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Assuming that I have char ** where each value of can have an char * and I need store more bytes to character teminator (NULL) how do I to compute this size? maybe..: sizeof(char *) * strlen(src) + sizeof(NULL) or only + 1 instead of sizeof(NULL)? I hope this is clear for you. Thanks in advance.

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Will all char* src have the same size ? –  J.N. Mar 15 '12 at 0:58
    
No, this is not clear. Perhaps add some pseudo-code to illustrate what you want to do. –  Oliver Charlesworth Mar 15 '12 at 0:58
    
sizeof(NULL) makes no sense. NULL in C is just 0 and sizeof(0) is 4 or 8 which is overkill. Just use + 1. –  Chris Mar 15 '12 at 0:59
    
I think so. Actually, I am writing an split() implementation that in first parameter receive the delimiter and into second parameter the string for splited into tokens. For example: char ** split(const char * delimiteres, const char * src) { char ** out; char * token; out = malloc(sizeof(char *) * strlen(src) + sizeof(NULL)); assert(NULL != out); int size = 0; for(token = strtok(strdup(src), delimiteres); NULL != token; token = strtok(NULL, delimiteres)) { out[size] = token; –  user834697 Mar 15 '12 at 1:02
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@user834697: You should edit your question to include that code. –  Oliver Charlesworth Mar 15 '12 at 1:06

1 Answer 1

A char ** is a pointer to a pointer to the first character of a string. In your example, the memory for the pointer char **out is already allocated on the stack. What you have to do is allocate the memory for the character array (C string) which out points to on the heap. That is, you could do something like:

char **out;
char *str = malloc(strlen(src) * sizeof(char) + 1);
*out = str;

Now you can (for example) safely return out and pass control of the memory you allocated to the caller.

If you wanted to return a pointer to the first element of an array of strings (another way of interpreting a char **), you would have to first allocate on the heap enough memory for each string:

char **out = malloc(amount_of_strings * sizeof(char *));
// Repeat the following for each string in your array...
char *str = malloc(strlen(src) * sizeof(char) + 1);
out[index] = str;
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No, a "pointer to a string" is a char*, not a char**. Don't make the mistake of thinking that strings are pointers. They're not. –  Keith Thompson Mar 15 '12 at 1:21
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How is char * a pointer to a string? It is by definition a pointer to a character. In C, a "string" is represented by a pointer to the first character in a contiguous block of memory. Also, note that I edited out a small mistake in my above post, replacing out = &str with *out = str. Oops. –  AerandiR Mar 15 '12 at 1:34
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It's a pointer to a string because that's how the C standard defines the phrase "pointer to a string". See section 7.1.1 of the C standard (latest draft here): "A string is a contiguous sequence of characters terminated by and including the first null character. ... A pointer to a string is a pointer to its initial (lowest addressed) character." –  Keith Thompson Mar 15 '12 at 4:04
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char *str = (char *) malloc(strlen(src) * sizeof(char) + 1); is better written char *str = malloc(strlen(src) + 1);. sizeof (char) is 1 by definition, and casting the result of malloc() is unnecessary and can mask errors in some cases. –  Keith Thompson Mar 15 '12 at 4:06
    
Aha, I see, thanks! I guess I've been doing too much C++ recently. :) I've edited my answer, but I chose to leave the sizeof(char) in there to keep it explicit for those who are learning. –  AerandiR Mar 15 '12 at 4:26

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