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int main(int argc, char* argv[])
{
   int i,s;
   s=0;
   char*p;
   for(i=1; i<argc;i++)
   {
      for (p=argv[i];*p;p++);
      s+=(p-argv[i]);
   }
 printf("%d\n",s);
 return 0;
}

I'm having a hard time understanding what does this code does.

As far I see it, it ignores the program's name and for every other string which was printed in the command line it sets p to be the current string.

  1. The condition *p says "travel on p as long as it's not NULL, i.e until you have reached the end of the string?
  2. In each iteration s sums the subtraction of the current p, the rest of the word, with the name of argv[i], what is the result of this subtraction? Is this the subtraction of the two ascii values?
  3. What does this program basically do?
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2  
You can answer all these questions by running the program in a debugger, or by adding print statements to inspect intermediate values of variables. –  Oliver Charlesworth Jul 17 '12 at 14:02
    
Prepare basic inputs.Afterwards, print out all argv, initialize p & i. In order to take more info, print s in nested loop. You will get answers. Or, use gdb –  user319824 Jul 17 '12 at 14:05
    
Determine the total length of the string of arguments. –  BLUEPIXY Jul 17 '12 at 14:06
    
Looks like it calculates the size of command line. –  fork0 Jul 17 '12 at 14:06
    
The inner for loop does nothing each iteration, as it's terminated with a semicolon. You need to remove the semicolon. –  Linuxios Jul 17 '12 at 14:19

4 Answers 4

up vote 2 down vote accepted

The key to answering this question is to understand the meaning of this expression:

p-argv[i]

This is a pointer subtraction expression, which is defined as the distance in sizes of elements pointed to by the pointer between the first and the second pointer. This works when both pointers are pointing to a memory region that has been allocated as a contiguous block (which is true about all C strings in general and the elements of argv[] in particular).

The pointer p is first advanced to the end of the string (note the semicolon ; at the end of the loop, which means that the loop body is empty), and then argv[i] is subtracted. The result is the length of the corresponding argument.

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the loop terminates with a semicolon. The statement s+=(p-argv[i]); runs only once –  Andy Stow Away Jul 17 '12 at 14:12
    
@AndyStowAway Yes, I missed the semicolon on the first reading. Thanks for the correction! –  dasblinkenlight Jul 17 '12 at 14:13
    
@andy no the loop is terminated by the previous semicolon for (p=argv[i];*p;p++); EDIT: missread your answer –  bigkm Jul 17 '12 at 14:14
    
@bigkm That's what Andy meant; there was an edit (invisible now, because I caught it in the first five minutes) where I thought the loop calculates something else. –  dasblinkenlight Jul 17 '12 at 14:15
1  
@Numerator p would not be zero or NULL, but what it points to will be zero -- the terminating zero of the C string. –  dasblinkenlight Jul 17 '12 at 14:28

This code calculates sum of lengths of arguments (as strings) of the program

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It tells you the total string length of all the arguments you passed to the program.

In your point (2), it just subtracts the starting address of the string with the address that holds the \0 character

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Its using pointer addresses in a backwards type way to calculate the total characters in all args.

for (p=argv[i];*p;p++); //sets p to the address of argv[i]'s \0 terminator
   s+=(p-argv[i]);     // p minus the address of the start of argv[i] accumulated to s
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