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We are evaluating scons as a build system, and I am having a problem accomodating our old system. In some of our source code subdirectories, we have a "sources.lib" file that lists the names of the C++ files that need to be compiled to assemble that directory's target library. But, there are additional C++ files in the same directory, so I can't just use Glob() to find the appropriate ones.

How do I find out which directory a SConscript file resides in? os.getcwd() always returns the build directory. Even though the documentation states that paths in a SConscript are relative to the source directory (or else Glob('*.cpp') wouldn't work), just doing an open('sources.lib') fails because it looks for the file in the build directory. Finally, the build environment in that SConscript file doesn't contain the actual current source directory.

Edit From this reply it looks like

File('sources.lib').srcnode().abspath

returns the proper filename and directory, but it won't tell you if it exists (must use os.path.isfile for that). It also appears that

Dir('.').srcnode().abspath

will tell you where the SConstruct file resides.

Example When defining which source files to compile for a library, I don't want to use

lib = env.SharedLibrary('mylib', Glob('*.cpp'))

but instead would rather construct a function that first checks for the existence of "sources.lib" and if it does not exist, use globbing. So I'm defining my library like so

lib = env.SharedLibrary('mylib', env.getSources('*.cpp'))

and making a function that reads the file if it exists

def getSources(self, pattern):

    # list of source files to assign to a target
    sources = []
    # srcFile = 'sources.lib' # failed
    # srcFile = os.path.join(os.getcwd(), 'sources.lib') # failed
    srcFile = File('sources.lib').srcnode().abspath # works

    # look for sources.lib
    try:
        infile = open(srcFile,'r')
    except IOError:
        #print "Globbing to get sources"
        sources = Glob(pattern, strings=True)
    else:
        #print "Reading sources.lib"
        for line in infile.readlines():
            line = line.rstrip('\n\r')
            if line != '':
                sources.append(line)

    return sources

buildEnv.AddMethod(getSources)

This seems to work. I didn't know about File.srcnode().abspath until today.

share|improve this question
    
To determine if a file exists, you can use os.path.exists() –  Brady Mar 21 '12 at 14:46
    
I don't understand your problem, create small example which illustrate it. –  Torsten Mar 21 '12 at 14:50
    
Your question saved me :) Dir('.').srcnode().abspath worked for me. I use this option env.SConscriptChdir(0) to avoid directory "slides". Thanks! –  Destroyica Oct 29 '13 at 16:23
    
Me too! I was looking to form an additional python import path (for sys.path.append), based on the current SConscript location, and os.path.dirname(os.path.abspath(file)) did not work (no file defined), but your Dir('.') method worked fine. –  Evgenii Puchkaryov Sep 5 at 1:53

2 Answers 2

There are 3 types of paths in SCons:

  1. Relative to the root SConstruct prepending '#' to the path
  2. Relative to the SConscript not using the '#'.
  3. Absolute path. I think this is self-explanatory :)

If you need to deal with paths outside of the directory where the SConscript is, you should use the '#'

It should work both ways in this example, but the path with the '#' seems more explicit and intuitive to me:

./SConstruct
./dirA/SConscript - use '#dirA/sources.lib' OR 'sources.lib'
./dirB/SConscript - use '#dirB/sources.lib' OR 'sources.lib'

Hope this helps,

Brady

share|improve this answer
    
According to the documentation the default relative path is to the curretn SConstruct file and not to where scons was executed. –  edA-qa mort-ora-y Mar 22 '12 at 14:15
    
You're absolutely right, I just tested it too. Sorry for the confusion, I'll correct my answer. I had a problem with this once and was convinced that it was relative to from where scons was executed, for example if you're in a subdir and use 'scons -u', but that appears not to be the case. Thanks for the correction. –  Brady Mar 23 '12 at 8:38
    
But what about the current SConscript, as opposed to the SConscript that actually calls a builder? In my case I'm trying to setup the common environment to be used by many sub-modules - this includes adding a include/ dir in the current SConscript directory to CPPPATH. –  Jonathon Reinhart yesterday
    
Not sure I understand what your asking. A path in a particular SConscript, should be relative to that SConscript file, and shouldnt matter from where you call scons. –  Brady 14 hours ago

I use the following code:

this_sconscript_file = (lambda x:x).func_code.co_filename
code_base = os.path.dirname(this_sconscript_file)
share|improve this answer
    
Doesn't os.path.dirname(__file__) do the same thing? –  tutuca Jul 26 '13 at 16:58
2  
No, because scons includes SConscripts somehow in such a way, that __file__ always refers the root script, even in included scripts. –  olpa Jul 26 '13 at 20:33
    
Good workaround. I still think that Dir('.').srcnode().abspath is a nicer solution. –  Giulio Ghirardo May 11 at 13:58

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