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I have define the following macro,

#define abss(a) a >= 0 ? a : -a

while invoking this with,

int b=-1;
int c = abss(b);
printf("%d\n",c);

it should replaced in the form b >= 0 ? b : --b, which should output -2, but it outputs in my Bloodshed/DevC++ compiler 1.

I am analyzing C language for examination purpose, so I have to know what actually happens to the above case in C. Is the output result 1 is for CPP compiler I am using or what???

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4  
You maybe read something first.... I mean about the C/C++. –  Kirill Kobelev Jun 26 '12 at 10:39
    
And please, please don't read that manual you keep linking to, ever again. It's {vulgar term deleted} beyond bad, useless, misleading, deranged, brain-dead, the worst work I've seen on the subject in over 20 years. –  DevSolar Jun 26 '12 at 11:04
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7 Answers

Your code

int b=-1;
int c = abss(b);
printf("%d\n",c);

gets translated by the preprocessor to:

int b=-1;
int c = b >= 0 ? b : -b;
printf("%d\n",c);

(the int b=-1 is in the C domain whereas the abss(b) gets expanded by the preprocessor before the compiler gets to int b=-1)

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check this at section 6-5 of preprocessor...elmicro.com/files/cosmic/clanguage.pdf –  amin__ Jun 26 '12 at 10:54
    
@alaminhosain: firstly, the manual is wrong. If it accurately describes what Cosmic compilers do, then the compilers are wrong. In their example it is not the case that ABS(-b) expands to -b >= 0 ? -b : --b, in fact it expands to -b >= 0 ? -b : - -b. Secondly, you didn't follow the example in the manual anyway, since you did abss(b) not abss(-b). –  Steve Jessop Jun 26 '12 at 11:26
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Why on earth do you think it should output -2?

#define abss(a) a >= 0 ? a : -a

so this: int c = abss(b)

becomes int c = b >= 0 ? b : -b

and b is -1, so that will evaluate to 1

by the way, you should bracket every use of a macro parameter, as you may get passed such things as x + 1. which would evaluate rather strangely.

Not to mention the results of abss(++x)

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I did not expect output -2. I did expect compiler to output wrong as I read in a c language manual by cosmic software...you can check this at section 6-5 of preprocessor...elmicro.com/files/cosmic/clanguage.pdf –  amin__ Jun 26 '12 at 10:53
    
There is a subtle difference between abss(b) where b = -1 and abss(-b) where b is 1. Note that you are passing 2 different text strings to the macro. What you've coded isn't at all the same thing as the example in the book. Read the explanation in the book more carefully. –  Tom Tanner Jun 27 '12 at 15:09
    
also, as Steve said above, your compiler is not exactly standard if it does that as it's not meant to paste symbols in that way –  Tom Tanner Jun 27 '12 at 15:16
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Your macro expands to

b >= 0 ? b : -b;

Not to b >= 0 ? b : --(-b); or whatever it is you expected.

Are you suggesting that

int x = -4;
-x; 

should decrement x?

Bottom line - avoid macro use when possible.

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I found this expansion in Cosmic Software's C language manual at 6-5 section of preprocessor, you may check this.... google.com/… –  amin__ Jun 26 '12 at 10:44
2  
@alaminhosain: Well, obviously that manual is beyond crap. –  DevSolar Jun 26 '12 at 10:50
    
@alaminhosain: Two points. First: that manual is wrong, perhaps obsolete (first C preprocessors behaved that way, but that was before ANSI standard and that's 23 years ago). Second: you reproduced the example wrong. A - directly in the macro argument will appear in the expansion, but - used in initializing a variable that will become parameter won't, because the preprocessor only works with the variable's name. –  Jan Hudec Jun 26 '12 at 11:00
    
example you have given is a compile time work. but macro expanding occurs before compilation... how you can compare them?? –  amin__ Jun 26 '12 at 11:02
2  
@alaminhosain: A quick search, or even a visit at Wikipedia, would give you a wide range of material, both on- and offline. Kernighan & Ritchie "The C Programming Language" is the seminal book on the topic. –  DevSolar Jun 26 '12 at 11:18
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The macro processor will never attach two adjacent tokens together, even if there is no whitespace between them, so indeed, as other posters have mentioned, your macro expands to - b, or 1.

If you want two tokens to become one when expanded by the preprocessor, you have to use the token pasting operator ##, something like

#define abss(a) a >= 0 ? a : - ## a

this will indeed do what you want, in the sense that the negative sign and the variable will form one token. Unfortunately (or fortunately, depending on how you look at it!) the pasted token "-b" will be invalid, and the expansion will not compile.

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#define neg(a) -a

int b = -1;
neg(b);

In the above case, the macro is expanded to -b by the preprocessor, which will result in the value of 1. The preprocessor won't even be aware that the sign of the content of b is negative, so where should the second - come from to form a prefix decrement operator?

Even if you wrote it like this:

 neg( -b );

Macro replacement is done on token level, not as a textual search & replace. You would get the equivalent of - ( -b ), but not --b.

Edit: The manual you link to in other comments is outdated (does not even address the C99 standard), and is dangerously bad. Just skimming through it I found half a dozen of statements that will make you look real stupid if you assume them to be correct. Don't use it, other than to light a fire.

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You have not answered the question - why is it happening. This is merely another example where the problem arises. –  Luchian Grigore Jun 26 '12 at 10:38
    
And actually, you get -b. Why is there even a discussion about --b? –  Luchian Grigore Jun 26 '12 at 10:43
    
@LuchianGrigore: Answer expanded. It's you who is expecting the code to result in a decrement, and your assumption is false. –  DevSolar Jun 26 '12 at 10:46
    
@LuchianGrigore: ...unless, of course, you mistyped your macro. –  DevSolar Jun 26 '12 at 10:47
    
@DevSolar: The question says: it should replaced in the form b >= 0 ? b : --b. Note the decrement operator. There is a typo in the question, either in the initial macro definition of the explanation of what the questioner is expecting. –  RobH Jun 26 '12 at 10:49
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This macro

#define abss(a) a >= 0 ? a : -a

is indeed hazardous, but the hazards are not where you think they are. The expression from your post

int c = abss(b);

works perfectly fine. However, consider what happens when the expression is not a simple variable, but is a function that is hard to calculate, or when it is an expression with side effects. For example

int c = abss(long_calc(arg1, arg2));

or

int c = abss(ask_user("Enter a value"));

or

int c = abss(b++);

If abss were a function, all three invocations would produce good results in predictable time. However, the macro makes the first call invoke long_calc and ask_user twice (what if the user enters a different number when prompted again?), and it post-increments b twice.

Moreover, consider this seemingly simple expression:

int c = abss(b) + 123;

Since + has a higher precedence than ? :, the resulting expansion will look like this:

int c = b >= 0 ? b : -b + 123;

When b is positive, 123 will not be added, so the meaning of the expression will change dramatically!

This last shortcoming can be addressed by enclosing the expression in parentheses. You should also enclose in parentheses each macro argument, like this:

 #define abss(a) ((a) >= 0 ? (a) : -(a))
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The reason for you getting the behaviour is preprocessor will just replace a with b and so effectively your code after preprocessing will be like

b >= 0 ? b : -b

and not

b >= 0 ? b : --b

So, when if b = -1, then it will effectively be considered as -(-1) and thus becomes 1.

You can check the preprocessor output and see it for yourself.

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I presumed that before coding that because that is a common sense about coding...but can you please check section 6-5 of preprocessor at elmicro.com/files/cosmic/clanguage.pdf –  amin__ Jun 26 '12 at 10:56
    
Section 6-5 talks about passing -b to the macro. But, in your example, you are passing b which is assigned -1. If you pass -b, then you will get the result as mentioned in the book. Hope you are getting the point. –  Jay Jun 26 '12 at 11:12
    
@Jay: Err... no he wouldn't, the manual is plain wrong. –  DevSolar Jun 26 '12 at 11:13
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