110

I am a beginner to CMAKE. Below is a simple cmake file which works well in mingw environment windows. The problem is clearly with target_link_libraries() function of CMAKE where I am linking libwsock32.a. In windows this works and I get the results.

However, as expected, in Linux, the /usr/bin/ld will look for -lwsock32 which is NOT there on the Linux OS.

My Problem is: How do I instruct CMAKE to avoid linking wsock32 library in Linux OS???

Any help will be greatly appreciated.

My Simple CMake file:

 PROJECT(biourl)
 set (${PROJECT_NAME}_headers ./BioSocketAddress.h  ./BioSocketBase.h ./BioSocketBuffer.h ./BioSocketCommon.h  ./BioSocketListener.h  ./BioSocketPrivate.h  ./BioSocketStream.h ./BioUrl.h BioDatabase.h )

set (${PROJECT_NAME}_sources BioSocketAddress.C  BioSocketBase.C  BioSocketCommon.C BioSocketStream.C  BioUrl.C BioDatabase.C )

add_library(${PROJECT_NAME} STATIC ${${PROJECT_NAME}_headers} ${${PROJECT_NAME}_sources} )

# linkers
#find_library(ws NAMES wsock32 PATHS ${PROJECT_SOURCE_DIR} NO_SYSTEM_ENVIRONMENT_PATH NO_DEFAULT_PATH)

target_link_libraries(${PROJECT_NAME} bioutils wsock32)

install (TARGETS ${PROJECT_NAME}
       RUNTIME DESTINATION bin
       LIBRARY DESTINATION lib
       ARCHIVE DESTINATION lib/archive )
149

Use

if (WIN32)
    #do something
endif (WIN32)

or

if (UNIX)
    #do something
endif (UNIX)

or

if (MSVC)
    #do something
endif (MSVC)

or similar

see CMake Useful Variables and CMake Checking Platform

| improve this answer | |
75

Given this is such a common issue, geronto-posting:

    if(UNIX AND NOT APPLE)
        set(LINUX TRUE)
    endif()

    # if(NOT LINUX) should work, too, if you need that
    if(LINUX) 
        message(STATUS ">>> Linux")
        # linux stuff here
    else()
        message(STATUS ">>> Not Linux")
        # stuff that should happen not on Linux 
    endif()

CMake boolean logic docs

CMake platform names, etc.

  • 9
    Thanks for mentioning APPLE. – Victor Sergienko Jan 28 '16 at 15:50
  • @VictorSergienko Всегда рад помочь :) – mlvljr Jan 28 '16 at 20:14
  • 3
    dont assume unix is linux. link to the cmake useful variables website for cmake_system_name. use Linux mixed case OS detector – don bright Oct 22 '16 at 17:24
  • tibur's answer is better – don bright Oct 25 '16 at 1:28
  • 1
    Yeah, FreeBSD will also pass (UNIX AND NOT APPLE) ... and @mlvljr 's link has changed to: gitlab.kitware.com/cmake/community/-/wikis/doc/tutorials/… now. – SlySven Mar 24 at 23:12
47

In General

You can detect and specify variables for several operating systems like that:

Detect Microsoft Windows

if(WIN32)
    # for Windows operating system in general
endif()

Or:

if(MSVC OR MSYS OR MINGW)
    # for detecting Windows compilers
endif()

Detect Apple MacOS

if(APPLE)
    # for MacOS X or iOS, watchOS, tvOS (since 3.10.3)
endif()

Detect Unix and Linux

if(UNIX AND NOT APPLE)
    # for Linux, BSD, Solaris, Minix
endif()

Your specific linker issue

To solve your issue with the Windows-specific wsock32 library, just remove it from other systems, like that:

if(WIN32)
    target_link_libraries(${PROJECT_NAME} bioutils wsock32)
else
    target_link_libraries(${PROJECT_NAME} bioutils)
endif()
| improve this answer | |
  • 2
    What does one use for Solaris? – jww Aug 29 '17 at 11:16
  • 1
    Typo: MSVS should be MSVC. I tried to edit it for you but stackoverflow doesn't allow edits that are less than 6 characters for some reason... – mchiasson Mar 11 '18 at 15:25
  • 1
    According to the documentation, "APPLE" only implies, that we're building for an apple target; i.e. OSX, but also iOS, watchOS etc. Are there any ways to detect os X in a reliable manner? – user1596212 Mar 28 '18 at 22:19
  • @Julien if you are building for iOS, tvOS or watchOS, you're most likely going to be using a cmake toolchain file, which should have some kind of variable set in there that could be used to achieve what you're looking for. – mchiasson Apr 7 '18 at 21:43
  • @Julien FWIW: the cmake documentation only confirms that it also includes iOS, watchOS, tvOS since 3.10.3 – itMaxence Jul 25 '18 at 11:11
19

You have some special words from CMAKE, take a look:

if(${CMAKE_SYSTEM_NAME} STREQUAL "Linux")
    // do something for Linux
else
    // do something for other OS
| improve this answer | |
  • 3
    The standard CMake way: internally-inconsistent :) [this is one right / to-the-point answer, though] – mlvljr Aug 27 '15 at 20:44
  • For those searching, here is the list of names github.com/Kitware/CMake/blob/master/Modules/… – A T Apr 15 at 2:45
  • STREQUAL accepts variables (in addition to string) as first operand, so it could be the more concise if(CMAKE_SYSTEM_NAME STREQUAL "Linux")... – Ad N Jul 6 at 14:37
12

Generator expressions are also possible:

target_link_libraries(
    target_name
    PUBLIC
        libA
        $<$<PLATFORM_ID:Windows>:wsock32>
    PRIVATE
        $<$<PLATFORM_ID:Linux>:libB>
        libC
)

This will link libA, wsock32 & libC on Windows and link libA, libB & libC on Linux

CMake Generator Expressions

| improve this answer | |
  • Thanks for this just you add extra ">". which is "$<$<PLATFORM_ID:Windows>:wsock32>" – wow2006 Feb 5 '19 at 12:49
6

Try that:

if(WIN32)
    set(ADDITIONAL_LIBRARIES wsock32)
else()
    set(ADDITIONAL_LIBRARIES "")
endif()

target_link_libraries(${PROJECT_NAME} bioutils ${ADDITIONAL_LIBRARIES})

You can find other useful variables here.

| improve this answer | |
  • This worked and I personally like this since its very intuitive. Thank you very much. – Prasad Feb 7 '12 at 3:11
2

I want to leave this here because I struggled with this when compiling for Android in Windows with the Android SDK.

CMake distinguishes between TARGET and HOST platform.

My TARGET was Android so the variables like CMAKE_SYSTEM_NAME had the value "Android" and the variable WIN32 from the other answer here was not defined. But I wanted to know if my HOST system was Windows because I needed to do a few things differently when compiling on either Windows or Linux or IOs. To do that I used CMAKE_HOST_SYSTEM_NAME which I found is barely known or mentioned anywhere because for most people TARGEt and HOST are the same or they don't care.

Hope this helps someone somewhere...

| improve this answer | |
-5

Use some preprocessor macro to check if it's in windows or linux. For example

#ifdef WIN32
LIB= 
#elif __GNUC__
LIB=wsock32
#endif

include -l$(LIB) in you build command.

You can also specify some command line argument to differentiate both.

| improve this answer | |
  • 6
    User is asking for CMake makefiles. – tibur Feb 6 '12 at 15:07

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