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Is there a way to traverse character by character or extract a single character from char* in C?

Consider the following code. Now which is the best way to get individual characters? Suggest me a method without using any string functions.

char *a = "STRING";
share|improve this question
    
Treat a as a char array. – Kimi Aug 12 '11 at 13:07
up vote 17 down vote accepted

Another way:

char * i;

for (i=a; *i; i++) {
   // i points successively to a[0], a[1], ... until a '\0' is observed.
}
share|improve this answer
    
Why is this the "best" way? – Arafangion Aug 12 '11 at 13:18
    
Indeed, but you need to then explicitly dereference i inside your for loop which you don't need to do with a[foo]. This could muddy the answer for a beginner. – Dan Aug 12 '11 at 13:18
    
It can be superior to other ways because no extra addition occurs. With a[i], there is always the addition a+i, where a is a pointer and i an integer. This is inferior to just i++ where i is a pointer if a[i] resp. *i is used multiple times inside the loop. But this is micro-optimization. – glglgl Aug 12 '11 at 13:23
1  
@Arafangion: nonsense. Why on earth would a C implementer go out of their way to create that difference between the two? – Steve Jessop Aug 12 '11 at 13:40
1  
@MGZero: "++i is also the more efficient one" also nonsense. This is C, not C++, and there's absolutely no need for a compiler to make an unused copy of the prior value of i. ++i could only be more efficient if "most cases" if most code is very feebly optimized, but closely considering the performance of unoptimized code is fairly futile. In C++ it's true that for user-defined types, the optimization is a little harder in general and sometimes actually impossible. – Steve Jessop Aug 13 '11 at 0:16
size_t i;
for (i=0; a[i]; i++) {
    /* do something with a[i] */
}
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Knowing the length of the char array, you can cycle through it with a for loop.

for (int i = 0; i < myStringLen; i++)
{
     if (a[i] == someChar)
        //do something
}

Remember, a char * can be used as a C-Style string. And a string is just an array of characters, so you can just index it.

EDIT: Because I was asked on the comments, see section 5.3.2 of this link for details on arrays and pointers: http://publications.gbdirect.co.uk/c_book/chapter5/pointers.html

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There are many char*'s that can't be used as C-style string. A 'char*' might be pointing to a single char, or a block of data, or anything, really. – Arafangion Aug 12 '11 at 13:14
    
That still doesn't stop you from indexing it. – MGZero Aug 12 '11 at 13:19
    
It does, if it only points to a single char. In that context, it might be nonsensical to talk about it in terms of "indexing". – Arafangion Aug 12 '11 at 13:33
    
Well, we're not talking about that context, now are we? The original question specifically asked about a string. – MGZero Aug 12 '11 at 13:37
2  
Except they are the same as far as the compiler is concerned. publications.gbdirect.co.uk/c_book/chapter5/pointers.html See section 5.3.2, example 5.3 (read the above paragraph). Also, I showed arrays did I not? I didn't even mention pointer arithmetic until you brought it up. – MGZero Aug 12 '11 at 14:43

Like this.

char       a1[] = "STRING";
const char * a2 = "STRING";

char * c;     /* or "const char" for a2 */

for (c = aN; *c; ++c)
{
  /* *c is the character */
}

Here N can be 1 or 2. For a1 you can modify the characters, for a2 you cannot. Note that assigning a string literal to a char* is deprecated.

share|improve this answer
int i=0;
while(a[i]!=0)/* or a[i]!='\0' */
{
   // do something to a[i]
   ++i;
}

EDIT:

You can also use strlen(a) to get the number of characters in a.

share|improve this answer
    
Wouldn't that while loop go out of bounds? – MGZero Aug 12 '11 at 13:09
    
No, but as it was it wouldn't have moved on from the zeroth character. Edited to include ++i now though. – Dan Aug 12 '11 at 13:10
1  
And it still won't go out of bounds because C strings are null terminated. – Arafangion Aug 12 '11 at 13:13

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