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As far as I know, an array like

int example[10]

Is nothing else than a pointer to the first element in this array.

char* argv[]

Is an array of pointers; so that should be pointers which point to other pointers.

I have following problem now:

int main(int argc, char* argv[])
{
  double ptrarg2=argv[2][1];
  printf("beginletter=%c\nbeginpos=%d\n",&ptrarg2, ptrarg2);
  return 0;
}

I am starting the program with ./program test and expecting the output to be:

beginletter=c
beginpos=123213123 

While 123213123 should be the adress where the c is actually stored.

I am actually getting:

beginletter=
beginpos=0

what am I doing wrong? Thank you in advance!

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did you miss something in the command arguments? or you should minus 1 to your numbers. –  Brent81 Aug 7 '13 at 0:48
    
No, int example[10] declares an array object, not, I repeat not, a pointer object. Arrays are not pointers. Read section 6 of the comp.lang.c FAQ, particularly question 6.3. –  Keith Thompson Aug 7 '13 at 1:57
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2 Answers

up vote 1 down vote accepted

&ptrarg2 is the address of the local variable, which is not the address that you are expecting. Just use argv[1][0] and argv[1]. argv[1][0] will give you the first character of the first argument, and argv[1] will give you the pointer to the first argument.

#include <stdio.h>

int main(int argc, char* argv[])
{      
  printf("beginletter=%c\nbeginpos=%p\n",argv[1][0], argv[1]);
  return 0;
}
share|improve this answer
    
very nice Thank you!! could you explain me what a negative adress means? I expected it to be like this for example: t@111 and e@112 s@113 but it is: t@-1080558759 and e@-1080558758 –  user2430568 Aug 7 '13 at 0:37
    
The reason is that you are interpreting memory address as a signed digit with "%d". Memory address should use "%p" instead. –  jh314 Aug 7 '13 at 0:40
    
i love you! Thank you very very very much!! –  user2430568 Aug 7 '13 at 0:42
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It looks like argv[0] is going to be "./program", argv[1] is going to be "test", and argv[2] is going to be undefined or NULL because you don't have three arguments. The value of argc should tell you how many items there are in argv[]. My guess in this case is that the answer will be 2, and therefore only the first two (argv[0] and argv[1]) are valid.

There are several other strange things going on here. ptrarg2 is declared as a double, not as a char; the behavior here would be to convert the character to its floating point numeric equivalent and store that. Perhaps you meant ptrarg2 to be a char?

Next up, the printf() doesn't correspond very well to its additional arguments. &ptrarg2 is a double *, but you're assigning it to a %c (character) field, not a %p (pointer) field. ptrarg2 is a double, but you're assigning it to a %d (decimal number) field, not a %lf (long float, aka double) field. printf will happily try and print out values even when your types don't match, but they will be wrong, and crashing is quite possible.

share|improve this answer
    
changing double ptrarg2=argv[1][1] returns me a random char and the position 0 :S –  user2430568 Aug 7 '13 at 0:33
    
See my additional comments. You have problems with your printf and the type of ptrarg2 as well. –  AHelps Aug 7 '13 at 0:35
    
Thank you very much for your help! –  user2430568 Aug 7 '13 at 0:42
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