1.\" Copyright (c) 1991, 1993 2.\" The Regents of the University of California. All rights reserved. 3.\" 4.\" Redistribution and use in source and binary forms, with or without 5.\" modification, are permitted provided that the following conditions 6.\" are met: 7.\" 1. Redistributions of source code must retain the above copyright 8.\" notice, this list of conditions and the following disclaimer. 9.\" 2. Redistributions in binary form must reproduce the above copyright 10.\" notice, this list of conditions and the following disclaimer in the 11.\" documentation and/or other materials provided with the distribution. 12.\" 4. Neither the name of the University nor the names of its contributors 13.\" may be used to endorse or promote products derived from this software 14.\" without specific prior written permission. 15.\" 16.\" THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND 17.\" ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 18.\" IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 19.\" ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE 20.\" FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL 21.\" DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS 22.\" OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) 23.\" HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT 24.\" LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY 25.\" OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF 26.\" SUCH DAMAGE. 27.\" 28.\" @(#)mmap.2 8.4 (Berkeley) 5/11/95 29.\" $FreeBSD$ 30.\" 31.Dd November 25, 2016 32.Dt MMAP 2 33.Os 34.Sh NAME 35.Nm mmap 36.Nd allocate memory, or map files or devices into memory 37.Sh LIBRARY 38.Lb libc 39.Sh SYNOPSIS 40.In sys/mman.h 41.Ft void * 42.Fn mmap "void *addr" "size_t len" "int prot" "int flags" "int fd" "off_t offset" 43.Sh DESCRIPTION 44The 45.Fn mmap 46system call causes the pages starting at 47.Fa addr 48and continuing for at most 49.Fa len 50bytes to be mapped from the object described by 51.Fa fd , 52starting at byte offset 53.Fa offset . 54If 55.Fa len 56is not a multiple of the pagesize, the mapped region may extend past the 57specified range. 58Any such extension beyond the end of the mapped object will be zero-filled. 59.Pp 60If 61.Fa addr 62is non-zero, it is used as a hint to the system. 63(As a convenience to the system, the actual address of the region may differ 64from the address supplied.) 65If 66.Fa addr 67is zero, an address will be selected by the system. 68The actual starting address of the region is returned. 69A successful 70.Fa mmap 71deletes any previous mapping in the allocated address range. 72.Pp 73The protections (region accessibility) are specified in the 74.Fa prot 75argument by 76.Em or Ns 'ing 77the following values: 78.Pp 79.Bl -tag -width PROT_WRITE -compact 80.It Dv PROT_NONE 81Pages may not be accessed. 82.It Dv PROT_READ 83Pages may be read. 84.It Dv PROT_WRITE 85Pages may be written. 86.It Dv PROT_EXEC 87Pages may be executed. 88.El 89.Pp 90The 91.Fa flags 92argument specifies the type of the mapped object, mapping options and 93whether modifications made to the mapped copy of the page are private 94to the process or are to be shared with other references. 95Sharing, mapping type and options are specified in the 96.Fa flags 97argument by 98.Em or Ns 'ing 99the following values: 100.Bl -tag -width MAP_PREFAULT_READ 101.It Dv MAP_32BIT 102Request a region in the first 2GB of the current process's address space. 103If a suitable region cannot be found, 104.Fn mmap 105will fail. 106This flag is only available on 64-bit platforms. 107.It Dv MAP_ALIGNED Ns Pq Fa n 108Align the region on a requested boundary. 109If a suitable region cannot be found, 110.Fn mmap 111will fail. 112The 113.Fa n 114argument specifies the binary logarithm of the desired alignment. 115.It Dv MAP_ALIGNED_SUPER 116Align the region to maximize the potential use of large 117.Pq Dq super 118pages. 119If a suitable region cannot be found, 120.Fn mmap 121will fail. 122The system will choose a suitable page size based on the size of 123mapping. 124The page size used as well as the alignment of the region may both be 125affected by properties of the file being mapped. 126In particular, 127the physical address of existing pages of a file may require a specific 128alignment. 129The region is not guaranteed to be aligned on any specific boundary. 130.It Dv MAP_ANON 131Map anonymous memory not associated with any specific file. 132The file descriptor used for creating 133.Dv MAP_ANON 134must be \-1. 135The 136.Fa offset 137argument must be 0. 138.\".It Dv MAP_FILE 139.\"Mapped from a regular file or character-special device memory. 140.It Dv MAP_ANONYMOUS 141This flag is identical to 142.Dv MAP_ANON 143and is provided for compatibility. 144.It Dv MAP_EXCL 145This flag can only be used in combination with 146.Dv MAP_FIXED . 147Please see the definition of 148.Dv MAP_FIXED 149for the description of its effect. 150.It Dv MAP_FIXED 151Do not permit the system to select a different address than the one 152specified. 153If the specified address cannot be used, 154.Fn mmap 155will fail. 156If 157.Dv MAP_FIXED 158is specified, 159.Fa addr 160must be a multiple of the pagesize. 161If 162.Dv MAP_EXCL 163is not specified, a successful 164.Dv MAP_FIXED 165request replaces any previous mappings for the process' 166pages in the range from 167.Fa addr 168to 169.Fa addr 170+ 171.Fa len . 172In contrast, if 173.Dv MAP_EXCL 174is specified, the request will fail if a mapping 175already exists within the range. 176.It Dv MAP_HASSEMAPHORE 177Notify the kernel that the region may contain semaphores and that special 178handling may be necessary. 179.It Dv MAP_NOCORE 180Region is not included in a core file. 181.It Dv MAP_NOSYNC 182Causes data dirtied via this VM map to be flushed to physical media 183only when necessary (usually by the pager) rather than gratuitously. 184Typically this prevents the update daemons from flushing pages dirtied 185through such maps and thus allows efficient sharing of memory across 186unassociated processes using a file-backed shared memory map. 187Without 188this option any VM pages you dirty may be flushed to disk every so often 189(every 30-60 seconds usually) which can create performance problems if you 190do not need that to occur (such as when you are using shared file-backed 191mmap regions for IPC purposes). 192Dirty data will be flushed automatically when all mappings of an object are 193removed and all descriptors referencing the object are closed. 194Note that VM/file system coherency is 195maintained whether you use 196.Dv MAP_NOSYNC 197or not. 198This option is not portable 199across 200.Ux 201platforms (yet), though some may implement the same behavior 202by default. 203.Pp 204.Em WARNING ! 205Extending a file with 206.Xr ftruncate 2 , 207thus creating a big hole, and then filling the hole by modifying a shared 208.Fn mmap 209can lead to severe file fragmentation. 210In order to avoid such fragmentation you should always pre-allocate the 211file's backing store by 212.Fn write Ns ing 213zero's into the newly extended area prior to modifying the area via your 214.Fn mmap . 215The fragmentation problem is especially sensitive to 216.Dv MAP_NOSYNC 217pages, because pages may be flushed to disk in a totally random order. 218.Pp 219The same applies when using 220.Dv MAP_NOSYNC 221to implement a file-based shared memory store. 222It is recommended that you create the backing store by 223.Fn write Ns ing 224zero's to the backing file rather than 225.Fn ftruncate Ns ing 226it. 227You can test file fragmentation by observing the KB/t (kilobytes per 228transfer) results from an 229.Dq Li iostat 1 230while reading a large file sequentially, e.g.,\& using 231.Dq Li dd if=filename of=/dev/null bs=32k . 232.Pp 233The 234.Xr fsync 2 235system call will flush all dirty data and metadata associated with a file, 236including dirty NOSYNC VM data, to physical media. 237The 238.Xr sync 8 239command and 240.Xr sync 2 241system call generally do not flush dirty NOSYNC VM data. 242The 243.Xr msync 2 244system call is usually not needed since 245.Bx 246implements a coherent file system buffer cache. 247However, it may be 248used to associate dirty VM pages with file system buffers and thus cause 249them to be flushed to physical media sooner rather than later. 250.It Dv MAP_PREFAULT_READ 251Immediately update the calling process's lowest-level virtual address 252translation structures, such as its page table, so that every memory 253resident page within the region is mapped for read access. 254Ordinarily these structures are updated lazily. 255The effect of this option is to eliminate any soft faults that would 256otherwise occur on the initial read accesses to the region. 257Although this option does not preclude 258.Fa prot 259from including 260.Dv PROT_WRITE , 261it does not eliminate soft faults on the initial write accesses to the 262region. 263.It Dv MAP_PRIVATE 264Modifications are private. 265.It Dv MAP_SHARED 266Modifications are shared. 267.It Dv MAP_STACK 268.Dv MAP_STACK 269implies 270.Dv MAP_ANON , 271and 272.Fa offset 273of 0. 274The 275.Fa fd 276argument 277must be -1 and 278.Fa prot 279must include at least 280.Dv PROT_READ 281and 282.Dv PROT_WRITE . 283This option creates 284a memory region that grows to at most 285.Fa len 286bytes in size, starting from the stack top and growing down. 287The 288stack top is the starting address returned by the call, plus 289.Fa len 290bytes. 291The bottom of the stack at maximum growth is the starting 292address returned by the call. 293.El 294.Pp 295The 296.Xr close 2 297system call does not unmap pages, see 298.Xr munmap 2 299for further information. 300.Sh NOTES 301Although this implementation does not impose any alignment restrictions on 302the 303.Fa offset 304argument, a portable program must only use page-aligned values. 305.Pp 306Large page mappings require that the pages backing an object be 307aligned in matching blocks in both the virtual address space and RAM. 308The system will automatically attempt to use large page mappings when 309mapping an object that is already backed by large pages in RAM by 310aligning the mapping request in the virtual address space to match the 311alignment of the large physical pages. 312The system may also use large page mappings when mapping portions of an 313object that are not yet backed by pages in RAM. 314The 315.Dv MAP_ALIGNED_SUPER 316flag is an optimization that will align the mapping request to the 317size of a large page similar to 318.Dv MAP_ALIGNED , 319except that the system will override this alignment if an object already 320uses large pages so that the mapping will be consistent with the existing 321large pages. 322This flag is mostly useful for maximizing the use of large pages on the 323first mapping of objects that do not yet have pages present in RAM. 324.Sh RETURN VALUES 325Upon successful completion, 326.Fn mmap 327returns a pointer to the mapped region. 328Otherwise, a value of 329.Dv MAP_FAILED 330is returned and 331.Va errno 332is set to indicate the error. 333.Sh ERRORS 334The 335.Fn mmap 336system call 337will fail if: 338.Bl -tag -width Er 339.It Bq Er EACCES 340The flag 341.Dv PROT_READ 342was specified as part of the 343.Fa prot 344argument and 345.Fa fd 346was not open for reading. 347The flags 348.Dv MAP_SHARED 349and 350.Dv PROT_WRITE 351were specified as part of the 352.Fa flags 353and 354.Fa prot 355argument and 356.Fa fd 357was not open for writing. 358.It Bq Er EBADF 359The 360.Fa fd 361argument 362is not a valid open file descriptor. 363.It Bq Er EINVAL 364An invalid value was passed in the 365.Fa prot 366argument. 367.It Bq Er EINVAL 368An undefined option was set in the 369.Fa flags 370argument. 371.It Bq Er EINVAL 372Both 373.Dv MAP_PRIVATE 374and 375.Dv MAP_SHARED 376were specified. 377.It Bq Er EINVAL 378None of 379.Dv MAP_ANON , 380.Dv MAP_PRIVATE , 381.Dv MAP_SHARED , 382or 383.Dv MAP_STACK 384was specified. 385At least one of these flags must be included. 386.It Bq Er EINVAL 387.Dv MAP_FIXED 388was specified and the 389.Fa addr 390argument was not page aligned, or part of the desired address space 391resides out of the valid address space for a user process. 392.It Bq Er EINVAL 393Both 394.Dv MAP_FIXED 395and 396.Dv MAP_32BIT 397were specified and part of the desired address space resides outside 398of the first 2GB of user address space. 399.It Bq Er EINVAL 400The 401.Fa len 402argument 403was equal to zero. 404.It Bq Er EINVAL 405.Dv MAP_ALIGNED 406was specified and the desired alignment was either larger than the 407virtual address size of the machine or smaller than a page. 408.It Bq Er EINVAL 409.Dv MAP_ANON 410was specified and the 411.Fa fd 412argument was not -1. 413.It Bq Er EINVAL 414.Dv MAP_ANON 415was specified and the 416.Fa offset 417argument was not 0. 418.It Bq Er EINVAL 419Both 420.Dv MAP_FIXED 421and 422.Dv MAP_EXCL 423were specified, but the requested region is already used by a mapping. 424.It Bq Er EINVAL 425.Dv MAP_EXCL 426was specified, but 427.Dv MAP_FIXED 428was not. 429.It Bq Er ENODEV 430.Dv MAP_ANON 431has not been specified and 432.Fa fd 433did not reference a regular or character special file. 434.It Bq Er ENOMEM 435.Dv MAP_FIXED 436was specified and the 437.Fa addr 438argument was not available. 439.Dv MAP_ANON 440was specified and insufficient memory was available. 441.El 442.Sh SEE ALSO 443.Xr madvise 2 , 444.Xr mincore 2 , 445.Xr minherit 2 , 446.Xr mlock 2 , 447.Xr mprotect 2 , 448.Xr msync 2 , 449.Xr munlock 2 , 450.Xr munmap 2 , 451.Xr getpagesize 3 , 452.Xr getpagesizes 3 453