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For example, suppose I want to copy thing the string "str1" to a new string, "str2":

void function(const char* str1){
    char* str2;
    str2 = (char *) malloc(sizeof(char) * (strlen(str1) + 1));
    strcpy(str2, str1);
    ...
}

Should the argument to malloc be:

sizeof(char) * (strlen(str1)+1)

or just:

sizeof(char) * strlen(str1)
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4 Answers 4

Yes, you need to +1 — strlen returns the string length; to store a string you need storage for its length plus an extra spot for the NULL terminator.

That being said, in this specific example (which I'm sure is just that: an example to make the point), you can just use strdup.

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strcpy() functions copy the string including the terminating `\0' character, so you need +1.

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Yes, of course you have to account for the '\0'. So:

strlen(str1)+1U

Is what you want. Consider strdup in this case.

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strdup is widely available, but is not defined by the C standard. –  Keith Thompson Apr 19 '13 at 0:13
    
strdup is easy to write yourself though if you don't have it. If this is a common operation in your code, I'd write a function for it rather than repeating the same logic every time. –  R.. Apr 19 '13 at 0:17
    
What does 1U mean? –  sicklybeans Apr 19 '13 at 0:20
    
1U is to explicitly say that the constant 1 is unsigned, just like the return of C89 or later strlen. –  ldav1s Apr 19 '13 at 2:16

Instead of using malloc() you could use calloc() which automatically null terminates for you.

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