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Why does the following code report an Lvalue required error?? And how can we write a macro that receives an array and the number of elements in the array as arguments and then print out the elements of the array??

#define arr(b) printf("%d",b++);\
               printf("%d",b);


int main()
{
    arr(5);
}
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Ignoring that it doesn't "work" ... parenthesize everything inside the macro definition! Suppose it's "called" with arr(6*3) ... #define arr(b) printf("%d", (b)++); printf("%d", b); –  pmg Mar 24 '12 at 12:39
    
Alright.. got it.. Can someone please answer the other part of the question?? –  user1232138 Mar 24 '12 at 12:43

3 Answers 3

If you expand the macro, you get the following:

int main()
{
    printf("%d",5++);
    printf("%d",5);
}

You cannot postincrement the constant 5, so you get an error.

Remember, macros aren't functions. If you want it to act like a function, simply make a function:

void arr(int b) {
    printf("%d",b++);
    printf("%d",b);
}
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3  
+1 for "if you want a function, write a function". –  Oliver Charlesworth Mar 24 '12 at 12:40

Because part of that macro expands to 5++, which is not valid C. Consider using b+1 instead of b++.

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The first l in lvalue stands for left.

Only left values can be assigned.

when you write x ++ you mean x = x + 1 (also you get a value from it).

So the problem is it does not make sense to write 5 = 5 + 1

maybe you would like to do this:

int x = 5;
arr(x);
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