2 ##------------------------------------------------------------##
4 # The multiple-architecture stuff in this file is pretty
5 # cryptic. Read docs/internals/multiple-architectures.txt
6 # for at least a partial explanation of what is going on.
8 ##------------------------------------------------------------##
10 # Process this file with autoconf to produce a configure script.
12 # Define major, minor, micro and suffix here once, then reuse them
13 # for version number in valgrind.h and vg-entities (documentation).
14 # suffix must be empty for a release, otherwise it is GIT or RC1, etc.
15 # Also set the (expected/last) release date here.
16 # Do not forget to rerun ./autogen.sh
17 m4_define([v_major_ver], [3])
18 m4_define([v_minor_ver], [23])
19 m4_define([v_micro_ver], [0])
20 m4_define([v_suffix_ver], [RC1])
21 m4_define([v_rel_date], ["19 Apr 2024"])
22 m4_define([v_version],
23 m4_if(v_suffix_ver, [],
24 [v_major_ver.v_minor_ver.v_micro_ver],
25 [v_major_ver.v_minor_ver.v_micro_ver.v_suffix_ver]))
26 AC_INIT([Valgrind],[v_version],[valgrind-users@lists.sourceforge.net])
29 AC_SUBST(VG_VER_MAJOR, v_major_ver)
30 AC_SUBST(VG_VER_MINOR, v_minor_ver)
32 # For docs/xml/vg-entities.xml
33 AC_SUBST(VG_DATE, v_rel_date)
35 AC_CONFIG_SRCDIR(coregrind/m_main.c)
36 AC_CONFIG_HEADERS([config.h])
37 AM_INIT_AUTOMAKE([foreign dist-bzip2 subdir-objects])
41 #----------------------------------------------------------------------------
42 # Do NOT modify these flags here. Except in feature tests in which case
43 # the original values must be properly restored.
44 #----------------------------------------------------------------------------
48 #----------------------------------------------------------------------------
49 # Checks for various programs.
50 #----------------------------------------------------------------------------
53 m4_version_prereq([2.70], [AC_PROG_CC], [AC_PROG_CC_C99])
54 # Make sure we can compile in C99 mode.
55 if test "$ac_cv_prog_cc_c99" = "no"; then
56 AC_MSG_ERROR([Valgrind relies on a C compiler supporting C99])
60 # AC_PROG_OBJC apparently causes problems on older Linux distros (eg. with
61 # autoconf 2.59). If we ever have any Objective-C code in the Valgrind code
62 # base (eg. most likely as Darwin-specific tests) we'll need one of the
64 # - put AC_PROG_OBJC in a Darwin-specific part of this file
65 # - Use AC_PROG_OBJC here and up the minimum autoconf version
66 # - Use the following, which is apparently equivalent:
67 # m4_ifdef([AC_PROG_OBJC],
69 # [AC_CHECK_TOOL([OBJC], [gcc])
71 # AC_SUBST([OBJCFLAGS])
74 # Set LTO_RANLIB variable to an lto enabled ranlib
75 if test "x$LTO_RANLIB" = "x"; then
76 AC_PATH_PROGS([LTO_RANLIB], [gcc-ranlib])
78 AC_ARG_VAR([LTO_RANLIB],[Library indexer command for link time optimisation])
80 # provide a very basic definition for AC_PROG_SED if it's not provided by
81 # autoconf (as e.g. in autoconf 2.59).
82 m4_ifndef([AC_PROG_SED],
83 [AC_DEFUN([AC_PROG_SED],
85 AC_CHECK_PROGS([SED],[gsed sed])])])
88 AC_DEFUN([AC_PROG_SHA256SUM],
89 [AC_ARG_VAR([SHA256SUM])
90 AC_CHECK_PROGS([SHA256SUM],[gsha256sum sha256sum])])
93 # If no AR variable was specified, look up the name of the archiver. Otherwise
94 # do not touch the AR variable.
95 if test "x$AR" = "x"; then
96 AC_PATH_PROGS([AR], [`echo $LD | $SED 's/ld$/ar/'` "ar"], [ar])
98 AC_ARG_VAR([AR],[Archiver command])
100 # same for LTO_AR variable for lto enabled archiver
101 if test "x$LTO_AR" = "x"; then
102 AC_PATH_PROGS([LTO_AR], [gcc-ar])
104 AC_ARG_VAR([LTO_AR],[Archiver command for link time optimisation])
106 # figure out where perl lives
107 AC_PATH_PROG(PERL, perl)
109 # figure out where gdb lives
110 AC_PATH_PROG(GDB, gdb, "/no/gdb/was/found/at/configure/time")
111 AC_DEFINE_UNQUOTED(GDB_PATH, "$GDB", [path to GDB])
113 # some older automake's don't have it so try something on our own
114 ifdef([AM_PROG_AS],[AM_PROG_AS],
124 # Check if 'diff' supports -u (universal diffs) and use it if possible.
126 AC_MSG_CHECKING([for diff -u])
129 # Comparing two identical files results in 0.
130 tmpfile="tmp-xxx-yyy-zzz"
132 if diff -u $tmpfile $tmpfile ; then
141 # We don't want gcc < 3.0
142 AC_MSG_CHECKING([for a supported version of gcc])
144 # Obtain the compiler version.
146 # A few examples of how the ${CC} --version output looks like:
148 # ######## gcc variants ########
149 # Arch Linux: i686-pc-linux-gnu-gcc (GCC) 4.6.2
150 # Debian Linux: gcc (Debian 4.3.2-1.1) 4.3.2
151 # openSUSE: gcc (SUSE Linux) 4.5.1 20101208 [gcc-4_5-branch revision 167585]
152 # Exherbo Linux: x86_64-pc-linux-gnu-gcc (Exherbo gcc-4.6.2) 4.6.2
153 # MontaVista Linux for ARM: arm-none-linux-gnueabi-gcc (Sourcery G++ Lite 2009q1-203) 4.3.3
154 # OS/X 10.6: i686-apple-darwin10-gcc-4.2.1 (GCC) 4.2.1 (Apple Inc. build 5666) (dot 3)
155 # OS/X 10.7: i686-apple-darwin11-llvm-gcc-4.2 (GCC) 4.2.1 (Based on Apple Inc. build 5658) (LLVM build 2335.15.00)
157 # ######## clang variants ########
158 # Clang: clang version 2.9 (tags/RELEASE_29/final)
159 # Apple clang: Apple clang version 3.1 (tags/Apple/clang-318.0.58) (based on LLVM 3.1svn)
160 # FreeBSD clang: FreeBSD clang version 3.1 (branches/release_31 156863) 20120523
162 # ######## Apple LLVM variants ########
163 # Apple LLVM version 5.1 (clang-503.0.40) (based on LLVM 3.4svn)
164 # Apple LLVM version 6.0 (clang-600.0.51) (based on LLVM 3.5svn)
167 if test "x`${CC} --version | $SED -n -e 's/.*\Apple \(LLVM\) version.*clang.*/\1/p'`" = "xLLVM" ;
170 gcc_version=`${CC} --version | $SED -n -e 's/.*LLVM version \([0-9.]*\).*$/\1/p'`
171 elif test "x`${CC} --version | $SED -n -e 's/.*\(clang\) version.*/\1/p'`" = "xclang" ;
174 # Don't use -dumpversion with clang: it will always produce "4.2.1".
175 gcc_version=`${CC} --version | $SED -n -e 's/.*clang version \([0-9.]*\).*$/\1/p'`
176 elif test "x`${CC} --version | $SED -n -e 's/icc.*\(ICC\).*/\1/p'`" = "xICC" ;
179 gcc_version=`${CC} -dumpversion 2>/dev/null`
182 gcc_version=`${CC} -dumpversion 2>/dev/null`
183 if test "x$gcc_version" = x; then
184 gcc_version=`${CC} --version | $SED -n -e 's/[^ ]*gcc[^ ]* ([^)]*) \([0-9.]*\).*$/\1/p'`
188 AM_CONDITIONAL(COMPILER_IS_CLANG, test $is_clang = clang -o $is_clang = applellvm)
189 AM_CONDITIONAL(COMPILER_IS_ICC, test $is_clang = icc)
191 # Note: m4 arguments are quoted with [ and ] so square brackets in shell
192 # statements have to be quoted.
193 case "${is_clang}-${gcc_version}" in
194 applellvm-5.1|applellvm-[[6-9]].*|applellvm-[[1-9][0-9]]*)
195 AC_MSG_RESULT([ok (Apple LLVM version ${gcc_version})])
197 icc-1[[3-9]].*|icc-202[[0-9]].*)
198 AC_MSG_RESULT([ok (ICC version ${gcc_version})])
200 notclang-[[3-9]]|notclang-[[3-9]].*|notclang-[[1-9][0-9]]*)
201 AC_MSG_RESULT([ok (${gcc_version})])
203 clang-2.9|clang-[[3-9]].*|clang-[[1-9][0-9]]*)
204 AC_MSG_RESULT([ok (clang-${gcc_version})])
207 AC_MSG_RESULT([no (${is_clang}-${gcc_version})])
208 AC_MSG_ERROR([please use gcc >= 3.0 or clang >= 2.9 or icc >= 13.0 or Apple LLVM >= 5.1])
212 #----------------------------------------------------------------------------
213 # Arch/OS/platform tests.
214 #----------------------------------------------------------------------------
215 # We create a number of arch/OS/platform-related variables. We prefix them
216 # all with "VGCONF_" which indicates that they are defined at
217 # configure-time, and distinguishes them from the VGA_*/VGO_*/VGP_*
218 # variables used when compiling C files.
222 AC_MSG_CHECKING([for a supported CPU])
224 # ARCH_MAX reflects the most that this CPU can do: for example if it
225 # is a 64-bit capable PowerPC, then it must be set to ppc64 and not ppc32.
226 # Ditto for amd64. It is used for more configuration below, but is not used
229 # Power PC returns powerpc for Big Endian. This was not changed when Little
230 # Endian support was added to the 64-bit architecture. The 64-bit Little
231 # Endian systems explicitly state le in the host_cpu. For clarity in the
232 # Valgrind code, the ARCH_MAX name will state LE or BE for the endianness of
233 # the 64-bit system. Big Endian is the only mode supported on 32-bit Power PC.
234 # The abreviation PPC or ppc refers to 32-bit and 64-bit systems with either
235 # Endianness. The name PPC64 or ppc64 to 64-bit systems of either Endianness.
236 # The names ppc64be or PPC64BE refer to only 64-bit systems that are Big
237 # Endian. Similarly, ppc64le or PPC64LE refer to only 64-bit systems that are
240 VGCONF_PLATFORM_ARM_ARCH=
242 case "${host_cpu}" in
244 AC_MSG_RESULT([ok (${host_cpu})])
249 AC_MSG_RESULT([ok (${host_cpu})])
254 # this only referrs to 64-bit Big Endian
255 AC_MSG_RESULT([ok (${host_cpu})])
260 # this only referrs to 64-bit Little Endian
261 AC_MSG_RESULT([ok (${host_cpu})])
266 # On Linux this means only a 32-bit capable CPU.
267 AC_MSG_RESULT([ok (${host_cpu})])
272 AC_MSG_RESULT([ok (${host_cpu})])
277 AC_MSG_RESULT([ok (${host_cpu})])
278 VGCONF_PLATFORM_ARM_ARCH="-marm -mcpu=cortex-a8"
283 AC_MSG_RESULT([ok (${host_cpu})])
284 VGCONF_PLATFORM_ARM_ARCH="-marm -mcpu=cortex-a8"
289 AC_MSG_RESULT([ok (${host_cpu})])
290 VGCONF_PLATFORM_ARM_ARCH="-march=armv6"
295 AC_MSG_RESULT([ok (${host_cpu})])
300 AC_MSG_RESULT([ok (${host_cpu})])
305 AC_MSG_RESULT([ok (${host_cpu})])
310 AC_MSG_RESULT([ok (${host_cpu})])
315 AC_MSG_RESULT([ok (${host_cpu})])
320 AC_MSG_RESULT([ok (${host_cpu})])
324 AC_MSG_RESULT([ok (${host_cpu})])
329 AC_MSG_RESULT([no (${host_cpu})])
330 AC_MSG_ERROR([Unsupported host architecture. Sorry])
334 AC_SUBST(VGCONF_PLATFORM_ARM_ARCH)
336 #----------------------------------------------------------------------------
338 # Sometimes it's convenient to subvert the bi-arch build system and
339 # just have a single build even though the underlying platform is
340 # capable of both. Hence handle --enable-only64bit and
341 # --enable-only32bit. Complain if both are issued :-)
342 # [Actually, if either of these options are used, I think both get built,
343 # but only one gets installed. So if you use an in-place build, both can be
346 # Check if a 64-bit only build has been requested
347 AC_CACHE_CHECK([for a 64-bit only build], vg_cv_only64bit,
348 [AC_ARG_ENABLE(only64bit,
349 [ --enable-only64bit do a 64-bit only build],
350 [vg_cv_only64bit=$enableval],
351 [vg_cv_only64bit=no])])
353 # Check if a 32-bit only build has been requested
354 AC_CACHE_CHECK([for a 32-bit only build], vg_cv_only32bit,
355 [AC_ARG_ENABLE(only32bit,
356 [ --enable-only32bit do a 32-bit only build],
357 [vg_cv_only32bit=$enableval],
358 [vg_cv_only32bit=no])])
361 if test x$vg_cv_only64bit = xyes -a x$vg_cv_only32bit = xyes; then
363 [Nonsensical: both --enable-only64bit and --enable-only32bit.])
366 #----------------------------------------------------------------------------
368 # VGCONF_OS is the primary build OS, eg. "linux". It is passed in to
369 # compilation of many C files via -VGO_$(VGCONF_OS) and
370 # -VGP_$(VGCONF_ARCH_PRI)_$(VGCONF_OS).
371 AC_MSG_CHECKING([for a supported OS])
378 AC_MSG_RESULT([ok (${host_os})])
381 # Ok, this is linux. Check the kernel version
382 AC_MSG_CHECKING([for the kernel version])
387 0.*|1.*|2.0.*|2.1.*|2.2.*|2.3.*|2.4.*|2.5.*)
388 AC_MSG_RESULT([unsupported (${kernel})])
389 AC_MSG_ERROR([Valgrind needs a Linux kernel >= 2.6])
393 AC_MSG_RESULT([2.6 or later (${kernel})])
400 AC_MSG_RESULT([ok (${host_os})])
402 AC_DEFINE([FREEBSD_10], 1000, [FREEBSD_VERS value for FreeBSD 10.x])
404 AC_DEFINE([FREEBSD_11], 1100, [FREEBSD_VERS value for FreeBSD 11.x])
406 AC_DEFINE([FREEBSD_12], 1200, [FREEBSD_VERS value for FreeBSD 12.0 to 12.1])
408 AC_DEFINE([FREEBSD_12_2], 1220, [FREEBSD_VERS value for FreeBSD 12.2])
410 AC_DEFINE([FREEBSD_13_0], 1300, [FREEBSD_VERS value for FreeBSD 13.0])
412 AC_DEFINE([FREEBSD_13_1], 1310, [FREEBSD_VERS value for FreeBSD 13.1])
414 AC_DEFINE([FREEBSD_13_2], 1320, [FREEBSD_VERS value for FreeBSD 13.2])
416 AC_DEFINE([FREEBSD_13_3], 1330, [FREEBSD_VERS value for FreeBSD 13.3])
418 AC_DEFINE([FREEBSD_14], 1400, [FREEBSD_VERS value for FreeBSD 14.x])
420 AC_DEFINE([FREEBSD_15], 1500, [FREEBSD_VERS value for FreeBSD 15.x])
423 AC_MSG_CHECKING([for the kernel version])
428 AC_MSG_RESULT([FreeBSD 10.x (${kernel})])
429 AC_DEFINE([FREEBSD_VERS], FREEBSD_10, [FreeBSD version])
430 freebsd_vers=$freebsd_10
433 AC_MSG_RESULT([FreeBSD 11.x (${kernel})])
434 AC_DEFINE([FREEBSD_VERS], FREEBSD_11, [FreeBSD version])
435 freebsd_vers=$freebsd_11
440 AC_MSG_RESULT([FreeBSD 12.x (${kernel})])
441 AC_DEFINE([FREEBSD_VERS], FREEBSD_12, [FreeBSD version])
442 freebsd_vers=$freebsd_12
445 AC_MSG_RESULT([FreeBSD 12.x (${kernel})])
446 AC_DEFINE([FREEBSD_VERS], FREEBSD_12_2, [FreeBSD version])
447 freebsd_vers=$freebsd_12_2
454 AC_MSG_RESULT([FreeBSD 13.0 (${kernel})])
455 AC_DEFINE([FREEBSD_VERS], FREEBSD_13_0, [FreeBSD version])
456 freebsd_vers=$freebsd_13_0
459 AC_MSG_RESULT([FreeBSD 13.1 (${kernel})])
460 AC_DEFINE([FREEBSD_VERS], FREEBSD_13_1, [FreeBSD version])
461 freebsd_vers=$freebsd_13_1
464 AC_MSG_RESULT([FreeBSD 13.2 (${kernel})])
465 AC_DEFINE([FREEBSD_VERS], FREEBSD_13_2, [FreeBSD version])
466 freebsd_vers=$freebsd_13_2
469 AC_MSG_RESULT([FreeBSD 13.3 (${kernel})])
470 AC_DEFINE([FREEBSD_VERS], FREEBSD_13_3, [FreeBSD version])
471 freebsd_vers=$freebsd_13_3
474 AC_MSG_RESULT([unsupported (${kernel})])
475 AC_MSG_ERROR([Valgrind works on FreeBSD 10.x to 15.x])
480 AC_MSG_RESULT([FreeBSD 14.x (${kernel})])
481 AC_DEFINE([FREEBSD_VERS], FREEBSD_14, [FreeBSD version])
482 freebsd_vers=$freebsd_14
485 AC_MSG_RESULT([FreeBSD 15.x (${kernel})])
486 AC_DEFINE([FREEBSD_VERS], FREEBSD_15, [FreeBSD version])
487 freebsd_vers=$freebsd_15
490 AC_MSG_RESULT([unsupported (${kernel})])
491 AC_MSG_ERROR([Valgrind works on FreeBSD 10.x to 15.x])
495 DEFAULT_SUPP="$srcdir/freebsd.supp $srcdir/freebsd-helgrind.supp $srcdir/freebsd-drd.supp ${DEFAULT_SUPP}"
499 AC_MSG_RESULT([ok (${host_os})])
501 AC_DEFINE([DARWIN_10_5], 100500, [DARWIN_VERS value for Mac OS X 10.5])
502 AC_DEFINE([DARWIN_10_6], 100600, [DARWIN_VERS value for Mac OS X 10.6])
503 AC_DEFINE([DARWIN_10_7], 100700, [DARWIN_VERS value for Mac OS X 10.7])
504 AC_DEFINE([DARWIN_10_8], 100800, [DARWIN_VERS value for Mac OS X 10.8])
505 AC_DEFINE([DARWIN_10_9], 100900, [DARWIN_VERS value for Mac OS X 10.9])
506 AC_DEFINE([DARWIN_10_10], 101000, [DARWIN_VERS value for Mac OS X 10.10])
507 AC_DEFINE([DARWIN_10_11], 101100, [DARWIN_VERS value for Mac OS X 10.11])
508 AC_DEFINE([DARWIN_10_12], 101200, [DARWIN_VERS value for macOS 10.12])
509 AC_DEFINE([DARWIN_10_13], 101300, [DARWIN_VERS value for macOS 10.13])
511 AC_MSG_CHECKING([for the kernel version])
514 # Nb: for Darwin we set DEFAULT_SUPP here. That's because Darwin
515 # has only one relevant version, the OS version. The `uname` check
516 # is a good way to get that version (i.e. "Darwin 9.6.0" is Mac OS
517 # X 10.5.6, and "Darwin 10.x" is Mac OS X 10.6.x Snow Leopard,
518 # and possibly "Darwin 11.x" is Mac OS X 10.7.x Lion),
519 # and we don't know of an macros similar to __GLIBC__ to get that info.
521 # XXX: `uname -r` won't do the right thing for cross-compiles, but
522 # that's not a problem yet.
524 # jseward 21 Sept 2011: I seriously doubt whether V 3.7.0 will work
525 # on OS X 10.5.x; I haven't tested yet, and only plan to test 3.7.0
526 # on 10.6.8 and 10.7.1. Although tempted to delete the configure
527 # time support for 10.5 (the 9.* pattern just below), I'll leave it
528 # in for now, just in case anybody wants to give it a try. But I'm
529 # assuming that 3.7.0 is a Snow Leopard and Lion-only release.
532 AC_MSG_RESULT([Darwin 9.x (${kernel}) / Mac OS X 10.5 Leopard])
533 AC_DEFINE([DARWIN_VERS], DARWIN_10_5, [Darwin / Mac OS X version])
534 DEFAULT_SUPP="$srcdir/darwin9.supp ${DEFAULT_SUPP}"
535 DEFAULT_SUPP="$srcdir/darwin9-drd.supp ${DEFAULT_SUPP}"
538 AC_MSG_RESULT([Darwin 10.x (${kernel}) / Mac OS X 10.6 Snow Leopard])
539 AC_DEFINE([DARWIN_VERS], DARWIN_10_6, [Darwin / Mac OS X version])
540 DEFAULT_SUPP="$srcdir/darwin10.supp ${DEFAULT_SUPP}"
541 DEFAULT_SUPP="$srcdir/darwin10-drd.supp ${DEFAULT_SUPP}"
544 AC_MSG_RESULT([Darwin 11.x (${kernel}) / Mac OS X 10.7 Lion])
545 AC_DEFINE([DARWIN_VERS], DARWIN_10_7, [Darwin / Mac OS X version])
546 DEFAULT_SUPP="$srcdir/darwin11.supp ${DEFAULT_SUPP}"
547 DEFAULT_SUPP="$srcdir/darwin10-drd.supp ${DEFAULT_SUPP}"
550 AC_MSG_RESULT([Darwin 12.x (${kernel}) / Mac OS X 10.8 Mountain Lion])
551 AC_DEFINE([DARWIN_VERS], DARWIN_10_8, [Darwin / Mac OS X version])
552 DEFAULT_SUPP="$srcdir/darwin12.supp ${DEFAULT_SUPP}"
553 DEFAULT_SUPP="$srcdir/darwin10-drd.supp ${DEFAULT_SUPP}"
556 AC_MSG_RESULT([Darwin 13.x (${kernel}) / Mac OS X 10.9 Mavericks])
557 AC_DEFINE([DARWIN_VERS], DARWIN_10_9, [Darwin / Mac OS X version])
558 DEFAULT_SUPP="$srcdir/darwin13.supp ${DEFAULT_SUPP}"
559 DEFAULT_SUPP="$srcdir/darwin10-drd.supp ${DEFAULT_SUPP}"
562 AC_MSG_RESULT([Darwin 14.x (${kernel}) / Mac OS X 10.10 Yosemite])
563 AC_DEFINE([DARWIN_VERS], DARWIN_10_10, [Darwin / Mac OS X version])
564 DEFAULT_SUPP="$srcdir/darwin14.supp ${DEFAULT_SUPP}"
565 DEFAULT_SUPP="$srcdir/darwin10-drd.supp ${DEFAULT_SUPP}"
568 AC_MSG_RESULT([Darwin 15.x (${kernel}) / Mac OS X 10.11 El Capitan])
569 AC_DEFINE([DARWIN_VERS], DARWIN_10_11, [Darwin / Mac OS X version])
570 DEFAULT_SUPP="$srcdir/darwin15.supp ${DEFAULT_SUPP}"
571 DEFAULT_SUPP="$srcdir/darwin10-drd.supp ${DEFAULT_SUPP}"
574 AC_MSG_RESULT([Darwin 16.x (${kernel}) / macOS 10.12 Sierra])
575 AC_DEFINE([DARWIN_VERS], DARWIN_10_12, [Darwin / Mac OS X version])
576 DEFAULT_SUPP="$srcdir/darwin16.supp ${DEFAULT_SUPP}"
577 DEFAULT_SUPP="$srcdir/darwin10-drd.supp ${DEFAULT_SUPP}"
580 AC_MSG_RESULT([Darwin 17.x (${kernel}) / macOS 10.13 High Sierra])
581 AC_DEFINE([DARWIN_VERS], DARWIN_10_13, [Darwin / Mac OS X version])
582 DEFAULT_SUPP="$srcdir/darwin17.supp ${DEFAULT_SUPP}"
583 DEFAULT_SUPP="$srcdir/darwin10-drd.supp ${DEFAULT_SUPP}"
586 AC_MSG_RESULT([unsupported (${kernel})])
587 AC_MSG_ERROR([Valgrind works on Darwin 10.x, 11.x, 12.x, 13.x, 14.x, 15.x, 16.x and 17.x (Mac OS X 10.6/7/8/9/10/11 and macOS 10.12/13)])
593 AC_MSG_RESULT([ok (${host_os})])
596 uname_v=$( uname -v )
599 DEFAULT_SUPP="$srcdir/solaris12.supp ${DEFAULT_SUPP}"
602 DEFAULT_SUPP="$srcdir/solaris11.supp ${DEFAULT_SUPP}"
608 AC_MSG_RESULT([ok (${host_os})])
610 DEFAULT_SUPP="$srcdir/solaris12.supp ${DEFAULT_SUPP}"
614 AC_MSG_RESULT([no (${host_os})])
615 AC_MSG_ERROR([Valgrind is operating system specific. Sorry.])
619 #----------------------------------------------------------------------------
621 # If we are building on a 64 bit platform test to see if the system
622 # supports building 32 bit programs and disable 32 bit support if it
623 # does not support building 32 bit programs
625 case "$ARCH_MAX-$VGCONF_OS" in
626 amd64-linux|ppc64be-linux|arm64-linux|amd64-solaris)
627 AC_MSG_CHECKING([for 32 bit build support])
630 AC_LINK_IFELSE([AC_LANG_PROGRAM([[]], [[
635 vg_cv_only64bit="yes"
638 CFLAGS=$safe_CFLAGS;;
640 AC_MSG_CHECKING([for 32 bit build support])
642 CFLAGS="$CFLAGS -mips32 -mabi=32"
643 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
644 #include <sys/prctl.h>
648 vg_cv_only64bit="yes"
651 CFLAGS=$safe_CFLAGS;;
654 if test x$vg_cv_only64bit = xyes -a x$vg_cv_only32bit = xyes; then
656 [--enable-only32bit was specified but system does not support 32 bit builds])
659 #----------------------------------------------------------------------------
661 # VGCONF_ARCH_PRI is the arch for the primary build target, eg. "amd64". By
662 # default it's the same as ARCH_MAX. But if, say, we do a build on an amd64
663 # machine, but --enable-only32bit has been requested, then ARCH_MAX (see
664 # above) will be "amd64" since that reflects the most that this cpu can do,
665 # but VGCONF_ARCH_PRI will be downgraded to "x86", since that reflects the
666 # arch corresponding to the primary build (VGCONF_PLATFORM_PRI_CAPS). It is
667 # passed in to compilation of many C files via -VGA_$(VGCONF_ARCH_PRI) and
668 # -VGP_$(VGCONF_ARCH_PRI)_$(VGCONF_OS).
669 AC_SUBST(VGCONF_ARCH_PRI)
671 # VGCONF_ARCH_SEC is the arch for the secondary build target, eg. "x86".
672 # It is passed in to compilation of many C files via -VGA_$(VGCONF_ARCH_SEC)
673 # and -VGP_$(VGCONF_ARCH_SEC)_$(VGCONF_OS), if there is a secondary target.
674 # It is empty if there is no secondary target.
675 AC_SUBST(VGCONF_ARCH_SEC)
677 # VGCONF_PLATFORM_PRI_CAPS is the primary build target, eg. "AMD64_LINUX".
678 # The entire system, including regression and performance tests, will be
679 # built for this target. The "_CAPS" indicates that the name is in capital
680 # letters, and it also uses '_' rather than '-' as a separator, because it's
681 # used to create various Makefile variables, which are all in caps by
682 # convention and cannot contain '-' characters. This is in contrast to
683 # VGCONF_ARCH_PRI and VGCONF_OS which are not in caps.
684 AC_SUBST(VGCONF_PLATFORM_PRI_CAPS)
686 # VGCONF_PLATFORM_SEC_CAPS is the secondary build target, if there is one.
687 # Valgrind and tools will also be built for this target, but not the
688 # regression or performance tests.
690 # By default, the primary arch is the same as the "max" arch, as commented
691 # above (at the definition of ARCH_MAX). We may choose to downgrade it in
692 # the big case statement just below here, in the case where we're building
693 # on a 64 bit machine but have been requested only to do a 32 bit build.
694 AC_SUBST(VGCONF_PLATFORM_SEC_CAPS)
696 AC_MSG_CHECKING([for a supported CPU/OS combination])
698 # NB. The load address for a given platform may be specified in more
699 # than one place, in some cases, depending on whether we're doing a biarch,
700 # 32-bit only or 64-bit only build. eg see case for amd64-linux below.
701 # Be careful to give consistent values in all subcases. Also, all four
702 # valt_load_addres_{pri,sec}_{norml,inner} values must always be set,
703 # even if it is to "0xUNSET".
705 case "$ARCH_MAX-$VGCONF_OS" in
707 VGCONF_ARCH_PRI="x86"
709 VGCONF_PLATFORM_PRI_CAPS="X86_LINUX"
710 VGCONF_PLATFORM_SEC_CAPS=""
711 valt_load_address_pri_norml="0x58000000"
712 valt_load_address_pri_inner="0x38000000"
713 valt_load_address_sec_norml="0xUNSET"
714 valt_load_address_sec_inner="0xUNSET"
715 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
718 valt_load_address_sec_norml="0xUNSET"
719 valt_load_address_sec_inner="0xUNSET"
720 if test x$vg_cv_only64bit = xyes; then
721 VGCONF_ARCH_PRI="amd64"
723 VGCONF_PLATFORM_PRI_CAPS="AMD64_LINUX"
724 VGCONF_PLATFORM_SEC_CAPS=""
725 valt_load_address_pri_norml="0x58000000"
726 valt_load_address_pri_inner="0x38000000"
727 elif test x$vg_cv_only32bit = xyes; then
728 VGCONF_ARCH_PRI="x86"
730 VGCONF_PLATFORM_PRI_CAPS="X86_LINUX"
731 VGCONF_PLATFORM_SEC_CAPS=""
732 valt_load_address_pri_norml="0x58000000"
733 valt_load_address_pri_inner="0x38000000"
735 VGCONF_ARCH_PRI="amd64"
736 VGCONF_ARCH_SEC="x86"
737 VGCONF_PLATFORM_PRI_CAPS="AMD64_LINUX"
738 VGCONF_PLATFORM_SEC_CAPS="X86_LINUX"
739 valt_load_address_pri_norml="0x58000000"
740 valt_load_address_pri_inner="0x38000000"
741 valt_load_address_sec_norml="0x58000000"
742 valt_load_address_sec_inner="0x38000000"
744 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
747 VGCONF_ARCH_PRI="ppc32"
749 VGCONF_PLATFORM_PRI_CAPS="PPC32_LINUX"
750 VGCONF_PLATFORM_SEC_CAPS=""
751 valt_load_address_pri_norml="0x58000000"
752 valt_load_address_pri_inner="0x38000000"
753 valt_load_address_sec_norml="0xUNSET"
754 valt_load_address_sec_inner="0xUNSET"
755 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
758 valt_load_address_sec_norml="0xUNSET"
759 valt_load_address_sec_inner="0xUNSET"
760 if test x$vg_cv_only64bit = xyes; then
761 VGCONF_ARCH_PRI="ppc64be"
763 VGCONF_PLATFORM_PRI_CAPS="PPC64BE_LINUX"
764 VGCONF_PLATFORM_SEC_CAPS=""
765 valt_load_address_pri_norml="0x58000000"
766 valt_load_address_pri_inner="0x38000000"
767 elif test x$vg_cv_only32bit = xyes; then
768 VGCONF_ARCH_PRI="ppc32"
770 VGCONF_PLATFORM_PRI_CAPS="PPC32_LINUX"
771 VGCONF_PLATFORM_SEC_CAPS=""
772 valt_load_address_pri_norml="0x58000000"
773 valt_load_address_pri_inner="0x38000000"
775 VGCONF_ARCH_PRI="ppc64be"
776 VGCONF_ARCH_SEC="ppc32"
777 VGCONF_PLATFORM_PRI_CAPS="PPC64BE_LINUX"
778 VGCONF_PLATFORM_SEC_CAPS="PPC32_LINUX"
779 valt_load_address_pri_norml="0x58000000"
780 valt_load_address_pri_inner="0x38000000"
781 valt_load_address_sec_norml="0x58000000"
782 valt_load_address_sec_inner="0x38000000"
784 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
787 # Little Endian is only supported on PPC64
788 valt_load_address_sec_norml="0xUNSET"
789 valt_load_address_sec_inner="0xUNSET"
790 VGCONF_ARCH_PRI="ppc64le"
792 VGCONF_PLATFORM_PRI_CAPS="PPC64LE_LINUX"
793 VGCONF_PLATFORM_SEC_CAPS=""
794 valt_load_address_pri_norml="0x58000000"
795 valt_load_address_pri_inner="0x38000000"
796 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
799 VGCONF_ARCH_PRI="x86"
801 VGCONF_PLATFORM_PRI_CAPS="X86_FREEBSD"
802 VGCONF_PLATFORM_SEC_CAPS=""
803 valt_load_address_pri_norml="0x38000000"
804 valt_load_address_pri_inner="0x28000000"
805 valt_load_address_sec_norml="0xUNSET"
806 valt_load_address_sec_inner="0xUNSET"
807 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
810 if test x$vg_cv_only64bit = xyes; then
811 VGCONF_ARCH_PRI="amd64"
813 VGCONF_PLATFORM_PRI_CAPS="AMD64_FREEBSD"
814 VGCONF_PLATFORM_SEC_CAPS=""
815 elif test x$vg_cv_only32bit = xyes; then
816 VGCONF_ARCH_PRI="x86"
818 VGCONF_PLATFORM_PRI_CAPS="X86_FREEBSD"
819 VGCONF_PLATFORM_SEC_CAPS=""
821 VGCONF_ARCH_PRI="amd64"
822 VGCONF_ARCH_SEC="x86"
823 VGCONF_PLATFORM_PRI_CAPS="AMD64_FREEBSD"
824 VGCONF_PLATFORM_SEC_CAPS="X86_FREEBSD"
826 # These work with either base clang or ports installed gcc
827 # Hand rolled compilers probably need INSTALL_DIR/lib (at least for gcc)
828 if test x$is_clang = xclang ; then
829 FLAG_32ON64="-B/usr/lib32"
831 GCC_MAJOR_VERSION=`${CC} -dumpversion | $SED 's/\..*//' 2>/dev/null`
832 FLAG_32ON64="-B/usr/local/lib32/gcc${GCC_MAJOR_VERSION} -Wl,-rpath,/usr/local/lib32/gcc${GCC_MAJOR_VERSION}/"
833 FLAG_32ON64_GXX="-L/usr/local/lib32/gcc${GCC_MAJOR_VERSION} -lgcc_s"
834 AC_SUBST(FLAG_32ON64_GXX)
836 valt_load_address_pri_norml="0x38000000"
837 valt_load_address_pri_inner="0x28000000"
838 valt_load_address_sec_norml="0x38000000"
839 valt_load_address_sec_inner="0x28000000"
840 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
843 VGCONF_ARCH_PRI="arm64"
845 VGCONF_PLATFORM_PRI_CAPS="ARM64_FREEBSD"
846 VGCONF_PLATFORM_SEC_CAPS=""
847 valt_load_address_pri_norml="0x38000000"
848 valt_load_address_pri_inner="0x28000000"
849 valt_load_address_sec_norml="0xUNSET"
850 valt_load_address_sec_inner="0xUNSET"
851 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
853 # Darwin gets identified as 32-bit even when it supports 64-bit.
854 # (Not sure why, possibly because 'uname' returns "i386"?) Just about
855 # all Macs support both 32-bit and 64-bit, so we just build both. If
856 # someone has a really old 32-bit only machine they can (hopefully?)
857 # build with --enable-only32bit. See bug 243362.
858 x86-darwin|amd64-darwin)
860 valt_load_address_sec_norml="0xUNSET"
861 valt_load_address_sec_inner="0xUNSET"
862 if test x$vg_cv_only64bit = xyes; then
863 VGCONF_ARCH_PRI="amd64"
865 VGCONF_PLATFORM_PRI_CAPS="AMD64_DARWIN"
866 VGCONF_PLATFORM_SEC_CAPS=""
867 valt_load_address_pri_norml="0x158000000"
868 valt_load_address_pri_inner="0x138000000"
869 elif test x$vg_cv_only32bit = xyes; then
870 VGCONF_ARCH_PRI="x86"
872 VGCONF_PLATFORM_PRI_CAPS="X86_DARWIN"
873 VGCONF_PLATFORM_SEC_CAPS=""
874 VGCONF_ARCH_PRI_CAPS="x86"
875 valt_load_address_pri_norml="0x58000000"
876 valt_load_address_pri_inner="0x38000000"
878 VGCONF_ARCH_PRI="amd64"
879 VGCONF_ARCH_SEC="x86"
880 VGCONF_PLATFORM_PRI_CAPS="AMD64_DARWIN"
881 VGCONF_PLATFORM_SEC_CAPS="X86_DARWIN"
882 valt_load_address_pri_norml="0x158000000"
883 valt_load_address_pri_inner="0x138000000"
884 valt_load_address_sec_norml="0x58000000"
885 valt_load_address_sec_inner="0x38000000"
887 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
890 VGCONF_ARCH_PRI="arm"
891 VGCONF_PLATFORM_PRI_CAPS="ARM_LINUX"
892 VGCONF_PLATFORM_SEC_CAPS=""
893 valt_load_address_pri_norml="0x58000000"
894 valt_load_address_pri_inner="0x38000000"
895 valt_load_address_sec_norml="0xUNSET"
896 valt_load_address_sec_inner="0xUNSET"
897 AC_MSG_RESULT([ok (${host_cpu}-${host_os})])
900 valt_load_address_sec_norml="0xUNSET"
901 valt_load_address_sec_inner="0xUNSET"
902 if test x$vg_cv_only64bit = xyes; then
903 VGCONF_ARCH_PRI="arm64"
905 VGCONF_PLATFORM_PRI_CAPS="ARM64_LINUX"
906 VGCONF_PLATFORM_SEC_CAPS=""
907 valt_load_address_pri_norml="0x58000000"
908 valt_load_address_pri_inner="0x38000000"
909 elif test x$vg_cv_only32bit = xyes; then
910 VGCONF_ARCH_PRI="arm"
912 VGCONF_PLATFORM_PRI_CAPS="ARM_LINUX"
913 VGCONF_PLATFORM_SEC_CAPS=""
914 valt_load_address_pri_norml="0x58000000"
915 valt_load_address_pri_inner="0x38000000"
917 VGCONF_ARCH_PRI="arm64"
918 VGCONF_ARCH_SEC="arm"
919 VGCONF_PLATFORM_PRI_CAPS="ARM64_LINUX"
920 VGCONF_PLATFORM_SEC_CAPS="ARM_LINUX"
921 valt_load_address_pri_norml="0x58000000"
922 valt_load_address_pri_inner="0x38000000"
923 valt_load_address_sec_norml="0x58000000"
924 valt_load_address_sec_inner="0x38000000"
926 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
929 VGCONF_ARCH_PRI="s390x"
931 VGCONF_PLATFORM_PRI_CAPS="S390X_LINUX"
932 VGCONF_PLATFORM_SEC_CAPS=""
933 # To improve branch prediction hit rate we want to have
934 # the generated code close to valgrind (host) code
935 valt_load_address_pri_norml="0x800000000"
936 valt_load_address_pri_inner="0x810000000"
937 valt_load_address_sec_norml="0xUNSET"
938 valt_load_address_sec_inner="0xUNSET"
939 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
942 VGCONF_ARCH_PRI="mips32"
944 VGCONF_PLATFORM_PRI_CAPS="MIPS32_LINUX"
945 VGCONF_PLATFORM_SEC_CAPS=""
946 valt_load_address_pri_norml="0x58000000"
947 valt_load_address_pri_inner="0x38000000"
948 valt_load_address_sec_norml="0xUNSET"
949 valt_load_address_sec_inner="0xUNSET"
950 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
953 valt_load_address_sec_norml="0xUNSET"
954 valt_load_address_sec_inner="0xUNSET"
955 if test x$vg_cv_only64bit = xyes; then
956 VGCONF_ARCH_PRI="mips64"
957 VGCONF_PLATFORM_SEC_CAPS=""
958 VGCONF_PLATFORM_PRI_CAPS="MIPS64_LINUX"
959 VGCONF_PLATFORM_SEC_CAPS=""
960 valt_load_address_pri_norml="0x58000000"
961 valt_load_address_pri_inner="0x38000000"
962 elif test x$vg_cv_only32bit = xyes; then
963 VGCONF_ARCH_PRI="mips32"
965 VGCONF_PLATFORM_PRI_CAPS="MIPS32_LINUX"
966 VGCONF_PLATFORM_SEC_CAPS=""
967 valt_load_address_pri_norml="0x58000000"
968 valt_load_address_pri_inner="0x38000000"
970 VGCONF_ARCH_PRI="mips64"
971 VGCONF_ARCH_SEC="mips32"
972 VGCONF_PLATFORM_PRI_CAPS="MIPS64_LINUX"
973 VGCONF_PLATFORM_SEC_CAPS="MIPS32_LINUX"
974 valt_load_address_pri_norml="0x58000000"
975 valt_load_address_pri_inner="0x38000000"
976 valt_load_address_sec_norml="0x58000000"
977 valt_load_address_sec_inner="0x38000000"
979 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
982 VGCONF_ARCH_PRI="nanomips"
984 VGCONF_PLATFORM_PRI_CAPS="NANOMIPS_LINUX"
985 VGCONF_PLATFORM_SEC_CAPS=""
986 valt_load_address_pri_norml="0x58000000"
987 valt_load_address_pri_inner="0x38000000"
988 valt_load_address_sec_norml="0xUNSET"
989 valt_load_address_sec_inner="0xUNSET"
990 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
993 VGCONF_ARCH_PRI="x86"
995 VGCONF_PLATFORM_PRI_CAPS="X86_SOLARIS"
996 VGCONF_PLATFORM_SEC_CAPS=""
997 valt_load_address_pri_norml="0x58000000"
998 valt_load_address_pri_inner="0x38000000"
999 valt_load_address_sec_norml="0xUNSET"
1000 valt_load_address_sec_inner="0xUNSET"
1001 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
1004 valt_load_address_sec_norml="0xUNSET"
1005 valt_load_address_sec_inner="0xUNSET"
1006 if test x$vg_cv_only64bit = xyes; then
1007 VGCONF_ARCH_PRI="amd64"
1009 VGCONF_PLATFORM_PRI_CAPS="AMD64_SOLARIS"
1010 VGCONF_PLATFORM_SEC_CAPS=""
1011 valt_load_address_pri_norml="0x58000000"
1012 valt_load_address_pri_inner="0x38000000"
1013 elif test x$vg_cv_only32bit = xyes; then
1014 VGCONF_ARCH_PRI="x86"
1016 VGCONF_PLATFORM_PRI_CAPS="X86_SOLARIS"
1017 VGCONF_PLATFORM_SEC_CAPS=""
1018 valt_load_address_pri_norml="0x58000000"
1019 valt_load_address_pri_inner="0x38000000"
1021 VGCONF_ARCH_PRI="amd64"
1022 VGCONF_ARCH_SEC="x86"
1023 VGCONF_PLATFORM_PRI_CAPS="AMD64_SOLARIS"
1024 VGCONF_PLATFORM_SEC_CAPS="X86_SOLARIS"
1025 valt_load_address_pri_norml="0x58000000"
1026 valt_load_address_pri_inner="0x38000000"
1027 valt_load_address_sec_norml="0x58000000"
1028 valt_load_address_sec_inner="0x38000000"
1030 AC_MSG_RESULT([ok (${ARCH_MAX}-${VGCONF_OS})])
1033 VGCONF_ARCH_PRI="unknown"
1034 VGCONF_ARCH_SEC="unknown"
1035 VGCONF_PLATFORM_PRI_CAPS="UNKNOWN"
1036 VGCONF_PLATFORM_SEC_CAPS="UNKNOWN"
1037 valt_load_address_pri_norml="0xUNSET"
1038 valt_load_address_pri_inner="0xUNSET"
1039 valt_load_address_sec_norml="0xUNSET"
1040 valt_load_address_sec_inner="0xUNSET"
1041 AC_MSG_RESULT([no (${ARCH_MAX}-${VGCONF_OS})])
1042 AC_MSG_ERROR([Valgrind is platform specific. Sorry. Please consider doing a port.])
1046 #----------------------------------------------------------------------------
1048 # Set up VGCONF_ARCHS_INCLUDE_<arch>. Either one or two of these become
1050 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_X86,
1051 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_LINUX \
1052 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_LINUX \
1053 -o x$VGCONF_PLATFORM_PRI_CAPS = xX86_FREEBSD \
1054 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_FREEBSD \
1055 -o x$VGCONF_PLATFORM_PRI_CAPS = xX86_DARWIN \
1056 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_DARWIN \
1057 -o x$VGCONF_PLATFORM_PRI_CAPS = xX86_SOLARIS \
1058 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_SOLARIS )
1059 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_AMD64,
1060 test x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_LINUX \
1061 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_FREEBSD \
1062 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_DARWIN \
1063 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_SOLARIS )
1064 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_PPC32,
1065 test x$VGCONF_PLATFORM_PRI_CAPS = xPPC32_LINUX \
1066 -o x$VGCONF_PLATFORM_SEC_CAPS = xPPC32_LINUX )
1067 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_PPC64,
1068 test x$VGCONF_PLATFORM_PRI_CAPS = xPPC64BE_LINUX \
1069 -o x$VGCONF_PLATFORM_PRI_CAPS = xPPC64LE_LINUX )
1070 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_ARM,
1071 test x$VGCONF_PLATFORM_PRI_CAPS = xARM_LINUX \
1072 -o x$VGCONF_PLATFORM_SEC_CAPS = xARM_LINUX )
1073 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_ARM64,
1074 test x$VGCONF_PLATFORM_PRI_CAPS = xARM64_LINUX \
1075 -o x$VGCONF_PLATFORM_PRI_CAPS = xARM64_FREEBSD )
1076 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_S390X,
1077 test x$VGCONF_PLATFORM_PRI_CAPS = xS390X_LINUX )
1078 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_MIPS32,
1079 test x$VGCONF_PLATFORM_PRI_CAPS = xMIPS32_LINUX \
1080 -o x$VGCONF_PLATFORM_SEC_CAPS = xMIPS32_LINUX )
1081 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_MIPS64,
1082 test x$VGCONF_PLATFORM_PRI_CAPS = xMIPS64_LINUX )
1083 AM_CONDITIONAL(VGCONF_ARCHS_INCLUDE_NANOMIPS,
1084 test x$VGCONF_PLATFORM_PRI_CAPS = xNANOMIPS_LINUX )
1086 # Set up VGCONF_PLATFORMS_INCLUDE_<platform>. Either one or two of these
1088 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_X86_LINUX,
1089 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_LINUX \
1090 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_LINUX)
1091 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_AMD64_LINUX,
1092 test x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_LINUX)
1093 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_PPC32_LINUX,
1094 test x$VGCONF_PLATFORM_PRI_CAPS = xPPC32_LINUX \
1095 -o x$VGCONF_PLATFORM_SEC_CAPS = xPPC32_LINUX)
1096 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_PPC64BE_LINUX,
1097 test x$VGCONF_PLATFORM_PRI_CAPS = xPPC64BE_LINUX)
1098 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_PPC64LE_LINUX,
1099 test x$VGCONF_PLATFORM_PRI_CAPS = xPPC64LE_LINUX)
1100 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_ARM_LINUX,
1101 test x$VGCONF_PLATFORM_PRI_CAPS = xARM_LINUX \
1102 -o x$VGCONF_PLATFORM_SEC_CAPS = xARM_LINUX)
1103 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_ARM64_LINUX,
1104 test x$VGCONF_PLATFORM_PRI_CAPS = xARM64_LINUX)
1105 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_S390X_LINUX,
1106 test x$VGCONF_PLATFORM_PRI_CAPS = xS390X_LINUX \
1107 -o x$VGCONF_PLATFORM_SEC_CAPS = xS390X_LINUX)
1108 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_MIPS32_LINUX,
1109 test x$VGCONF_PLATFORM_PRI_CAPS = xMIPS32_LINUX \
1110 -o x$VGCONF_PLATFORM_SEC_CAPS = xMIPS32_LINUX)
1111 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_MIPS64_LINUX,
1112 test x$VGCONF_PLATFORM_PRI_CAPS = xMIPS64_LINUX)
1113 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_NANOMIPS_LINUX,
1114 test x$VGCONF_PLATFORM_PRI_CAPS = xNANOMIPS_LINUX)
1115 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_X86_FREEBSD,
1116 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_FREEBSD \
1117 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_FREEBSD)
1118 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_AMD64_FREEBSD,
1119 test x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_FREEBSD)
1120 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_ARM64_FREEBSD,
1121 test x$VGCONF_PLATFORM_PRI_CAPS = xARM64_FREEBSD)
1122 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_X86_DARWIN,
1123 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_DARWIN \
1124 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_DARWIN)
1125 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_AMD64_DARWIN,
1126 test x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_DARWIN)
1127 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_X86_SOLARIS,
1128 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_SOLARIS \
1129 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_SOLARIS)
1130 AM_CONDITIONAL(VGCONF_PLATFORMS_INCLUDE_AMD64_SOLARIS,
1131 test x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_SOLARIS)
1134 # Similarly, set up VGCONF_OS_IS_<os>. Exactly one of these becomes defined.
1135 # Relies on the assumption that the primary and secondary targets are
1136 # for the same OS, so therefore only necessary to test the primary.
1137 AM_CONDITIONAL(VGCONF_OS_IS_LINUX,
1138 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_LINUX \
1139 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_LINUX \
1140 -o x$VGCONF_PLATFORM_PRI_CAPS = xPPC32_LINUX \
1141 -o x$VGCONF_PLATFORM_PRI_CAPS = xPPC64BE_LINUX \
1142 -o x$VGCONF_PLATFORM_PRI_CAPS = xPPC64LE_LINUX \
1143 -o x$VGCONF_PLATFORM_PRI_CAPS = xARM_LINUX \
1144 -o x$VGCONF_PLATFORM_PRI_CAPS = xARM64_LINUX \
1145 -o x$VGCONF_PLATFORM_PRI_CAPS = xS390X_LINUX \
1146 -o x$VGCONF_PLATFORM_PRI_CAPS = xMIPS32_LINUX \
1147 -o x$VGCONF_PLATFORM_PRI_CAPS = xMIPS64_LINUX \
1148 -o x$VGCONF_PLATFORM_PRI_CAPS = xNANOMIPS_LINUX)
1149 AM_CONDITIONAL(VGCONF_OS_IS_FREEBSD,
1150 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_FREEBSD \
1151 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_FREEBSD \
1152 -o x$VGCONF_PLATFORM_PRI_CAPS = xARM64_FREEBSD)
1153 AM_CONDITIONAL(VGCONF_OS_IS_DARWIN,
1154 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_DARWIN \
1155 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_DARWIN)
1156 AM_CONDITIONAL(VGCONF_OS_IS_SOLARIS,
1157 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_SOLARIS \
1158 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_SOLARIS)
1159 AM_CONDITIONAL(VGCONF_OS_IS_DARWIN_OR_FREEBSD,
1160 test x$VGCONF_PLATFORM_PRI_CAPS = xX86_FREEBSD \
1161 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_FREEBSD \
1162 -o x$VGCONF_PLATFORM_PRI_CAPS = xARM64_FREEBSD \
1163 -o x$VGCONF_PLATFORM_PRI_CAPS = xX86_DARWIN \
1164 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_DARWIN)
1167 # Sometimes, in the Makefile.am files, it's useful to know whether or not
1168 # there is a secondary target.
1169 AM_CONDITIONAL(VGCONF_HAVE_PLATFORM_SEC,
1170 test x$VGCONF_PLATFORM_SEC_CAPS != x)
1172 dnl automake-1.10 does not have AM_COND_IF (added in 1.11), so we supply a
1173 dnl fallback definition
1174 dnl The macro is courtesy of Dave Hart:
1175 dnl https://lists.gnu.org/archive/html/automake/2010-12/msg00045.html
1176 m4_ifndef([AM_COND_IF], [AC_DEFUN([AM_COND_IF], [
1177 if test -z "$$1_TRUE"; then :
1186 #----------------------------------------------------------------------------
1188 #----------------------------------------------------------------------------
1190 # Check if this should be built as an inner Valgrind, to be run within
1191 # another Valgrind. Choose the load address accordingly.
1192 AC_SUBST(VALT_LOAD_ADDRESS_PRI)
1193 AC_SUBST(VALT_LOAD_ADDRESS_SEC)
1194 AC_CACHE_CHECK([for use as an inner Valgrind], vg_cv_inner,
1195 [AC_ARG_ENABLE(inner,
1196 [ --enable-inner enables self-hosting],
1197 [vg_cv_inner=$enableval],
1199 if test "$vg_cv_inner" = yes; then
1200 AC_DEFINE([ENABLE_INNER], 1, [configured to run as an inner Valgrind])
1201 VALT_LOAD_ADDRESS_PRI=$valt_load_address_pri_inner
1202 VALT_LOAD_ADDRESS_SEC=$valt_load_address_sec_inner
1204 VALT_LOAD_ADDRESS_PRI=$valt_load_address_pri_norml
1205 VALT_LOAD_ADDRESS_SEC=$valt_load_address_sec_norml
1208 #----------------------------------------------------------------------------
1209 # Undefined behaviour sanitiser
1210 #----------------------------------------------------------------------------
1211 # Check whether we should build with the undefined beahviour sanitiser.
1213 AC_CACHE_CHECK([for using the undefined behaviour sanitiser], vg_cv_ubsan,
1214 [AC_ARG_ENABLE(ubsan,
1215 [ --enable-ubsan enables the undefined behaviour sanitiser],
1216 [vg_cv_ubsan=$enableval],
1219 #----------------------------------------------------------------------------
1220 # Extra fine-tuning of installation directories
1221 #----------------------------------------------------------------------------
1223 [ --with-tmpdir=PATH Specify path for temporary files],
1226 AC_DEFINE_UNQUOTED(VG_TMPDIR, "$tmpdir", [Temporary files directory])
1227 AC_SUBST(VG_TMPDIR, [$tmpdir])
1229 #----------------------------------------------------------------------------
1231 #----------------------------------------------------------------------------
1232 AM_COND_IF([VGCONF_OS_IS_DARWIN],
1233 [AC_CHECK_PROG([XCRUN], [xcrun], [yes], [no])
1234 AC_MSG_CHECKING([for xcode sdk include path])
1235 AC_ARG_WITH(xcodedir,
1236 [ --with-xcode-path=PATH Specify path for xcode sdk includes],
1237 [xcodedir="$withval"],
1239 if test "x$XCRUN" != "xno" -a ! -d /usr/include; then
1240 xcrundir=`xcrun --sdk macosx --show-sdk-path`
1241 if test -z "$xcrundir"; then
1242 xcodedir="/usr/include"
1244 xcodedir="$xcrundir/usr/include"
1247 xcodedir="/usr/include"
1250 AC_MSG_RESULT([$xcodedir])
1251 AC_DEFINE_UNQUOTED(XCODE_DIR, "$xcodedir", [xcode sdk include directory])
1252 AC_SUBST(XCODE_DIR, [$xcodedir])])
1254 #----------------------------------------------------------------------------
1255 # Where to install gdb scripts, defaults to VG_LIBDIR (pkglibexecdir)
1256 #----------------------------------------------------------------------------
1257 AC_MSG_CHECKING([where gdb scripts are installed])
1258 AC_ARG_WITH(gdbscripts-dir,
1259 [ --with-gdbscripts-dir=PATH Specify path to install gdb scripts],
1260 [gdbscriptsdir=${withval}],
1261 [gdbscriptsdir=${libexecdir}/valgrind])
1262 AC_MSG_RESULT([$gdbscriptsdir])
1263 if test "x$gdbscriptsdir" != "xno"; then
1264 AC_SUBST(VG_GDBSCRIPTS_DIR, [$gdbscriptsdir])
1265 AM_CONDITIONAL(GDBSCRIPTS, true)
1267 AC_SUBST(VG_GDBSCRIPTS_DIR, [])
1268 AM_CONDITIONAL(GDBSCRIPTS, false)
1271 #----------------------------------------------------------------------------
1272 # Libc and suppressions
1273 #----------------------------------------------------------------------------
1274 # This variable will collect the suppression files to be used.
1275 AC_SUBST(DEFAULT_SUPP)
1277 AC_CHECK_HEADER([features.h])
1279 if test x$ac_cv_header_features_h = xyes; then
1280 AC_DEFINE([HAVE_HEADER_FEATURES_H], 1,
1281 [Define to 1 if you have the `features.h' header.])
1282 rm -f conftest.$ac_ext
1283 cat <<_ACEOF >conftest.$ac_ext
1284 #include <features.h>
1285 #if defined(__GNU_LIBRARY__) && defined(__GLIBC__) && defined(__GLIBC_MINOR__)
1286 glibc version is: __GLIBC__ __GLIBC_MINOR__
1289 GLIBC_VERSION="`$CPP -P conftest.$ac_ext | $SED -n 's/^glibc version is: //p' | $SED 's/ /./g'`"
1292 # not really a version check
1293 AC_EGREP_CPP([DARWIN_LIBC], [
1294 #include <sys/cdefs.h>
1295 #if defined(__DARWIN_VERS_1050)
1299 GLIBC_VERSION="darwin")
1301 AC_EGREP_CPP([FREEBSD_LIBC], [
1302 #include <sys/cdefs.h>
1303 #if defined(__FreeBSD__)
1307 GLIBC_VERSION="freebsd")
1309 # not really a version check
1310 AC_EGREP_CPP([BIONIC_LIBC], [
1311 #if defined(__ANDROID__)
1315 GLIBC_VERSION="bionic")
1317 # there is only one version of libc on Solaris
1318 if test x$VGCONF_PLATFORM_PRI_CAPS = xX86_SOLARIS \
1319 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_SOLARIS; then
1320 GLIBC_VERSION="solaris"
1323 # GLIBC_VERSION is empty if a musl libc is used, so use the toolchain tuple
1325 if test x$GLIBC_VERSION = x; then
1326 if $CC -dumpmachine | grep -q musl; then
1331 # If this is glibc then figure out the generic (in file) libc.so and
1332 # libpthread.so file paths to use in suppressions. Before 2.34 libpthread
1333 # was a separate library, afterwards it was merged into libc.so and
1334 # the library is called libc.so.6 (before it was libc-2.[0-9]+.so).
1335 # Use this fact to set GLIBC_LIBC_PATH and GLIBC_LIBPTHREAD_PATH.
1336 case ${GLIBC_VERSION} in
1338 AC_MSG_CHECKING([whether pthread_create needs libpthread])
1339 AC_LINK_IFELSE([AC_LANG_CALL([], [pthread_create])],
1342 GLIBC_LIBC_PATH="*/lib*/libc.so.6"
1343 GLIBC_LIBPTHREAD_PATH="$GLIBC_LIBC_PATH"
1345 AC_MSG_RESULT([yes])
1346 GLIBC_LIBC_PATH="*/lib*/libc-2.*so*"
1347 GLIBC_LIBPTHREAD_PATH="*/lib*/libpthread-2.*so*"
1351 AC_MSG_CHECKING([not glibc...])
1352 AC_MSG_RESULT([${GLIBC_VERSION}])
1356 AC_MSG_CHECKING([the glibc version])
1358 case "${GLIBC_VERSION}" in
1360 AC_MSG_RESULT(${GLIBC_VERSION} family)
1361 DEFAULT_SUPP="$srcdir/glibc-2.2.supp ${DEFAULT_SUPP}"
1362 DEFAULT_SUPP="$srcdir/glibc-2.2-LinuxThreads-helgrind.supp ${DEFAULT_SUPP}"
1363 DEFAULT_SUPP="glibc-2.X-drd.supp ${DEFAULT_SUPP}"
1366 AC_MSG_RESULT(${GLIBC_VERSION} family)
1367 DEFAULT_SUPP="$srcdir/glibc-${GLIBC_VERSION}.supp ${DEFAULT_SUPP}"
1368 DEFAULT_SUPP="glibc-2.X-helgrind.supp ${DEFAULT_SUPP}"
1369 DEFAULT_SUPP="glibc-2.X-drd.supp ${DEFAULT_SUPP}"
1372 AC_MSG_RESULT(${GLIBC_VERSION} family)
1373 DEFAULT_SUPP="glibc-2.X.supp ${DEFAULT_SUPP}"
1374 DEFAULT_SUPP="glibc-2.X-helgrind.supp ${DEFAULT_SUPP}"
1375 DEFAULT_SUPP="glibc-2.X-drd.supp ${DEFAULT_SUPP}"
1378 AC_MSG_RESULT(${GLIBC_VERSION} family)
1379 AC_DEFINE([GLIBC_MANDATORY_STRLEN_REDIRECT], 1,
1380 [Define to 1 if strlen() has been optimized heavily (amd64 glibc >= 2.10)])
1381 DEFAULT_SUPP="glibc-2.X.supp ${DEFAULT_SUPP}"
1382 DEFAULT_SUPP="glibc-2.X-helgrind.supp ${DEFAULT_SUPP}"
1383 DEFAULT_SUPP="glibc-2.X-drd.supp ${DEFAULT_SUPP}"
1386 AC_MSG_RESULT(${GLIBC_VERSION} family)
1387 AC_DEFINE([GLIBC_MANDATORY_STRLEN_REDIRECT], 1,
1388 [Define to 1 if strlen() has been optimized heavily (amd64 glibc >= 2.10)])
1389 AC_DEFINE([GLIBC_MANDATORY_INDEX_AND_STRLEN_REDIRECT], 1,
1390 [Define to 1 if index() and strlen() have been optimized heavily (x86 glibc >= 2.12)])
1391 DEFAULT_SUPP="glibc-2.X.supp ${DEFAULT_SUPP}"
1392 DEFAULT_SUPP="glibc-2.X-helgrind.supp ${DEFAULT_SUPP}"
1393 DEFAULT_SUPP="glibc-2.X-drd.supp ${DEFAULT_SUPP}"
1396 AC_MSG_RESULT(Darwin)
1397 AC_DEFINE([DARWIN_LIBC], 1, [Define to 1 if you're using Darwin])
1398 # DEFAULT_SUPP set by kernel version check above.
1401 AC_MSG_RESULT(FreeBSD)
1402 AC_DEFINE([FREEBSD_LIBC], 1, [Define to 1 if you're using FreeBSD])
1403 # DEFAULT_SUPP set by kernel version check above.
1406 AC_MSG_RESULT(Bionic)
1407 AC_DEFINE([BIONIC_LIBC], 1, [Define to 1 if you're using Bionic])
1408 DEFAULT_SUPP="$srcdir/bionic.supp ${DEFAULT_SUPP}"
1411 AC_MSG_RESULT(Solaris)
1412 # DEFAULT_SUPP set in host_os switch-case above.
1413 # No other suppression file is used.
1417 AC_DEFINE([MUSL_LIBC], 1, [Define to 1 if you're using Musl libc])
1418 DEFAULT_SUPP="$srcdir/musl.supp ${DEFAULT_SUPP}"
1421 AC_MSG_RESULT([unsupported version ${GLIBC_VERSION}])
1422 AC_MSG_ERROR([Valgrind requires glibc version 2.2 or later, uClibc,])
1423 AC_MSG_ERROR([musl libc, Darwin libc, Bionic libc or Solaris libc])
1427 AC_SUBST(GLIBC_VERSION)
1428 AC_SUBST(GLIBC_LIBC_PATH)
1429 AC_SUBST(GLIBC_LIBPTHREAD_PATH)
1432 if test "$VGCONF_OS" != "solaris"; then
1433 # Add default suppressions for the X client libraries. Make no
1434 # attempt to detect whether such libraries are installed on the
1435 # build machine (or even if any X facilities are present); just
1436 # add the suppressions antidisirregardless.
1437 DEFAULT_SUPP="$srcdir/xfree-4.supp ${DEFAULT_SUPP}"
1438 DEFAULT_SUPP="$srcdir/xfree-3.supp ${DEFAULT_SUPP}"
1442 #----------------------------------------------------------------------------
1443 # Platform variants?
1444 #----------------------------------------------------------------------------
1446 # Normally the PLAT = (ARCH, OS) characterisation of the platform is enough.
1447 # But there are times where we need a bit more control. The motivating
1448 # and currently only case is Android: this is almost identical to
1449 # {x86,arm,mips}-linux, but not quite. So this introduces the concept of
1450 # platform variant tags, which get passed in the compile as
1451 # -DVGPV_<arch>_<os>_<variant> along with the main -DVGP_<arch>_<os> definition.
1453 # In almost all cases, the <variant> bit is "vanilla". But for Android
1454 # it is "android" instead.
1456 # Consequently (eg), plain arm-linux would build with
1458 # -DVGP_arm_linux -DVGPV_arm_linux_vanilla
1460 # whilst an Android build would have
1462 # -DVGP_arm_linux -DVGPV_arm_linux_android
1464 # Same for x86. The setup of the platform variant is pushed relatively far
1465 # down this file in order that we can inspect any of the variables set above.
1467 # In the normal case ..
1468 VGCONF_PLATVARIANT="vanilla"
1471 if test "$GLIBC_VERSION" = "bionic";
1473 VGCONF_PLATVARIANT="android"
1476 AC_SUBST(VGCONF_PLATVARIANT)
1479 # FIXME: do we also want to define automake variables
1480 # VGCONF_PLATVARIANT_IS_<WHATEVER>, where WHATEVER is (currently)
1481 # VANILLA or ANDROID ? This would be in the style of VGCONF_ARCHS_INCLUDE,
1482 # VGCONF_PLATFORMS_INCLUDE and VGCONF_OS_IS above? Could easily enough
1483 # do that. Problem is that we can't do and-ing in Makefile.am's, but
1484 # that's what we'd need to do to use this, since what we'd want to write
1487 # VGCONF_PLATFORMS_INCLUDE_ARM_LINUX && VGCONF_PLATVARIANT_IS_ANDROID
1489 # Hmm. Can't think of a nice clean solution to this.
1491 AM_CONDITIONAL(VGCONF_PLATVARIANT_IS_VANILLA,
1492 test x$VGCONF_PLATVARIANT = xvanilla)
1493 AM_CONDITIONAL(VGCONF_PLATVARIANT_IS_ANDROID,
1494 test x$VGCONF_PLATVARIANT = xandroid)
1497 #----------------------------------------------------------------------------
1498 # Checking for various library functions and other definitions
1499 #----------------------------------------------------------------------------
1501 # Check for AT_FDCWD
1503 AC_MSG_CHECKING([for AT_FDCWD])
1504 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1511 ac_have_at_fdcwd=yes
1512 AC_MSG_RESULT([yes])
1518 AM_CONDITIONAL([HAVE_AT_FDCWD], [test x$ac_have_at_fdcwd = xyes])
1520 # Check for stpncpy function definition in string.h
1521 # This explicitly checks with _GNU_SOURCE defined since that is also
1522 # used in the test case (some systems might define it without anyway
1523 # since stpncpy is part of The Open Group Base Specifications Issue 7
1524 # IEEE Std 1003.1-2008.
1525 AC_MSG_CHECKING([for stpncpy])
1526 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
1533 char *r = stpncpy(d, s, n);
1535 ac_have_gnu_stpncpy=yes
1536 AC_MSG_RESULT([yes])
1538 ac_have_gnu_stpncpy=no
1542 AM_CONDITIONAL([HAVE_GNU_STPNCPY], [test x$ac_have_gnu_stpncpy = xyes])
1544 # Check for PTRACE_GETREGS
1546 AC_MSG_CHECKING([for PTRACE_GETREGS])
1547 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1550 #include <sys/ptrace.h>
1551 #include <sys/user.h>
1554 long res = ptrace (PTRACE_GETREGS, 0, p, p);
1556 AC_MSG_RESULT([yes])
1557 AC_DEFINE([HAVE_PTRACE_GETREGS], 1,
1558 [Define to 1 if you have the `PTRACE_GETREGS' ptrace request.])
1564 # Check for CLOCK_MONOTONIC
1566 AC_MSG_CHECKING([for CLOCK_MONOTONIC])
1568 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1572 clock_gettime(CLOCK_MONOTONIC, &t);
1575 AC_MSG_RESULT([yes])
1576 AC_DEFINE([HAVE_CLOCK_MONOTONIC], 1,
1577 [Define to 1 if you have the `CLOCK_MONOTONIC' constant.])
1583 # Check for ELF32/64_CHDR
1585 AC_CHECK_TYPES([Elf32_Chdr, Elf64_Chdr], [], [], [[#include <elf.h>]])
1588 # Check for PTHREAD_RWLOCK_T
1590 AC_MSG_CHECKING([for pthread_rwlock_t])
1592 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1594 #include <pthread.h>
1596 pthread_rwlock_t rwl;
1598 AC_MSG_RESULT([yes])
1599 AC_DEFINE([HAVE_PTHREAD_RWLOCK_T], 1,
1600 [Define to 1 if you have the `pthread_rwlock_t' type.])
1605 # Check for CLOCKID_T
1607 AC_MSG_CHECKING([for clockid_t])
1609 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1614 AC_MSG_RESULT([yes])
1615 AC_DEFINE([HAVE_CLOCKID_T], 1,
1616 [Define to 1 if you have the `clockid_t' type.])
1621 # Check for PTHREAD_MUTEX_ADAPTIVE_NP
1623 AC_MSG_CHECKING([for PTHREAD_MUTEX_ADAPTIVE_NP])
1625 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1627 #include <pthread.h>
1629 return (PTHREAD_MUTEX_ADAPTIVE_NP);
1631 AC_MSG_RESULT([yes])
1632 AC_DEFINE([HAVE_PTHREAD_MUTEX_ADAPTIVE_NP], 1,
1633 [Define to 1 if you have the `PTHREAD_MUTEX_ADAPTIVE_NP' constant.])
1639 # Check for PTHREAD_MUTEX_ERRORCHECK_NP
1641 AC_MSG_CHECKING([for PTHREAD_MUTEX_ERRORCHECK_NP])
1643 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1645 #include <pthread.h>
1647 return (PTHREAD_MUTEX_ERRORCHECK_NP);
1649 AC_MSG_RESULT([yes])
1650 AC_DEFINE([HAVE_PTHREAD_MUTEX_ERRORCHECK_NP], 1,
1651 [Define to 1 if you have the `PTHREAD_MUTEX_ERRORCHECK_NP' constant.])
1657 # Check for PTHREAD_MUTEX_RECURSIVE_NP
1659 AC_MSG_CHECKING([for PTHREAD_MUTEX_RECURSIVE_NP])
1661 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1663 #include <pthread.h>
1665 return (PTHREAD_MUTEX_RECURSIVE_NP);
1667 AC_MSG_RESULT([yes])
1668 AC_DEFINE([HAVE_PTHREAD_MUTEX_RECURSIVE_NP], 1,
1669 [Define to 1 if you have the `PTHREAD_MUTEX_RECURSIVE_NP' constant.])
1675 # Check for PTHREAD_RECURSIVE_MUTEX_INITIALIZER_NP
1677 AC_MSG_CHECKING([for PTHREAD_RECURSIVE_MUTEX_INITIALIZER_NP])
1679 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1681 #include <pthread.h>
1683 pthread_mutex_t m = PTHREAD_RECURSIVE_MUTEX_INITIALIZER_NP;
1686 AC_MSG_RESULT([yes])
1687 AC_DEFINE([HAVE_PTHREAD_RECURSIVE_MUTEX_INITIALIZER_NP], 1,
1688 [Define to 1 if you have the `PTHREAD_RECURSIVE_MUTEX_INITIALIZER_NP' constant.])
1694 # Check whether pthread_mutex_t has a member called __m_kind.
1696 AC_CHECK_MEMBER([pthread_mutex_t.__m_kind],
1697 [AC_DEFINE([HAVE_PTHREAD_MUTEX_T__M_KIND],
1699 [Define to 1 if pthread_mutex_t has a member called __m_kind.])
1702 [#include <pthread.h>])
1705 # Check whether pthread_mutex_t has a member called __data.__kind.
1707 AC_CHECK_MEMBER([pthread_mutex_t.__data.__kind],
1708 [AC_DEFINE([HAVE_PTHREAD_MUTEX_T__DATA__KIND],
1710 [Define to 1 if pthread_mutex_t has a member __data.__kind.])
1713 [#include <pthread.h>])
1715 # Convenience function. Set flags based on the existing HWCAP entries.
1716 # The AT_HWCAP entries are generated by glibc, and are based on
1717 # functions supported by the hardware/system/libc.
1718 # Subsequent support for whether the capability will actually be utilized
1719 # will also be checked against the compiler capabilities.
1721 # AC_HWCAP_CONTAINS_FLAG[hwcap_string_to_match],[VARIABLE_TO_SET]
1722 AC_DEFUN([AC_HWCAP_CONTAINS_FLAG],[
1724 AC_MSG_CHECKING([if AT_HWCAP contains the $AUXV_CHECK_FOR indicator])
1725 if env LD_SHOW_AUXV=1 true | grep ^AT_HWCAP | grep -q -w ${AUXV_CHECK_FOR}
1727 AC_MSG_RESULT([yes])
1728 AC_SUBST([$2],[yes])
1735 # gather hardware capabilities. (hardware/kernel/libc)
1736 AC_HWCAP_CONTAINS_FLAG([altivec],[HWCAP_HAS_ALTIVEC])
1737 AC_HWCAP_CONTAINS_FLAG([vsx],[HWCAP_HAS_VSX])
1738 AC_HWCAP_CONTAINS_FLAG([dfp],[HWCAP_HAS_DFP])
1739 AC_HWCAP_CONTAINS_FLAG([arch_2_05],[HWCAP_HAS_ISA_2_05])
1740 AC_HWCAP_CONTAINS_FLAG([arch_2_06],[HWCAP_HAS_ISA_2_06])
1741 AC_HWCAP_CONTAINS_FLAG([arch_2_07],[HWCAP_HAS_ISA_2_07])
1742 AC_HWCAP_CONTAINS_FLAG([arch_3_00],[HWCAP_HAS_ISA_3_00])
1743 AC_HWCAP_CONTAINS_FLAG([arch_3_1],[HWCAP_HAS_ISA_3_1])
1744 AC_HWCAP_CONTAINS_FLAG([htm],[HWCAP_HAS_HTM])
1745 AC_HWCAP_CONTAINS_FLAG([mma],[HWCAP_HAS_MMA])
1748 AM_CONDITIONAL(HAS_ISA_2_05, [test x$HWCAP_HAS_ISA_2_05 = xyes])
1749 AM_CONDITIONAL(HAS_ISA_2_06, [test x$HWCAP_HAS_ISA_2_06 = xyes])
1750 # compiler support for isa 2.07 level instructions
1751 AC_MSG_CHECKING([that assembler knows ISA 2.07 instructions ])
1752 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1754 __asm__ __volatile__("mtvsrd 1,2 ");
1756 ac_asm_have_isa_2_07=yes
1757 AC_MSG_RESULT([yes])
1759 ac_asm_have_isa_2_07=no
1762 AM_CONDITIONAL(HAS_ISA_2_07, [test x$ac_asm_have_isa_2_07 = xyes \
1763 -a x$HWCAP_HAS_ISA_2_07 = xyes])
1765 # altivec (vsx) support.
1766 # does this compiler support -maltivec and does it have the include file
1768 AC_MSG_CHECKING([for Altivec support in the compiler ])
1770 CFLAGS="-maltivec -Werror"
1771 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1772 #include <altivec.h>
1774 vector unsigned int v;
1777 AC_MSG_RESULT([yes])
1783 AM_CONDITIONAL([HAS_ALTIVEC], [test x$ac_have_altivec = xyes \
1784 -a x$HWCAP_HAS_ALTIVEC = xyes])
1786 # Check that both: the compiler supports -mvsx and that the assembler
1787 # understands VSX instructions. If either of those doesn't work,
1788 # conclude that we can't do VSX.
1789 AC_MSG_CHECKING([for VSX compiler flag support])
1791 CFLAGS="-mvsx -Werror"
1792 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1795 ac_compiler_supports_vsx_flag=yes
1796 AC_MSG_RESULT([yes])
1798 ac_compiler_supports_vsx_flag=no
1803 AC_MSG_CHECKING([for VSX support in the assembler ])
1805 CFLAGS="-mvsx -Werror"
1806 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1807 #include <altivec.h>
1809 vector unsigned int v;
1810 __asm__ __volatile__("xsmaddadp 32, 32, 33" ::: "memory","cc");
1812 ac_compiler_supports_vsx=yes
1813 AC_MSG_RESULT([yes])
1815 ac_compiler_supports_vsx=no
1819 AM_CONDITIONAL([HAS_VSX], [test x$ac_compiler_supports_vsx_flag = xyes \
1820 -a x$ac_compiler_supports_vsx = xyes \
1821 -a x$HWCAP_HAS_VSX = xyes ])
1823 # DFP (Decimal Float)
1824 # The initial DFP support was added in Power 6. The dcffix instruction
1825 # support was added in Power 7.
1826 AC_MSG_CHECKING([that assembler knows DFP])
1827 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1830 __asm__ __volatile__("adtr 1, 2, 3")
1832 __asm__ __volatile__(".machine power7;\n" \
1838 AC_MSG_RESULT([yes])
1843 AC_MSG_CHECKING([that compiler knows -mhard-dfp switch])
1845 CFLAGS="-mhard-dfp -Werror"
1847 # The dcffix instruction is Power 7
1848 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1851 __asm__ __volatile__("adtr 1, 2, 3")
1853 __asm__ __volatile__(".machine power7;\n" \
1858 ac_compiler_have_dfp=yes
1859 AC_MSG_RESULT([yes])
1861 ac_compiler_have_dfp=no
1865 AM_CONDITIONAL(HAS_DFP, test x$ac_asm_have_dfp = xyes \
1866 -a x$ac_compiler_have_dfp = xyes \
1867 -a x$HWCAP_HAS_DFP = xyes )
1869 AC_MSG_CHECKING([that compiler knows DFP datatypes])
1870 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1872 _Decimal64 x = 0.0DD;
1874 ac_compiler_have_dfp_type=yes
1875 AC_MSG_RESULT([yes])
1877 ac_compiler_have_dfp_type=no
1880 AM_CONDITIONAL(BUILD_DFP_TESTS, test x$ac_compiler_have_dfp_type = xyes \
1881 -a x$HWCAP_HAS_DFP = xyes )
1884 # HTM (Hardware Transactional Memory)
1885 AC_MSG_CHECKING([if compiler accepts the -mhtm flag])
1887 CFLAGS="-mhtm -Werror"
1888 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1892 AC_MSG_RESULT([yes])
1893 ac_compiler_supports_htm=yes
1896 ac_compiler_supports_htm=no
1900 AC_MSG_CHECKING([if compiler can find the htm builtins])
1902 CFLAGS="-mhtm -Werror"
1903 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1905 if (__builtin_tbegin (0))
1908 AC_MSG_RESULT([yes])
1909 ac_compiler_sees_htm_builtins=yes
1912 ac_compiler_sees_htm_builtins=no
1916 AM_CONDITIONAL(SUPPORTS_HTM, test x$ac_compiler_supports_htm = xyes \
1917 -a x$ac_compiler_sees_htm_builtins = xyes \
1918 -a x$HWCAP_HAS_HTM = xyes )
1920 # isa 3.0 checking. (actually 3.0 or newer)
1921 AC_MSG_CHECKING([that assembler knows ISA 3.00 ])
1923 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1925 __asm__ __volatile__ (".machine power9;\n" \
1928 # guest_ppc_helpers.c needs the HAS_ISA_3_OO to enable copy, paste,
1931 CFLAGS="-DHAS_ISA_3_00"
1932 ac_asm_have_isa_3_00=yes
1933 AC_MSG_RESULT([yes])
1935 ac_asm_have_isa_3_00=no
1941 AC_MSG_CHECKING([that assembler knows xscvhpdp ])
1943 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1945 __asm__ __volatile__ (".machine power9;\n" \
1946 "xscvhpdp 1,2;\n" );
1948 ac_asm_have_xscvhpdp=yes
1949 AC_MSG_RESULT([yes])
1951 ac_asm_have_xscvhpdp=no
1955 # darn instruction checking
1956 AC_MSG_CHECKING([that assembler knows darn instruction ])
1958 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1960 __asm__ __volatile__(".machine power9; darn 1,0 ");
1962 ac_asm_have_darn_inst=yes
1963 AC_MSG_RESULT([yes])
1965 ac_asm_have_darn_inst=no
1970 AC_MSG_CHECKING([that assembler knows ISA 3.1 ])
1971 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
1973 __asm__ __volatile__ (".machine power10;\n" \
1976 ac_asm_have_isa_3_1=yes
1977 AC_MSG_RESULT([yes])
1979 ac_asm_have_isa_3_1=no
1984 AM_CONDITIONAL(HAS_ISA_3_00, [test x$ac_asm_have_isa_3_00 = xyes \
1985 -a x$HWCAP_HAS_ISA_3_00 = xyes])
1987 AM_CONDITIONAL(HAS_XSCVHPDP, [test x$ac_asm_have_xscvhpdp = xyes])
1988 AM_CONDITIONAL(HAS_DARN, [test x$ac_asm_have_darn_inst = xyes])
1990 AM_CONDITIONAL(HAS_ISA_3_1, [test x$ac_asm_have_isa_3_1 = xyes \
1991 -a x$HWCAP_HAS_ISA_3_1 = xyes])
1993 # Check for pthread_create@GLIBC2.0
1994 AC_MSG_CHECKING([for pthread_create@GLIBC2.0()])
1997 CFLAGS="-lpthread -Werror"
1998 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
1999 extern int pthread_create_glibc_2_0(void*, const void*,
2000 void *(*)(void*), void*);
2001 __asm__(".symver pthread_create_glibc_2_0, pthread_create@GLIBC_2.0");
2005 * Apparently on PowerPC linking this program succeeds and generates an
2006 * executable with the undefined symbol pthread_create@GLIBC_2.0.
2008 #error This test does not work properly on PowerPC.
2010 pthread_create_glibc_2_0(0, 0, 0, 0);
2014 ac_have_pthread_create_glibc_2_0=yes
2015 AC_MSG_RESULT([yes])
2016 AC_DEFINE([HAVE_PTHREAD_CREATE_GLIBC_2_0], 1,
2017 [Define to 1 if you have the `pthread_create@glibc2.0' function.])
2019 ac_have_pthread_create_glibc_2_0=no
2024 AM_CONDITIONAL(HAVE_PTHREAD_CREATE_GLIBC_2_0,
2025 test x$ac_have_pthread_create_glibc_2_0 = xyes)
2028 # Check for dlinfo RTLD_DI_TLS_MODID
2029 AC_MSG_CHECKING([for dlinfo RTLD_DI_TLS_MODID])
2033 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
2040 size_t sizes[10000];
2041 size_t modid_offset;
2042 (void) dlinfo ((void*)sizes, RTLD_DI_TLS_MODID, &modid_offset);
2045 ac_have_dlinfo_rtld_di_tls_modid=yes
2046 AC_MSG_RESULT([yes])
2047 AC_DEFINE([HAVE_DLINFO_RTLD_DI_TLS_MODID], 1,
2048 [Define to 1 if you have a dlinfo that can do RTLD_DI_TLS_MODID.])
2050 ac_have_dlinfo_rtld_di_tls_modid=no
2055 AM_CONDITIONAL(HAVE_DLINFO_RTLD_DI_TLS_MODID,
2056 test x$ac_have_dlinfo_rtld_di_tls_modid = xyes)
2059 # Check for eventfd_t, eventfd() and eventfd_read()
2060 AC_MSG_CHECKING([for eventfd()])
2062 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
2063 #include <sys/eventfd.h>
2069 eventfd_read(fd, &ev);
2072 AC_MSG_RESULT([yes])
2073 AC_DEFINE([HAVE_EVENTFD], 1,
2074 [Define to 1 if you have the `eventfd' function.])
2075 AC_DEFINE([HAVE_EVENTFD_READ], 1,
2076 [Define to 1 if you have the `eventfd_read' function.])
2081 # Check whether compiler can process #include <thread> without errors
2082 # clang 3.3 cannot process <thread> from e.g.
2083 # gcc (Ubuntu/Linaro 4.6.3-1ubuntu5) 4.6.3
2085 AC_MSG_CHECKING([that C++ compiler can compile C++17 code])
2087 safe_CXXFLAGS=$CXXFLAGS
2090 AC_COMPILE_IFELSE([AC_LANG_SOURCE([
2095 AC_MSG_RESULT([yes])
2100 CXXFLAGS=$safe_CXXFLAGS
2103 AM_CONDITIONAL(HAVE_CXX17, test x$ac_have_cxx_17 = xyes)
2105 AC_MSG_CHECKING([that C++ compiler can include <thread> header file])
2107 safe_CXXFLAGS=$CXXFLAGS
2110 AC_COMPILE_IFELSE([AC_LANG_SOURCE([
2114 ac_cxx_can_include_thread_header=yes
2115 AC_MSG_RESULT([yes])
2117 ac_cxx_can_include_thread_header=no
2120 CXXFLAGS=$safe_CXXFLAGS
2123 AM_CONDITIONAL(CXX_CAN_INCLUDE_THREAD_HEADER, test x$ac_cxx_can_include_thread_header = xyes)
2125 # Check whether compiler can process #include <condition_variable> without errors
2127 AC_MSG_CHECKING([that C++ compiler can include <condition_variable> header file])
2129 safe_CXXFLAGS=$CXXFLAGS
2132 AC_COMPILE_IFELSE([AC_LANG_SOURCE([
2133 #include <condition_variable>
2136 ac_cxx_can_include_condition_variable_header=yes
2137 AC_MSG_RESULT([yes])
2139 ac_cxx_can_include_condition_variable_header=no
2142 CXXFLAGS=$safe_CXXFLAGS
2145 AM_CONDITIONAL(CXX_CAN_INCLUDE_CONDITION_VARIABLE_HEADER, test x$ac_cxx_can_include_condition_variable_header = xyes)
2147 # check for std::shared_timed_mutex, this is a C++ 14 feature
2149 AC_MSG_CHECKING([that C++ compiler can use std::shared_timed_mutex])
2151 safe_CXXFLAGS=$CXXFLAGS
2152 CXXFLAGS="-std=c++1y -pthread"
2154 AC_COMPILE_IFELSE([AC_LANG_SOURCE([
2155 #include <shared_mutex>
2156 std::shared_timed_mutex test_mutex;
2159 ac_cxx_can_use_shared_timed_mutex=yes
2160 AC_MSG_RESULT([yes])
2162 ac_cxx_can_use_shared_timed_mutex=no
2165 CXXFLAGS=$safe_CXXFLAGS
2168 AM_CONDITIONAL(CXX_CAN_USE_SHARED_TIMED_MUTEX, test x$ac_cxx_can_use_shared_timed_mutex = xyes)
2170 # check for std::shared_mutex, this is a C++ 11 feature
2172 AC_MSG_CHECKING([that C++ compiler can use std::timed_mutex])
2174 safe_CXXFLAGS=$CXXFLAGS
2175 CXXFLAGS="-std=c++0x -pthread"
2177 AC_COMPILE_IFELSE([AC_LANG_SOURCE([
2179 std::timed_mutex test_mutex;
2182 ac_cxx_can_use_timed_mutex=yes
2183 AC_MSG_RESULT([yes])
2185 ac_cxx_can_use_timed_mutex=no
2188 CXXFLAGS=$safe_CXXFLAGS
2191 AM_CONDITIONAL(CXX_CAN_USE_TIMED_MUTEX, test x$ac_cxx_can_use_timed_mutex = xyes)
2193 # On aarch64 before glibc 2.20 we would get the kernel user_pt_regs instead
2194 # of the user_regs_struct from sys/user.h. They are structurally the same
2195 # but we get either one or the other.
2197 AC_CHECK_TYPE([struct user_regs_struct],
2198 [sys_user_has_user_regs=yes], [sys_user_has_user_regs=no],
2199 [[#include <sys/ptrace.h>]
2200 [#include <sys/time.h>]
2201 [#include <sys/user.h>]])
2202 if test "$sys_user_has_user_regs" = "yes"; then
2203 AC_DEFINE(HAVE_SYS_USER_REGS, 1,
2204 [Define to 1 if <sys/user.h> defines struct user_regs_struct])
2207 AC_MSG_CHECKING([for __NR_membarrier])
2208 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
2209 #include <linux/unistd.h>
2211 return __NR_membarrier
2213 ac_have_nr_membarrier=yes
2214 AC_MSG_RESULT([yes])
2216 ac_have_nr_membarrier=no
2220 AM_CONDITIONAL(HAVE_NR_MEMBARRIER, [test x$ac_have_nr_membarrier = xyes])
2222 #----------------------------------------------------------------------------
2223 # Checking for supported compiler flags.
2224 #----------------------------------------------------------------------------
2226 case "${host_cpu}" in
2228 ARCH=$(echo "$CFLAGS" | grep -E -e '-march=@<:@^ @:>@+' -e '\B-mips@<:@^ +@:>@')
2229 if test -z "$ARCH"; then
2230 # does this compiler support -march=mips32 (mips32 default) ?
2231 AC_MSG_CHECKING([if gcc accepts -march=mips32 -mabi=32])
2234 CFLAGS="$CFLAGS -mips32 -mabi=32 -Werror"
2236 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2239 FLAG_M32="-mips32 -mabi=32"
2240 AC_MSG_RESULT([yes])
2250 # does this compiler support -march=mips64r2 (mips64r2 default) ?
2251 AC_MSG_CHECKING([if gcc accepts -march=mips64r2 -mabi=64])
2254 CFLAGS="$CFLAGS -march=mips64r2 -mabi=64 -Werror"
2256 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2259 FLAG_M64="-march=mips64r2 -mabi=64"
2260 AC_MSG_RESULT([yes])
2273 # does this compiler support -m32 ?
2274 AC_MSG_CHECKING([if gcc accepts -m32])
2277 CFLAGS="${FLAG_32ON64} -m32 -Werror"
2279 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2282 FLAG_M32="${FLAG_32ON64} -m32"
2283 AC_MSG_RESULT([yes])
2293 # does this compiler support -m64 ?
2294 AC_MSG_CHECKING([if gcc accepts -m64])
2297 CFLAGS="-m64 -Werror"
2299 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2303 AC_MSG_RESULT([yes])
2315 ARCH=$(echo "$CFLAGS" | grep -E -e '-march=@<:@^ @:>@+' -e '\B-mips@<:@^ +@:>@')
2316 if test -z "$ARCH"; then
2317 # does this compiler support -march=octeon (Cavium OCTEON I Specific) ?
2318 AC_MSG_CHECKING([if gcc accepts -march=octeon])
2321 CFLAGS="$CFLAGS $FLAG_M64 -march=octeon -Werror"
2323 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2326 FLAG_OCTEON="-march=octeon"
2327 AC_MSG_RESULT([yes])
2334 AC_SUBST(FLAG_OCTEON)
2337 # does this compiler support -march=octeon2 (Cavium OCTEON II Specific) ?
2338 AC_MSG_CHECKING([if gcc accepts -march=octeon2])
2341 CFLAGS="$CFLAGS $FLAG_M64 -march=octeon2 -Werror"
2343 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2346 FLAG_OCTEON2="-march=octeon2"
2347 AC_MSG_RESULT([yes])
2354 AC_SUBST(FLAG_OCTEON2)
2358 # does this compiler support -mmsa (MIPS MSA ASE) ?
2359 AC_MSG_CHECKING([if gcc accepts -mmsa])
2362 CFLAGS="$CFLAGS -mmsa -Werror"
2364 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2368 AC_MSG_RESULT([yes])
2377 # Are we compiling for the MIPS64 n32 ABI?
2378 AC_MSG_CHECKING([if gcc is producing mips n32 binaries])
2379 AC_COMPILE_IFELSE([AC_LANG_SOURCE([[
2380 #if !defined(_MIPS_SIM) || (defined(_MIPS_SIM) && (_MIPS_SIM != _ABIN32))
2385 FLAG_M64="-march=mips64r2 -mabi=n32"
2386 AC_MSG_RESULT([yes])
2391 # Are we compiling for the MIPS64 n64 ABI?
2392 AC_MSG_CHECKING([if gcc is producing mips n64 binaries])
2393 AC_COMPILE_IFELSE([AC_LANG_SOURCE([[
2394 #if !defined(_MIPS_SIM) || (defined(_MIPS_SIM) && (_MIPS_SIM != _ABI64))
2399 AC_MSG_RESULT([yes])
2404 # We enter the code block below in the following case:
2405 # Target architecture is set to mips64, the desired abi
2406 # was not specified and the compiler's default abi setting
2407 # is neither n32 nor n64.
2408 # Probe for and set the abi to either n64 or n32, in that order,
2409 # which is required for a mips64 build of valgrind.
2410 if test "$ARCH_MAX" = "mips64" -a "x$VGCONF_ABI" = "x"; then
2412 CFLAGS="$CFLAGS -mabi=64 -Werror"
2413 AC_MSG_CHECKING([if gcc is n64 capable])
2414 AC_LINK_IFELSE([AC_LANG_PROGRAM([[]], [[
2418 AC_MSG_RESULT([yes])
2424 if test "x$VGCONF_ABI" = "x"; then
2426 CFLAGS="$CFLAGS -mabi=n32 -Werror"
2427 AC_MSG_CHECKING([if gcc is n32 capable])
2428 AC_LINK_IFELSE([AC_LANG_PROGRAM([[]], [[
2432 FLAG_M64="-march=mips64r2 -mabi=n32"
2433 AC_MSG_RESULT([yes])
2441 AM_CONDITIONAL([VGCONF_HAVE_ABI],
2442 [test x$VGCONF_ABI != x])
2443 AC_SUBST(VGCONF_ABI)
2446 # does this compiler support -mmmx ?
2447 AC_MSG_CHECKING([if gcc accepts -mmmx])
2450 CFLAGS="-mmmx -Werror"
2452 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2456 AC_MSG_RESULT([yes])
2466 # does this compiler support -msse ?
2467 AC_MSG_CHECKING([if gcc accepts -msse])
2470 CFLAGS="-msse -Werror"
2472 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2476 AC_MSG_RESULT([yes])
2486 # does this compiler support -mpreferred-stack-boundary=2 when
2487 # generating code for a 32-bit target? Note that we only care about
2488 # this when generating code for (32-bit) x86, so if the compiler
2489 # doesn't recognise -m32 it's no big deal. We'll just get code for
2490 # the Memcheck and other helper functions, that is a bit slower than
2491 # it could be, on x86; and no difference at all on any other platform.
2492 AC_MSG_CHECKING([if gcc accepts -mpreferred-stack-boundary=2 -m32])
2495 CFLAGS="-mpreferred-stack-boundary=2 -m32 -Werror"
2497 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2500 PREFERRED_STACK_BOUNDARY_2="-mpreferred-stack-boundary=2"
2501 AC_MSG_RESULT([yes])
2503 PREFERRED_STACK_BOUNDARY_2=""
2508 AC_SUBST(PREFERRED_STACK_BOUNDARY_2)
2511 # does this compiler support -mlong-double-128 ?
2512 AC_MSG_CHECKING([if gcc accepts -mlong-double-128])
2514 CFLAGS="-mlong-double-128 -Werror"
2515 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2518 ac_compiler_supports_mlong_double_128=yes
2519 AC_MSG_RESULT([yes])
2521 ac_compiler_supports_mlong_double_128=no
2525 AM_CONDITIONAL(HAS_MLONG_DOUBLE_128, test x$ac_compiler_supports_mlong_double_128 = xyes)
2526 FLAG_MLONG_DOUBLE_128="-mlong-double-128"
2527 AC_SUBST(FLAG_MLONG_DOUBLE_128)
2529 # does this toolchain support lto ?
2530 # Not checked for if --enable-lto=no was given, or if LTO_AR or LTO_RANLIG
2532 # If not enable-lto=* arg is provided, default to no, as lto builds are
2533 # a lot slower, and so not appropriate for Valgrind developments.
2534 # --enable-lto=yes should be used by distro packagers.
2535 AC_CACHE_CHECK([for using the link time optimisation], vg_cv_lto,
2537 [ --enable-lto enables building with link time optimisation],
2538 [vg_cv_lto=$enableval],
2541 if test "x${vg_cv_lto}" != "xno" -a "x${LTO_AR}" != "x" -a "x${LTO_RANLIB}" != "x"; then
2542 AC_MSG_CHECKING([if toolchain accepts lto])
2544 TEST_LTO_CFLAGS="-flto -flto-partition=one -fuse-linker-plugin"
2545 # Note : using 'one' partition is giving a slightly smaller/faster memcheck
2546 # and ld/lto-trans1 still needs a reasonable memory (about 0.5GB) when linking.
2547 CFLAGS="$TEST_LTO_CFLAGS -Werror"
2549 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2550 extern void somefun(void);
2554 LTO_CFLAGS=$TEST_LTO_CFLAGS
2555 AC_MSG_RESULT([yes])
2563 AC_SUBST(LTO_CFLAGS)
2565 # if we could not compile with lto args, or lto was disabled,
2566 # then set LTO_AR/LTO_RANLIB to the non lto values
2567 # define in config.h ENABLE_LTO (not needed by the code currently, but
2568 # this guarantees we recompile everything if we re-configure and rebuild
2569 # in a build dir previously build with another value of --enable-lto
2570 if test "x${LTO_CFLAGS}" = "x"; then
2572 LTO_RANLIB=${RANLIB}
2576 AC_DEFINE([ENABLE_LTO], 1, [configured to build with lto link time optimisation])
2579 # Convenience function to check whether GCC supports a particular
2580 # warning option. Takes two arguments,
2581 # first the warning flag name to check (without -W), then the
2582 # substitution name to set with -Wno-warning-flag if the flag exists,
2583 # or the empty string if the compiler doesn't accept the flag. Note
2584 # that checking is done against the warning flag itself, but the
2585 # substitution is then done to cancel the warning flag.
2586 AC_DEFUN([AC_GCC_WARNING_SUBST_NO],[
2587 AC_MSG_CHECKING([if gcc accepts -W$1])
2589 CFLAGS="-W$1 -Werror"
2590 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[;]])], [
2591 AC_SUBST([$2], [-Wno-$1])
2592 AC_MSG_RESULT([yes])], [
2594 AC_MSG_RESULT([no])])
2598 # A variation of the above for arguments that
2600 AC_DEFUN([AC_GCC_WARNING_SUBST_NO_VAL],[
2601 AC_MSG_CHECKING([if gcc accepts -W$1=$2])
2603 CFLAGS="-W$1=$2 -Werror"
2604 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[;]])], [
2605 AC_SUBST([$3], [-Wno-$1])
2606 AC_MSG_RESULT([yes])], [
2608 AC_MSG_RESULT([no])])
2612 # Convenience function. Like AC_GCC_WARNING_SUBST_NO, except it substitutes
2613 # -W$1 (instead of -Wno-$1).
2614 AC_DEFUN([AC_GCC_WARNING_SUBST],[
2615 AC_MSG_CHECKING([if gcc accepts -W$1])
2617 CFLAGS="-W$1 -Werror"
2618 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[;]])], [
2619 AC_SUBST([$2], [-W$1])
2620 AC_MSG_RESULT([yes])], [
2622 AC_MSG_RESULT([no])])
2626 AC_GCC_WARNING_SUBST_NO([memset-transposed-args], [FLAG_W_NO_MEMSET_TRANSPOSED_ARGS])
2627 AC_GCC_WARNING_SUBST_NO([nonnull], [FLAG_W_NO_NONNULL])
2628 AC_GCC_WARNING_SUBST_NO([overflow], [FLAG_W_NO_OVERFLOW])
2629 AC_GCC_WARNING_SUBST_NO([pointer-sign], [FLAG_W_NO_POINTER_SIGN])
2630 AC_GCC_WARNING_SUBST_NO([uninitialized], [FLAG_W_NO_UNINITIALIZED])
2631 AC_GCC_WARNING_SUBST_NO([maybe-uninitialized], [FLAG_W_NO_MAYBE_UNINITIALIZED])
2632 AC_GCC_WARNING_SUBST_NO([unused-function], [FLAG_W_NO_UNUSED_FUNCTION])
2633 AC_GCC_WARNING_SUBST_NO([static-local-in-inline], [FLAG_W_NO_STATIC_LOCAL_IN_INLINE])
2634 AC_GCC_WARNING_SUBST_NO([mismatched-new-delete], [FLAG_W_NO_MISMATCHED_NEW_DELETE])
2635 AC_GCC_WARNING_SUBST_NO([infinite-recursion], [FLAG_W_NO_INFINITE_RECURSION])
2636 AC_GCC_WARNING_SUBST_NO([expansion-to-defined], [FLAG_W_NO_EXPANSION_TO_DEFINED])
2637 AC_GCC_WARNING_SUBST_NO([unused-variable], [FLAG_W_NO_UNUSED_VARIABLE])
2638 AC_GCC_WARNING_SUBST_NO([unused-but-set-variable], [FLAG_W_NO_UNUSED_BUT_SET_VARIABLE])
2639 AC_GCC_WARNING_SUBST_NO([non-power-of-two-alignment], [FLAG_W_NO_NON_POWER_OF_TWO_ALIGNMENT])
2640 AC_GCC_WARNING_SUBST_NO([sign-compare], [FLAG_W_NO_SIGN_COMPARE])
2641 AC_GCC_WARNING_SUBST_NO([stringop-overflow], [FLAG_W_NO_STRINGOP_OVERFLOW])
2642 AC_GCC_WARNING_SUBST_NO([stringop-overread], [FLAG_W_NO_STRINGOP_OVERREAD])
2643 AC_GCC_WARNING_SUBST_NO([stringop-truncation], [FLAG_W_NO_STRINGOP_TRUNCATION])
2644 AC_GCC_WARNING_SUBST_NO([format-overflow], [FLAG_W_NO_FORMAT_OVERFLOW])
2645 AC_GCC_WARNING_SUBST_NO([use-after-free], [FLAG_W_NO_USE_AFTER_FREE])
2646 AC_GCC_WARNING_SUBST_NO([free-nonheap-object], [FLAG_W_NO_FREE_NONHEAP_OBJECT])
2647 AC_GCC_WARNING_SUBST_NO([fortify-source], [FLAG_W_NO_FORTIFY_SOURCE])
2648 AC_GCC_WARNING_SUBST_NO([builtin-memcpy-chk-size], [FLAG_W_NO_BUILTIN_MEMCPY_CHK_SIZE])
2649 AC_GCC_WARNING_SUBST_NO([incompatible-pointer-types-discards-qualifiers], [FLAG_W_NO_INCOMPATIBLE_POINTER_TYPES_DISCARDS_QUALIFIERS])
2650 AC_GCC_WARNING_SUBST_NO([suspicious-bzero], [FLAG_W_NO_SUSPICIOUS_BZERO])
2651 AC_GCC_WARNING_SUBST_NO([attributes], [FLAG_W_NO_ATTRIBUTES])
2653 AC_GCC_WARNING_SUBST_NO_VAL([alloc-size-larger-than], [1677216], [FLAG_W_NO_ALLOC_SIZE_LARGER_THAN])
2655 AC_GCC_WARNING_SUBST([write-strings], [FLAG_W_WRITE_STRINGS])
2656 AC_GCC_WARNING_SUBST([empty-body], [FLAG_W_EMPTY_BODY])
2657 AC_GCC_WARNING_SUBST([format], [FLAG_W_FORMAT])
2658 AC_GCC_WARNING_SUBST([format-signedness], [FLAG_W_FORMAT_SIGNEDNESS])
2659 AC_GCC_WARNING_SUBST([cast-qual], [FLAG_W_CAST_QUAL])
2660 AC_GCC_WARNING_SUBST([old-style-declaration], [FLAG_W_OLD_STYLE_DECLARATION])
2661 AC_GCC_WARNING_SUBST([ignored-qualifiers], [FLAG_W_IGNORED_QUALIFIERS])
2662 AC_GCC_WARNING_SUBST([missing-parameter-type], [FLAG_W_MISSING_PARAMETER_TYPE])
2663 AC_GCC_WARNING_SUBST([logical-op], [FLAG_W_LOGICAL_OP])
2664 AC_GCC_WARNING_SUBST([enum-conversion], [FLAG_W_ENUM_CONVERSION])
2665 AC_GCC_WARNING_SUBST([implicit-fallthrough=2], [FLAG_W_IMPLICIT_FALLTHROUGH])
2667 # Does this compiler support -Wformat-security ?
2668 # Special handling is needed, because certain GCC versions require -Wformat
2669 # being present if -Wformat-security is given. Otherwise a warning is issued.
2670 # However, AC_GCC_WARNING_SUBST will stick in -Werror (see r15323 for rationale).
2671 # And with that the warning will be turned into an error with the result
2672 # that -Wformat-security is believed to be unsupported when in fact it is.
2673 AC_MSG_CHECKING([if gcc accepts -Wformat-security])
2675 CFLAGS="-Wformat -Wformat-security -Werror"
2676 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[;]])], [
2677 AC_SUBST([FLAG_W_FORMAT_SECURITY], [-Wformat-security])
2678 AC_MSG_RESULT([yes])], [
2679 AC_SUBST([FLAG_W_FORMAT_SECURITY], [])
2680 AC_MSG_RESULT([no])])
2683 # does this compiler support -Wextra or the older -W ?
2685 AC_MSG_CHECKING([if gcc accepts -Wextra or -W])
2688 CFLAGS="-Wextra -Werror"
2690 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[ ]], [[
2693 AC_SUBST([FLAG_W_EXTRA], [-Wextra])
2694 AC_MSG_RESULT([-Wextra])
2697 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[ ]], [[
2700 AC_SUBST([FLAG_W_EXTRA], [-W])
2703 AC_SUBST([FLAG_W_EXTRA], [])
2704 AC_MSG_RESULT([not supported])
2709 # On ARM we do not want to pass -Wcast-align as that produces loads
2710 # of warnings. GCC is just being conservative. See here:
2711 # https://gcc.gnu.org/bugzilla/show_bug.cgi?id=65459#c4
2712 if test "X$VGCONF_ARCH_PRI" = "Xarm"; then
2713 AC_SUBST([FLAG_W_CAST_ALIGN], [""])
2715 AC_SUBST([FLAG_W_CAST_ALIGN], [-Wcast-align])
2718 # does this compiler support -faligned-new ?
2719 AC_MSG_CHECKING([if g++ accepts -faligned-new])
2721 safe_CXXFLAGS=$CXXFLAGS
2722 CXXFLAGS="-faligned-new -Werror"
2725 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2728 FLAG_FALIGNED_NEW="-faligned-new"
2729 AC_MSG_RESULT([yes])
2731 FLAG_FALIGNED_NEW=""
2734 CXXFLAGS=$safe_CXXFLAGS
2737 AC_SUBST(FLAG_FALIGNED_NEW)
2739 # does this compiler support -fsized-deallocation ?
2740 AC_MSG_CHECKING([if g++ accepts -fsized-deallocation])
2742 safe_CXXFLAGS=$CXXFLAGS
2743 CXXFLAGS="-fsized-deallocation -Werror"
2746 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2749 FLAG_FSIZED_DEALLOCATION="-fsized-deallocation"
2750 ac_have_sized_deallocation=yes
2751 AC_MSG_RESULT([yes])
2753 FLAG_FSIZED_DEALLOCATION=""
2754 ac_have_sized_deallocation=no
2757 CXXFLAGS=$safe_CXXFLAGS
2760 AC_SUBST(FLAG_FSIZED_DEALLOCATION)
2761 AM_CONDITIONAL([HAVE_FSIZED_DEALLOCATION], [test x$ac_have_sized_deallocation = xyes])
2763 # does this compiler support C++17 aligned new/delete?
2764 AC_MSG_CHECKING([if g++ supports aligned new and delete])
2766 safe_CXXFLAGS=$CXXFLAGS
2767 CXXFLAGS="-std=c++17"
2770 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
2774 operator delete(nullptr, std::align_val_t(64U));
2776 ac_have_aligned_cxx_alloc=yes
2777 AC_MSG_RESULT([yes])
2779 ac_have_aligned_cxx_alloc=no
2782 CXXFLAGS=$safe_CXXFLAGS
2785 AM_CONDITIONAL([HAVE_ALIGNED_CXX_ALLOC], [test x$ac_have_aligned_cxx_alloc = xyes])
2787 # does this compiler support -fno-stack-protector ?
2788 AC_MSG_CHECKING([if gcc accepts -fno-stack-protector])
2791 CFLAGS="-fno-stack-protector -Werror"
2793 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2796 no_stack_protector=yes
2797 FLAG_FNO_STACK_PROTECTOR="-fno-stack-protector"
2798 AC_MSG_RESULT([yes])
2800 no_stack_protector=no
2801 FLAG_FNO_STACK_PROTECTOR=""
2806 AC_SUBST(FLAG_FNO_STACK_PROTECTOR)
2808 # does this compiler support -finline-functions ?
2809 AC_MSG_CHECKING([if gcc accepts -finline-functions])
2812 CFLAGS="-finline-functions -Werror"
2814 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2817 inline_functions=yes
2818 FLAG_FINLINE_FUNCTIONS="-finline-functions"
2819 AC_MSG_RESULT([yes])
2822 FLAG_FINLINE_FUNCTIONS=""
2827 AC_SUBST(FLAG_FINLINE_FUNCTIONS)
2829 # Does GCC support disabling Identical Code Folding?
2830 # We want to disabled Identical Code Folding for the
2831 # tools preload shared objects to get better backraces.
2832 # For GCC 5.1+ -fipa-icf is enabled by default at -O2.
2833 # "The optimization reduces code size and may disturb
2834 # unwind stacks by replacing a function by equivalent
2835 # one with a different name."
2836 AC_MSG_CHECKING([if gcc accepts -fno-ipa-icf])
2839 CFLAGS="-fno-ipa-icf -Werror"
2841 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2845 FLAG_FNO_IPA_ICF="-fno-ipa-icf"
2846 AC_MSG_RESULT([yes])
2854 AC_SUBST(FLAG_FNO_IPA_ICF)
2857 # Does this compiler support -fsanitize=undefined. This is true for
2858 # GCC 4.9 and newer. However, the undefined behaviour sanitiser in GCC 5.1
2859 # also checks for alignment violations on memory accesses which the valgrind
2860 # code base is sprinkled (if not littered) with. As those alignment issues
2861 # don't pose a problem we want to suppress warnings about them.
2862 # In GCC 5.1 this can be done by passing -fno-sanitize=alignment. Earlier
2863 # GCCs do not support that.
2865 # Only checked for if --enable-ubsan was given.
2866 if test "x${vg_cv_ubsan}" = "xyes"; then
2867 AC_MSG_CHECKING([if gcc accepts -fsanitize=undefined -fno-sanitize=alignment])
2869 CFLAGS="-fsanitize=undefined -fno-sanitize=alignment -Werror"
2870 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2873 FLAG_FSANITIZE="-fsanitize=undefined -fno-sanitize=alignment"
2874 LIB_UBSAN="-static-libubsan"
2875 AC_MSG_RESULT([yes])
2877 CFLAGS="-fsanitize=undefined -Werror"
2878 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2881 FLAG_FSANITIZE="-fsanitize=undefined"
2882 LIB_UBSAN="-static-libubsan"
2883 AC_MSG_RESULT([yes])
2891 AC_SUBST(FLAG_FSANITIZE)
2894 # does this compiler support --param inline-unit-growth=... ?
2896 AC_MSG_CHECKING([if gcc accepts --param inline-unit-growth])
2899 CFLAGS="--param inline-unit-growth=900 -Werror"
2901 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[ ]], [[
2904 AC_SUBST([FLAG_UNLIMITED_INLINE_UNIT_GROWTH],
2905 ["--param inline-unit-growth=900"])
2906 AC_MSG_RESULT([yes])
2908 AC_SUBST([FLAG_UNLIMITED_INLINE_UNIT_GROWTH], [""])
2914 # does this compiler support -gdwarf-4 -fdebug-types-section ?
2916 AC_MSG_CHECKING([if gcc accepts -gdwarf-4 -fdebug-types-section])
2919 CFLAGS="-gdwarf-4 -fdebug-types-section -Werror"
2921 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[ ]], [[
2925 AC_MSG_RESULT([yes])
2930 AM_CONDITIONAL(DWARF4, test x$ac_have_dwarf4 = xyes)
2934 # does this compiler support -g -gz=zlib ?
2936 AC_MSG_CHECKING([if gcc accepts -g -gz=zlib])
2939 CFLAGS="-g -gz=zlib"
2941 AC_LINK_IFELSE([AC_LANG_PROGRAM([[ ]], [[
2945 AC_MSG_RESULT([yes])
2950 AM_CONDITIONAL(GZ_ZLIB, test x$ac_have_gz_zlib = xyes)
2954 # does this compiler support -g -gz=zlib-gnu ?
2956 AC_MSG_CHECKING([if gcc accepts -g -gz=zlib-gnu])
2959 CFLAGS="-g -gz=zlib-gnu"
2961 AC_LINK_IFELSE([AC_LANG_PROGRAM([[ ]], [[
2964 ac_have_gz_zlib_gnu=yes
2965 AC_MSG_RESULT([yes])
2967 ac_have_gz_zlib_gnu=no
2970 AM_CONDITIONAL(GZ_ZLIB_GNU, test x$ac_have_gz_zlib_gnu = xyes)
2974 # does this compiler support nested functions ?
2976 AC_MSG_CHECKING([if gcc accepts nested functions])
2978 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2979 int foo() { return 1; }
2982 ac_have_nested_functions=yes
2983 AC_MSG_RESULT([yes])
2985 ac_have_nested_functions=no
2988 AM_CONDITIONAL([HAVE_NESTED_FUNCTIONS], [test x$ac_have_nested_functions = xyes])
2991 # does this compiler support the 'p' constraint in ASM statements ?
2993 AC_MSG_CHECKING([if gcc accepts the 'p' constraint in asm statements])
2995 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
2997 __asm__ __volatile__ ("movdqa (%0),%%xmm6\n" : "=p" (p));
2999 ac_have_asm_constraint_p=yes
3000 AC_MSG_RESULT([yes])
3002 ac_have_asm_constraint_p=no
3005 AM_CONDITIONAL([HAVE_ASM_CONSTRAINT_P], [test x$ac_have_asm_constraint_p = xyes])
3008 # Does this compiler and linker support -pie?
3009 # Some compilers actually do not support -pie and report its usage
3010 # as an error. We need to check if it is safe to use it first.
3012 AC_MSG_CHECKING([if gcc accepts -pie])
3017 AC_LINK_IFELSE([AC_LANG_PROGRAM([[ ]], [[
3020 AC_SUBST([FLAG_PIE], ["-pie"])
3021 AC_MSG_RESULT([yes])
3023 AC_SUBST([FLAG_PIE], [""])
3028 AC_MSG_CHECKING([if gcc accepts -ansi])
3033 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3037 AC_MSG_RESULT([yes])
3042 AM_CONDITIONAL([HAVE_ANSI], [test x$ac_have_ansi = xyes])
3047 # Does this compiler support -no-pie?
3048 # On Ubuntu 16.10+, gcc produces position independent executables (PIE) by
3049 # default. However this gets in the way with some tests, we use -no-pie
3052 AC_MSG_CHECKING([if gcc accepts -no-pie])
3055 CFLAGS="-no-pie -Werror"
3057 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[ ]], [[
3060 AC_SUBST([FLAG_NO_PIE], ["-no-pie"])
3061 AC_MSG_RESULT([yes])
3063 AC_SUBST([FLAG_NO_PIE], [""])
3069 # We want to use use the -Ttext-segment option to the linker.
3070 # GNU (bfd) ld supports this directly. Newer GNU gold linkers
3071 # support it as an alias of -Ttext. Sadly GNU (bfd) ld's -Ttext
3072 # semantics are NOT what we want (GNU gold -Ttext is fine).
3074 # For GNU (bfd) ld -Ttext-segment chooses the base at which ELF headers
3075 # will reside. -Ttext aligns just the .text section start (but not any
3078 # LLVM ld.lld 10.0 changed the semantics of its -Ttext. See "Breaking changes"
3079 # in https://releases.llvm.org/10.0.0/tools/lld/docs/ReleaseNotes.html
3080 # The --image-base option (since version 6.0?) provides the semantics needed.
3081 # -Ttext-segment generates an error, but -Ttext now more closely
3082 # follows the GNU (bfd) ld's -Ttext.
3084 # So test first for --image-base support, and if that fails then
3085 # for -Ttext-segment which is supported by all bfd ld versions
3086 # and use that if it exists. If it doesn't exist it must be an older
3087 # version of gold and we can fall back to using -Ttext which has the
3091 AC_MSG_CHECKING([if the linker accepts -Wl,--image-base])
3093 CFLAGS="-static -nodefaultlibs -nostartfiles -Wl,--image-base=$valt_load_address_pri_norml -Werror"
3096 [AC_LANG_SOURCE([int _start () { return 0; }])],
3098 linker_using_t_text="no"
3099 AC_SUBST([FLAG_T_TEXT], ["--image-base"])
3100 AC_MSG_RESULT([yes])
3104 AC_MSG_CHECKING([if the linker accepts -Wl,-Ttext-segment])
3106 CFLAGS="-static -nodefaultlibs -nostartfiles -Wl,-Ttext-segment=$valt_load_address_pri_norml -Werror"
3109 [AC_LANG_SOURCE([int _start () { return 0; }])],
3111 linker_using_t_text="no"
3112 AC_SUBST([FLAG_T_TEXT], ["-Ttext-segment"])
3113 AC_MSG_RESULT([yes])
3115 linker_using_t_text="yes"
3116 AC_SUBST([FLAG_T_TEXT], ["-Ttext"])
3123 # If the linker only supports -Ttext (not -Ttext-segment or --image-base) then we will
3124 # have to strip any build-id ELF NOTEs from the statically linked tools.
3125 # Otherwise the build-id NOTE might end up at the default load address.
3126 # (Pedantically if the linker is gold then -Ttext is fine, but newer
3127 # gold versions also support -Ttext-segment. So just assume that unless
3128 # we can use -Ttext-segment we need to strip the build-id NOTEs.
3129 if test "x${linker_using_t_text}" = "xyes"; then
3130 AC_MSG_NOTICE([ld -Ttext used, need to strip build-id NOTEs.])
3131 # does the linker support -Wl,--build-id=none ? Note, it's
3132 # important that we test indirectly via whichever C compiler
3133 # is selected, rather than testing /usr/bin/ld or whatever
3135 AC_MSG_CHECKING([if the linker accepts -Wl,--build-id=none])
3137 CFLAGS="-Wl,--build-id=none -Werror"
3140 [AC_LANG_PROGRAM([ ], [return 0;])],
3142 AC_SUBST([FLAG_NO_BUILD_ID], ["-Wl,--build-id=none"])
3143 AC_MSG_RESULT([yes])
3145 AC_SUBST([FLAG_NO_BUILD_ID], [""])
3149 AC_MSG_NOTICE([ld --image-base or -Ttext-segment used, no need to strip build-id NOTEs.])
3150 AC_SUBST([FLAG_NO_BUILD_ID], [""])
3154 # On s390x, if the linker supports -Wl,--s390-pgste, then we build the
3155 # tools with that flag. This enables running programs that need it, such
3157 if test x$VGCONF_PLATFORM_PRI_CAPS = xS390X_LINUX; then
3158 AC_MSG_CHECKING([if the linker accepts -Wl,--s390-pgste])
3160 CFLAGS="-Wl,--s390-pgste"
3163 [AC_LANG_PROGRAM([ ], [return 0;])],
3165 AC_SUBST([FLAG_S390_PGSTE], ["-Wl,--s390-pgste"])
3166 AC_MSG_RESULT([yes])
3168 AC_SUBST([FLAG_S390_PGSTE], [""])
3174 # does the ppc assembler support "mtocrf" et al?
3175 AC_MSG_CHECKING([if ppc32/64 as supports mtocrf/mfocrf])
3177 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3178 __asm__ __volatile__("mtocrf 4,0");
3179 __asm__ __volatile__("mfocrf 0,4");
3181 ac_have_as_ppc_mftocrf=yes
3182 AC_MSG_RESULT([yes])
3184 ac_have_as_ppc_mftocrf=no
3187 if test x$ac_have_as_ppc_mftocrf = xyes ; then
3188 AC_DEFINE(HAVE_AS_PPC_MFTOCRF, 1, [Define to 1 if as supports mtocrf/mfocrf.])
3192 # does the ppc assembler support "lfdp" and other phased out floating point insns?
3193 AC_MSG_CHECKING([if ppc32/64 asm supports phased out floating point instructions])
3195 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3196 do { typedef struct {
3200 dbl_pair_t dbl_pair[3];
3201 __asm__ volatile ("lfdp 10, %0"::"m" (dbl_pair[0]));
3204 ac_have_as_ppc_fpPO=yes
3205 AC_MSG_RESULT([yes])
3207 ac_have_as_ppc_fpPO=no
3210 if test x$ac_have_as_ppc_fpPO = xyes ; then
3211 AC_DEFINE(HAVE_AS_PPC_FPPO, 1, [Define to 1 if as supports floating point phased out category.])
3215 # does the amd64 assembler understand "fxsave64" and "fxrstor64"?
3216 AC_MSG_CHECKING([if amd64 assembler supports fxsave64/fxrstor64])
3218 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3220 asm __volatile__("fxsave64 (%0)" : : "r" (p) : "memory" );
3221 asm __volatile__("fxrstor64 (%0)" : : "r" (p) : "memory" );
3223 ac_have_as_amd64_fxsave64=yes
3224 AC_MSG_RESULT([yes])
3226 ac_have_as_amd64_fxsave64=no
3229 if test x$ac_have_as_amd64_fxsave64 = xyes ; then
3230 AC_DEFINE(HAVE_AS_AMD64_FXSAVE64, 1, [Define to 1 if as supports fxsave64/fxrstor64.])
3233 # does the x86/amd64 assembler understand SSE3 instructions?
3234 # Note, this doesn't generate a C-level symbol. It generates a
3235 # automake-level symbol (BUILD_SSE3_TESTS), used in test Makefile.am's
3236 AC_MSG_CHECKING([if x86/amd64 assembler speaks SSE3])
3238 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3239 do { long long int x;
3240 __asm__ __volatile__("fisttpq (%0)" : :"r"(&x) ); }
3244 AC_MSG_RESULT([yes])
3250 AM_CONDITIONAL(BUILD_SSE3_TESTS, test x$ac_have_as_sse3 = xyes)
3253 # Ditto for SSSE3 instructions (note extra S)
3254 # Note, this doesn't generate a C-level symbol. It generates a
3255 # automake-level symbol (BUILD_SSSE3_TESTS), used in test Makefile.am's
3256 AC_MSG_CHECKING([if x86/amd64 assembler speaks SSSE3])
3258 save_CFLAGS="$CFLAGS"
3259 CFLAGS="$CFLAGS -msse -Werror"
3260 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3261 do { long long int x;
3262 __asm__ __volatile__(
3263 "pabsb (%0),%%xmm7" : : "r"(&x) : "xmm7" ); }
3266 ac_have_as_ssse3=yes
3267 AC_MSG_RESULT([yes])
3272 CFLAGS="$save_CFLAGS"
3274 AM_CONDITIONAL(BUILD_SSSE3_TESTS, test x$ac_have_as_ssse3 = xyes)
3277 # does the x86/amd64 assembler understand the PCLMULQDQ instruction?
3278 # Note, this doesn't generate a C-level symbol. It generates a
3279 # automake-level symbol (BUILD_PCLMULQDQ_TESTS), used in test Makefile.am's
3280 AC_MSG_CHECKING([if x86/amd64 assembler supports 'pclmulqdq'])
3281 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3283 __asm__ __volatile__(
3284 "pclmulqdq \$17,%%xmm6,%%xmm7" : : : "xmm6", "xmm7" ); }
3287 ac_have_as_pclmulqdq=yes
3288 AC_MSG_RESULT([yes])
3290 ac_have_as_pclmulqdq=no
3294 AM_CONDITIONAL(BUILD_PCLMULQDQ_TESTS, test x$ac_have_as_pclmulqdq = xyes)
3297 # does the x86/amd64 assembler understand the VPCLMULQDQ instruction?
3298 # Note, this doesn't generate a C-level symbol. It generates a
3299 # automake-level symbol (BUILD_VPCLMULQDQ_TESTS), used in test Makefile.am's
3300 AC_MSG_CHECKING([if x86/amd64 assembler supports 'vpclmulqdq'])
3301 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3304 * Carry-less multiplication of xmm1 with xmm2 and store the result in
3305 * xmm3. The immediate is used to determine which quadwords of xmm1 and
3306 * xmm2 should be used.
3308 __asm__ __volatile__(
3309 "vpclmulqdq \$0,%%xmm1,%%xmm2,%%xmm3" : : : );
3312 ac_have_as_vpclmulqdq=yes
3313 AC_MSG_RESULT([yes])
3315 ac_have_as_vpclmulqdq=no
3319 AM_CONDITIONAL(BUILD_VPCLMULQDQ_TESTS, test x$ac_have_as_vpclmulqdq = xyes)
3322 # does the x86/amd64 assembler understand FMA4 instructions?
3323 # Note, this doesn't generate a C-level symbol. It generates a
3324 # automake-level symbol (BUILD_AFM4_TESTS), used in test Makefile.am's
3325 AC_MSG_CHECKING([if x86/amd64 assembler supports FMA4 'vfmaddpd'])
3326 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3328 __asm__ __volatile__(
3329 "vfmaddpd %%xmm7,%%xmm8,%%xmm6,%%xmm9" : : : );
3332 ac_have_as_vfmaddpd=yes
3333 AC_MSG_RESULT([yes])
3335 ac_have_as_vfmaddpd=no
3339 AM_CONDITIONAL(BUILD_FMA4_TESTS, test x$ac_have_as_vfmaddpd = xyes)
3342 # does the x86/amd64 assembler understand the LZCNT instruction?
3343 # Note, this doesn't generate a C-level symbol. It generates a
3344 # automake-level symbol (BUILD_LZCNT_TESTS), used in test Makefile.am's
3345 AC_MSG_CHECKING([if x86/amd64 assembler supports 'lzcnt'])
3347 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3349 __asm__ __volatile__("lzcnt %%rax,%%rax" : : : "rax");
3352 ac_have_as_lzcnt=yes
3353 AC_MSG_RESULT([yes])
3359 AM_CONDITIONAL([BUILD_LZCNT_TESTS], [test x$ac_have_as_lzcnt = xyes])
3362 # does the x86/amd64 assembler understand the LOOPNEL instruction?
3363 # Note, this doesn't generate a C-level symbol. It generates a
3364 # automake-level symbol (BUILD_LOOPNEL_TESTS), used in test Makefile.am's
3365 AC_MSG_CHECKING([if x86/amd64 assembler supports 'loopnel'])
3367 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3369 __asm__ __volatile__("1: loopnel 1b\n");
3372 ac_have_as_loopnel=yes
3373 AC_MSG_RESULT([yes])
3375 ac_have_as_loopnel=no
3379 AM_CONDITIONAL([BUILD_LOOPNEL_TESTS], [test x$ac_have_as_loopnel = xyes])
3382 # does the x86/amd64 assembler understand ADDR32 ?
3383 # Note, this doesn't generate a C-level symbol. It generates a
3384 # automake-level symbol (BUILD_ADDR32_TESTS), used in test Makefile.am's
3385 AC_MSG_CHECKING([if x86/amd64 assembler supports 'addr32'])
3387 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3389 asm volatile ("addr32 rep movsb");
3392 ac_have_as_addr32=yes
3393 AC_MSG_RESULT([yes])
3395 ac_have_as_addr32=no
3399 AM_CONDITIONAL([BUILD_ADDR32_TESTS], [test x$ac_have_as_addr32 = xyes])
3402 # does the x86/amd64 assembler understand SSE 4.2 instructions?
3403 # Note, this doesn't generate a C-level symbol. It generates a
3404 # automake-level symbol (BUILD_SSE42_TESTS), used in test Makefile.am's
3405 AC_MSG_CHECKING([if x86/amd64 assembler speaks SSE4.2])
3407 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3408 do { long long int x;
3409 __asm__ __volatile__(
3410 "crc32q %%r15,%%r15" : : : "r15" );
3411 __asm__ __volatile__(
3412 "pblendvb (%%rcx), %%xmm11" : : : "memory", "xmm11");
3413 __asm__ __volatile__(
3414 "aesdec %%xmm2, %%xmm1" : : : "xmm2", "xmm1"); }
3417 ac_have_as_sse42=yes
3418 AC_MSG_RESULT([yes])
3424 AM_CONDITIONAL(BUILD_SSE42_TESTS, test x$ac_have_as_sse42 = xyes)
3427 # does the x86/amd64 assembler understand AVX instructions?
3428 # Note, this doesn't generate a C-level symbol. It generates a
3429 # automake-level symbol (BUILD_AVX_TESTS), used in test Makefile.am's
3430 AC_MSG_CHECKING([if x86/amd64 assembler speaks AVX])
3432 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3433 do { long long int x;
3434 __asm__ __volatile__(
3435 "vmovupd (%%rsp), %%ymm7" : : : "xmm7" );
3436 __asm__ __volatile__(
3437 "vaddpd %%ymm6,%%ymm7,%%ymm8" : : : "xmm6","xmm7","xmm8"); }
3441 AC_MSG_RESULT([yes])
3447 AM_CONDITIONAL(BUILD_AVX_TESTS, test x$ac_have_as_avx = xyes)
3450 # does the x86/amd64 assembler understand AVX2 instructions?
3451 # Note, this doesn't generate a C-level symbol. It generates a
3452 # automake-level symbol (BUILD_AVX2_TESTS), used in test Makefile.am's
3453 AC_MSG_CHECKING([if x86/amd64 assembler speaks AVX2])
3455 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3456 do { long long int x;
3457 __asm__ __volatile__(
3458 "vpsravd (%%rsp), %%ymm8, %%ymm7" : : : "xmm7", "xmm8" );
3459 __asm__ __volatile__(
3460 "vpaddb %%ymm6,%%ymm7,%%ymm8" : : : "xmm6","xmm7","xmm8"); }
3464 AC_MSG_RESULT([yes])
3470 AM_CONDITIONAL(BUILD_AVX2_TESTS, test x$ac_have_as_avx2 = xyes)
3473 # does the x86/amd64 assembler understand TSX instructions and
3474 # the XACQUIRE/XRELEASE prefixes?
3475 # Note, this doesn't generate a C-level symbol. It generates a
3476 # automake-level symbol (BUILD_TSX_TESTS), used in test Makefile.am's
3477 AC_MSG_CHECKING([if x86/amd64 assembler speaks TSX])
3479 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3481 __asm__ __volatile__(
3484 " xacquire lock incq 0(%rsp) \n\t"
3485 " xrelease lock incq 0(%rsp) \n"
3490 AC_MSG_RESULT([yes])
3496 AM_CONDITIONAL(BUILD_TSX_TESTS, test x$ac_have_as_tsx = xyes)
3499 # does the x86/amd64 assembler understand BMI1 and BMI2 instructions?
3500 # Note, this doesn't generate a C-level symbol. It generates a
3501 # automake-level symbol (BUILD_BMI_TESTS), used in test Makefile.am's
3502 AC_MSG_CHECKING([if x86/amd64 assembler speaks BMI1 and BMI2])
3504 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3505 do { unsigned int h, l;
3506 __asm__ __volatile__( "mulx %rax,%rcx,%r8" );
3507 __asm__ __volatile__(
3508 "andn %2, %1, %0" : "=r" (h) : "r" (0x1234567), "r" (0x7654321) );
3509 __asm__ __volatile__(
3510 "movl %2, %%edx; mulx %3, %1, %0" : "=r" (h), "=r" (l) : "g" (0x1234567), "rm" (0x7654321) : "edx" ); }
3514 AC_MSG_RESULT([yes])
3520 AM_CONDITIONAL(BUILD_BMI_TESTS, test x$ac_have_as_bmi = xyes)
3523 # does the x86/amd64 assembler understand FMA instructions?
3524 # Note, this doesn't generate a C-level symbol. It generates a
3525 # automake-level symbol (BUILD_FMA_TESTS), used in test Makefile.am's
3526 AC_MSG_CHECKING([if x86/amd64 assembler speaks FMA])
3528 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3529 do { unsigned int h, l;
3530 __asm__ __volatile__(
3531 "vfmadd132ps (%%rsp), %%ymm8, %%ymm7" : : : "xmm7", "xmm8" );
3532 __asm__ __volatile__(
3533 "vfnmsub231sd (%%rsp), %%xmm8, %%xmm7" : : : "xmm7", "xmm8" );
3534 __asm__ __volatile__(
3535 "vfmsubadd213pd (%%rsp), %%xmm8, %%xmm7" : : : "xmm7", "xmm8" ); }
3539 AC_MSG_RESULT([yes])
3545 AM_CONDITIONAL(BUILD_FMA_TESTS, test x$ac_have_as_fma = xyes)
3548 # does the amd64 assembler understand MPX instructions?
3549 # Note, this doesn't generate a C-level symbol. It generates a
3550 # automake-level symbol (BUILD_MPX_TESTS), used in test Makefile.am's
3551 AC_MSG_CHECKING([if amd64 assembler knows the MPX instructions])
3553 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3555 asm ("bndmov %bnd0,(%rsp)");
3556 asm ("bndldx 3(%rbx,%rdx), %bnd2");
3557 asm ("bnd call foo\n"
3564 AC_MSG_RESULT([yes])
3570 AM_CONDITIONAL(BUILD_MPX_TESTS, test x$ac_have_as_mpx = xyes)
3573 # does the amd64 assembler understand ADX instructions?
3574 # Note, this doesn't generate a C-level symbol. It generates a
3575 # automake-level symbol (BUILD_ADX_TESTS), used in test Makefile.am's
3576 AC_MSG_CHECKING([if amd64 assembler knows the ADX instructions])
3578 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3580 asm ("adcxq %r14,%r8");
3584 AC_MSG_RESULT([yes])
3590 AM_CONDITIONAL(BUILD_ADX_TESTS, test x$ac_have_as_adx = xyes)
3593 # does the amd64 assembler understand the RDRAND instruction?
3594 # Note, this doesn't generate a C-level symbol. It generates a
3595 # automake-level symbol (BUILD_RDRAND_TESTS), used in test Makefile.am's
3596 AC_MSG_CHECKING([if amd64 assembler knows the RDRAND instruction])
3598 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3600 asm ("rdrand %r14");
3601 asm ("rdrand %r14d");
3602 asm ("rdrand %r14w");
3605 ac_have_as_rdrand=yes
3606 AC_MSG_RESULT([yes])
3608 ac_have_as_rdrand=no
3612 AM_CONDITIONAL(BUILD_RDRAND_TESTS, test x$ac_have_as_rdrand = xyes)
3614 # does the amd64 assembler understand the RDSEED instruction?
3615 # Note, this doesn't generate a C-level symbol. It generates a
3616 # automake-level symbol (BUILD_RDSEED_TESTS), used in test Makefile.am's
3617 AC_MSG_CHECKING([if amd64 assembler knows the RDSEED instruction])
3619 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3621 asm ("rdseed %r14");
3622 asm ("rdseed %r14d");
3623 asm ("rdseed %r14w");
3626 ac_have_as_rdseed=yes
3627 AC_MSG_RESULT([yes])
3629 ac_have_as_rdseed=no
3633 AM_CONDITIONAL(BUILD_RDSEED_TESTS, test x$ac_have_as_rdseed = xyes)
3635 # does the amd64 assembler understand the F16C instructions (VCVTPH2PS and
3637 # Note, this doesn't generate a C-level symbol. It generates a
3638 # automake-level symbol (BUILD_F16C_TESTS), used in test Makefile.am's
3639 AC_MSG_CHECKING([if amd64 assembler knows the F16C instructions])
3641 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3643 asm ("vcvtph2ps %xmm5, %ymm10");
3644 // If we put the dollar sign and zero together, the shell processing
3645 // this configure.ac script substitutes the command name in. Sigh.
3646 asm ("vcvtps2ph $" "0, %ymm10, %xmm5");
3650 AC_MSG_RESULT([yes])
3656 AM_CONDITIONAL(BUILD_F16C_TESTS, test x$ac_have_as_f16c = xyes)
3659 # does the x86/amd64 assembler understand MOVBE?
3660 # Note, this doesn't generate a C-level symbol. It generates a
3661 # automake-level symbol (BUILD_MOVBE_TESTS), used in test Makefile.am's
3662 AC_MSG_CHECKING([if x86/amd64 assembler knows the MOVBE insn])
3664 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3665 do { long long int x;
3666 __asm__ __volatile__(
3667 "movbe (%%rsp), %%r15" : : : "memory", "r15" ); }
3670 ac_have_as_movbe=yes
3671 AC_MSG_RESULT([yes])
3677 AM_CONDITIONAL(BUILD_MOVBE_TESTS, test x$ac_have_as_movbe = xyes)
3680 # Does the C compiler support the "ifunc" attribute
3681 # Note, this doesn't generate a C-level symbol. It generates a
3682 # automake-level symbol (BUILD_IFUNC_TESTS), used in test Makefile.am's
3683 AC_MSG_CHECKING([if gcc supports the ifunc attribute])
3685 AC_LINK_IFELSE([AC_LANG_SOURCE([[
3686 static void mytest(void) {}
3688 static void (*resolve_test(void))(void)
3690 return (void (*)(void))&mytest;
3693 void test(void) __attribute__((ifunc("resolve_test")));
3701 ac_have_ifunc_attr=yes
3702 AC_MSG_RESULT([yes])
3704 ac_have_ifunc_attr=no
3708 AM_CONDITIONAL(BUILD_IFUNC_TESTS, test x$ac_have_ifunc_attr = xyes)
3710 # Does the C compiler support the armv8 crc feature flag
3711 # Note, this doesn't generate a C-level symbol. It generates a
3712 # automake-level symbol (BUILD_ARMV8_CRC_TESTS), used in test Makefile.am's
3713 AC_MSG_CHECKING([if gcc supports the armv8 crc feature flag])
3715 save_CFLAGS="$CFLAGS"
3716 CFLAGS="$CFLAGS -march=armv8-a+crc -Werror"
3717 AC_COMPILE_IFELSE([AC_LANG_SOURCE([[
3723 ac_have_armv8_crc_feature=yes
3724 AC_MSG_RESULT([yes])
3726 ac_have_armv8_crc_feature=no
3729 CFLAGS="$save_CFLAGS"
3731 AM_CONDITIONAL(BUILD_ARMV8_CRC_TESTS, test x$ac_have_armv8_crc_feature = xyes)
3734 # Does the C compiler support the armv81 flag and the assembler v8.1 instructions
3735 # Note, this doesn't generate a C-level symbol. It generates a
3736 # automake-level symbol (BUILD_ARMV81_TESTS), used in test Makefile.am's
3737 AC_MSG_CHECKING([if gcc supports the armv81 feature flag and assembler supports v8.1 instructions])
3739 save_CFLAGS="$CFLAGS"
3740 CFLAGS="$CFLAGS -march=armv8.1-a -Werror"
3741 AC_COMPILE_IFELSE([AC_LANG_SOURCE([[
3744 __asm__ __volatile__("ldadd x0, x1, [x2]" ::: "memory");
3748 ac_have_armv81_feature=yes
3749 AC_MSG_RESULT([yes])
3751 ac_have_armv81_feature=no
3754 CFLAGS="$save_CFLAGS"
3756 AM_CONDITIONAL(BUILD_ARMV81_TESTS, test x$ac_have_armv81_feature = xyes)
3759 # Does the C compiler support the armv82 flag and the assembler v8.2 instructions
3760 # Note, this doesn't generate a C-level symbol. It generates a
3761 # automake-level symbol (BUILD_ARMV82_TESTS), used in test Makefile.am's
3762 AC_MSG_CHECKING([if gcc supports the armv82 feature flag and assembler supports v8.2 instructions])
3764 save_CFLAGS="$CFLAGS"
3765 CFLAGS="$CFLAGS -march=armv8.2-a+fp16 -Werror"
3766 AC_COMPILE_IFELSE([AC_LANG_SOURCE([[
3769 __asm__ __volatile__("faddp h0, v1.2h");
3773 ac_have_armv82_feature=yes
3774 AC_MSG_RESULT([yes])
3776 ac_have_armv82_feature=no
3779 CFLAGS="$save_CFLAGS"
3781 AM_CONDITIONAL(BUILD_ARMV82_TESTS, test x$ac_have_armv82_feature = xyes)
3784 # Does the C compiler support the armv82-a+dotprod flag and assembler dotprod instructions
3785 # Note, this doesn't generate a C-level symbol. It generates a
3786 # automake-level symbol (BUILD_ARMV82_DOTPROD_TESTS), used in test Makefile.am's
3787 AC_MSG_CHECKING([if gcc supports the armv82-a+dotprod feature flag and assembler supports dotprod instructions])
3789 save_CFLAGS="$CFLAGS"
3790 CFLAGS="$CFLAGS -march=armv8.2-a+dotprod -Werror"
3791 AC_COMPILE_IFELSE([AC_LANG_SOURCE([[
3794 __asm__ __volatile__("sdot v1.4s, v2.16b, v3.16b");
3798 ac_have_armv82_dotprod_feature=yes
3799 AC_MSG_RESULT([yes])
3801 ac_have_armv82_dotprod_feature=no
3804 CFLAGS="$save_CFLAGS"
3806 AM_CONDITIONAL(BUILD_ARMV82_DOTPROD_TESTS, test x$ac_have_armv82_dotprod_feature = xyes)
3809 # XXX JRS 2010 Oct 13: what is this for? For sure, we don't need this
3810 # when building the tool executables. I think we should get rid of it.
3812 # Check for TLS support in the compiler and linker
3813 AC_LINK_IFELSE([AC_LANG_PROGRAM([[static __thread int foo;]],
3815 [vg_cv_linktime_tls=yes],
3816 [vg_cv_linktime_tls=no])
3817 # Native compilation: check whether running a program using TLS succeeds.
3818 # Linking only is not sufficient -- e.g. on Red Hat 7.3 linking TLS programs
3819 # succeeds but running programs using TLS fails.
3820 # Cross-compiling: check whether linking a program using TLS succeeds.
3821 AC_CACHE_CHECK([for TLS support], vg_cv_tls,
3822 [AC_ARG_ENABLE(tls, [ --enable-tls platform supports TLS],
3823 [vg_cv_tls=$enableval],
3824 [AC_RUN_IFELSE([AC_LANG_PROGRAM([[static __thread int foo;]],
3828 [vg_cv_tls=$vg_cv_linktime_tls])])])
3830 if test "$vg_cv_tls" = yes -a $is_clang != applellvm; then
3831 AC_DEFINE([HAVE_TLS], 1, [can use __thread to define thread-local variables])
3835 #----------------------------------------------------------------------------
3836 # Solaris-specific checks.
3837 #----------------------------------------------------------------------------
3839 if test "$VGCONF_OS" = "solaris" ; then
3840 AC_CHECK_HEADERS([sys/lgrp_user_impl.h])
3842 # Solaris-specific check determining if the Sun Studio Assembler is used to
3843 # build Valgrind. The test checks if the x86/amd64 assembler understands the
3844 # cmovl.l instruction, if yes then it's Sun Assembler.
3846 # C-level symbol: none
3847 # Automake-level symbol: SOLARIS_SUN_STUDIO_AS
3849 AC_MSG_CHECKING([if x86/amd64 assembler speaks cmovl.l (Solaris-specific)])
3850 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
3852 __asm__ __volatile__("cmovl.l %edx, %eax");
3854 solaris_have_sun_studio_as=yes
3855 AC_MSG_RESULT([yes])
3857 solaris_have_sun_studio_as=no
3860 AM_CONDITIONAL(SOLARIS_SUN_STUDIO_AS, test x$solaris_have_sun_studio_as = xyes)
3862 # Solaris-specific check determining if symbols __xpg4 and __xpg6
3863 # are present in linked shared libraries when gcc is invoked with -std=gnu99.
3864 # See solaris/vgpreload-solaris.mapfile for details.
3865 # gcc on older Solaris instructs linker to include these symbols,
3866 # gcc on illumos and newer Solaris does not.
3868 # C-level symbol: none
3869 # Automake-level symbol: SOLARIS_XPG_SYMBOLS_PRESENT
3871 save_CFLAGS="$CFLAGS"
3872 CFLAGS="$CFLAGS -std=gnu99"
3873 AC_MSG_CHECKING([if xpg symbols are present with -std=gnu99 (Solaris-specific)])
3874 temp_dir=$( /usr/bin/mktemp -d )
3875 cat <<_ACEOF >${temp_dir}/mylib.c
3877 int myfunc(void) { printf("LaPutyka\n"); }
3879 ${CC} ${CFLAGS} -fpic -shared -o ${temp_dir}/mylib.so ${temp_dir}/mylib.c
3880 xpg_present=$( /usr/bin/nm ${temp_dir}/mylib.so | ${EGREP} '(__xpg4|__xpg6)' )
3881 if test "x${xpg_present}" = "x" ; then
3882 solaris_xpg_symbols_present=no
3885 solaris_xpg_symbols_present=yes
3886 AC_MSG_RESULT([yes])
3889 AM_CONDITIONAL(SOLARIS_XPG_SYMBOLS_PRESENT, test x$solaris_xpg_symbols_present = xyes)
3890 CFLAGS="$save_CFLAGS"
3893 # Solaris-specific check determining if gcc enables largefile support by
3894 # default for 32-bit executables. If it does, then set SOLARIS_UNDEF_LARGESOURCE
3895 # variable with gcc flags which disable it.
3897 AC_MSG_CHECKING([if gcc enables largefile support for 32-bit apps (Solaris-specific)])
3898 save_CFLAGS="$CFLAGS"
3899 CFLAGS="$CFLAGS -m32"
3900 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[]], [[
3901 return _LARGEFILE_SOURCE;
3903 SOLARIS_UNDEF_LARGESOURCE="-U_LARGEFILE_SOURCE -U_LARGEFILE64_SOURCE -U_FILE_OFFSET_BITS"
3904 AC_MSG_RESULT([yes])
3906 SOLARIS_UNDEF_LARGESOURCE=""
3910 AC_SUBST(SOLARIS_UNDEF_LARGESOURCE)
3913 # Solaris-specific check determining if /proc/self/cmdline
3914 # or /proc/<pid>/cmdline is supported.
3916 # C-level symbol: SOLARIS_PROC_CMDLINE
3917 # Automake-level symbol: SOLARIS_PROC_CMDLINE
3919 AC_CHECK_FILE([/proc/self/cmdline],
3921 solaris_proc_cmdline=yes
3922 AC_DEFINE([SOLARIS_PROC_CMDLINE], 1,
3923 [Define to 1 if you have /proc/self/cmdline.])
3925 solaris_proc_cmdline=no
3927 AM_CONDITIONAL(SOLARIS_PROC_CMDLINE, test x$solaris_proc_cmdline = xyes)
3930 # Solaris-specific check determining default platform for the Valgrind launcher.
3931 # Used in case the launcher cannot select platform by looking at the client
3932 # image (for example because the executable is a shell script).
3934 # C-level symbol: SOLARIS_LAUNCHER_DEFAULT_PLATFORM
3935 # Automake-level symbol: none
3937 AC_MSG_CHECKING([for default platform of Valgrind launcher (Solaris-specific)])
3938 # Get the ELF class of /bin/sh first.
3939 if ! test -f /bin/sh; then
3940 AC_MSG_ERROR([Shell interpreter `/bin/sh' not found.])
3942 elf_class=$( /usr/bin/file /bin/sh | sed -n 's/.*ELF \(..\)-bit.*/\1/p' )
3943 case "$elf_class" in
3945 default_arch="$VGCONF_ARCH_PRI";
3948 if test "x$VGCONF_ARCH_SEC" != "x"; then
3949 default_arch="$VGCONF_ARCH_SEC"
3951 default_arch="$VGCONF_ARCH_PRI";
3955 AC_MSG_ERROR([Cannot determine ELF class of `/bin/sh'.])
3958 default_platform="$default_arch-$VGCONF_OS"
3959 AC_MSG_RESULT([$default_platform])
3960 AC_DEFINE_UNQUOTED([SOLARIS_LAUNCHER_DEFAULT_PLATFORM], ["$default_platform"],
3961 [Default platform for Valgrind launcher.])
3964 # Solaris-specific check determining if the old syscalls are available.
3966 # C-level symbol: SOLARIS_OLD_SYSCALLS
3967 # Automake-level symbol: SOLARIS_OLD_SYSCALLS
3969 AC_MSG_CHECKING([for the old Solaris syscalls (Solaris-specific)])
3970 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
3971 #include <sys/syscall.h>
3975 solaris_old_syscalls=yes
3976 AC_MSG_RESULT([yes])
3977 AC_DEFINE([SOLARIS_OLD_SYSCALLS], 1,
3978 [Define to 1 if you have the old Solaris syscalls.])
3980 solaris_old_syscalls=no
3983 AM_CONDITIONAL(SOLARIS_OLD_SYSCALLS, test x$solaris_old_syscalls = xyes)
3986 # Solaris-specific check determining if the new accept() syscall is available.
3989 # int accept(int sock, struct sockaddr *name, socklen_t *namelenp,
3992 # New syscall (available on illumos):
3993 # int accept(int sock, struct sockaddr *name, socklen_t *namelenp,
3994 # int version, int flags);
3996 # If the old syscall is present then the following syscall will fail with
3997 # ENOTSOCK (because file descriptor 0 is not a socket), if the new syscall is
3998 # available then it will fail with EINVAL (because the flags parameter is
4001 # C-level symbol: SOLARIS_NEW_ACCEPT_SYSCALL
4002 # Automake-level symbol: none
4004 AC_MSG_CHECKING([for the new `accept' syscall (Solaris-specific)])
4005 AC_RUN_IFELSE([AC_LANG_PROGRAM([[
4006 #include <sys/syscall.h>
4010 syscall(SYS_accept, 0, 0, 0, 0, -1);
4011 return !(errno == EINVAL);
4013 AC_MSG_RESULT([yes])
4014 AC_DEFINE([SOLARIS_NEW_ACCEPT_SYSCALL], 1,
4015 [Define to 1 if you have the new `accept' syscall.])
4021 # Solaris-specific check determining if the new illumos pipe() syscall is
4025 # longlong_t pipe();
4027 # New syscall (available on illumos):
4028 # int pipe(intptr_t arg, int flags);
4030 # If the old syscall is present then the following call will succeed, if the
4031 # new syscall is available then it will fail with EFAULT (because address 0
4032 # cannot be accessed).
4034 # C-level symbol: SOLARIS_NEW_PIPE_SYSCALL
4035 # Automake-level symbol: none
4037 AC_MSG_CHECKING([for the new `pipe' syscall (Solaris-specific)])
4038 AC_RUN_IFELSE([AC_LANG_PROGRAM([[
4039 #include <sys/syscall.h>
4043 syscall(SYS_pipe, 0, 0);
4044 return !(errno == EFAULT);
4046 AC_MSG_RESULT([yes])
4047 AC_DEFINE([SOLARIS_NEW_PIPE_SYSCALL], 1,
4048 [Define to 1 if you have the new `pipe' syscall.])
4054 # Solaris-specific check determining if the new lwp_sigqueue() syscall is
4058 # int lwp_kill(id_t lwpid, int sig);
4060 # New syscall (available on Solaris 11):
4061 # int lwp_sigqueue(id_t lwpid, int sig, void *value,
4062 # int si_code, timespec_t *timeout);
4064 # C-level symbol: SOLARIS_LWP_SIGQUEUE_SYSCALL
4065 # Automake-level symbol: SOLARIS_LWP_SIGQUEUE_SYSCALL
4067 AC_MSG_CHECKING([for the new `lwp_sigqueue' syscall (Solaris-specific)])
4068 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4069 #include <sys/syscall.h>
4071 return !SYS_lwp_sigqueue;
4073 solaris_lwp_sigqueue_syscall=yes
4074 AC_MSG_RESULT([yes])
4075 AC_DEFINE([SOLARIS_LWP_SIGQUEUE_SYSCALL], 1,
4076 [Define to 1 if you have the new `lwp_sigqueue' syscall.])
4078 solaris_lwp_sigqueue_syscall=no
4081 AM_CONDITIONAL(SOLARIS_LWP_SIGQUEUE_SYSCALL, test x$solaris_lwp_sigqueue_syscall = xyes)
4084 # Solaris-specific check determining if the lwp_sigqueue() syscall
4085 # takes both pid and thread id arguments or just thread id.
4087 # Old syscall (available up to Solaris 11.3):
4088 # int lwp_sigqueue(id_t lwpid, int sig, void *value,
4089 # int si_code, timespec_t *timeout);
4091 # New syscall (available since Solaris 11.4):
4092 # int lwp_sigqueue(pid_t pid, id_t lwpid, int sig, void *value,
4093 # int si_code, timespec_t *timeout);
4095 # If the old syscall is present then the following syscall will fail with
4096 # EINVAL (because signal is out of range); if the new syscall is available
4097 # then it will fail with ESRCH (because it would not find such thread in the
4100 # C-level symbol: SOLARIS_LWP_SIGQUEUE_SYSCALL_TAKES_PID
4101 # Automake-level symbol: SOLARIS_LWP_SIGQUEUE_SYSCALL_TAKES_PID
4103 AM_COND_IF(SOLARIS_LWP_SIGQUEUE_SYSCALL,
4104 AC_MSG_CHECKING([if the `lwp_sigqueue' syscall accepts pid (Solaris-specific)])
4105 AC_RUN_IFELSE([AC_LANG_PROGRAM([[
4106 #include <sys/syscall.h>
4110 syscall(SYS_lwp_sigqueue, 0, 101, 0, 0, 0, 0);
4111 return !(errno == ESRCH);
4113 solaris_lwp_sigqueue_syscall_takes_pid=yes
4114 AC_MSG_RESULT([yes])
4115 AC_DEFINE([SOLARIS_LWP_SIGQUEUE_SYSCALL_TAKES_PID], 1,
4116 [Define to 1 if you have the new `lwp_sigqueue' syscall which accepts pid.])
4118 solaris_lwp_sigqueue_syscall_takes_pid=no
4121 AM_CONDITIONAL(SOLARIS_LWP_SIGQUEUE_SYSCALL_TAKES_PID,
4122 test x$solaris_lwp_sigqueue_syscall_takes_pid = xyes)
4124 AM_CONDITIONAL(SOLARIS_LWP_SIGQUEUE_SYSCALL_TAKES_PID, test x = y)
4128 # Solaris-specific check determining if the new lwp_name() syscall is
4131 # New syscall (available on Solaris 11):
4132 # int lwp_name(int opcode, id_t lwpid, char *name, size_t len);
4134 # C-level symbol: SOLARIS_LWP_NAME_SYSCALL
4135 # Automake-level symbol: SOLARIS_LWP_NAME_SYSCALL
4137 AC_MSG_CHECKING([for the new `lwp_name' syscall (Solaris-specific)])
4138 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4139 #include <sys/syscall.h>
4141 return !SYS_lwp_name;
4143 solaris_lwp_name_syscall=yes
4144 AC_MSG_RESULT([yes])
4145 AC_DEFINE([SOLARIS_LWP_NAME_SYSCALL], 1,
4146 [Define to 1 if you have the new `lwp_name' syscall.])
4148 solaris_lwp_name_syscall=no
4151 AM_CONDITIONAL(SOLARIS_LWP_NAME_SYSCALL, test x$solaris_lwp_name_syscall = xyes)
4154 # Solaris-specific check determining if the new getrandom() syscall is
4157 # New syscall (available on Solaris 11):
4158 # int getrandom(void *buf, size_t buflen, uint_t flags);
4160 # C-level symbol: SOLARIS_GETRANDOM_SYSCALL
4161 # Automake-level symbol: SOLARIS_GETRANDOM_SYSCALL
4163 AC_MSG_CHECKING([for the new `getrandom' syscall (Solaris-specific)])
4164 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4165 #include <sys/syscall.h>
4167 return !SYS_getrandom;
4169 solaris_getrandom_syscall=yes
4170 AC_MSG_RESULT([yes])
4171 AC_DEFINE([SOLARIS_GETRANDOM_SYSCALL], 1,
4172 [Define to 1 if you have the new `getrandom' syscall.])
4174 solaris_getrandom_syscall=no
4177 AM_CONDITIONAL(SOLARIS_GETRANDOM_SYSCALL, test x$solaris_getrandom_syscall = xyes)
4180 # Solaris-specific check determining if the new zone() syscall subcodes
4181 # ZONE_LIST_DEFUNCT and ZONE_GETATTR_DEFUNCT are available. These subcodes
4182 # were added in Solaris 11 but are missing on illumos.
4184 # C-level symbol: SOLARIS_ZONE_DEFUNCT
4185 # Automake-level symbol: SOLARIS_ZONE_DEFUNCT
4187 AC_MSG_CHECKING([for ZONE_LIST_DEFUNCT and ZONE_GETATTR_DEFUNCT (Solaris-specific)])
4188 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4189 #include <sys/zone.h>
4191 return !(ZONE_LIST_DEFUNCT && ZONE_GETATTR_DEFUNCT);
4193 solaris_zone_defunct=yes
4194 AC_MSG_RESULT([yes])
4195 AC_DEFINE([SOLARIS_ZONE_DEFUNCT], 1,
4196 [Define to 1 if you have the `ZONE_LIST_DEFUNCT' and `ZONE_GETATTR_DEFUNC' constants.])
4198 solaris_zone_defunct=no
4201 AM_CONDITIONAL(SOLARIS_ZONE_DEFUNCT, test x$solaris_zone_defunct = xyes)
4204 # Solaris-specific check determining if commands A_GETSTAT and A_SETSTAT
4205 # for auditon(2) subcode of the auditsys() syscall are available.
4206 # These commands are available in Solaris 11 and illumos but were removed
4209 # C-level symbol: SOLARIS_AUDITON_STAT
4210 # Automake-level symbol: SOLARIS_AUDITON_STAT
4212 AC_MSG_CHECKING([for A_GETSTAT and A_SETSTAT auditon(2) commands (Solaris-specific)])
4213 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4214 #include <bsm/audit.h>
4216 return !(A_GETSTAT && A_SETSTAT);
4218 solaris_auditon_stat=yes
4219 AC_MSG_RESULT([yes])
4220 AC_DEFINE([SOLARIS_AUDITON_STAT], 1,
4221 [Define to 1 if you have the `A_GETSTAT' and `A_SETSTAT' constants.])
4223 solaris_auditon_stat=no
4226 AM_CONDITIONAL(SOLARIS_AUDITON_STAT, test x$solaris_auditon_stat = xyes)
4229 # Solaris-specific check determining if the new shmsys() syscall subcodes
4230 # IPC_XSTAT64, SHMADV, SHM_ADV_GET, SHM_ADV_SET and SHMGET_OSM are available.
4231 # These subcodes were added in Solaris 11 but are missing on illumos.
4233 # C-level symbol: SOLARIS_SHM_NEW
4234 # Automake-level symbol: SOLARIS_SHM_NEW
4236 AC_MSG_CHECKING([for SHMADV, SHM_ADV_GET, SHM_ADV_SET and SHMGET_OSM (Solaris-specific)])
4237 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4238 #include <sys/ipc_impl.h>
4239 #include <sys/shm.h>
4240 #include <sys/shm_impl.h>
4242 return !(IPC_XSTAT64 && SHMADV && SHM_ADV_GET && SHM_ADV_SET && SHMGET_OSM);
4245 AC_MSG_RESULT([yes])
4246 AC_DEFINE([SOLARIS_SHM_NEW], 1,
4247 [Define to 1 if you have the `IPC_XSTAT64', `SHMADV', `SHM_ADV_GET', `SHM_ADV_SET' and `SHMGET_OSM' constants.])
4252 AM_CONDITIONAL(SOLARIS_SHM_NEW, test x$solaris_shm_new = xyes)
4255 # Solaris-specific check determining if prxregset_t is available. Illumos
4256 # currently does not define it on the x86 platform.
4258 # C-level symbol: SOLARIS_PRXREGSET_T
4259 # Automake-level symbol: SOLARIS_PRXREGSET_T
4261 AC_MSG_CHECKING([for the `prxregset_t' type (Solaris-specific)])
4262 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4263 #include <sys/procfs_isa.h>
4265 return !sizeof(prxregset_t);
4267 solaris_prxregset_t=yes
4268 AC_MSG_RESULT([yes])
4269 AC_DEFINE([SOLARIS_PRXREGSET_T], 1,
4270 [Define to 1 if you have the `prxregset_t' type.])
4272 solaris_prxregset_t=no
4275 AM_CONDITIONAL(SOLARIS_PRXREGSET_T, test x$solaris_prxregset_t = xyes)
4278 # Solaris-specific check determining if the new frealpathat() syscall is
4281 # New syscall (available on Solaris 11.1):
4282 # int frealpathat(int fd, char *path, char *buf, size_t buflen);
4284 # C-level symbol: SOLARIS_FREALPATHAT_SYSCALL
4285 # Automake-level symbol: SOLARIS_FREALPATHAT_SYSCALL
4287 AC_MSG_CHECKING([for the new `frealpathat' syscall (Solaris-specific)])
4288 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4289 #include <sys/syscall.h>
4291 return !SYS_frealpathat;
4293 solaris_frealpathat_syscall=yes
4294 AC_MSG_RESULT([yes])
4295 AC_DEFINE([SOLARIS_FREALPATHAT_SYSCALL], 1,
4296 [Define to 1 if you have the new `frealpathat' syscall.])
4298 solaris_frealpathat_syscall=no
4301 AM_CONDITIONAL(SOLARIS_FREALPATHAT_SYSCALL, test x$solaris_frealpathat_syscall = xyes)
4304 # Solaris-specific check determining if the new uuidsys() syscall is
4307 # New syscall (available on newer Solaris):
4308 # int uuidsys(struct uuid *uuid);
4310 # C-level symbol: SOLARIS_UUIDSYS_SYSCALL
4311 # Automake-level symbol: SOLARIS_UUIDSYS_SYSCALL
4313 AC_MSG_CHECKING([for the new `uuidsys' syscall (Solaris-specific)])
4314 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4315 #include <sys/syscall.h>
4317 return !SYS_uuidsys;
4319 solaris_uuidsys_syscall=yes
4320 AC_MSG_RESULT([yes])
4321 AC_DEFINE([SOLARIS_UUIDSYS_SYSCALL], 1,
4322 [Define to 1 if you have the new `uuidsys' syscall.])
4324 solaris_uuidsys_syscall=no
4327 AM_CONDITIONAL(SOLARIS_UUIDSYS_SYSCALL, test x$solaris_uuidsys_syscall = xyes)
4330 # Solaris-specific check determining if the new labelsys() syscall subcode
4331 # TNDB_GET_TNIP is available. This subcode was added in Solaris 11 but is
4332 # missing on illumos.
4334 # C-level symbol: SOLARIS_TNDB_GET_TNIP
4335 # Automake-level symbol: SOLARIS_TNDB_GET_TNIP
4337 AC_MSG_CHECKING([for TNDB_GET_TNIP (Solaris-specific)])
4338 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4339 #include <sys/tsol/tndb.h>
4341 return !TNDB_GET_TNIP;
4343 solaris_tndb_get_tnip=yes
4344 AC_MSG_RESULT([yes])
4345 AC_DEFINE([SOLARIS_TNDB_GET_TNIP], 1,
4346 [Define to 1 if you have the `TNDB_GET_TNIP' constant.])
4348 solaris_tndb_get_tnip=no
4351 AM_CONDITIONAL(SOLARIS_TNDB_GET_TNIP, test x$solaris_tndb_get_tnip = xyes)
4354 # Solaris-specific check determining if the new labelsys() syscall opcodes
4355 # TSOL_GETCLEARANCE and TSOL_SETCLEARANCE are available. These opcodes were
4356 # added in Solaris 11 but are missing on illumos.
4358 # C-level symbol: SOLARIS_TSOL_CLEARANCE
4359 # Automake-level symbol: SOLARIS_TSOL_CLEARANCE
4361 AC_MSG_CHECKING([for TSOL_GETCLEARANCE and TSOL_SETCLEARANCE (Solaris-specific)])
4362 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4363 #include <sys/tsol/tsyscall.h>
4365 return !(TSOL_GETCLEARANCE && TSOL_SETCLEARANCE);
4367 solaris_tsol_clearance=yes
4368 AC_MSG_RESULT([yes])
4369 AC_DEFINE([SOLARIS_TSOL_CLEARANCE], 1,
4370 [Define to 1 if you have the `TSOL_GETCLEARANCE' and `TSOL_SETCLEARANCE' constants.])
4372 solaris_tsol_clearance=no
4375 AM_CONDITIONAL(SOLARIS_TSOL_CLEARANCE, test x$solaris_tsol_clearance = xyes)
4378 # Solaris-specific check determining if the new pset() syscall subcode
4379 # PSET_GET_NAME is available. This subcode was added in Solaris 11.4 but
4380 # is missing on illumos and Solaris 11.3.
4382 # C-level symbol: SOLARIS_PSET_GET_NAME
4383 # Automake-level symbol: SOLARIS_PSET_GET_NAME
4385 AC_MSG_CHECKING([for PSET_GET_NAME (Solaris-specific)])
4386 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4387 #include <sys/pset.h>
4389 return !(PSET_GET_NAME);
4391 solaris_pset_get_name=yes
4392 AC_MSG_RESULT([yes])
4393 AC_DEFINE([SOLARIS_PSET_GET_NAME], 1,
4394 [Define to 1 if you have the `PSET_GET_NAME' constants.])
4396 solaris_pset_get_name=no
4399 AM_CONDITIONAL(SOLARIS_PSET_GET_NAME, test x$solaris_pset_get_name = xyes)
4402 # Solaris-specific check determining if the utimesys() syscall is
4403 # available (on illumos and older Solaris).
4405 # C-level symbol: SOLARIS_UTIMESYS_SYSCALL
4406 # Automake-level symbol: SOLARIS_UTIMESYS_SYSCALL
4408 AC_MSG_CHECKING([for the `utimesys' syscall (Solaris-specific)])
4409 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4410 #include <sys/syscall.h>
4412 return !SYS_utimesys;
4414 solaris_utimesys_syscall=yes
4415 AC_MSG_RESULT([yes])
4416 AC_DEFINE([SOLARIS_UTIMESYS_SYSCALL], 1,
4417 [Define to 1 if you have the `utimesys' syscall.])
4419 solaris_utimesys_syscall=no
4422 AM_CONDITIONAL(SOLARIS_UTIMESYS_SYSCALL, test x$solaris_utimesys_syscall = xyes)
4425 # Solaris-specific check determining if the utimensat() syscall is
4426 # available (on newer Solaris).
4428 # C-level symbol: SOLARIS_UTIMENSAT_SYSCALL
4429 # Automake-level symbol: SOLARIS_UTIMENSAT_SYSCALL
4431 AC_MSG_CHECKING([for the `utimensat' syscall (Solaris-specific)])
4432 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4433 #include <sys/syscall.h>
4435 return !SYS_utimensat;
4437 solaris_utimensat_syscall=yes
4438 AC_MSG_RESULT([yes])
4439 AC_DEFINE([SOLARIS_UTIMENSAT_SYSCALL], 1,
4440 [Define to 1 if you have the `utimensat' syscall.])
4442 solaris_utimensat_syscall=no
4445 AM_CONDITIONAL(SOLARIS_UTIMENSAT_SYSCALL, test x$solaris_utimensat_syscall = xyes)
4448 # Solaris-specific check determining if the spawn() syscall is available
4449 # (on newer Solaris).
4451 # C-level symbol: SOLARIS_SPAWN_SYSCALL
4452 # Automake-level symbol: SOLARIS_SPAWN_SYSCALL
4454 AC_MSG_CHECKING([for the `spawn' syscall (Solaris-specific)])
4455 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4456 #include <sys/syscall.h>
4460 solaris_spawn_syscall=yes
4461 AC_MSG_RESULT([yes])
4462 AC_DEFINE([SOLARIS_SPAWN_SYSCALL], 1,
4463 [Define to 1 if you have the `spawn' syscall.])
4465 solaris_spawn_syscall=no
4468 AM_CONDITIONAL(SOLARIS_SPAWN_SYSCALL, test x$solaris_spawn_syscall = xyes)
4471 # Solaris-specific check determining if commands MODNVL_CTRLMAP through
4472 # MODDEVINFO_CACHE_TS for modctl() syscall are available (on newer Solaris).
4474 # C-level symbol: SOLARIS_MODCTL_MODNVL
4475 # Automake-level symbol: SOLARIS_MODCTL_MODNVL
4477 AC_MSG_CHECKING([for MODNVL_CTRLMAP through MODDEVINFO_CACHE_TS modctl(2) commands (Solaris-specific)])
4478 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4479 #include <sys/modctl.h>
4481 return !(MODNVL_CTRLMAP && MODDEVINFO_CACHE_TS);
4483 solaris_modctl_modnvl=yes
4484 AC_MSG_RESULT([yes])
4485 AC_DEFINE([SOLARIS_MODCTL_MODNVL], 1,
4486 [Define to 1 if you have the `MODNVL_CTRLMAP' through `MODDEVINFO_CACHE_TS' constants.])
4488 solaris_modctl_modnvl=no
4491 AM_CONDITIONAL(SOLARIS_MODCTL_MODNVL, test x$solaris_modctl_modnvl = xyes)
4494 # Solaris-specific check determining whether nscd (name switch cache daemon)
4495 # attaches its door at /system/volatile/name_service_door (Solaris)
4496 # or at /var/run/name_service_door (illumos).
4498 # Note that /var/run is a symlink to /system/volatile on Solaris
4499 # but not vice versa on illumos.
4501 # C-level symbol: SOLARIS_NSCD_DOOR_SYSTEM_VOLATILE
4502 # Automake-level symbol: SOLARIS_NSCD_DOOR_SYSTEM_VOLATILE
4504 AC_MSG_CHECKING([for nscd door location (Solaris-specific)])
4505 if test -e /system/volatile/name_service_door; then
4506 solaris_nscd_door_system_volatile=yes
4507 AC_MSG_RESULT([/system/volatile/name_service_door])
4508 AC_DEFINE([SOLARIS_NSCD_DOOR_SYSTEM_VOLATILE], 1,
4509 [Define to 1 if nscd attaches to /system/volatile/name_service_door.])
4511 solaris_nscd_door_system_volatile=no
4512 AC_MSG_RESULT([/var/run/name_service_door])
4514 AM_CONDITIONAL(SOLARIS_NSCD_DOOR_SYSTEM_VOLATILE, test x$solaris_nscd_door_system_volatile = xyes)
4517 # Solaris-specific check determining if the new gethrt() fasttrap is available.
4519 # New fasttrap (available on Solaris 11):
4520 # hrt_t *gethrt(void);
4522 # C-level symbol: SOLARIS_GETHRT_FASTTRAP
4523 # Automake-level symbol: SOLARIS_GETHRT_FASTTRAP
4525 AC_MSG_CHECKING([for the new `gethrt' fasttrap (Solaris-specific)])
4526 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4527 #include <sys/trap.h>
4531 solaris_gethrt_fasttrap=yes
4532 AC_MSG_RESULT([yes])
4533 AC_DEFINE([SOLARIS_GETHRT_FASTTRAP], 1,
4534 [Define to 1 if you have the new `gethrt' fasttrap.])
4536 solaris_gethrt_fasttrap=no
4539 AM_CONDITIONAL(SOLARIS_GETHRT_FASTTRAP, test x$solaris_gethrt_fasttrap = xyes)
4542 # Solaris-specific check determining if the new get_zone_offset() fasttrap
4545 # New fasttrap (available on Solaris 11):
4546 # zonehrtoffset_t *get_zone_offset(void);
4548 # C-level symbol: SOLARIS_GETZONEOFFSET_FASTTRAP
4549 # Automake-level symbol: SOLARIS_GETZONEOFFSET_FASTTRAP
4551 AC_MSG_CHECKING([for the new `get_zone_offset' fasttrap (Solaris-specific)])
4552 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4553 #include <sys/trap.h>
4555 return !T_GETZONEOFFSET;
4557 solaris_getzoneoffset_fasttrap=yes
4558 AC_MSG_RESULT([yes])
4559 AC_DEFINE([SOLARIS_GETZONEOFFSET_FASTTRAP], 1,
4560 [Define to 1 if you have the new `get_zone_offset' fasttrap.])
4562 solaris_getzoneoffset_fasttrap=no
4565 AM_CONDITIONAL(SOLARIS_GETZONEOFFSET_FASTTRAP, test x$solaris_getzoneoffset_fasttrap = xyes)
4568 # Solaris-specific check determining if the execve() syscall
4569 # takes fourth argument (flags) or not.
4571 # Old syscall (available on illumos):
4572 # int execve(const char *fname, const char **argv, const char **envp);
4574 # New syscall (available on Solaris):
4575 # int execve(uintptr_t file, const char **argv, const char **envp, int flags);
4577 # If the new syscall is present then it will fail with EINVAL (because flags
4578 # are invalid); if the old syscall is available then it will fail with ENOENT
4579 # (because the file could not be found).
4581 # C-level symbol: SOLARIS_EXECVE_SYSCALL_TAKES_FLAGS
4582 # Automake-level symbol: SOLARIS_EXECVE_SYSCALL_TAKES_FLAGS
4584 AC_MSG_CHECKING([if the `execve' syscall accepts flags (Solaris-specific)])
4585 AC_RUN_IFELSE([AC_LANG_PROGRAM([[
4586 #include <sys/syscall.h>
4590 syscall(SYS_execve, "/no/existing/path", 0, 0, 0xdeadbeef, 0, 0);
4591 return !(errno == EINVAL);
4593 solaris_execve_syscall_takes_flags=yes
4594 AC_MSG_RESULT([yes])
4595 AC_DEFINE([SOLARIS_EXECVE_SYSCALL_TAKES_FLAGS], 1,
4596 [Define to 1 if you have the new `execve' syscall which accepts flags.])
4598 solaris_execve_syscall_takes_flags=no
4601 AM_CONDITIONAL(SOLARIS_EXECVE_SYSCALL_TAKES_FLAGS,
4602 test x$solaris_execve_syscall_takes_flags = xyes)
4605 # Solaris-specific check determining version of the repository cache protocol.
4606 # Every Solaris version uses a different one, ranging from 21 to current 25.
4607 # The check is very ugly, though.
4609 # C-level symbol: SOLARIS_REPCACHE_PROTOCOL_VERSION vv
4610 # Automake-level symbol: none
4612 AC_PATH_PROG(DIS_PATH, dis, false)
4613 if test "x$DIS_PATH" = "xfalse"; then
4614 AC_MSG_FAILURE([Object code disassembler (`dis') not found.])
4616 # The illumos source is (or was) here
4617 # https://github.com/illumos/illumos-gate/blob/master/usr/src/lib/libscf/common/lowlevel.c#L1148
4618 # specifically the line
4620 # request.rdr_version = REPOSITORY_DOOR_VERSION;
4622 # rdr_version is a 32bit unsigned int
4623 # The macro REPOSITORY_DOOR_VERSION contains the ascii letters "Rep" in the top 3
4624 # bytes and the door version in the lowest byte. Hence we look for Rep which is 526570
4625 # in hex and then extrace the following byte.
4626 AC_CHECK_LIB(scf, scf_handle_bind, [], [
4627 AC_MSG_WARN([Function `scf_handle_bind' was not found in `libscf'.])
4628 AC_MSG_ERROR([Cannot determine version of the repository cache protocol.])
4631 AC_MSG_CHECKING([for version of the repository cache protocol (Solaris-specific)])
4632 if test "X$VGCONF_ARCH_PRI" = "Xamd64"; then
4633 libscf=/usr/lib/64/libscf.so.1
4635 libscf=/usr/lib/libscf.so.1
4637 if ! $DIS_PATH -F scf_handle_bind $libscf | grep -q -E '0x(4d01)?526570'; then
4638 AC_MSG_WARN([Function `scf_handle_bind' does not contain repository cache protocol version.])
4639 AC_MSG_ERROR([Cannot determine version of the repository cache protocol.])
4641 hex=$( $DIS_PATH -F scf_handle_bind $libscf | grep 526570 | sed 's/.*526570//;s/,.*//' )
4642 if test -z "$hex"; then
4643 AC_MSG_WARN([Version of the repository cache protocol is empty?!])
4644 AC_MSG_ERROR([Cannot determine version of the repository cache protocol.])
4646 version=$( printf "%d\n" 0x$hex )
4647 AC_MSG_RESULT([$version])
4648 AC_DEFINE_UNQUOTED([SOLARIS_REPCACHE_PROTOCOL_VERSION], [$version],
4649 [Version number of the repository door cache protocol.])
4652 # Solaris-specific check determining if "sysstat" segment reservation type
4655 # New "sysstat" segment reservation (available on Solaris 11.4):
4656 # - program header type: PT_SUNW_SYSSTAT
4657 # - auxiliary vector entry: AT_SUN_SYSSTAT_ADDR
4659 # C-level symbol: SOLARIS_RESERVE_SYSSTAT_ADDR
4660 # Automake-level symbol: SOLARIS_RESERVE_SYSSTAT_ADDR
4662 AC_MSG_CHECKING([for the new `sysstat' segment reservation (Solaris-specific)])
4663 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4664 #include <sys/auxv.h>
4666 return !AT_SUN_SYSSTAT_ADDR;
4668 solaris_reserve_sysstat_addr=yes
4669 AC_MSG_RESULT([yes])
4670 AC_DEFINE([SOLARIS_RESERVE_SYSSTAT_ADDR], 1,
4671 [Define to 1 if you have the new `sysstat' segment reservation.])
4673 solaris_reserve_sysstat_addr=no
4676 AM_CONDITIONAL(SOLARIS_RESERVE_SYSSTAT_ADDR, test x$solaris_reserve_sysstat_addr = xyes)
4679 # Solaris-specific check determining if "sysstat_zone" segment reservation type
4682 # New "sysstat_zone" segment reservation (available on Solaris 11.4):
4683 # - program header type: PT_SUNW_SYSSTAT_ZONE
4684 # - auxiliary vector entry: AT_SUN_SYSSTAT_ZONE_ADDR
4686 # C-level symbol: SOLARIS_RESERVE_SYSSTAT_ZONE_ADDR
4687 # Automake-level symbol: SOLARIS_RESERVE_SYSSTAT_ZONE_ADDR
4689 AC_MSG_CHECKING([for the new `sysstat_zone' segment reservation (Solaris-specific)])
4690 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4691 #include <sys/auxv.h>
4693 return !AT_SUN_SYSSTAT_ZONE_ADDR;
4695 solaris_reserve_sysstat_zone_addr=yes
4696 AC_MSG_RESULT([yes])
4697 AC_DEFINE([SOLARIS_RESERVE_SYSSTAT_ZONE_ADDR], 1,
4698 [Define to 1 if you have the new `sysstat_zone' segment reservation.])
4700 solaris_reserve_sysstat_zone_addr=no
4703 AM_CONDITIONAL(SOLARIS_RESERVE_SYSSTAT_ZONE_ADDR, test x$solaris_reserve_sysstat_zone_addr = xyes)
4706 # Solaris-specific check determining if the system_stats() syscall is available
4707 # (on newer Solaris).
4709 # C-level symbol: SOLARIS_SYSTEM_STATS_SYSCALL
4710 # Automake-level symbol: SOLARIS_SYSTEM_STATS_SYSCALL
4712 AC_MSG_CHECKING([for the `system_stats' syscall (Solaris-specific)])
4713 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4714 #include <sys/syscall.h>
4716 return !SYS_system_stats;
4718 solaris_system_stats_syscall=yes
4719 AC_MSG_RESULT([yes])
4720 AC_DEFINE([SOLARIS_SYSTEM_STATS_SYSCALL], 1,
4721 [Define to 1 if you have the `system_stats' syscall.])
4723 solaris_system_stats_syscall=no
4726 AM_CONDITIONAL(SOLARIS_SYSTEM_STATS_SYSCALL, test x$solaris_system_stats_syscall = xyes)
4729 # Solaris-specific check determining if fpregset_t defines struct _fpchip_state
4730 # (on newer illumos) or struct fpchip_state (Solaris, older illumos).
4732 # C-level symbol: SOLARIS_FPCHIP_STATE_TAKES_UNDERSCORE
4733 # Automake-level symbol: none
4735 AC_CHECK_TYPE([struct _fpchip_state],
4736 [solaris_fpchip_state_takes_underscore=yes],
4737 [solaris_fpchip_state_takes_underscore=no],
4738 [[#include <sys/regset.h>]])
4739 if test "$solaris_fpchip_state_takes_underscore" = "yes"; then
4740 AC_DEFINE(SOLARIS_FPCHIP_STATE_TAKES_UNDERSCORE, 1,
4741 [Define to 1 if fpregset_t defines struct _fpchip_state])
4745 # Solaris-specific check determining if schedctl page shared between kernel
4746 # and userspace program is executable (illumos, older Solaris) or not (newer
4749 # C-level symbol: SOLARIS_SCHEDCTL_PAGE_EXEC
4750 # Automake-level symbol: none
4752 AC_MSG_CHECKING([if schedctl page is executable (Solaris-specific)])
4753 AC_RUN_IFELSE([AC_LANG_PROGRAM([[
4757 #include <schedctl.h>
4761 schedctl_t *scp = schedctl_init();
4765 int fd = open("/proc/self/map", O_RDONLY);
4770 while ((rd = read(fd, &map, sizeof(map))) == sizeof(map)) {
4771 if (map.pr_vaddr == ((uintptr_t) scp & PAGEMASK)) {
4772 fprintf(stderr, "%#lx [%zu] %s\n", map.pr_vaddr, map.pr_size,
4773 (map.pr_mflags & MA_EXEC) ? "x" : "no-x");
4774 return (map.pr_mflags & MA_EXEC);
4780 solaris_schedctl_page_exec=no
4783 solaris_schedctl_page_exec=yes
4784 AC_MSG_RESULT([yes])
4785 AC_DEFINE([SOLARIS_SCHEDCTL_PAGE_EXEC], 1,
4786 [Define to 1 if you have the schedctl page executable.])
4790 # Solaris-specific check determining if PT_SUNWDTRACE program header provides
4791 # scratch space for DTrace fasttrap provider (illumos, older Solaris) or just
4792 # an initial thread pointer for libc (newer Solaris).
4794 # C-level symbol: SOLARIS_PT_SUNDWTRACE_THRP
4795 # Automake-level symbol: none
4797 AC_MSG_CHECKING([if PT_SUNWDTRACE serves for initial thread pointer (Solaris-specific)])
4798 AC_RUN_IFELSE([AC_LANG_PROGRAM([[
4799 #include <sys/fasttrap_isa.h>
4801 return !FT_SCRATCHSIZE;
4803 solaris_pt_sunwdtrace_thrp=yes
4804 AC_MSG_RESULT([yes])
4805 AC_DEFINE([SOLARIS_PT_SUNDWTRACE_THRP], 1,
4806 [Define to 1 if PT_SUNWDTRACE program header provides just an initial thread pointer for libc.])
4808 solaris_pt_sunwdtrace_thrp=no
4813 AM_CONDITIONAL(SOLARIS_SUN_STUDIO_AS, false)
4814 AM_CONDITIONAL(SOLARIS_XPG_SYMBOLS_PRESENT, false)
4815 AM_CONDITIONAL(SOLARIS_PROC_CMDLINE, false)
4816 AM_CONDITIONAL(SOLARIS_OLD_SYSCALLS, false)
4817 AM_CONDITIONAL(SOLARIS_LWP_SIGQUEUE_SYSCALL, false)
4818 AM_CONDITIONAL(SOLARIS_LWP_SIGQUEUE_SYSCALL_TAKES_PID, false)
4819 AM_CONDITIONAL(SOLARIS_LWP_NAME_SYSCALL, false)
4820 AM_CONDITIONAL(SOLARIS_GETRANDOM_SYSCALL, false)
4821 AM_CONDITIONAL(SOLARIS_ZONE_DEFUNCT, false)
4822 AM_CONDITIONAL(SOLARIS_AUDITON_STAT, false)
4823 AM_CONDITIONAL(SOLARIS_SHM_NEW, false)
4824 AM_CONDITIONAL(SOLARIS_PRXREGSET_T, false)
4825 AM_CONDITIONAL(SOLARIS_FREALPATHAT_SYSCALL, false)
4826 AM_CONDITIONAL(SOLARIS_UUIDSYS_SYSCALL, false)
4827 AM_CONDITIONAL(SOLARIS_TNDB_GET_TNIP, false)
4828 AM_CONDITIONAL(SOLARIS_TSOL_CLEARANCE, false)
4829 AM_CONDITIONAL(SOLARIS_PSET_GET_NAME, false)
4830 AM_CONDITIONAL(SOLARIS_UTIMESYS_SYSCALL, false)
4831 AM_CONDITIONAL(SOLARIS_UTIMENSAT_SYSCALL, false)
4832 AM_CONDITIONAL(SOLARIS_SPAWN_SYSCALL, false)
4833 AM_CONDITIONAL(SOLARIS_MODCTL_MODNVL, false)
4834 AM_CONDITIONAL(SOLARIS_NSCD_DOOR_SYSTEM_VOLATILE, false)
4835 AM_CONDITIONAL(SOLARIS_GETHRT_FASTTRAP, false)
4836 AM_CONDITIONAL(SOLARIS_GETZONEOFFSET_FASTTRAP, false)
4837 AM_CONDITIONAL(SOLARIS_EXECVE_SYSCALL_TAKES_FLAGS, false)
4838 AM_CONDITIONAL(SOLARIS_RESERVE_SYSSTAT_ADDR, false)
4839 AM_CONDITIONAL(SOLARIS_RESERVE_SYSSTAT_ZONE_ADDR, false)
4840 AM_CONDITIONAL(SOLARIS_SYSTEM_STATS_SYSCALL, false)
4841 fi # test "$VGCONF_OS" = "solaris"
4843 #----------------------------------------------------------------------------
4844 # FreeBSD-specific checks.
4845 #----------------------------------------------------------------------------
4847 # Rather than having a large number of feature test as above with Solaris
4848 # these tests are per-version. This may not be entirely reliable for
4849 # FreeBSD development branches (XX.Y-CURRENT) or pre-release branches
4850 # (XX.Y-STABLE) but it should work for XX-Y-RELEASE
4852 if test "$VGCONF_OS" = "freebsd" ; then
4854 AM_CONDITIONAL(FREEBSD_VERS_13_PLUS, test $freebsd_vers -ge $freebsd_13_0)
4855 AM_CONDITIONAL(FREEBSD_VERS_15_PLUS, test $freebsd_vers -ge $freebsd_15)
4859 AM_CONDITIONAL(FREEBSD_VERS_13_PLUS, false)
4860 AM_CONDITIONAL(FREEBSD_VERS_15_PLUS, false)
4862 fi # test "$VGCONF_OS" = "freebsd"
4865 #----------------------------------------------------------------------------
4866 # Checks for C header files.
4867 #----------------------------------------------------------------------------
4869 AC_CHECK_HEADERS([ \
4887 # Verify whether the <linux/futex.h> header is usable.
4888 AC_MSG_CHECKING([if <linux/futex.h> is usable])
4890 save_CFLAGS="$CFLAGS"
4891 CFLAGS="$CFLAGS -D__user="
4892 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
4893 #include <linux/futex.h>
4897 ac_have_usable_linux_futex_h=yes
4898 AC_DEFINE([HAVE_USABLE_LINUX_FUTEX_H], 1,
4899 [Define to 1 if you have a usable <linux/futex.h> header file.])
4900 AC_MSG_RESULT([yes])
4902 ac_have_usable_linux_futex_h=no
4905 CFLAGS="$save_CFLAGS"
4908 #----------------------------------------------------------------------------
4909 # Checks for typedefs, structures, and compiler characteristics.
4910 #----------------------------------------------------------------------------
4914 AC_CHECK_HEADERS_ONCE([sys/time.h])
4916 AC_CHECK_TYPE([struct statx], [
4917 AC_DEFINE([HAVE_STRUCT_STATX_IN_SYS_STAT_H], 1,
4918 [Define to 1 if <sys/stat.h> declares struct statx.])
4921 #include <sys/stat.h>
4925 #----------------------------------------------------------------------------
4926 # Checks for library functions.
4927 #----------------------------------------------------------------------------
4931 AC_CHECK_LIB([pthread], [pthread_create])
4932 AC_CHECK_LIB([rt], [clock_gettime])
4954 pthread_barrier_init \
4955 pthread_condattr_setclock \
4956 pthread_mutex_timedlock \
4957 pthread_rwlock_timedrdlock \
4958 pthread_rwlock_timedwrlock \
4959 pthread_setname_np \
4988 free_aligned_sized \
4996 # AC_CHECK_LIB adds any library found to the variable LIBS, and links these
4997 # libraries with any shared object and/or executable. This is NOT what we
4998 # want for e.g. vgpreload_core-x86-linux.so
5001 AM_CONDITIONAL([HAVE_PTHREAD_BARRIER],
5002 [test x$ac_cv_func_pthread_barrier_init = xyes])
5003 AM_CONDITIONAL([HAVE_PTHREAD_MUTEX_TIMEDLOCK],
5004 [test x$ac_cv_func_pthread_mutex_timedlock = xyes])
5005 AM_CONDITIONAL([HAVE_PTHREAD_SPINLOCK],
5006 [test x$ac_cv_func_pthread_spin_lock = xyes])
5007 AM_CONDITIONAL([HAVE_PTHREAD_SETNAME_NP],
5008 [test x$ac_cv_func_pthread_setname_np = xyes])
5009 AM_CONDITIONAL([HAVE_COPY_FILE_RANGE],
5010 [test x$ac_cv_func_copy_file_range = xyes])
5011 AM_CONDITIONAL([HAVE_PREADV_PWRITEV],
5012 [test x$ac_cv_func_preadv = xyes && test x$ac_cv_func_pwritev = xyes])
5013 AM_CONDITIONAL([HAVE_PREADV2_PWRITEV2],
5014 [test x$ac_cv_func_preadv2 = xyes && test x$ac_cv_func_pwritev2 = xyes])
5015 AM_CONDITIONAL([HAVE_SETCONTEXT], [test x$ac_cv_func_setcontext = xyes])
5016 AM_CONDITIONAL([HAVE_SWAPCONTEXT], [test x$ac_cv_func_swapcontext = xyes])
5017 AM_CONDITIONAL([HAVE_MEMFD_CREATE],
5018 [test x$ac_cv_func_memfd_create = xyes])
5019 AM_CONDITIONAL([HAVE_GETADDRINFO],
5020 [test x$ac_cv_func_getaddrinfo = xyes])
5021 AM_CONDITIONAL([HAVE_CLOSE_RANGE],
5022 [test x$ac_cv_func_close_range = xyes])
5023 AM_CONDITIONAL([HAVE_REALLOCARRAY],
5024 [test x$ac_cv_func_reallocarray = xyes])
5025 AM_CONDITIONAL([HAVE_WCSNCPY],
5026 [test x$ac_cv_func_wcsncpy = xyes])
5027 AM_CONDITIONAL([HAVE_STRLCAT],
5028 [test x$ac_cv_func_strlcat = xyes])
5029 AM_CONDITIONAL([HAVE_STRLCPY],
5030 [test x$ac_cv_func_strlcpy = xyes])
5031 AM_CONDITIONAL([HAVE_FREE_ALIGNED_SIZED],
5032 [test x$ac_cv_func_free_aligned_sized = xyes])
5033 AM_CONDITIONAL([HAVE_SBRK],
5034 [test x$ac_cv_func_sbrk = xyes])
5035 AM_CONDITIONAL([HAVE_WCPNCPY],
5036 [test x$ac_cv_func_wcpncpy = xyes])
5037 AM_CONDITIONAL([HAVE_WCSXFRM],
5038 [test x$ac_cv_func_wcsxfrm = xyes])
5039 AM_CONDITIONAL([HAVE_SEM_TIMEDWAIT],
5040 [test x$ac_cv_func_sem_timedwait = xyes])
5041 AM_CONDITIONAL([HAVE_SEM_CLOCKWAIT_NP],
5042 [test x$ac_cv_func_sem_clockwait_np = xyes])
5044 if test x$VGCONF_PLATFORM_PRI_CAPS = xMIPS32_LINUX \
5045 -o x$VGCONF_PLATFORM_PRI_CAPS = xMIPS64_LINUX \
5046 -o x$VGCONF_PLATFORM_PRI_CAPS = xNANOMIPS_LINUX; then
5047 AC_DEFINE([DISABLE_PTHREAD_SPINLOCK_INTERCEPT], 1,
5048 [Disable intercept pthread_spin_lock() on MIPS32, MIPS64 and nanoMIPS.])
5051 #----------------------------------------------------------------------------
5053 #----------------------------------------------------------------------------
5054 # Do we have a useable MPI setup on the primary and/or secondary targets?
5055 # On Linux, by default, assumes mpicc and -m32/-m64
5056 # Note: this is a kludge in that it assumes the specified mpicc
5057 # understands -m32/-m64 regardless of what is specified using
5059 AC_PATH_PROG([MPI_CC], [mpicc], [mpicc],
5060 [$PATH:/usr/lib/openmpi/bin:/usr/lib64/openmpi/bin])
5063 if test x$VGCONF_PLATFORM_PRI_CAPS = xX86_LINUX \
5064 -o x$VGCONF_PLATFORM_PRI_CAPS = xX86_FREEBSD \
5065 -o x$VGCONF_PLATFORM_PRI_CAPS = xPPC32_LINUX \
5066 -o x$VGCONF_PLATFORM_PRI_CAPS = xARM_LINUX \
5067 -o x$VGCONF_PLATFORM_PRI_CAPS = xMIPS32_LINUX \
5068 -o x$VGCONF_PLATFORM_PRI_CAPS = xNANOMIPS_LINUX \
5069 -o x$VGCONF_PLATFORM_PRI_CAPS = xX86_SOLARIS ; then
5070 mflag_primary=$FLAG_M32
5071 elif test x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_LINUX \
5072 -o x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_FREEBSD \
5073 -o x$VGCONF_PLATFORM_PRI_CAPS = xPPC64_LINUX \
5074 -o x$VGCONF_PLATFORM_PRI_CAPS = xARM64_LINUX \
5075 -o x$VGCONF_PLATFORM_PRI_CAPS = xARM64_FREEBSD \
5076 -o x$VGCONF_PLATFORM_PRI_CAPS = xMIPS64_LINUX \
5077 -o x$VGCONF_PLATFORM_PRI_CAPS = xS390X_LINUX ; then
5078 mflag_primary=$FLAG_M64
5079 elif test x$VGCONF_PLATFORM_PRI_CAPS = xX86_DARWIN ; then
5080 mflag_primary="$FLAG_M32 -arch i386"
5081 elif test x$VGCONF_PLATFORM_PRI_CAPS = xAMD64_DARWIN ; then
5082 mflag_primary="$FLAG_M64 -arch x86_64"
5086 if test x$VGCONF_PLATFORM_SEC_CAPS = xX86_LINUX \
5087 -o x$VGCONF_PLATFORM_SEC_CAPS = xPPC32_LINUX \
5088 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_SOLARIS \
5089 -o x$VGCONF_PLATFORM_SEC_CAPS = xMIPS32_LINUX \
5090 -o x$VGCONF_PLATFORM_SEC_CAPS = xX86_FREEBSD ; then
5091 mflag_secondary=$FLAG_M32
5092 elif test x$VGCONF_PLATFORM_SEC_CAPS = xX86_DARWIN ; then
5093 mflag_secondary="$FLAG_M32 -arch i386"
5098 [ --with-mpicc= Specify name of MPI2-ised C compiler],
5103 ## We AM_COND_IF here instead of automake "if" in mpi/Makefile.am so that we can
5104 ## use these values in the check for a functioning mpicc.
5106 ## We leave the MPI_FLAG_M3264_ logic in mpi/Makefile.am and assume that
5107 ## mflag_primary/mflag_secondary are sufficient approximations of that behavior
5108 AM_COND_IF([VGCONF_OS_IS_LINUX],
5109 [CFLAGS_MPI="-g -O -fno-omit-frame-pointer -Wall -fpic"
5110 LDFLAGS_MPI="-fpic -shared"])
5111 AM_COND_IF([VGCONF_OS_IS_FREEBSD],
5112 [CFLAGS_MPI="-g -O -fno-omit-frame-pointer -Wall -fpic"
5113 LDFLAGS_MPI="-fpic -shared"])
5114 AM_COND_IF([VGCONF_OS_IS_DARWIN],
5115 [CFLAGS_MPI="-g -O -fno-omit-frame-pointer -Wall -dynamic"
5116 LDFLAGS_MPI="-dynamic -dynamiclib -all_load"])
5117 AM_COND_IF([VGCONF_OS_IS_SOLARIS],
5118 [CFLAGS_MPI="-g -O -fno-omit-frame-pointer -Wall -fpic"
5119 LDFLAGS_MPI="-fpic -shared"])
5121 AC_SUBST([CFLAGS_MPI])
5122 AC_SUBST([LDFLAGS_MPI])
5125 ## See if MPI_CC works for the primary target
5127 AC_MSG_CHECKING([primary target for usable MPI2-compliant C compiler and mpi.h])
5129 saved_CFLAGS=$CFLAGS
5131 CFLAGS="$CFLAGS_MPI $mflag_primary"
5132 saved_LDFLAGS="$LDFLAGS"
5133 LDFLAGS="$LDFLAGS_MPI $mflag_primary"
5134 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5138 int ni, na, nd, comb;
5139 int r = MPI_Init(NULL,NULL);
5140 r |= MPI_Type_get_envelope( MPI_INT, &ni, &na, &nd, &comb );
5141 r |= MPI_Finalize();
5144 ac_have_mpi2_pri=yes
5145 AC_MSG_RESULT([yes, $MPI_CC])
5151 CFLAGS=$saved_CFLAGS
5152 LDFLAGS="$saved_LDFLAGS"
5153 AM_CONDITIONAL(BUILD_MPIWRAP_PRI, test x$ac_have_mpi2_pri = xyes)
5155 ## See if MPI_CC works for the secondary target. Complication: what if
5156 ## there is no secondary target? We need this to then fail.
5157 ## Kludge this by making MPI_CC something which will surely fail in
5160 AC_MSG_CHECKING([secondary target for usable MPI2-compliant C compiler and mpi.h])
5162 saved_CFLAGS=$CFLAGS
5163 saved_LDFLAGS="$LDFLAGS"
5164 LDFLAGS="$LDFLAGS_MPI $mflag_secondary"
5165 if test x$VGCONF_PLATFORM_SEC_CAPS = x ; then
5166 CC="$MPI_CC this will surely fail"
5170 CFLAGS="$CFLAGS_MPI $mflag_secondary"
5171 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5175 int ni, na, nd, comb;
5176 int r = MPI_Init(NULL,NULL);
5177 r |= MPI_Type_get_envelope( MPI_INT, &ni, &na, &nd, &comb );
5178 r |= MPI_Finalize();
5181 ac_have_mpi2_sec=yes
5182 AC_MSG_RESULT([yes, $MPI_CC])
5188 CFLAGS=$saved_CFLAGS
5189 LDFLAGS="$saved_LDFLAGS"
5190 AM_CONDITIONAL(BUILD_MPIWRAP_SEC, test x$ac_have_mpi2_sec = xyes)
5193 #----------------------------------------------------------------------------
5194 # Other library checks
5195 #----------------------------------------------------------------------------
5196 # There now follow some tests for Boost, and OpenMP. These
5197 # tests are present because Drd has some regression tests that use
5198 # these packages. All regression test programs all compiled only
5199 # for the primary target. And so it is important that the configure
5200 # checks that follow, use the correct -m32 or -m64 flag for the
5201 # primary target (called $mflag_primary). Otherwise, we can end up
5202 # in a situation (eg) where, on amd64-linux, the test for Boost checks
5203 # for usable 64-bit Boost facilities, but because we are doing a 32-bit
5204 # only build (meaning, the primary target is x86-linux), the build
5205 # of the regtest programs that use Boost fails, because they are
5206 # build as 32-bit (IN THIS EXAMPLE).
5208 # Hence: ALWAYS USE $mflag_primary FOR CONFIGURE TESTS FOR FACILITIES
5209 # NEEDED BY THE REGRESSION TEST PROGRAMS.
5212 # Check whether the boost library 1.35 or later has been installed.
5213 # The Boost.Threads library has undergone a major rewrite in version 1.35.0.
5215 AC_MSG_CHECKING([for boost])
5218 safe_CXXFLAGS=$CXXFLAGS
5219 CXXFLAGS="$mflag_primary"
5221 LIBS="-lboost_thread-mt -lboost_system-mt $LIBS"
5223 AC_LINK_IFELSE([AC_LANG_SOURCE([
5224 #include <boost/thread.hpp>
5225 static void thread_func(void)
5227 int main(int argc, char** argv)
5229 boost::thread t(thread_func);
5234 ac_have_boost_1_35=yes
5235 AC_SUBST([BOOST_CFLAGS], [])
5236 AC_SUBST([BOOST_LIBS], ["-lboost_thread-mt -lboost_system-mt"])
5237 AC_MSG_RESULT([yes])
5239 ac_have_boost_1_35=no
5244 CXXFLAGS=$safe_CXXFLAGS
5247 AM_CONDITIONAL([HAVE_BOOST_1_35], [test x$ac_have_boost_1_35 = xyes])
5250 # does this compiler support -fopenmp, does it have the include file
5251 # <omp.h> and does it have libgomp ?
5253 AC_MSG_CHECKING([for OpenMP])
5256 CFLAGS="-fopenmp $mflag_primary -Werror"
5258 AC_LINK_IFELSE([AC_LANG_SOURCE([
5260 int main(int argc, char** argv)
5268 AC_MSG_RESULT([yes])
5275 AM_CONDITIONAL([HAVE_OPENMP], [test x$ac_have_openmp = xyes])
5278 # Check for __builtin_popcount
5279 AC_MSG_CHECKING([for __builtin_popcount()])
5280 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5282 __builtin_popcount(2);
5285 AC_MSG_RESULT([yes])
5286 AC_DEFINE([HAVE_BUILTIN_POPCOUT], 1,
5287 [Define to 1 if compiler provides __builtin_popcount().])
5292 # Check for __builtin_clz
5293 AC_MSG_CHECKING([for __builtin_clz()])
5294 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5299 AC_MSG_RESULT([yes])
5300 AC_DEFINE([HAVE_BUILTIN_CLZ], 1,
5301 [Define to 1 if compiler provides __builtin_clz().])
5306 # Check for __builtin_ctz
5307 AC_MSG_CHECKING([for __builtin_ctz()])
5308 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5313 AC_MSG_RESULT([yes])
5314 AC_DEFINE([HAVE_BUILTIN_CTZ], 1,
5315 [Define to 1 if compiler provides __builtin_ctz().])
5320 # does this compiler have built-in functions for atomic memory access for the
5322 AC_MSG_CHECKING([if gcc supports __sync_add_and_fetch for the primary target])
5325 CFLAGS="$mflag_primary"
5327 AC_LINK_IFELSE([AC_LANG_PROGRAM([[]], [[
5329 return (__sync_bool_compare_and_swap(&variable, 1, 2)
5330 && __sync_add_and_fetch(&variable, 1) ? 1 : 0)
5332 ac_have_builtin_atomic_primary=yes
5333 AC_MSG_RESULT([yes])
5334 AC_DEFINE(HAVE_BUILTIN_ATOMIC, 1, [Define to 1 if gcc supports __sync_bool_compare_and_swap() and __sync_add_and_fetch() for the primary target])
5336 ac_have_builtin_atomic_primary=no
5342 AM_CONDITIONAL([HAVE_BUILTIN_ATOMIC],
5343 [test x$ac_have_builtin_atomic_primary = xyes])
5346 # does this compiler have built-in functions for atomic memory access for the
5347 # secondary target ?
5349 if test x$VGCONF_PLATFORM_SEC_CAPS != x; then
5351 AC_MSG_CHECKING([if gcc supports __sync_add_and_fetch for the secondary target])
5354 CFLAGS="$mflag_secondary"
5356 AC_LINK_IFELSE([AC_LANG_PROGRAM([[]], [[
5358 return (__sync_add_and_fetch(&variable, 1) ? 1 : 0)
5360 ac_have_builtin_atomic_secondary=yes
5361 AC_MSG_RESULT([yes])
5363 ac_have_builtin_atomic_secondary=no
5371 AM_CONDITIONAL([HAVE_BUILTIN_ATOMIC_SECONDARY],
5372 [test x$ac_have_builtin_atomic_secondary = xyes])
5374 # does this compiler have built-in functions for atomic memory access on
5375 # 64-bit integers for all targets ?
5377 AC_MSG_CHECKING([if gcc supports __sync_add_and_fetch on uint64_t for all targets])
5379 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5382 uint64_t variable = 1;
5383 return __sync_add_and_fetch(&variable, 1)
5385 ac_have_builtin_atomic64_primary=yes
5387 ac_have_builtin_atomic64_primary=no
5390 if test x$VGCONF_PLATFORM_SEC_CAPS != x; then
5393 CFLAGS="$mflag_secondary"
5395 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5398 uint64_t variable = 1;
5399 return __sync_add_and_fetch(&variable, 1)
5401 ac_have_builtin_atomic64_secondary=yes
5403 ac_have_builtin_atomic64_secondary=no
5410 if test x$ac_have_builtin_atomic64_primary = xyes && \
5411 test x$VGCONF_PLATFORM_SEC_CAPS = x \
5412 -o x$ac_have_builtin_atomic64_secondary = xyes; then
5413 AC_MSG_RESULT([yes])
5414 ac_have_builtin_atomic64=yes
5417 ac_have_builtin_atomic64=no
5420 AM_CONDITIONAL([HAVE_BUILTIN_ATOMIC64],
5421 [test x$ac_have_builtin_atomic64 = xyes])
5424 AC_MSG_CHECKING([if platform has openat2 syscall])
5426 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5427 #include <sys/syscall.h>
5432 AC_MSG_RESULT([yes])
5438 AM_CONDITIONAL([HAVE_OPENAT2],
5439 [test x$ac_have_openat2 = xyes])
5445 AC_MSG_CHECKING([if platform has openssl crypto])
5447 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5448 #include <openssl/crypto.h>
5450 CRYPTO_secure_malloc_init(1<<20, 8);
5453 AC_MSG_RESULT([yes])
5460 AM_CONDITIONAL([HAVE_OPENSSL],
5461 [test x$ac_have_openssl = xyes])
5463 AC_MSG_CHECKING([if platform has aio_readv])
5465 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5471 ac_have_aio_readv=yes
5472 AC_MSG_RESULT([yes])
5475 ac_have_aio_readv=no
5479 AM_CONDITIONAL([HAVE_AIO_READV],
5480 [test x$ac_have_aio_readv = xyes])
5482 # does g++ have built-in functions for atomic memory access ?
5483 AC_MSG_CHECKING([if g++ supports __sync_add_and_fetch])
5485 safe_CXXFLAGS=$CXXFLAGS
5486 CXXFLAGS="$mflag_primary"
5489 AC_LINK_IFELSE([AC_LANG_PROGRAM([[]], [[
5491 return (__sync_bool_compare_and_swap(&variable, 1, 2)
5492 && __sync_add_and_fetch(&variable, 1) ? 1 : 0)
5494 ac_have_builtin_atomic_cxx=yes
5495 AC_MSG_RESULT([yes])
5496 AC_DEFINE(HAVE_BUILTIN_ATOMIC_CXX, 1, [Define to 1 if g++ supports __sync_bool_compare_and_swap() and __sync_add_and_fetch()])
5498 ac_have_builtin_atomic_cxx=no
5503 CXXFLAGS=$safe_CXXFLAGS
5505 AM_CONDITIONAL([HAVE_BUILTIN_ATOMIC_CXX], [test x$ac_have_builtin_atomic_cxx = xyes])
5508 if test x$ac_have_usable_linux_futex_h = xyes \
5509 -a x$ac_have_builtin_atomic_primary = xyes; then
5510 ac_enable_linux_ticket_lock_primary=yes
5512 AM_CONDITIONAL([ENABLE_LINUX_TICKET_LOCK_PRIMARY],
5513 [test x$ac_enable_linux_ticket_lock_primary = xyes])
5515 if test x$VGCONF_PLATFORM_SEC_CAPS != x \
5516 -a x$ac_have_usable_linux_futex_h = xyes \
5517 -a x$ac_have_builtin_atomic_secondary = xyes; then
5518 ac_enable_linux_ticket_lock_secondary=yes
5520 AM_CONDITIONAL([ENABLE_LINUX_TICKET_LOCK_SECONDARY],
5521 [test x$ac_enable_linux_ticket_lock_secondary = xyes])
5524 # does libstdc++ support annotating shared pointers ?
5525 AC_MSG_CHECKING([if libstdc++ supports annotating shared pointers])
5527 safe_CXXFLAGS=$CXXFLAGS
5528 CXXFLAGS="-std=c++0x"
5531 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5534 std::shared_ptr<int> p
5536 ac_have_shared_ptr=yes
5538 ac_have_shared_ptr=no
5540 if test x$ac_have_shared_ptr = xyes; then
5541 # If compilation of the program below fails because of a syntax error
5542 # triggered by substituting one of the annotation macros then that
5543 # means that libstdc++ supports these macros.
5544 AC_LINK_IFELSE([AC_LANG_PROGRAM([[
5545 #define _GLIBCXX_SYNCHRONIZATION_HAPPENS_BEFORE(a) (a)----
5546 #define _GLIBCXX_SYNCHRONIZATION_HAPPENS_AFTER(a) (a)----
5549 std::shared_ptr<int> p
5551 ac_have_shared_pointer_annotation=no
5554 ac_have_shared_pointer_annotation=yes
5555 AC_MSG_RESULT([yes])
5556 AC_DEFINE(HAVE_SHARED_POINTER_ANNOTATION, 1,
5557 [Define to 1 if libstd++ supports annotating shared pointers])
5560 ac_have_shared_pointer_annotation=no
5565 CXXFLAGS=$safe_CXXFLAGS
5567 AM_CONDITIONAL([HAVE_SHARED_POINTER_ANNOTATION],
5568 [test x$ac_have_shared_pointer_annotation = xyes])
5570 # checking for GNU libc C17 aligned_alloc
5571 # just check glibc version rather than trying to muck around
5572 # checking the runtime behaviour or seeing if it is a weak alias
5573 AC_MSG_CHECKING([for AT_GNU_LIBC_C17_ALIGNED_ALLOC])
5574 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([[
5575 #include <features.h>
5577 #if !defined(__GLIBC__) || __GLIBC__ != 2 || !defined(__GLIBC_MINOR__) || __GLIBC_MINOR__ < 38
5578 #error "not GNU libc 2.38 or later"
5581 AC_MSG_RESULT([yes])
5582 AC_DEFINE([HAVE_GNU_LIBC_C17_ALIGNED_ALLOC], 1,
5583 [Define to 1 if you have GNU libc C17 aligned_alloc.])
5589 # Check for C11 thrd_create()
5590 AC_MSG_CHECKING([for thrd_create()])
5591 AC_COMPILE_IFELSE([AC_LANG_PROGRAM([
5592 #include <threads.h>
5593 int thrd_entry(void *arg) { return 0; }
5594 ], [[thrd_t thr; return thrd_create(&thr, thrd_entry, NULL);]])],
5596 ac_cxx_have_thrd_create=yes
5597 AC_MSG_RESULT([yes])
5599 ac_cxx_have_thrd_create=no
5603 AM_CONDITIONAL(HAVE_THRD_CREATE, test x$ac_cxx_have_thrd_create = xyes)
5607 #----------------------------------------------------------------------------
5608 # Ok. We're done checking.
5609 #----------------------------------------------------------------------------
5611 # Nb: VEX/Makefile is generated from Makefile.vex.in.
5614 VEX/Makefile:Makefile.vex.in
5618 glibc-2.X-helgrind.supp
5622 docs/xml/vg-entities.xml
5627 gdbserver_tests/Makefile
5628 gdbserver_tests/solaris/Makefile
5634 memcheck/tests/Makefile
5635 memcheck/tests/common/Makefile
5636 memcheck/tests/amd64/Makefile
5637 memcheck/tests/arm64/Makefile
5638 memcheck/tests/x86/Makefile
5639 memcheck/tests/linux/Makefile
5640 memcheck/tests/linux/debuginfod-check.vgtest
5641 memcheck/tests/darwin/Makefile
5642 memcheck/tests/solaris/Makefile
5643 memcheck/tests/freebsd/Makefile
5644 memcheck/tests/amd64-linux/Makefile
5645 memcheck/tests/arm64-linux/Makefile
5646 memcheck/tests/x86-linux/Makefile
5647 memcheck/tests/amd64-solaris/Makefile
5648 memcheck/tests/x86-solaris/Makefile
5649 memcheck/tests/amd64-freebsd/Makefile
5650 memcheck/tests/x86-freebsd/Makefile
5651 memcheck/tests/ppc32/Makefile
5652 memcheck/tests/ppc64/Makefile
5653 memcheck/tests/s390x/Makefile
5654 memcheck/tests/mips32/Makefile
5655 memcheck/tests/mips64/Makefile
5656 memcheck/tests/vbit-test/Makefile
5658 cachegrind/tests/Makefile
5659 cachegrind/tests/x86/Makefile
5660 cachegrind/cg_annotate
5664 callgrind/callgrind_annotate
5665 callgrind/callgrind_control
5666 callgrind/tests/Makefile
5668 helgrind/tests/Makefile
5670 drd/scripts/download-and-build-splash2
5673 massif/tests/Makefile
5678 lackey/tests/Makefile
5681 none/tests/scripts/Makefile
5682 none/tests/amd64/Makefile
5683 none/tests/ppc32/Makefile
5684 none/tests/ppc64/Makefile
5685 none/tests/x86/Makefile
5686 none/tests/arm/Makefile
5687 none/tests/arm64/Makefile
5688 none/tests/s390x/Makefile
5689 none/tests/mips32/Makefile
5690 none/tests/mips64/Makefile
5691 none/tests/nanomips/Makefile
5692 none/tests/linux/Makefile
5693 none/tests/darwin/Makefile
5694 none/tests/solaris/Makefile
5695 none/tests/freebsd/Makefile
5696 none/tests/amd64-linux/Makefile
5697 none/tests/x86-linux/Makefile
5698 none/tests/amd64-darwin/Makefile
5699 none/tests/x86-darwin/Makefile
5700 none/tests/amd64-solaris/Makefile
5701 none/tests/x86-solaris/Makefile
5702 none/tests/x86-freebsd/Makefile
5704 exp-bbv/tests/Makefile
5705 exp-bbv/tests/x86/Makefile
5706 exp-bbv/tests/x86-linux/Makefile
5707 exp-bbv/tests/amd64-linux/Makefile
5708 exp-bbv/tests/ppc32-linux/Makefile
5709 exp-bbv/tests/arm-linux/Makefile
5713 AC_CONFIG_FILES([coregrind/link_tool_exe_linux],
5714 [chmod +x coregrind/link_tool_exe_linux])
5715 AC_CONFIG_FILES([coregrind/link_tool_exe_freebsd],
5716 [chmod +x coregrind/link_tool_exe_freebsd])
5717 AC_CONFIG_FILES([coregrind/link_tool_exe_darwin],
5718 [chmod +x coregrind/link_tool_exe_darwin])
5719 AC_CONFIG_FILES([coregrind/link_tool_exe_solaris],
5720 [chmod +x coregrind/link_tool_exe_solaris])
5721 AC_CONFIG_FILES([tests/filter_stderr_basic],
5722 [chmod +x tests/filter_stderr_basic])
5723 AC_CONFIG_FILES([tests/filter_discards],
5724 [chmod +x tests/filter_discards])
5725 AC_CONFIG_FILES([memcheck/tests/filter_stderr],
5726 [chmod +x memcheck/tests/filter_stderr])
5727 AC_CONFIG_FILES([memcheck/tests/filter_dw4],
5728 [chmod +x memcheck/tests/filter_dw4])
5729 AC_CONFIG_FILES([memcheck/tests/filter_overlaperror],
5730 [chmod +x memcheck/tests/filter_overlaperror])
5731 AC_CONFIG_FILES([memcheck/tests/x86/filter_pushfpopf],
5732 [chmod +x memcheck/tests/x86/filter_pushfpopf])
5733 AC_CONFIG_FILES([gdbserver_tests/filter_gdb],
5734 [chmod +x gdbserver_tests/filter_gdb])
5735 AC_CONFIG_FILES([gdbserver_tests/filter_memcheck_monitor],
5736 [chmod +x gdbserver_tests/filter_memcheck_monitor])
5737 AC_CONFIG_FILES([gdbserver_tests/filter_stderr],
5738 [chmod +x gdbserver_tests/filter_stderr])
5739 AC_CONFIG_FILES([gdbserver_tests/filter_vgdb],
5740 [chmod +x gdbserver_tests/filter_vgdb])
5741 AC_CONFIG_FILES([drd/tests/filter_stderr],
5742 [chmod +x drd/tests/filter_stderr])
5743 AC_CONFIG_FILES([drd/tests/filter_error_count],
5744 [chmod +x drd/tests/filter_error_count])
5745 AC_CONFIG_FILES([drd/tests/filter_error_summary],
5746 [chmod +x drd/tests/filter_error_summary])
5747 AC_CONFIG_FILES([drd/tests/filter_stderr_and_thread_no_and_offset],
5748 [chmod +x drd/tests/filter_stderr_and_thread_no_and_offset])
5749 AC_CONFIG_FILES([drd/tests/filter_thread_no],
5750 [chmod +x drd/tests/filter_thread_no])
5751 AC_CONFIG_FILES([drd/tests/filter_xml_and_thread_no],
5752 [chmod +x drd/tests/filter_xml_and_thread_no])
5753 AC_CONFIG_FILES([helgrind/tests/filter_stderr],
5754 [chmod +x helgrind/tests/filter_stderr])
5760 Maximum build arch: ${ARCH_MAX}
5761 Primary build arch: ${VGCONF_ARCH_PRI}
5762 Secondary build arch: ${VGCONF_ARCH_SEC}
5763 Build OS: ${VGCONF_OS}
5764 Link Time Optimisation: ${vg_cv_lto}
5765 Primary build target: ${VGCONF_PLATFORM_PRI_CAPS}
5766 Secondary build target: ${VGCONF_PLATFORM_SEC_CAPS}
5767 Platform variant: ${VGCONF_PLATVARIANT}
5768 Primary -DVGPV string: -DVGPV_${VGCONF_ARCH_PRI}_${VGCONF_OS}_${VGCONF_PLATVARIANT}=1
5769 Default supp files: ${DEFAULT_SUPP}