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.

I am pretty new to C.

I have a string:

char * someString;

If I want the first 5 letters of this string and want to set it to otherString, how would I do it?

share|improve this question
2  
someString is not a string, it is a pointer to a string of chars. Also, chars are not necessarily letters. You need to know what a string is before moving letters around. –  jbcreix Jan 22 '10 at 1:51
    
Depending on your need its better to declare a char array of size 6 for otherstring( 5 + one byte for '\0'). This way you don't have to care about memory leaks incase you forget to free otherstring after using it. –  HeretoLearn Jan 22 '10 at 2:20

7 Answers 7

up vote 17 down vote accepted
#include <string.h>
...
char otherString[6]; // note 6, not 5, there's one there for the null terminator
...
strncpy(otherString, someString, 5);
otherString[5] = '\0'; // place the null terminator
share|improve this answer
3  
@pib: otherString[5] = '\0'; –  Manav Jan 24 '10 at 9:49
2  
Or otherString[5] = (char)0; If you want to be picky about it. Char is an integer type, so compilers won't (or shouldn't) complain about just assigning a raw integer to it. –  pib Jan 24 '10 at 17:47
char* someString = "abcdedgh";
char* otherString = 0;

otherString = (char*)malloc(5+1);
memcpy(otherString,someString,5);
otherString[5] = 0;

UPDATE:
Tip: A good way to understand definitions is called the right-left rule (some links at the end):

Start reading from identifier and say aloud => "someString is..."
Now go to right of someString (statement has ended with a semicolon, nothing to say).
Now go left of identifier (* is encountered) => so say "...a pointer to...".
Now go to left of "*" (the keyword char is found) => say "..char".
Done!

So char* someString; => "someString is a pointer to char".

Since a pointer simply points to a certain memory address, it can also be used as the "starting point" for an "array" of characters.

That works with anything .. give it a go:

char* s[2]; //=> s is an array of pointers to char
char** someThing; //=> someThing is a pointer to a pointer to char.
//Note: We look in the brackets first, and then move outward
char (* s)[2]; //=> s is a pointer to an array of char

Some links: How to interpret complex C/C++ declarations and How To Read C Declarations

share|improve this answer
1  
I think you should try compiling char *[] someThing; and char []* someThing;. You want char *someThing[]; and char (*someThing)[]; respectively. And that breaks your algorithm to understand definitions. –  Alok Singhal Jan 22 '10 at 2:50
    
//Thanks, you're right about the bad syntax..fixed the code. However, the algorithm still stands, see the update. –  Liao Jan 22 '10 at 23:41
strncpy(otherString, someString, 5);

Don't forget to allocate memory for otherString.

share|improve this answer
1  
Note that this may result in an unterminated string (if someString contains five or more characters). –  strager Jan 22 '10 at 2:28

You'll need to allocate memory for the new string otherString. In general for a substring of length n, something like this may work for you (don't forget to do bounds checking...)

char *subString(char *someString, int n) 
{
   char *new = malloc(sizeof(char)*n+1);
   strncpy(new, someString, n);
   new[n] = '\0';
   return new;
}

This will return a substring of the first n characters of someString. Make sure you free the memory when you are done with it using free().

share|improve this answer
    
please check the malloc return value –  pm100 Jan 23 '10 at 0:03
#include <stdio.h>
#include <string.h>

int main ()
{
        char someString[]="abcdedgh";
        char otherString[]="00000";
        memcpy (otherString, someString, 5);
        printf ("someString: %s\notherString: %s\n", someString, otherString);
        return 0;
}

You will not need stdio.h if you don't use the printf statement and putting constants in all but the smallest programs is bad form and should be avoided.

share|improve this answer
    
You need to set otherString[5] = '\0' as well –  Bill Forster Jan 22 '10 at 2:20
    
otherstring after the memcpy is not a valid C string as its not null terminated. After the memcpy you need to add otherstring[5] = '\0'; –  HeretoLearn Jan 22 '10 at 2:22
    
Or you can memset(otherstring,'\0',sizeof(otherstring)); before using it. –  HeretoLearn Jan 22 '10 at 2:24
    
That is true, and this illuminates a good issue. Code flexibility should not come at the expense of simplicity. It could ba as simple as char otherString[]="00000"; and thus the null terminating character is a non-issue. The use of '0' instead of '\0' was what prompted my response in the first place, and then I went and forgot it myself... –  gavaletz Jan 22 '10 at 4:51

Generalized:

char* subString (const char* input, int offset, int len, char* dest)
{
  int input_len = strlen (input);

  if (offset + len > input_len)
  {
     return NULL;
  }

  strncpy (dest, input + offset, len);
  return dest;
}

char dest[80];
const char* source = "hello world";

if (subString (source, 0, 5, dest))
{
  printf ("%s\n", dest);
}
share|improve this answer

Doing it all in two fell swoops:

char *otherString = strncpy((char*)malloc(6), someString);
otherString[5] = 0;
share|improve this answer
    
never do this. you have got to check that the malloc worked. –  pm100 Jan 23 '10 at 0:02
    
@pm100 I happen to agree but no one else was, so I figured it was implied. –  Steve Emmerson Jan 23 '10 at 4:08

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.