\fPint
2854Average the calculated bandwidth over the given time. Value is specified in
2855milliseconds. If the job also does bandwidth logging through
2856\fBwrite_bw_log\fR, then the minimum of this option and
2857\fBlog_avg_msec\fR will be used. Default: 500ms.
d60e92d1 2858.TP
523bad63
TK
2859.BI iopsavgtime \fR=\fPint
2860Average the calculated IOPS over the given time. Value is specified in
2861milliseconds. If the job also does IOPS logging through
2862\fBwrite_iops_log\fR, then the minimum of this option and
2863\fBlog_avg_msec\fR will be used. Default: 500ms.
d60e92d1 2864.TP
d60e92d1 2865.BI disk_util \fR=\fPbool
523bad63
TK
2866Generate disk utilization statistics, if the platform supports it.
2867Default: true.
fa769d44 2868.TP
523bad63
TK
2869.BI disable_lat \fR=\fPbool
2870Disable measurements of total latency numbers. Useful only for cutting back
2871the number of calls to \fBgettimeofday\fR\|(2), as that does impact
2872performance at really high IOPS rates. Note that to really get rid of a
2873large amount of these calls, this option must be used with
2874\fBdisable_slat\fR and \fBdisable_bw_measurement\fR as well.
9e684a49 2875.TP
523bad63
TK
2876.BI disable_clat \fR=\fPbool
2877Disable measurements of completion latency numbers. See
2878\fBdisable_lat\fR.
9e684a49 2879.TP
523bad63
TK
2880.BI disable_slat \fR=\fPbool
2881Disable measurements of submission latency numbers. See
2882\fBdisable_lat\fR.
9e684a49 2883.TP
523bad63
TK
2884.BI disable_bw_measurement \fR=\fPbool "\fR,\fP disable_bw" \fR=\fPbool
2885Disable measurements of throughput/bandwidth numbers. See
2886\fBdisable_lat\fR.
9e684a49 2887.TP
83349190 2888.BI clat_percentiles \fR=\fPbool
b599759b
JA
2889Enable the reporting of percentiles of completion latencies. This option is
2890mutually exclusive with \fBlat_percentiles\fR.
2891.TP
2892.BI lat_percentiles \fR=\fPbool
b71968b1 2893Enable the reporting of percentiles of I/O latencies. This is similar to
b599759b
JA
2894\fBclat_percentiles\fR, except that this includes the submission latency.
2895This option is mutually exclusive with \fBclat_percentiles\fR.
83349190
YH
2896.TP
2897.BI percentile_list \fR=\fPfloat_list
66347cfa 2898Overwrite the default list of percentiles for completion latencies and the
523bad63
TK
2899block error histogram. Each number is a floating number in the range
2900(0,100], and the maximum length of the list is 20. Use ':' to separate the
2901numbers, and list the numbers in ascending order. For example,
2902`\-\-percentile_list=99.5:99.9' will cause fio to report the values of
2903completion latency below which 99.5% and 99.9% of the observed latencies
2904fell, respectively.
e883cb35
JF
2905.TP
2906.BI significant_figures \fR=\fPint
c32ba107
JA
2907If using \fB\-\-output\-format\fR of `normal', set the significant figures
2908to this value. Higher values will yield more precise IOPS and throughput
2909units, while lower values will round. Requires a minimum value of 1 and a
e883cb35 2910maximum value of 10. Defaults to 4.
523bad63 2911.SS "Error handling"
e4585935 2912.TP
523bad63
TK
2913.BI exitall_on_error
2914When one job finishes in error, terminate the rest. The default is to wait
2915for each job to finish.
e4585935 2916.TP
523bad63
TK
2917.BI continue_on_error \fR=\fPstr
2918Normally fio will exit the job on the first observed failure. If this option
2919is set, fio will continue the job when there is a 'non\-fatal error' (EIO or
2920EILSEQ) until the runtime is exceeded or the I/O size specified is
2921completed. If this option is used, there are two more stats that are
2922appended, the total error count and the first error. The error field given
2923in the stats is the first error that was hit during the run.
2924The allowed values are:
2925.RS
2926.RS
046395d7 2927.TP
523bad63
TK
2928.B none
2929Exit on any I/O or verify errors.
de890a1e 2930.TP
523bad63
TK
2931.B read
2932Continue on read errors, exit on all others.
2cafffbe 2933.TP
523bad63
TK
2934.B write
2935Continue on write errors, exit on all others.
a0679ce5 2936.TP
523bad63
TK
2937.B io
2938Continue on any I/O error, exit on all others.
de890a1e 2939.TP
523bad63
TK
2940.B verify
2941Continue on verify errors, exit on all others.
de890a1e 2942.TP
523bad63
TK
2943.B all
2944Continue on all errors.
b93b6a2e 2945.TP
523bad63
TK
2946.B 0
2947Backward\-compatible alias for 'none'.
d3a623de 2948.TP
523bad63
TK
2949.B 1
2950Backward\-compatible alias for 'all'.
2951.RE
2952.RE
1d360ffb 2953.TP
523bad63
TK
2954.BI ignore_error \fR=\fPstr
2955Sometimes you want to ignore some errors during test in that case you can
2956specify error list for each error type, instead of only being able to
2957ignore the default 'non\-fatal error' using \fBcontinue_on_error\fR.
2958`ignore_error=READ_ERR_LIST,WRITE_ERR_LIST,VERIFY_ERR_LIST' errors for
2959given error type is separated with ':'. Error may be symbol ('ENOSPC', 'ENOMEM')
2960or integer. Example:
de890a1e
SL
2961.RS
2962.RS
523bad63
TK
2963.P
2964ignore_error=EAGAIN,ENOSPC:122
2965.RE
2966.P
2967This option will ignore EAGAIN from READ, and ENOSPC and 122(EDQUOT) from
2968WRITE. This option works by overriding \fBcontinue_on_error\fR with
2969the list of errors for each error type if any.
2970.RE
de890a1e 2971.TP
523bad63
TK
2972.BI error_dump \fR=\fPbool
2973If set dump every error even if it is non fatal, true by default. If
2974disabled only fatal error will be dumped.
2975.SS "Running predefined workloads"
2976Fio includes predefined profiles that mimic the I/O workloads generated by
2977other tools.
49ccb8c1 2978.TP
523bad63
TK
2979.BI profile \fR=\fPstr
2980The predefined workload to run. Current profiles are:
2981.RS
2982.RS
de890a1e 2983.TP
523bad63
TK
2984.B tiobench
2985Threaded I/O bench (tiotest/tiobench) like workload.
49ccb8c1 2986.TP
523bad63
TK
2987.B act
2988Aerospike Certification Tool (ACT) like workload.
2989.RE
de890a1e
SL
2990.RE
2991.P
523bad63
TK
2992To view a profile's additional options use \fB\-\-cmdhelp\fR after specifying
2993the profile. For example:
2994.RS
2995.TP
2996$ fio \-\-profile=act \-\-cmdhelp
de890a1e 2997.RE
523bad63 2998.SS "Act profile options"
de890a1e 2999.TP
523bad63
TK
3000.BI device\-names \fR=\fPstr
3001Devices to use.
d54fce84 3002.TP
523bad63
TK
3003.BI load \fR=\fPint
3004ACT load multiplier. Default: 1.
7aeb1e94 3005.TP
523bad63
TK
3006.BI test\-duration\fR=\fPtime
3007How long the entire test takes to run. When the unit is omitted, the value
3008is given in seconds. Default: 24h.
1008602c 3009.TP
523bad63
TK
3010.BI threads\-per\-queue\fR=\fPint
3011Number of read I/O threads per device. Default: 8.
e5f34d95 3012.TP
523bad63
TK
3013.BI read\-req\-num\-512\-blocks\fR=\fPint
3014Number of 512B blocks to read at the time. Default: 3.
d54fce84 3015.TP
523bad63
TK
3016.BI large\-block\-op\-kbytes\fR=\fPint
3017Size of large block ops in KiB (writes). Default: 131072.
d54fce84 3018.TP
523bad63
TK
3019.BI prep
3020Set to run ACT prep phase.
3021.SS "Tiobench profile options"
6d500c2e 3022.TP
523bad63
TK
3023.BI size\fR=\fPstr
3024Size in MiB.
0d978694 3025.TP
523bad63
TK
3026.BI block\fR=\fPint
3027Block size in bytes. Default: 4096.
0d978694 3028.TP
523bad63
TK
3029.BI numruns\fR=\fPint
3030Number of runs.
0d978694 3031.TP
523bad63
TK
3032.BI dir\fR=\fPstr
3033Test directory.
65fa28ca 3034.TP
523bad63
TK
3035.BI threads\fR=\fPint
3036Number of threads.
d60e92d1 3037.SH OUTPUT
40943b9a
TK
3038Fio spits out a lot of output. While running, fio will display the status of the
3039jobs created. An example of that would be:
d60e92d1 3040.P
40943b9a
TK
3041.nf
3042 Jobs: 1 (f=1): [_(1),M(1)][24.8%][r=20.5MiB/s,w=23.5MiB/s][r=82,w=94 IOPS][eta 01m:31s]
3043.fi
d1429b5c 3044.P
40943b9a
TK
3045The characters inside the first set of square brackets denote the current status of
3046each thread. The first character is the first job defined in the job file, and so
3047forth. The possible values (in typical life cycle order) are:
d60e92d1
AC
3048.RS
3049.TP
40943b9a 3050.PD 0
d60e92d1 3051.B P
40943b9a 3052Thread setup, but not started.
d60e92d1
AC
3053.TP
3054.B C
3055Thread created.
3056.TP
3057.B I
40943b9a
TK
3058Thread initialized, waiting or generating necessary data.
3059.TP
522c29f6 3060.B p
40943b9a
TK
3061Thread running pre\-reading file(s).
3062.TP
3063.B /
3064Thread is in ramp period.
d60e92d1
AC
3065.TP
3066.B R
3067Running, doing sequential reads.
3068.TP
3069.B r
3070Running, doing random reads.
3071.TP
3072.B W
3073Running, doing sequential writes.
3074.TP
3075.B w
3076Running, doing random writes.
3077.TP
3078.B M
3079Running, doing mixed sequential reads/writes.
3080.TP
3081.B m
3082Running, doing mixed random reads/writes.
3083.TP
40943b9a
TK
3084.B D
3085Running, doing sequential trims.
3086.TP
3087.B d
3088Running, doing random trims.
3089.TP
d60e92d1
AC
3090.B F
3091Running, currently waiting for \fBfsync\fR\|(2).
3092.TP
3093.B V
40943b9a
TK
3094Running, doing verification of written data.
3095.TP
3096.B f
3097Thread finishing.
d60e92d1
AC
3098.TP
3099.B E
40943b9a 3100Thread exited, not reaped by main thread yet.
d60e92d1
AC
3101.TP
3102.B \-
40943b9a
TK
3103Thread reaped.
3104.TP
3105.B X
3106Thread reaped, exited with an error.
3107.TP
3108.B K
3109Thread reaped, exited due to signal.
d1429b5c 3110.PD
40943b9a
TK
3111.RE
3112.P
3113Fio will condense the thread string as not to take up more space on the command
3114line than needed. For instance, if you have 10 readers and 10 writers running,
3115the output would look like this:
3116.P
3117.nf
3118 Jobs: 20 (f=20): [R(10),W(10)][4.0%][r=20.5MiB/s,w=23.5MiB/s][r=82,w=94 IOPS][eta 57m:36s]
3119.fi
d60e92d1 3120.P
40943b9a
TK
3121Note that the status string is displayed in order, so it's possible to tell which of
3122the jobs are currently doing what. In the example above this means that jobs 1\-\-10
3123are readers and 11\-\-20 are writers.
d60e92d1 3124.P
40943b9a
TK
3125The other values are fairly self explanatory \-\- number of threads currently
3126running and doing I/O, the number of currently open files (f=), the estimated
3127completion percentage, the rate of I/O since last check (read speed listed first,
3128then write speed and optionally trim speed) in terms of bandwidth and IOPS,
3129and time to completion for the current running group. It's impossible to estimate
3130runtime of the following groups (if any).
d60e92d1 3131.P
40943b9a
TK
3132When fio is done (or interrupted by Ctrl\-C), it will show the data for
3133each thread, group of threads, and disks in that order. For each overall thread (or
3134group) the output looks like:
3135.P
3136.nf
3137 Client1: (groupid=0, jobs=1): err= 0: pid=16109: Sat Jun 24 12:07:54 2017
3138 write: IOPS=88, BW=623KiB/s (638kB/s)(30.4MiB/50032msec)
3139 slat (nsec): min=500, max=145500, avg=8318.00, stdev=4781.50
3140 clat (usec): min=170, max=78367, avg=4019.02, stdev=8293.31
3141 lat (usec): min=174, max=78375, avg=4027.34, stdev=8291.79
3142 clat percentiles (usec):
3143 | 1.00th=[ 302], 5.00th=[ 326], 10.00th=[ 343], 20.00th=[ 363],
3144 | 30.00th=[ 392], 40.00th=[ 404], 50.00th=[ 416], 60.00th=[ 445],
3145 | 70.00th=[ 816], 80.00th=[ 6718], 90.00th=[12911], 95.00th=[21627],
3146 | 99.00th=[43779], 99.50th=[51643], 99.90th=[68682], 99.95th=[72877],
3147 | 99.99th=[78119]
3148 bw ( KiB/s): min= 532, max= 686, per=0.10%, avg=622.87, stdev=24.82, samples= 100
3149 iops : min= 76, max= 98, avg=88.98, stdev= 3.54, samples= 100
d3b9694d
VF
3150 lat (usec) : 250=0.04%, 500=64.11%, 750=4.81%, 1000=2.79%
3151 lat (msec) : 2=4.16%, 4=1.84%, 10=4.90%, 20=11.33%, 50=5.37%
3152 lat (msec) : 100=0.65%
40943b9a
TK
3153 cpu : usr=0.27%, sys=0.18%, ctx=12072, majf=0, minf=21
3154 IO depths : 1=85.0%, 2=13.1%, 4=1.8%, 8=0.1%, 16=0.0%, 32=0.0%, >=64=0.0%
3155 submit : 0=0.0%, 4=100.0%, 8=0.0%, 16=0.0%, 32=0.0%, 64=0.0%, >=64=0.0%
3156 complete : 0=0.0%, 4=100.0%, 8=0.0%, 16=0.0%, 32=0.0%, 64=0.0%, >=64=0.0%
3157 issued rwt: total=0,4450,0, short=0,0,0, dropped=0,0,0
3158 latency : target=0, window=0, percentile=100.00%, depth=8
3159.fi
3160.P
3161The job name (or first job's name when using \fBgroup_reporting\fR) is printed,
3162along with the group id, count of jobs being aggregated, last error id seen (which
3163is 0 when there are no errors), pid/tid of that thread and the time the job/group
3164completed. Below are the I/O statistics for each data direction performed (showing
3165writes in the example above). In the order listed, they denote:
d60e92d1 3166.RS
d60e92d1 3167.TP
40943b9a
TK
3168.B read/write/trim
3169The string before the colon shows the I/O direction the statistics
3170are for. \fIIOPS\fR is the average I/Os performed per second. \fIBW\fR
3171is the average bandwidth rate shown as: value in power of 2 format
3172(value in power of 10 format). The last two values show: (total
3173I/O performed in power of 2 format / \fIruntime\fR of that thread).
d60e92d1
AC
3174.TP
3175.B slat
40943b9a
TK
3176Submission latency (\fImin\fR being the minimum, \fImax\fR being the
3177maximum, \fIavg\fR being the average, \fIstdev\fR being the standard
3178deviation). This is the time it took to submit the I/O. For
3179sync I/O this row is not displayed as the slat is really the
3180completion latency (since queue/complete is one operation there).
3181This value can be in nanoseconds, microseconds or milliseconds \-\-\-
3182fio will choose the most appropriate base and print that (in the
3183example above nanoseconds was the best scale). Note: in \fB\-\-minimal\fR mode
3184latencies are always expressed in microseconds.
d60e92d1
AC
3185.TP
3186.B clat
40943b9a
TK
3187Completion latency. Same names as slat, this denotes the time from
3188submission to completion of the I/O pieces. For sync I/O, clat will
3189usually be equal (or very close) to 0, as the time from submit to
3190complete is basically just CPU time (I/O has already been done, see slat
3191explanation).
d60e92d1 3192.TP
d3b9694d
VF
3193.B lat
3194Total latency. Same names as slat and clat, this denotes the time from
3195when fio created the I/O unit to completion of the I/O operation.
3196.TP
d60e92d1 3197.B bw
40943b9a
TK
3198Bandwidth statistics based on samples. Same names as the xlat stats,
3199but also includes the number of samples taken (\fIsamples\fR) and an
3200approximate percentage of total aggregate bandwidth this thread
3201received in its group (\fIper\fR). This last value is only really
3202useful if the threads in this group are on the same disk, since they
3203are then competing for disk access.
3204.TP
3205.B iops
3206IOPS statistics based on samples. Same names as \fBbw\fR.
d60e92d1 3207.TP
d3b9694d
VF
3208.B lat (nsec/usec/msec)
3209The distribution of I/O completion latencies. This is the time from when
3210I/O leaves fio and when it gets completed. Unlike the separate
3211read/write/trim sections above, the data here and in the remaining
3212sections apply to all I/Os for the reporting group. 250=0.04% means that
32130.04% of the I/Os completed in under 250us. 500=64.11% means that 64.11%
3214of the I/Os required 250 to 499us for completion.
3215.TP
d60e92d1 3216.B cpu
40943b9a
TK
3217CPU usage. User and system time, along with the number of context
3218switches this thread went through, usage of system and user time, and
3219finally the number of major and minor page faults. The CPU utilization
3220numbers are averages for the jobs in that reporting group, while the
3221context and fault counters are summed.
d60e92d1
AC
3222.TP
3223.B IO depths
40943b9a
TK
3224The distribution of I/O depths over the job lifetime. The numbers are
3225divided into powers of 2 and each entry covers depths from that value
3226up to those that are lower than the next entry \-\- e.g., 16= covers
3227depths from 16 to 31. Note that the range covered by a depth
3228distribution entry can be different to the range covered by the
3229equivalent \fBsubmit\fR/\fBcomplete\fR distribution entry.
3230.TP
3231.B IO submit
3232How many pieces of I/O were submitting in a single submit call. Each
3233entry denotes that amount and below, until the previous entry \-\- e.g.,
323416=100% means that we submitted anywhere between 9 to 16 I/Os per submit
3235call. Note that the range covered by a \fBsubmit\fR distribution entry can
3236be different to the range covered by the equivalent depth distribution
3237entry.
3238.TP
3239.B IO complete
3240Like the above \fBsubmit\fR number, but for completions instead.
3241.TP
3242.B IO issued rwt
3243The number of \fBread/write/trim\fR requests issued, and how many of them were
3244short or dropped.
d60e92d1 3245.TP
d3b9694d 3246.B IO latency
ee21ebee 3247These values are for \fBlatency_target\fR and related options. When
d3b9694d
VF
3248these options are engaged, this section describes the I/O depth required
3249to meet the specified latency target.
d60e92d1 3250.RE
d60e92d1 3251.P
40943b9a
TK
3252After each client has been listed, the group statistics are printed. They
3253will look like this:
3254.P
3255.nf
3256 Run status group 0 (all jobs):
3257 READ: bw=20.9MiB/s (21.9MB/s), 10.4MiB/s\-10.8MiB/s (10.9MB/s\-11.3MB/s), io=64.0MiB (67.1MB), run=2973\-3069msec
3258 WRITE: bw=1231KiB/s (1261kB/s), 616KiB/s\-621KiB/s (630kB/s\-636kB/s), io=64.0MiB (67.1MB), run=52747\-53223msec
3259.fi
3260.P
3261For each data direction it prints:
d60e92d1
AC
3262.RS
3263.TP
40943b9a
TK
3264.B bw
3265Aggregate bandwidth of threads in this group followed by the
3266minimum and maximum bandwidth of all the threads in this group.
3267Values outside of brackets are power\-of\-2 format and those
3268within are the equivalent value in a power\-of\-10 format.
d60e92d1 3269.TP
40943b9a
TK
3270.B io
3271Aggregate I/O performed of all threads in this group. The
3272format is the same as \fBbw\fR.
d60e92d1 3273.TP
40943b9a
TK
3274.B run
3275The smallest and longest runtimes of the threads in this group.
d60e92d1 3276.RE
d60e92d1 3277.P
40943b9a
TK
3278And finally, the disk statistics are printed. This is Linux specific.
3279They will look like this:
3280.P
3281.nf
3282 Disk stats (read/write):
3283 sda: ios=16398/16511, merge=30/162, ticks=6853/819634, in_queue=826487, util=100.00%
3284.fi
3285.P
3286Each value is printed for both reads and writes, with reads first. The
3287numbers denote:
d60e92d1
AC
3288.RS
3289.TP
3290.B ios
3291Number of I/Os performed by all groups.
3292.TP
3293.B merge
007c7be9 3294Number of merges performed by the I/O scheduler.
d60e92d1
AC
3295.TP
3296.B ticks
3297Number of ticks we kept the disk busy.
3298.TP
40943b9a 3299.B in_queue
d60e92d1
AC
3300Total time spent in the disk queue.
3301.TP
3302.B util
40943b9a
TK
3303The disk utilization. A value of 100% means we kept the disk
3304busy constantly, 50% would be a disk idling half of the time.
d60e92d1 3305.RE
8423bd11 3306.P
40943b9a
TK
3307It is also possible to get fio to dump the current output while it is running,
3308without terminating the job. To do that, send fio the USR1 signal. You can
3309also get regularly timed dumps by using the \fB\-\-status\-interval\fR
3310parameter, or by creating a file in `/tmp' named
3311`fio\-dump\-status'. If fio sees this file, it will unlink it and dump the
3312current output status.
d60e92d1 3313.SH TERSE OUTPUT
40943b9a
TK
3314For scripted usage where you typically want to generate tables or graphs of the
3315results, fio can output the results in a semicolon separated format. The format
3316is one long line of values, such as:
d60e92d1 3317.P
40943b9a
TK
3318.nf
3319 2;card0;0;0;7139336;121836;60004;1;10109;27.932460;116.933948;220;126861;3495.446807;1085.368601;226;126864;3523.635629;1089.012448;24063;99944;50.275485%;59818.274627;5540.657370;7155060;122104;60004;1;8338;29.086342;117.839068;388;128077;5032.488518;1234.785715;391;128085;5061.839412;1236.909129;23436;100928;50.287926%;59964.832030;5644.844189;14.595833%;19.394167%;123706;0;7313;0.1%;0.1%;0.1%;0.1%;0.1%;0.1%;100.0%;0.00%;0.00%;0.00%;0.00%;0.00%;0.00%;0.01%;0.02%;0.05%;0.16%;6.04%;40.40%;52.68%;0.64%;0.01%;0.00%;0.01%;0.00%;0.00%;0.00%;0.00%;0.00%
3320 A description of this job goes here.
3321.fi
d60e92d1 3322.P
40943b9a 3323The job description (if provided) follows on a second line.
d60e92d1 3324.P
40943b9a
TK
3325To enable terse output, use the \fB\-\-minimal\fR or
3326`\-\-output\-format=terse' command line options. The
3327first value is the version of the terse output format. If the output has to be
3328changed for some reason, this number will be incremented by 1 to signify that
3329change.
d60e92d1 3330.P
40943b9a
TK
3331Split up, the format is as follows (comments in brackets denote when a
3332field was introduced or whether it's specific to some terse version):
d60e92d1 3333.P
40943b9a
TK
3334.nf
3335 terse version, fio version [v3], jobname, groupid, error
3336.fi
525c2bfa 3337.RS
40943b9a
TK
3338.P
3339.B
3340READ status:
525c2bfa 3341.RE
40943b9a
TK
3342.P
3343.nf
3344 Total IO (KiB), bandwidth (KiB/sec), IOPS, runtime (msec)
3345 Submission latency: min, max, mean, stdev (usec)
3346 Completion latency: min, max, mean, stdev (usec)
3347 Completion latency percentiles: 20 fields (see below)
3348 Total latency: min, max, mean, stdev (usec)
3349 Bw (KiB/s): min, max, aggregate percentage of total, mean, stdev, number of samples [v5]
3350 IOPS [v5]: min, max, mean, stdev, number of samples
3351.fi
d60e92d1 3352.RS
40943b9a
TK
3353.P
3354.B
3355WRITE status:
a2c95580 3356.RE
40943b9a
TK
3357.P
3358.nf
3359 Total IO (KiB), bandwidth (KiB/sec), IOPS, runtime (msec)
3360 Submission latency: min, max, mean, stdev (usec)
3361 Completion latency: min, max, mean, stdev (usec)
3362 Completion latency percentiles: 20 fields (see below)
3363 Total latency: min, max, mean, stdev (usec)
3364 Bw (KiB/s): min, max, aggregate percentage of total, mean, stdev, number of samples [v5]
3365 IOPS [v5]: min, max, mean, stdev, number of samples
3366.fi
a2c95580 3367.RS
40943b9a
TK
3368.P
3369.B
3370TRIM status [all but version 3]:
d60e92d1
AC
3371.RE
3372.P
40943b9a
TK
3373.nf
3374 Fields are similar to \fBREAD/WRITE\fR status.
3375.fi
a2c95580 3376.RS
a2c95580 3377.P
40943b9a 3378.B
d1429b5c 3379CPU usage:
d60e92d1
AC
3380.RE
3381.P
40943b9a
TK
3382.nf
3383 user, system, context switches, major faults, minor faults
3384.fi
d60e92d1 3385.RS
40943b9a
TK
3386.P
3387.B
3388I/O depths:
d60e92d1
AC
3389.RE
3390.P
40943b9a
TK
3391.nf
3392 <=1, 2, 4, 8, 16, 32, >=64
3393.fi
562c2d2f 3394.RS
40943b9a
TK
3395.P
3396.B
3397I/O latencies microseconds:
562c2d2f 3398.RE
40943b9a
TK
3399.P
3400.nf
3401 <=2, 4, 10, 20, 50, 100, 250, 500, 750, 1000
3402.fi
562c2d2f 3403.RS
40943b9a
TK
3404.P
3405.B
3406I/O latencies milliseconds:
562c2d2f
DN
3407.RE
3408.P
40943b9a
TK
3409.nf
3410 <=2, 4, 10, 20, 50, 100, 250, 500, 750, 1000, 2000, >=2000
3411.fi
f2f788dd 3412.RS
40943b9a
TK
3413.P
3414.B
3415Disk utilization [v3]:
f2f788dd
JA
3416.RE
3417.P
40943b9a
TK
3418.nf
3419 disk name, read ios, write ios, read merges, write merges, read ticks, write ticks, time spent in queue, disk utilization percentage
3420.fi
562c2d2f 3421.RS
d60e92d1 3422.P
40943b9a
TK
3423.B
3424Additional Info (dependent on continue_on_error, default off):
d60e92d1 3425.RE
2fc26c3d 3426.P
40943b9a
TK
3427.nf
3428 total # errors, first error code
3429.fi
2fc26c3d
IC
3430.RS
3431.P
40943b9a
TK
3432.B
3433Additional Info (dependent on description being set):
3434.RE
3435.P
2fc26c3d 3436.nf
40943b9a
TK
3437 Text description
3438.fi
3439.P
3440Completion latency percentiles can be a grouping of up to 20 sets, so for the
3441terse output fio writes all of them. Each field will look like this:
3442.P
3443.nf
3444 1.00%=6112
3445.fi
3446.P
3447which is the Xth percentile, and the `usec' latency associated with it.
3448.P
3449For \fBDisk utilization\fR, all disks used by fio are shown. So for each disk there
3450will be a disk utilization section.
3451.P
3452Below is a single line containing short names for each of the fields in the
3453minimal output v3, separated by semicolons:
3454.P
3455.nf
3456 terse_version_3;fio_version;jobname;groupid;error;read_kb;read_bandwidth;read_iops;read_runtime_ms;read_slat_min;read_slat_max;read_slat_mean;read_slat_dev;read_clat_min;read_clat_max;read_clat_mean;read_clat_dev;read_clat_pct01;read_clat_pct02;read_clat_pct03;read_clat_pct04;read_clat_pct05;read_clat_pct06;read_clat_pct07;read_clat_pct08;read_clat_pct09;read_clat_pct10;read_clat_pct11;read_clat_pct12;read_clat_pct13;read_clat_pct14;read_clat_pct15;read_clat_pct16;read_clat_pct17;read_clat_pct18;read_clat_pct19;read_clat_pct20;read_tlat_min;read_lat_max;read_lat_mean;read_lat_dev;read_bw_min;read_bw_max;read_bw_agg_pct;read_bw_mean;read_bw_dev;write_kb;write_bandwidth;write_iops;write_runtime_ms;write_slat_min;write_slat_max;write_slat_mean;write_slat_dev;write_clat_min;write_clat_max;write_clat_mean;write_clat_dev;write_clat_pct01;write_clat_pct02;write_clat_pct03;write_clat_pct04;write_clat_pct05;write_clat_pct06;write_clat_pct07;write_clat_pct08;write_clat_pct09;write_clat_pct10;write_clat_pct11;write_clat_pct12;write_clat_pct13;write_clat_pct14;write_clat_pct15;write_clat_pct16;write_clat_pct17;write_clat_pct18;write_clat_pct19;write_clat_pct20;write_tlat_min;write_lat_max;write_lat_mean;write_lat_dev;write_bw_min;write_bw_max;write_bw_agg_pct;write_bw_mean;write_bw_dev;cpu_user;cpu_sys;cpu_csw;cpu_mjf;cpu_minf;iodepth_1;iodepth_2;iodepth_4;iodepth_8;iodepth_16;iodepth_32;iodepth_64;lat_2us;lat_4us;lat_10us;lat_20us;lat_50us;lat_100us;lat_250us;lat_500us;lat_750us;lat_1000us;lat_2ms;lat_4ms;lat_10ms;lat_20ms;lat_50ms;lat_100ms;lat_250ms;lat_500ms;lat_750ms;lat_1000ms;lat_2000ms;lat_over_2000ms;disk_name;disk_read_iops;disk_write_iops;disk_read_merges;disk_write_merges;disk_read_ticks;write_ticks;disk_queue_time;disk_util
2fc26c3d 3457.fi
44c82dba
VF
3458.SH JSON OUTPUT
3459The \fBjson\fR output format is intended to be both human readable and convenient
3460for automated parsing. For the most part its sections mirror those of the
3461\fBnormal\fR output. The \fBruntime\fR value is reported in msec and the \fBbw\fR value is
3462reported in 1024 bytes per second units.
3463.fi
d9e557ab
VF
3464.SH JSON+ OUTPUT
3465The \fBjson+\fR output format is identical to the \fBjson\fR output format except that it
3466adds a full dump of the completion latency bins. Each \fBbins\fR object contains a
3467set of (key, value) pairs where keys are latency durations and values count how
3468many I/Os had completion latencies of the corresponding duration. For example,
3469consider:
d9e557ab 3470.RS
40943b9a 3471.P
d9e557ab
VF
3472"bins" : { "87552" : 1, "89600" : 1, "94720" : 1, "96768" : 1, "97792" : 1, "99840" : 1, "100864" : 2, "103936" : 6, "104960" : 534, "105984" : 5995, "107008" : 7529, ... }
3473.RE
40943b9a 3474.P
d9e557ab
VF
3475This data indicates that one I/O required 87,552ns to complete, two I/Os required
3476100,864ns to complete, and 7529 I/Os required 107,008ns to complete.
40943b9a 3477.P
d9e557ab 3478Also included with fio is a Python script \fBfio_jsonplus_clat2csv\fR that takes
40943b9a
TK
3479json+ output and generates CSV\-formatted latency data suitable for plotting.
3480.P
d9e557ab 3481The latency durations actually represent the midpoints of latency intervals.
40943b9a 3482For details refer to `stat.h' in the fio source.
29dbd1e5 3483.SH TRACE FILE FORMAT
40943b9a
TK
3484There are two trace file format that you can encounter. The older (v1) format is
3485unsupported since version 1.20\-rc3 (March 2008). It will still be described
29dbd1e5 3486below in case that you get an old trace and want to understand it.
29dbd1e5 3487.P
40943b9a
TK
3488In any case the trace is a simple text file with a single action per line.
3489.TP
29dbd1e5 3490.B Trace file format v1
40943b9a 3491Each line represents a single I/O action in the following format:
29dbd1e5 3492.RS
40943b9a
TK
3493.RS
3494.P
29dbd1e5 3495rw, offset, length
29dbd1e5
JA
3496.RE
3497.P
40943b9a
TK
3498where `rw=0/1' for read/write, and the `offset' and `length' entries being in bytes.
3499.P
3500This format is not supported in fio versions >= 1.20\-rc3.
3501.RE
3502.TP
29dbd1e5 3503.B Trace file format v2
40943b9a
TK
3504The second version of the trace file format was added in fio version 1.17. It
3505allows to access more then one file per trace and has a bigger set of possible
3506file actions.
29dbd1e5 3507.RS
40943b9a 3508.P
29dbd1e5 3509The first line of the trace file has to be:
40943b9a
TK
3510.RS
3511.P
3512"fio version 2 iolog"
3513.RE
3514.P
29dbd1e5 3515Following this can be lines in two different formats, which are described below.
40943b9a
TK
3516.P
3517.B
29dbd1e5 3518The file management format:
40943b9a
TK
3519.RS
3520filename action
29dbd1e5 3521.P
40943b9a 3522The `filename' is given as an absolute path. The `action' can be one of these:
29dbd1e5
JA
3523.RS
3524.TP
3525.B add
40943b9a 3526Add the given `filename' to the trace.
29dbd1e5
JA
3527.TP
3528.B open
40943b9a
TK
3529Open the file with the given `filename'. The `filename' has to have
3530been added with the \fBadd\fR action before.
29dbd1e5
JA
3531.TP
3532.B close
40943b9a
TK
3533Close the file with the given `filename'. The file has to have been
3534\fBopen\fRed before.
3535.RE
29dbd1e5 3536.RE
29dbd1e5 3537.P
40943b9a
TK
3538.B
3539The file I/O action format:
3540.RS
3541filename action offset length
29dbd1e5 3542.P
40943b9a
TK
3543The `filename' is given as an absolute path, and has to have been \fBadd\fRed and
3544\fBopen\fRed before it can be used with this format. The `offset' and `length' are
3545given in bytes. The `action' can be one of these:
29dbd1e5
JA
3546.RS
3547.TP
3548.B wait
40943b9a
TK
3549Wait for `offset' microseconds. Everything below 100 is discarded.
3550The time is relative to the previous `wait' statement.
29dbd1e5
JA
3551.TP
3552.B read
40943b9a 3553Read `length' bytes beginning from `offset'.
29dbd1e5
JA
3554.TP
3555.B write
40943b9a 3556Write `length' bytes beginning from `offset'.
29dbd1e5
JA
3557.TP
3558.B sync
40943b9a 3559\fBfsync\fR\|(2) the file.
29dbd1e5
JA
3560.TP
3561.B datasync
40943b9a 3562\fBfdatasync\fR\|(2) the file.
29dbd1e5
JA
3563.TP
3564.B trim
40943b9a
TK
3565Trim the given file from the given `offset' for `length' bytes.
3566.RE
29dbd1e5 3567.RE
b9921d1a
DZ
3568.SH I/O REPLAY \- MERGING TRACES
3569Colocation is a common practice used to get the most out of a machine.
3570Knowing which workloads play nicely with each other and which ones don't is
3571a much harder task. While fio can replay workloads concurrently via multiple
3572jobs, it leaves some variability up to the scheduler making results harder to
3573reproduce. Merging is a way to make the order of events consistent.
3574.P
3575Merging is integrated into I/O replay and done when a \fBmerge_blktrace_file\fR
3576is specified. The list of files passed to \fBread_iolog\fR go through the merge
3577process and output a single file stored to the specified file. The output file is
3578passed on as if it were the only file passed to \fBread_iolog\fR. An example would
3579look like:
3580.RS
3581.P
3582$ fio \-\-read_iolog="<file1>:<file2>" \-\-merge_blktrace_file="<output_file>"
3583.RE
3584.P
3585Creating only the merged file can be done by passing the command line argument
3586\fBmerge-blktrace-only\fR.
87a48ada
DZ
3587.P
3588Scaling traces can be done to see the relative impact of any particular trace
3589being slowed down or sped up. \fBmerge_blktrace_scalars\fR takes in a colon
3590separated list of percentage scalars. It is index paired with the files passed
3591to \fBread_iolog\fR.
55bfd8c8
DZ
3592.P
3593With scaling, it may be desirable to match the running time of all traces.
3594This can be done with \fBmerge_blktrace_iters\fR. It is index paired with
3595\fBread_iolog\fR just like \fBmerge_blktrace_scalars\fR.
3596.P
3597In an example, given two traces, A and B, each 60s long. If we want to see
3598the impact of trace A issuing IOs twice as fast and repeat trace A over the
3599runtime of trace B, the following can be done:
3600.RS
3601.P
3602$ fio \-\-read_iolog="<trace_a>:"<trace_b>" \-\-merge_blktrace_file"<output_file>" \-\-merge_blktrace_scalars="50:100" \-\-merge_blktrace_iters="2:1"
3603.RE
3604.P
3605This runs trace A at 2x the speed twice for approximately the same runtime as
3606a single run of trace B.
29dbd1e5 3607.SH CPU IDLENESS PROFILING
40943b9a
TK
3608In some cases, we want to understand CPU overhead in a test. For example, we
3609test patches for the specific goodness of whether they reduce CPU usage.
3610Fio implements a balloon approach to create a thread per CPU that runs at idle
3611priority, meaning that it only runs when nobody else needs the cpu.
3612By measuring the amount of work completed by the thread, idleness of each CPU
3613can be derived accordingly.
3614.P
3615An unit work is defined as touching a full page of unsigned characters. Mean and
3616standard deviation of time to complete an unit work is reported in "unit work"
3617section. Options can be chosen to report detailed percpu idleness or overall
3618system idleness by aggregating percpu stats.
29dbd1e5 3619.SH VERIFICATION AND TRIGGERS
40943b9a
TK
3620Fio is usually run in one of two ways, when data verification is done. The first
3621is a normal write job of some sort with verify enabled. When the write phase has
3622completed, fio switches to reads and verifies everything it wrote. The second
3623model is running just the write phase, and then later on running the same job
3624(but with reads instead of writes) to repeat the same I/O patterns and verify
3625the contents. Both of these methods depend on the write phase being completed,
3626as fio otherwise has no idea how much data was written.
3627.P
3628With verification triggers, fio supports dumping the current write state to
3629local files. Then a subsequent read verify workload can load this state and know
3630exactly where to stop. This is useful for testing cases where power is cut to a
3631server in a managed fashion, for instance.
3632.P
29dbd1e5 3633A verification trigger consists of two things:
29dbd1e5 3634.RS
40943b9a
TK
3635.P
36361) Storing the write state of each job.
3637.P
36382) Executing a trigger command.
29dbd1e5 3639.RE
40943b9a
TK
3640.P
3641The write state is relatively small, on the order of hundreds of bytes to single
3642kilobytes. It contains information on the number of completions done, the last X
3643completions, etc.
3644.P
3645A trigger is invoked either through creation ('touch') of a specified file in
3646the system, or through a timeout setting. If fio is run with
3647`\-\-trigger\-file=/tmp/trigger\-file', then it will continually
3648check for the existence of `/tmp/trigger\-file'. When it sees this file, it
3649will fire off the trigger (thus saving state, and executing the trigger
29dbd1e5 3650command).
40943b9a
TK
3651.P
3652For client/server runs, there's both a local and remote trigger. If fio is
3653running as a server backend, it will send the job states back to the client for
3654safe storage, then execute the remote trigger, if specified. If a local trigger
3655is specified, the server will still send back the write state, but the client
3656will then execute the trigger.
29dbd1e5
JA
3657.RE
3658.P
3659.B Verification trigger example
3660.RS
40943b9a
TK
3661Let's say we want to run a powercut test on the remote Linux machine 'server'.
3662Our write workload is in `write\-test.fio'. We want to cut power to 'server' at
3663some point during the run, and we'll run this test from the safety or our local
3664machine, 'localbox'. On the server, we'll start the fio backend normally:
3665.RS
3666.P
3667server# fio \-\-server
3668.RE
3669.P
29dbd1e5 3670and on the client, we'll fire off the workload:
40943b9a
TK
3671.RS
3672.P
3673localbox$ fio \-\-client=server \-\-trigger\-file=/tmp/my\-trigger \-\-trigger\-remote="bash \-c "echo b > /proc/sysrq\-triger""
3674.RE
3675.P
3676We set `/tmp/my\-trigger' as the trigger file, and we tell fio to execute:
3677.RS
3678.P
3679echo b > /proc/sysrq\-trigger
3680.RE
3681.P
3682on the server once it has received the trigger and sent us the write state. This
3683will work, but it's not really cutting power to the server, it's merely
3684abruptly rebooting it. If we have a remote way of cutting power to the server
3685through IPMI or similar, we could do that through a local trigger command
3686instead. Let's assume we have a script that does IPMI reboot of a given hostname,
3687ipmi\-reboot. On localbox, we could then have run fio with a local trigger
3688instead:
3689.RS
3690.P
3691localbox$ fio \-\-client=server \-\-trigger\-file=/tmp/my\-trigger \-\-trigger="ipmi\-reboot server"
3692.RE
3693.P
3694For this case, fio would wait for the server to send us the write state, then
3695execute `ipmi\-reboot server' when that happened.
29dbd1e5
JA
3696.RE
3697.P
3698.B Loading verify state
3699.RS
40943b9a
TK
3700To load stored write state, a read verification job file must contain the
3701\fBverify_state_load\fR option. If that is set, fio will load the previously
29dbd1e5 3702stored state. For a local fio run this is done by loading the files directly,
40943b9a
TK
3703and on a client/server run, the server backend will ask the client to send the
3704files over and load them from there.
29dbd1e5 3705.RE
a3ae5b05 3706.SH LOG FILE FORMATS
a3ae5b05
JA
3707Fio supports a variety of log file formats, for logging latencies, bandwidth,
3708and IOPS. The logs share a common format, which looks like this:
40943b9a 3709.RS
a3ae5b05 3710.P
40943b9a
TK
3711time (msec), value, data direction, block size (bytes), offset (bytes)
3712.RE
3713.P
3714`Time' for the log entry is always in milliseconds. The `value' logged depends
3715on the type of log, it will be one of the following:
3716.RS
a3ae5b05
JA
3717.TP
3718.B Latency log
168bb587 3719Value is latency in nsecs
a3ae5b05
JA
3720.TP
3721.B Bandwidth log
6d500c2e 3722Value is in KiB/sec
a3ae5b05
JA
3723.TP
3724.B IOPS log
40943b9a
TK
3725Value is IOPS
3726.RE
a3ae5b05 3727.P
40943b9a
TK
3728`Data direction' is one of the following:
3729.RS
a3ae5b05
JA
3730.TP
3731.B 0
40943b9a 3732I/O is a READ
a3ae5b05
JA
3733.TP
3734.B 1
40943b9a 3735I/O is a WRITE
a3ae5b05
JA
3736.TP
3737.B 2
40943b9a 3738I/O is a TRIM
a3ae5b05 3739.RE
40943b9a 3740.P
15417073
SW
3741The entry's `block size' is always in bytes. The `offset' is the position in bytes
3742from the start of the file for that particular I/O. The logging of the offset can be
40943b9a
TK
3743toggled with \fBlog_offset\fR.
3744.P
15417073
SW
3745Fio defaults to logging every individual I/O but when windowed logging is set
3746through \fBlog_avg_msec\fR, either the average (by default) or the maximum
3747(\fBlog_max_value\fR is set) `value' seen over the specified period of time
3748is recorded. Each `data direction' seen within the window period will aggregate
3749its values in a separate row. Further, when using windowed logging the `block
3750size' and `offset' entries will always contain 0.
49da1240 3751.SH CLIENT / SERVER
40943b9a
TK
3752Normally fio is invoked as a stand\-alone application on the machine where the
3753I/O workload should be generated. However, the backend and frontend of fio can
3754be run separately i.e., the fio server can generate an I/O workload on the "Device
3755Under Test" while being controlled by a client on another machine.
3756.P
3757Start the server on the machine which has access to the storage DUT:
3758.RS
3759.P
3760$ fio \-\-server=args
3761.RE
3762.P
3763where `args' defines what fio listens to. The arguments are of the form
3764`type,hostname' or `IP,port'. `type' is either `ip' (or ip4) for TCP/IP
3765v4, `ip6' for TCP/IP v6, or `sock' for a local unix domain socket.
3766`hostname' is either a hostname or IP address, and `port' is the port to listen
3767to (only valid for TCP/IP, not a local socket). Some examples:
3768.RS
3769.TP
e0ee7a8b 37701) \fBfio \-\-server\fR
40943b9a
TK
3771Start a fio server, listening on all interfaces on the default port (8765).
3772.TP
e0ee7a8b 37732) \fBfio \-\-server=ip:hostname,4444\fR
40943b9a
TK
3774Start a fio server, listening on IP belonging to hostname and on port 4444.
3775.TP
e0ee7a8b 37763) \fBfio \-\-server=ip6:::1,4444\fR
40943b9a
TK
3777Start a fio server, listening on IPv6 localhost ::1 and on port 4444.
3778.TP
e0ee7a8b 37794) \fBfio \-\-server=,4444\fR
40943b9a
TK
3780Start a fio server, listening on all interfaces on port 4444.
3781.TP
e0ee7a8b 37825) \fBfio \-\-server=1.2.3.4\fR
40943b9a
TK
3783Start a fio server, listening on IP 1.2.3.4 on the default port.
3784.TP
e0ee7a8b 37856) \fBfio \-\-server=sock:/tmp/fio.sock\fR
40943b9a
TK
3786Start a fio server, listening on the local socket `/tmp/fio.sock'.
3787.RE
3788.P
3789Once a server is running, a "client" can connect to the fio server with:
3790.RS
3791.P
3792$ fio <local\-args> \-\-client=<server> <remote\-args> <job file(s)>
3793.RE
3794.P
3795where `local\-args' are arguments for the client where it is running, `server'
3796is the connect string, and `remote\-args' and `job file(s)' are sent to the
3797server. The `server' string follows the same format as it does on the server
3798side, to allow IP/hostname/socket and port strings.
3799.P
3800Fio can connect to multiple servers this way:
3801.RS
3802.P
3803$ fio \-\-client=<server1> <job file(s)> \-\-client=<server2> <job file(s)>
3804.RE
3805.P
3806If the job file is located on the fio server, then you can tell the server to
3807load a local file as well. This is done by using \fB\-\-remote\-config\fR:
3808.RS
3809.P
3810$ fio \-\-client=server \-\-remote\-config /path/to/file.fio
3811.RE
3812.P
3813Then fio will open this local (to the server) job file instead of being passed
3814one from the client.
3815.P
ff6bb260 3816If you have many servers (example: 100 VMs/containers), you can input a pathname
40943b9a
TK
3817of a file containing host IPs/names as the parameter value for the
3818\fB\-\-client\fR option. For example, here is an example `host.list'
3819file containing 2 hostnames:
3820.RS
3821.P
3822.PD 0
39b5f61e 3823host1.your.dns.domain
40943b9a 3824.P
39b5f61e 3825host2.your.dns.domain
40943b9a
TK
3826.PD
3827.RE
3828.P
39b5f61e 3829The fio command would then be:
40943b9a
TK
3830.RS
3831.P
3832$ fio \-\-client=host.list <job file(s)>
3833.RE
3834.P
3835In this mode, you cannot input server\-specific parameters or job files \-\- all
39b5f61e 3836servers receive the same job file.
40943b9a
TK
3837.P
3838In order to let `fio \-\-client' runs use a shared filesystem from multiple
3839hosts, `fio \-\-client' now prepends the IP address of the server to the
3840filename. For example, if fio is using the directory `/mnt/nfs/fio' and is
3841writing filename `fileio.tmp', with a \fB\-\-client\fR `hostfile'
3842containing two hostnames `h1' and `h2' with IP addresses 192.168.10.120 and
3843192.168.10.121, then fio will create two files:
3844.RS
3845.P
3846.PD 0
39b5f61e 3847/mnt/nfs/fio/192.168.10.120.fileio.tmp
40943b9a 3848.P
39b5f61e 3849/mnt/nfs/fio/192.168.10.121.fileio.tmp
40943b9a
TK
3850.PD
3851.RE
d60e92d1
AC
3852.SH AUTHORS
3853.B fio
d292596c 3854was written by Jens Axboe <axboe@kernel.dk>.
d1429b5c
AC
3855.br
3856This man page was written by Aaron Carroll <aaronc@cse.unsw.edu.au> based
d60e92d1 3857on documentation by Jens Axboe.
40943b9a
TK
3858.br
3859This man page was rewritten by Tomohiro Kusumi <tkusumi@tuxera.com> based
3860on documentation by Jens Axboe.
d60e92d1 3861.SH "REPORTING BUGS"
482900c9 3862Report bugs to the \fBfio\fR mailing list <fio@vger.kernel.org>.
6468020d 3863.br
40943b9a
TK
3864See \fBREPORTING\-BUGS\fR.
3865.P
3866\fBREPORTING\-BUGS\fR: \fIhttp://git.kernel.dk/cgit/fio/plain/REPORTING\-BUGS\fR
d60e92d1 3867.SH "SEE ALSO"
d1429b5c
AC
3868For further documentation see \fBHOWTO\fR and \fBREADME\fR.
3869.br
40943b9a 3870Sample jobfiles are available in the `examples/' directory.
9040e236 3871.br
40943b9a
TK
3872These are typically located under `/usr/share/doc/fio'.
3873.P
3874\fBHOWTO\fR: \fIhttp://git.kernel.dk/cgit/fio/plain/HOWTO\fR
9040e236 3875.br
40943b9a 3876\fBREADME\fR: \fIhttp://git.kernel.dk/cgit/fio/plain/README\fR