Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I understand that CFLAGS (or CXXFLAGS for C++) are for the compiler, whereas CPPFLAGS is used by the preprocessor.

But I still don't understand the difference.

I need to specify an include path for a header file that is included with #include -- because #include is a preprocessor directive, is the preprocessor (CPPFLAGS) the only thing I care about?

Under what circumstances do I need to give the compiler an extra include path?

In general, if the preprocessor finds and includes needed header files, why does it ever need to be told about extra include directories? What use is CFLAGS at all?

(In my case, I actually found that BOTH of these allow me to compile my program, which adds to the confusion... I can use CFLAGS OR CPPFLAGS to accomplish my goal (in autoconf context at least). What gives?)

share|improve this question
1  
possible duplicate of stackoverflow.com/questions/495598/… –  Michael Mrozek May 2 '10 at 21:03
add comment

3 Answers

up vote 58 down vote accepted

The implicit make rule for compiling a C program is

%.o:%.c
    $(CC) $(CPPFLAGS) $(CFLAGS) -c -o $@ $<

where the $() syntax expands the variables. As both CPPFLAGS and CFLAGS are used in the compiler call, which you use to define include paths is a matter of personal taste. For instance if foo.c is a file in the current directory

make foo.o CPPFLAGS="-I/usr/include"
make foo.o CFLAGS="-I/usr/include"

will both call your compiler in exactly the same way, namely

gcc -I/usr/include -c -o foo.o foo.c

The difference between the two comes into play when you have multiple languages which need the same include path, for instance if you have bar.cpp then try

make bar.o CPPFLAGS="-I/usr/include"
make bar.o CFLAGS="-I/usr/include"

then the compilations will be

g++ -I/usr/include -c -o bar.o bar.cpp
g++ -c -o bar.o bar.cpp

as the C++ implicit rule also uses the CPPFLAGS variable.

This difference gives you a good guide for which to use - if you want the flag to be used for all languages put it in CPPFLAGS, if it's for a specific language put it in CFLAGS, CXXFLAGS etc. Examples of the latter type include standard compliance or warning flags - you wouldn't want to pass -std=c99 to your C++ compiler!

You might then end up with something like this in your makefile

CPPFLAGS=-I/usr/include
CFLAGS=-std=c99
CXXFLAGS=-Weffc++
share|improve this answer
    
+1 for a short, concise explanation. –  René Nyffenegger Dec 4 '12 at 12:38
    
Note that you cannot run stand-alone cpp using CPPFLAGS and expect any reasonable result because -std=c99 affects which symbols are defined (especially in lieu of feature test macros). Instead, you need $(CC) $(CPPFLAGS) $(CFLAGS) -E. –  Jed Jan 14 '13 at 16:06
    
I wanted to call this out as one of the best answers I have ever seen on stackoverflow. It was quite helpful to me. +1 and thank you! –  Evan Moran May 20 at 19:33
add comment

You are after implicit make rules.

share|improve this answer
    
Thanks I'll go have a read –  EBM May 2 '10 at 22:18
add comment

The CPPFLAGS macro is the one to use to specify #include directories.

Both CPPFLAGS and CFLAGS work in your case because the make(1) rule combines both preprocessing and compiling in one command (so both macros are used in the command).

You don't need to specify "." as an include-directory if you use the form '#include "..."'. You also don't need to specify the standard compiler include directory. You do need to specify all other include-directories.

share|improve this answer
    
This makes more sense, but I still don't see what CFLAGS does, then. If, as you seem to imply, compilation in more complex projects is done in a separate step from preprocessing, will preprocessing succeed but compilation fail if CFLAGS doesn't add the same paths that CPPFLAGS added for the preprocessor? I guess I don't understand what the compiler does with include paths if the preprocessor already processed the #include directives? –  EBM May 2 '10 at 22:21
1  
@EB If you're compiling preprocessed files then include paths are unnecessary - the required headers have already been added to the preprocessed source (Have a look at the output when you run gcc -E on a file - there are no #includes). Most modern compilers combine the pre-processing and compilation steps, so you don't have to worry about this. –  Scott Wales May 3 '10 at 7:33
    
THANKS, Scott!! Your time and patience is REALLY appreciated. –  EBM May 4 '10 at 6:19
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.