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I have 2 projects in the same solution: A is static library and B is exe. B depends on A

In B I do a declaration for a DEBUG mode. Something like #define DEBUG

Then I went to check if DEBUG is defined in A, if it does then do some debug printing:

// Code in A
#ifdef DEBUG
cout<<"debug message";
#endif

But this doesn't seem to work. I guess when A is built it doesn't have knowledge about B. How do we go about doing this? Basically because I have different executable project relying on A, and some of them need to print debug messages, and some don't. And yet I don't want to rebuilt A everytime I switch from B to another executable project.

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3 Answers 3

up vote 1 down vote accepted

The usual solution is to build two A's, one for Debug and one for non-debug. Then the other projects can choose which one to link against.

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Thanks for your reply! The exact nature is not really debugging or not debugging, but something slightly different and can only be determined in B. I guess in that case some sort of virtual inheritance in B would do the job? –  huy Mar 27 '11 at 7:22
    
Actually this gives me an idea of different custom Builds. Thanks! –  huy Mar 27 '11 at 7:41

#define is a preprocessor macro

It is expanded before compilation. Nothing you do in B is going to have an effect on the already compiled A.

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Well, you need some common header for B and A where you can define DEBUG option. Or create some static function in B, like isDebug, define it depending on DEBUG and use it in A.

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