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(disclaimer: I am used to scons ... I am somewhat unexperienced with make)

Context: I am using Eclipse CDT which generates makefiles.

Let's say I have a project directory 'lib' and 2 build configurations 'Debug' and 'Release'. Eclipse CDT gracefully generates a makefile for each build configuration. The said makefiles end-up residing in 'Debug' and 'Release' folders.

Now, what I want to do is have a makefile in the folder 'lib' which calls the makefiles 'Debug/makefile' and 'Release/makefile'.

How do I do that?

I want to be able to launch 'make' in the folder 'lib' and both configurations would be called with the specified target(s).

Solution Based on all the great input gathered here, I devised the following:

MAKE=make
BUILDS=Release Debug
TARGETS=all clean

$(TARGETS):
    @for b in $(BUILDS) ; do $(MAKE) -C $$b $@ ; done

$(BUILDS):
    @for t in $(TARGETS) ; do $(MAKE) -C $@ $$t ; done

%:
    @for b in $(BUILDS) ; do $(MAKE) -C $$b $@ ; done
share|improve this question
    
@hacker: thanks! –  jldupont Sep 30 '09 at 15:44
    
Umm... take another look at your BUILDS rule. If you "make Release" it will make all (in Release), then make clean (in Release). I suggest $(BUILDS):<br><t>$(MAKE) -C $@ –  Beta Sep 30 '09 at 16:22
    
Beta, certainly it isn't supposed to make sense, it's a set of examples ;-) –  Michael Krelin - hacker Sep 30 '09 at 16:31
1  
@hacker, you're the one who wrote my Perl textbook, aren't you? AREN'T YOU!?! –  Beta Sep 30 '09 at 16:43
    
Beta ;-) I'm not alone. –  Michael Krelin - hacker Oct 1 '09 at 6:56

4 Answers 4

up vote 3 down vote accepted

depends on what is "calls". You want to either

include $(BUILD)/Makefile

or

$(MAKE) -C $(BUILD) $@

or some such. I'd guess you want the latter. Maybe something like

release debug:
    $(MAKE) -C $@

You get the idea.

More examples:

BUILDS=release debug
TARGETS=all clean

$(TARGETS):
    for b in $(BUILDS) ; do $(MAKE) -C $$b $@ ; done

$(BUILDS):
    for t in $(TARGETS) ; do $(MAKE) -C $@ $$t ; done
share|improve this answer
    
what does the $(BUILD) variables stand for? Is it contextual to make itself or am I expected to specify it? –  jldupont Sep 30 '09 at 14:15
    
It was to give you an idea. Like if you have BUILD=debug it will go build (whatever the target is) into $(BUILD) - debug directory. Your final makefile is up to you, anyway ;-) –  Michael Krelin - hacker Sep 30 '09 at 14:16
    
But I do not want to have to specify all the supported target in this 'top level' makefile: I want to pass along the targets from the command-line down to the sub makefiles... How do I achieve this? –  jldupont Sep 30 '09 at 14:19
    
It seems that having a % target proves useful to helping solve my problem... the trouble is that the implicit target all (when just invoking make without parameters) does not get processed... how do I go about solving this? –  jldupont Sep 30 '09 at 14:26
    
Yes, you can use wildcard targets. You can try adding default: all target in the very beginning of the makefile. I think that should to the trick. –  Michael Krelin - hacker Sep 30 '09 at 14:57

Since you mention "the specified target(s)", I suggest:

%:
    $(MAKE) -C Debug $@
    $(MAKE) -C Release $@

If that's too general, you can replace the % with $(TARGETS), where TARGETS is something you define, a list of all the things you'd ever want to do this with.

share|improve this answer
    
Tried this but it does not work with the default command launch make : it complains that the target all isn't specified ;-( –  jldupont Sep 30 '09 at 14:27
    
@Jean-Lou Dupont: you just need to add all: debug release to the beginning of the makefile provided by Beta. –  Pavel Shved Sep 30 '09 at 15:14
all: release debug

release:
   $(MAKE) -C ../Release

debug:
   $(MAKE) -C ../Debug

I'm assuming they're all on the same level. The path must be from where you call Make.

share|improve this answer
    
Minor correction: the makefiles are located in lib/Debug and lib/Release so it should be make -C Debug and make -C Release. Works fine! Thanks! –  jldupont Sep 30 '09 at 14:08
    
But what about specifying targets for each? I do not want to be limited to 'debug' and 'release'. Don't I need a $@ somewhere?? –  jldupont Sep 30 '09 at 14:10
    
Beta's answer covers that nicely :) –  Daniel Bingham Sep 30 '09 at 14:19

Have different targets that invoke the makefile in the two directories.

all: debug product

debug:
        $(MAKE) -f debug/Makefile

product:
        $(MAKE) -f product/Makefile
share|improve this answer
    
Doesn't account for the relative path hierarchy contained in the sub makefiles. –  jldupont Sep 30 '09 at 14:28
    
Of course, this was an example to show you how to structure the top-level makefile. You didn't provide your sub-makefiles, so it wasn't possible to know that they contained relative paths. The projects that I work on do not rely on relative paths in the sub-makefiles, but pass additional parameters down to the sub-makefiles to identify build locations. –  JZeeb Sep 30 '09 at 14:56

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