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I want to print the ascii values of all the chars from a string received from argv, using only one printf call.

Something like this, but to print only the valid chars ( != 0 ) :

printf (" string is %s , in ascii = 0x%X %X %X %X", argv[1], 
          argv[1][0], argv[1][1], argv[1][2], argv[1][3]);

I don't want to use a for loop, from 0 to strlen(argv[1]). I need to use only one print call.

If the argv[1] = "a", then I want to print only: string is a , in ascii = 0x61

If the argv[1] = "ab", then I want to print only: string is ab, in ascii = 0x61 62

The problem is that I don't want to print garbage data

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1  
Going with the flow of the answer, if you know argv[1] exists and want it all in one construct, char *ptr = argv[1]; for (printf("string is %s , in ascii = 0x", ptr); *ptr; printf("%X ", *ptr++));. You should reword the "in ascii" part to something like "character codes", though, as ASCII isn't guaranteed to be in use. – chris Sep 16 '12 at 15:51
    
The number of characters in the string is a run-time determined value. You cannot write a single statement at compile time that processes each string and doesn't contain a loop with a dynamic exit condition. – Kerrek SB Sep 16 '12 at 16:18

You cannot do this without a loop. printf will only look for a certain depth into the stack and will always print a set number of values. You cannot make it look for a variable number of values, so a loop is your best choice:

char *ptr = argv[1];
while (ptr) printf("%X ", *ptr++);

(technically, this is a while loop, not a for loop).

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1  
If the point is to have only a single printf() call for the sake of either performance or convenience, just use sprintf() and strcat() to pre-create the string. – DevNull Sep 16 '12 at 17:05

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