SCons User Guide 0.96.1 | ||
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Usually, you build a library because you want to link it with one or more programs. You link libraries with a program by specifying the libraries in the LIBS construction variable, and by specifying the directory in which the library will be found in the LIBPATH construction variable:
Library('foo', ['f1.c', 'f2.c', 'f3.c']) Program('prog.c', LIBS=['foo', 'bar'], LIBPATH='.') |
Notice, of course, that you don't need to specify a library prefix (like lib) or suffix (like .a or .lib). SCons uses the correct prefix or suffix for the current system.
On a POSIX or Linux system, a build of the above example would look like:
% scons -Q cc -c -o f1.o f1.c cc -c -o f2.o f2.c cc -c -o f3.o f3.c ar r libfoo.a f1.o f2.o f3.o ranlib libfoo.a cc -c -o prog.o prog.c cc -o prog prog.o -L. -lfoo -lbar |
On a Windows system, a build of the above example would look like:
C:\>scons -Q cl /nologo /c f1.c /Fof1.obj cl /nologo /c f2.c /Fof2.obj cl /nologo /c f3.c /Fof3.obj lib /nologo /OUT:foo.lib f1.obj f2.obj f3.obj cl /nologo /c prog.c /Foprog.obj link /nologo /OUT:prog.exe /LIBPATH:. foo.lib bar.lib prog.obj |
As usual, notice that SCons has taken care of constructing the correct command lines to link with the specified library on each system.
Note also that, if you only have a single library to link with, you can specify the library name in single string, instead of a Python list, so that:
Program('prog.c', LIBS='foo', LIBPATH='.') |
is equivalent to:
Program('prog.c', LIBS=['foo'], LIBPATH='.') |
This is similar to the way that SCons handles either a string or a list to specify a single source file.
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