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In my C++ project, I have a convention where whenever the macro DEBUG is defined, debugging printf-esque statements are compiled into the executable.

To indicate whether or not I want these compiled into the executable, I normally would pass the macro name to gcc with the -Dmacro option. So, in the Makefile I (currently) have:

CXXFLAGS += -g -I ../ -Wall -Werror -DDEBUG

However, this is not very flexible; if I didn't want debug statements in my final program, I'd have to modify the Makefile to remove the -DDEBUG.

Is there a way to modify the Makefile such that I can conditionally select whether to compile with -D in the CXXFLAGS at compile time by passing in, say, another target name or a commandline switch? Not sure how'd I go about doing that.

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5 Answers 5

up vote 3 down vote accepted

You can conditionally define other variables based on the target in the makefile.

all:    target
debug:  target

debug:  DEBUG=PLOP

        @echo "HI $(DEBUG)"

So now:

> make
> make debug
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Nice and simple. – J. Polfer Sep 17 '09 at 18:55

Append another variable that you can set from the CLI or environment

$ cat Makefile

    echo $(CXXFLAGS)
echo -DDEBUG
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Consider this one:

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I use this:


all: target

debug: target


and in the source code

#ifdef DEBUG
std::cout << "Debugging..." << std::endl;
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After meditating upon the make documentation, I tried putting this in my Makefile:

ifneq(,$(findstring d,$(MAKEFLAGS)))
CXXFLAGS += <... all normal options ...> -DDEBUG
CXXFLAGS += <... all normal options ...>

Then, when you run make -d, -DDEBUG is set.

Now, mind you, it works, but I had to use a normal flag that make usually accepts (you can't make up your own). Using -d also spews (harmless) verbose make-level debugging statements to the screen. Which I really don't want; it obscures compile errors. But it does work.

I hope someone can come up with a better idea.

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Amro's link has a variation on this idea, which is better than mine. – J. Polfer Sep 17 '09 at 18:51

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