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I know that #define replaced before the compiling to real values. so why the first code here compile with no error, and the 2nd not?

the 1st;

#include <stdio.h>
#include <stdlib.h>
int main()
{
   printf("bc");
   return 0;
}

the 2nd(not working);

#include <stdio.h>
#include <stdlib.h>
#define Str "bc";
int main()
{
   printf(Str);
   return 0;
}

error: expected ')' before ';' token

thank you for the answers, and sorry about my poor English...

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Are you sure the first one is compiling? The error looks like because of the ; after "bc" in your first example. –  Michael Foukarakis Jul 15 '11 at 8:15
    
thank you, my mistake, i replace the two code blocks –  yoni Jul 15 '11 at 8:17
    
Thank you every body, I forgot the semicolon. –  yoni Jul 15 '11 at 8:21
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7 Answers 7

up vote 4 down vote accepted

Because the Str macro evaluates to "bc"; — the semicolon is included. So your macro expands to:

printf("bc";);

You do not need to follow a #define with a semicolon. They end at a newline, rather than at the semicolon like a C statement. It is confusing, I know; the C preprocessor is a strange beast and was invented before people knew better.

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Actually the second works and the first doesn't. The problem is the semicolon:

#define Str "bc";
                ^
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Use

#define Str "bc"

with your define after the substitution it will look like:

printf("bc";);
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The problem with the first one is that Str is replaced with "bc";.

Change it to

#define Str "bc"
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You need to remove ; where you define str. Because you will get printf("bc";);

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The first code does not compile because you need to remove the semicolon after the #define the 2nd code works as it should.

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The first one doesn't work because these lines:

#define Str "bc";
printf(Str);

expand to this line:

printf("bc";);

You want:

#define Str "bc"
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