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I have a char that is given from fgets, and I would like to know how I can convert it into a char*.

I am sure this has been posted before, but I couldn't find one that was doing quite what I wanted to do. Any answer is appreciated.

EDIT: Here is the code.

char *filename = "file.txt";
FILE *file = fopen(filename, "r");
if(file != NULL) {
  char line[260];
  char *fl;
  while(fgets(line, sizeof line, file) != NULL) {
    // here I combine some strings with the 'line' variable.
    str_replace(line, "\"", "\"\""); // A custom function, but it only takes char*'s.
  }
  printf(fl);
  printf("\n");
} else {
  printf(" -- *ERROR* Couldn't open file.\n");
}
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14  
No, you don't. fgets() returns a char* result, not a char. Please give us a better idea of what you're trying to do, preferably by posting some actual code. –  Keith Thompson Jun 29 '12 at 20:08
    
Oh. My mistake. That means that I don't really need this question anymore. –  Matthew Nickson Jun 29 '12 at 20:18
    
Then you can (and should) delete the question yourself. –  Keith Thompson Jun 29 '12 at 20:23
    
@KeithThompson It has an upvoted answer, OP can't delete it anymore. –  Daniel Fischer Jun 29 '12 at 20:23
    
#define TOCHARARRAY(c) ({ \ char arr[] = { c, 0 }; \ arr; \ }) –  Jack Jun 29 '12 at 20:25

2 Answers 2

up vote 7 down vote accepted

Well, first of all, line is an array of chars and so can be manipulated in much the same way as a char * (See comp.lang.c FAQs for important differences), so you don't need to worry about it.

However, in case you want an answer to the general question...

The & operator is what you need:

char c;
char *pChar = &c;

However, bear in mind that pChar is a pointer to the char and will only be valid while c is in scope. That means that you can't return pChar from a function and expect it to work; it will be pointing to some part of the heap and you can't expect that to stay valid.

If you want to pass it as a return value, you will need to malloc some memory and then use the pointer to write the value of c:

char c;
char *pChar = malloc(sizeof(char));

/* check pChar is not null */

*pChar = c;
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"line is a char *, since it's an array of chars" -- No, arrays are not pointers. Read section 6 of the comp.lang.c FAQ. –  Keith Thompson Jun 29 '12 at 20:22
    
@KeithThompson: "... though they are closely related". Question 6.2 –  Dancrumb Jun 29 '12 at 20:24
    
Question 6.2 make it very clear that they're entirely distinct concepts. Yes, they're closely related; so are a lot of concepts in any programming language. There's a widespread misconception that C arrays are really pointers; let's not add to it. –  Keith Thompson Jun 29 '12 at 20:25
    
@KeithThompson: Fair comment - I've updated my answer –  Dancrumb Jun 29 '12 at 20:29
    
Good on generalizing, but I think this answer would be a lot better if it used an array of two chars, with c as the first and NUL as the second, showing how to "convert" a char to a NUL-terminated string... edit: Ah, I see Daniel did just that ... –  Jim Balter Jun 29 '12 at 20:49

Using the & operator will give you a pointer to the character, as Dancrumb mentioned, but there is the problem of scope preventing you from returning the pointer, also as he mentioned.

One thing that I have to add is that I imagine that the reason you want a char* is so that you can use it as a string in printf or something similar. You cannot use it in this way because the string will not be NULL terminated. To convert a char into a string, you will need to do something like

char c = 'a';
char *ptr = malloc(2*sizeof(char));
ptr[0] = c;
ptr[1] = '\0';

Don't forget to free ptr later!

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1  
malloc argument: sizeof(char) is 1 by std; you can write only: malloc(2) that is equivalent to. –  Jack Jun 29 '12 at 20:22
    
@Jack, is there any particular reason to do that, though, rather than following the usual formula of using sizeof? –  Daniel Jun 29 '12 at 20:41
    
It seems unnecessarily verbose to convert a count of chars into a count of bytes when char is mandated to be a byte. Would you write malloc((strlen(foo)+1)*sizeof(char)) when allocating space for a copy of foo? In any case, I prefer foo = malloc(n*sizeof *foo), which works regardless of the type of foo. –  Jim Balter Jun 29 '12 at 20:54

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