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main()
{
char s[] = "abcdef", *p;
for (p = &s[5]; p >= s; p--) --p*;
puts(s);
return 0;
}

The compiler says there is a problem with --p* (expected an expression)?????

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I suspect the error is because one line is missing something (at the end) that the other lines have... or the --*p in the code above is not as you have locally. The "error message" is confusing/incorrect for the posted code. –  user166390 Mar 17 '11 at 8:30
1  
@user663936. There's little point changing the code if you question still states the compiler has a problem with the bit you modified. You should either change the code back or change the rest of the question. –  paxdiablo Mar 17 '11 at 8:34

4 Answers 4

up vote 3 down vote accepted

Yes, there is a problem with --p*, it's not valid C, hence the program prints nothing. You're also missing a semi-colon from the end of your char s[] ... line.

Perhaps you meant something like this:

#include <stdio.h>
int main (void) {
    char s[] = "abcdef", *p;
    for (p = &s[5]; p >= s; p--) --*p;
    puts(s);
    return 0;
}

which prints:

`abcde

(assuming you're running in an ASCII environment of course).

And, any book that declares main as:

main()

instead of one of the two canonical forms, should be tossed out.

One other thing to watch out for, the standard doesn't mandate that pointer aritmetic will work unless both pointers point within the object or one beyond the end. So comparing the final value of p (which is &(s[-1])) against s is not guaranteed to work. A better solution is:

#include <stdio.h>
int main (void) {
    char s[] = "abcdef", *p;
    for (p = s; *p != 0; p++) --*p;
    puts(s);
    return 0;
}

The relevant section of C99 is 6.5.6/8:

When an expression that has integer type is added to or subtracted from a pointer, the result has the type of the pointer operand.

...

If both the pointer operand and the result point to elements of the same array object, or one past the last element of the array object, the evaluation shall not produce an overflow; otherwise, the behavior is undefined. If the result points one past the last element of the array object, it shall not be used as the operand of a unary * operator that is evaluated.

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ok, it's from a book, so that's why it's confusing me!!! –  GaryHull Mar 17 '11 at 8:28
    
@user663936 : Throw that book in a dustbin. –  Prasoon Saurav Mar 17 '11 at 8:29
    
so the loop will have no effect!!! –  GaryHull Mar 17 '11 at 8:33
    
@user: the loop modifies the string in place –  Nick Dandoulakis Mar 17 '11 at 8:35
    
@user663936: yes it does have an effect, it decrements the characters in the string. –  paxdiablo Mar 17 '11 at 8:36

--p* doesn't make any sense .

Probably you meant --*p or --p? Your code prints `abcde when the underlying representation is ASCII. BTW C99 mandates the return type of main() to be int in a hosted environment.

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And then, I would guess, "'abcde", though C does not actually say what 'a'-1 is. (That ' should be a backquote, but I don't know how to escape formatting on stackoverflow.) –  Conrad Meyer Mar 17 '11 at 8:28
    
--(*p), actually, since --*p would decrement p and produce *p from the result. –  geekosaur Mar 17 '11 at 8:30
    
@geekosaur : --*p is equivalent to --(*p) –  Prasoon Saurav Mar 17 '11 at 8:33
    
@geekosaur: aren't you confusing with *--p? –  Benoit Mar 17 '11 at 8:35
    
@geekosaur: No postfix operators? What are i++; and i-- then? –  Benoit Mar 17 '11 at 8:36
  • You're missing a ; at line 3, and,

  • You probably want

    --p
    

    instead of

    --p*
    

The program then prints abcdef.

Here is an ideone demo.

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there's a missing semicolon... i can see it clearly!

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