Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

By definition, in C, a string is an array of characters

int main() {
 char *name="David Bolton"; 
 printf("My name is %s\r\n",name) ;

 return 0;
 }

The line char * name="David Bolton"; defines name as a pointer to the first character in the string i.e 'D' .So ,the pointer name should hold address but it prints 'David Bolton' why?What is the reason ?Since it only holds the address of D why is it printing the whole string?

share|improve this question
    
Always take a look at the man pages. It would have given you the answer you needed. –  Rerito Apr 19 '13 at 12:45
add comment

5 Answers

up vote 5 down vote accepted

Because you use %s, C will know that you want to print a string, so, it will print character by character to screen, until it meets symbol \0.

share|improve this answer
    
but name is a pointer not a string ,and has address in it.I m new to c –  First-Name Last-Name Apr 19 '13 at 12:39
    
when you use %s, C will "understand" that you want print a string. A string is made by characters. a character is 2 bytes. so, it will use the address of first character to know which character, in this case is name and print it, and plus 2 bytes, and continues to print it. until it meets null bytes. –  hqt Apr 19 '13 at 12:41
2  
The %s specifier is telling printf to be clever, and print the string at the address which name points to, rather than the actual pointer value of name. –  Graham Borland Apr 19 '13 at 12:41
    
@hqt Nitpick: The ending byte is \0, not \o. –  michaelb958 Apr 19 '13 at 12:43
    
@michaelb958 ah. i look o likes O. yes, it's zero thanks, I have edited :) –  hqt Apr 19 '13 at 12:44
add comment

The %s format specifier instructs printf to treat the data pointed to as an array of chars that are terminated by a null (zero) byte. Use %p if you want to print the pointer address instead.

share|improve this answer
    
but name is a pointer that has an address of D,even if it prints it should print D.Plz help i m new to c programming and i m really getting headache on this problem –  First-Name Last-Name Apr 19 '13 at 12:39
    
name is a pointer to the string literal "David Bolton". This string literal will be stored at a linker-determined address in memory. The address stored in name points to the first byte of the string literal. –  simonc Apr 19 '13 at 12:43
add comment

In the printf format string, the %s specifier assumes that the corresponding argument is a pointer to the character data. Which is exactly what name is.

share|improve this answer
    
but name is pointing to D and even if it prints ,it should print D as it has no address of other characters –  First-Name Last-Name Apr 19 '13 at 12:42
    
It does know the address of the other characters; they are immediately following the D in memory! It stops printing when it hits the end-of-string marker which is a 0 byte. –  Graham Borland Apr 19 '13 at 12:43
add comment

String in C language is made to determine that a 0-terminated.

"David Bolton"

memory image : David Bolton\0 So it is possible to address pointing displays a guide to the location of 0 in the address area.

E.g.)

void print_string(char *string){
    while('\0'!=*string){
        putchar(*string++);
    }
}
share|improve this answer
add comment

printf prints from the address given to it. Because %s is used to print a string, it gets the start address from name and prints till it reaches \0 . If you do printf("%p",name) it will give you the address stored in name i.e. of D.

See this to read about pointers and this for arrays

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.