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Why do we need to add a '\0' (null) at the end of a character array in C? I've read it in K&R 2 (1.9 Character Array). The code in the book to find the longest string is as follows :

#include <stdio.h>
#define MAXLINE 1000
int readline(char line[], int maxline);
void copy(char to[], char from[]);

main() {
    int len;
    int max;
    char line[MAXLINE];
    char longest[MAXLINE];
    max = 0;
    while ((len = readline(line, MAXLINE)) > 0)
        if (len > max) {
            max = len;
            copy(longest, line);
        }
    if (max > 0)
        printf("%s", longest);
    return 0;
}

int readline(char s[],int lim) {
    int c, i;
    for (i=0; i < lim-1 && (c=getchar())!=EOF && c!='\n'; ++i)
        s[i] = c;
    if (c == '\n') {
        s[i] = c;
        ++i;
    }
    s[i] = '\0'; //WHY DO WE DO THIS???
    return i;
}

void copy(char to[], char from[]) {
    int i;
    i = 0;
    while ((to[i] = from[i]) != '\0')
        ++i;
}

My Question is why do we set the last element of the character array as '\0'? The program works fine without it... Please help me...

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5  
\0 indicates the end of a string –  jbowes Dec 16 '12 at 18:16
    
Local variables are not initialized in C. Thus, the local variable line has garbage where ever you didn't write to it. If the garbage happens to be 0 then your program will work without explicitly writing the null. However, if you do another readline into the line variable, and make this one a shorter line than the first, you'll see the remnants of the first line at the end of the second in line. Writing the null character at the end will prevent that. –  Erik Eidt Dec 16 '12 at 20:18

7 Answers 7

up vote 9 down vote accepted

You need to end C strings with '\0' since this is how the library knows where the string ends (and, in your case, this is what the copy() function expects).

The program works fine without it...

Without it, your program has undefined behaviour. If the program happens to do what you expect it to do, you are just lucky (or, rather, unlucky since in the real world the undefined behaviour will choose to manifest itself in the most inconvenient circumstances).

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But the program works fine without it... –  ShuklaSannidhya Dec 16 '12 at 18:18
    
@SandyLee_user53167 you were lucky this time :) –  Maroun Maroun Dec 16 '12 at 18:20
    
try to call strcpy on it. –  Jeremy D Dec 16 '12 at 18:20
    
Is it right if omit that from this program? –  ShuklaSannidhya Dec 16 '12 at 18:21
1  
@SandyLee_user53167 the copy function in your code runs until it sees the \0 character. –  rohit89 Dec 16 '12 at 18:26

In c "string" means a null terminated array of characters. Compare this with a pascal string which means at most 255 charactes preceeded by a byte indicating the length of the string (but requiring no termination).

Each appraoch has it's pros and cons.

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Nota bene: Meanwhile, the popular (well, more or less) language Delphi introduces various types of strings of which only one has the 255 char limitation. All the others (ansi, unicode, wide etc.) have a limitation of (I think) 4 GB. –  alzaimar Dec 16 '12 at 18:53
    
@alzaimar Well, certainly more popular than per se pascal these days. Don't know it myself. Either way, the programmer can choose his or her poison, which is always nice. –  dmckee Dec 16 '12 at 19:03

Especially string pointers pointed to array of characters without length known is the only way NULL terminator will determine the length of the string.

Awesome discussion about NULL termination at link

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Because C defines a string as contiguous sequence of characters terminated by and including the first null character.

Basically the authors of C had the choice to define a string as a sequence of characters + the length of string or to use a magic marker to delimit the end of the string.

For more information on the subject I suggest to read this article:

"The Most Expensive One-byte Mistake" by Poul-Henning Kamp http://queue.acm.org/detail.cfm?id=2010365

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You have actually written the answer yourself right here:

void copy(char to[], char from[]) {
    int i;
    i = 0;
    while ((to[i] = from[i]) != '\0')
        ++i;
}

The loop in this function will continue until it encounters a '\0' in the array from. Without a terminating zero the loop will continure an unknown number of steps, until it encounters a zero or an invalid memory region.

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It is string terminating symbol,When this is encountered ,compiler comes to know that your string is ended.

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the compiler doesn't have anything to do with this. it is only evaluated at runtime. –  njzk2 Dec 17 '12 at 11:30

Really, you do not need to end a character array by \0. It is the char*, or the C representation of the string that needs to be ended by it.

As for array, you have to add a \0 after its end if you want to transfer it to the string (representer by char*).

On the other hand, you need to have \0 at the end of the array, if you want to address it as char* and plan to use char* functions on it.

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