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#include "stdio.h"
#include "string.h"

main()
{

    char string[] = "october";

    strcpy(string, "september");

    printf("the size of %s is %d and the length is %d\n\n", string, sizeof(string), strlen(string));

    return 0;
}

I got the output,

the size of september is 8 and the length is 9

Is there something wrong with my syntax or what?

Thanks in advance

share|improve this question
5  
You are writing past the end of the array string. This is undefined behavior. string can only hold 8 characters (7 for "october" and 1 for the null terminator). When you call strcpy, you are writing 10 characters to it (9 for "september" and 1 for the null terminator), which means you have gone past the end of the array and are overwriting the adjacent memory. –  Marlon Mar 30 '12 at 4:55
6  
Note that sizeof is calculated at compile time where as strlen is run time. –  Naveen Mar 30 '12 at 4:57
3  
@Naveen: Be aware that that is not necessarily true where VLAs are involved. –  caf Mar 30 '12 at 5:31
    
@caf: Maybe I'm gonna feel clueless but..... What do you mean by VLAs? Very large arrays? lol –  Cory Gross Aug 7 '13 at 6:41
    
@CoryGross: A "variable length array", an array type where the length is not an integer constant expression (or the element type is itself a variable length array type). –  caf Aug 7 '13 at 7:04

4 Answers 4

sizeof and strlen() do different things. In this case, your declaration

char string[] = "october";

is the same as

char string[8] = "october";

so the compiler can tell that the size of string is 8. It does this at compilation time.

However, strlen() counts the number of characters in the string at run time. So, after you call strcpy(), string now contains "september". strlen() counts the characters and finds 9 of them. Note that you have not allocated enough space for string to hold "september". This is undefined.

share|improve this answer

Your destination array is 8 bytes (length of "october" plus \0) and you want to put in 9 chars in that array.

man strcpy says: If the destination string of a strcpy() is not large enough, then anything might happen.

Please tell me what you really want to do, because this smells bad long way

share|improve this answer
    
This is the test program for understanding the working of sizeof() –  beparas Mar 30 '12 at 6:32

the Out put is correct why because

first statement string size was allocated by compiler that is 7+1 (October is 7 bytes & 1 byte for null terminator at compile time )

Second statement : you are copying September(9 bytes to 8 bytes string);

there for u got size of September as 8 bytes (still strlen() will not work for September it does not have null character )

praveen.Thota

share|improve this answer
    
The string literal "september" implicitly contains the null character, so strlen() will work, if the program hasn't crashed already (due to writing past the end of the string array) –  Timothy Jones Mar 30 '12 at 5:17

You must eliminate buffer overflow problem in this example. One way to do this - is to use strncpy:

memset(string, 0, sizeof(string));
strncpy(string, "september", sizeof(string)-1);
share|improve this answer
    
No, no, no. strncpy(), despite its name, is the wrong tool to do anything with strings. In the example above, the resulting string will not be a string because none of its 8 elements will contain a zero terminator. –  pmg Mar 30 '12 at 8:40
    
Why wrong tool ? I've fixed string termination problem. –  Agnius Vasiliauskas Mar 30 '12 at 10:12
    
It's the wrong tool for strings precisely because it doesn't account for the zero terminator that exists in each and every string by definition (strncpy() design makes it useful only for ... errr ... un-terminated strings). Make sure you have space and use strcpy() (or, if you can use BSD-isms, use strlcpy()). –  pmg Mar 30 '12 at 10:20
1  
I see thing likes this: both strcpy and strncpy have vulnerabilities: - strcpy does not account for buffer overflow. - strncpy does not account for string terminator. So in my opinion it doesn't matter which version we will use - in any case we must avoid one problem or the other ... –  Agnius Vasiliauskas Mar 30 '12 at 10:24

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