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I am a novice for C language.but I could understand why this following code is giving output as 'A'.

one thing that is bothering me is the array name p in the printf statement.how this p is being treated by the compiler?

How can the p is replaced by the character array "%c\n" after line no 5?

I know that this is a silly question so sorry to post this hare.

Can anyone will help me to understand the concept behind this?

 line1:      #include<stdio.h>
 line2:      int main()
 line3:      {
 line4:          char p[]="%d\n";
 line5:          p[1]='c';
 line6:          printf(p,65);
 line7:          return 0;
             }
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What is in p before line 5? What about after line 5? –  Useless Jul 25 '12 at 10:30

5 Answers 5

up vote 6 down vote accepted

The first argument to printf() is a const char* that contains the format specifiers. It is more common to see it as a string literal:

printf("%c\n", 65);

but it is legal to use a variable containing a string.

The assignment of p[1] = 'c' changes the d to c in the buffer p, resulting in the character A (as 65 is decimal value for A) being written to standard output (as %c instructs printf() to print the character, rather than %d which will print the numeric value).

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thanks a lot sir. how can I strengthen my C skills? is there any link you have that can help me to understand the C in a deep way –  kTiwari Jul 25 '12 at 10:56
    
@krishnaChandra, no problem. The best way would to get a recommended book. This would be a good starting place: en.wikipedia.org/wiki/The_C_Programming_Language . –  hmjd Jul 25 '12 at 11:00

You are not replacing the whole array, just the character at array's offset #1 (second character). you are replacing it with 'c' making the content to be "%c\n" which, when used as a formatting string, formats the integer 65 as an upper-case Latin A

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but is it valid c statement to use an arry name instead of using the format string in printf() function –  kTiwari Jul 25 '12 at 10:33
    
of course it is, it's a parameter to a function, you are free to provide an explicit string "like this one" or a pointer to a memory where such a string is located, like p. Just remember that if you are using an array of characters then it must be terminated with a '\0' marker at the end of it –  YePhIcK Jul 25 '12 at 10:34

In line 6:
printf(p,65);
will be changed to
printf("%c\n",65); Ascii Value of 'A' is 65.
http://www.asciitable.com/

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Explanation below:

char p[]="%d\n";

After the above executes, P will contain -> "%d\n"

 line5:          p[1]='c';

Here, P will now be "%c\n", as you are changing the 1th character of a zero based indexing.

line6:          printf(p,65);

This is equivalent to:

printf("%c\n",65)

or

printf("%c\n",'A')

Hence you get the output of A

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     #include<stdio.h>
       int main()
       {
          char p[]="%d\n";   #This is stored at p[1]
          p[1]='c'           # d is replaced by c
          printf(p,65);      # p is taken as p[1] and is replaced by "%c\n"
           return 0;
         }

output: A # ASCII value 65

If you give the value as 66 output will be 'B" and so on.

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