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Can a *char in C++ receive a string as a parameter? If so how does this work. Example:

myfunc("hello"); //call
myfunc(char * c)
{ ...
}

How exactly are chars related to strings?

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marked as duplicate by Lews Therin, bernie, Nicol Bolas, Thomas Matthews, Shai Feb 7 '13 at 7:24

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Do you mean a c++ string ? If so, the answer is no - you need to call str.c_str(); to convert it –  Rich Tolley Feb 7 '13 at 0:01

3 Answers 3

It wont work as expected in your example. Using strings this way (a pointer to the beginning char) only works if the string is null terminated. This is how the old c_str works. If we have a reference to the first char, we can iterate until we find the terminating character, "\0" to access the entire string.

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1  
What does null termination have to do with the first character, where is there a non-null terminated string in the example, and what does a newline have to do with anything? –  Potatoswatter Feb 7 '13 at 0:00
    
what does "\n" to access the entire string mean? if it's null terminated, shouldn't you iterate until you find the null? seems the example should work just fine unless myfunc does something funcy (:p) with the parameter. –  thang Feb 7 '13 at 0:08
    
i meant to type \0 as the terminating char –  Ben Anstey Feb 7 '13 at 3:46
    
What does it have to do with the first char? The string is stored in contiguous blocks, so all you need is a pointer to the first char, and to make sure the string is terminated. –  Ben Anstey Feb 7 '13 at 3:49
    
just read dogbert's post for a better explanation. –  Ben Anstey Feb 7 '13 at 3:51

The type of the literal "hello" is const char[6], that is an array of characters with space for the string and a null terminating byte.

C++ allows for converting a function argument to another type when passing it. In this case the array type gets converted to pointer type, const char *, with the pointer referencing the first character with value 'h'.

C++03 allowed for conversion to char *, dropping the const, but it was undefined behavior to actually modify the string. This was done for old-school C compatibility and has been revoked in the new C++11 standard, so your example will not pass a newer compiler.

Incidentally, due to legacy considerations inherited from C, it would make no difference if the function were instead declared as myfunc(char c[6]). The type of c would still be char *.

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It will work for strings, such as:

char myString[255] = "Hello World";
myfunc(myString);
// Success

It will also work for this:

char myString[255] = 'H','e','l','l','o',' ','W','o','r','l','d','\0';
myfunc(myString);
// Success

It will not run for string literals, as in your case:

myfunc("Hello World");
// Failure

It will also run, but fail (likely causing a crash or segmentation fault) by passing a character array that does not end with a null character (ie: non-string-character-array; note the trailing NULL character).

char myString[255] = 'H','e','l','l','o',' ','W','o','r','l','d';
myfunc(myString);
// Function will run, but will likely crash, as it has no way of knowing
// when the string ends.

Also, remember that in C/C++, a C-string is an array of characters with the final character set to 0 or '\0'.

Finally, recall that in C/C++, you can pass the string as either myString or &myString[0]. Both provide a pointer-to-character which indicates the beginning of the string.

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1  
I think that myString and &myString[0] are slightly different types. Some people may say that myString provides a char array whereas &myString[0] provides a pointer-to-char. is this wrong? –  thang Feb 7 '13 at 0:19
    
Nope, they're the same, Both (char*). –  Dogbert Feb 7 '13 at 17:09
1  
you're kidding right? did you try sizeof(myString) vs sizeof(&myString[0])? is there a difference? –  thang Feb 8 '13 at 0:30
    
Have you? What are your results? They are interchangeable for this case. –  Dogbert Feb 9 '13 at 3:56
1  
I don't know, but I thought people on here (stackoverflow) are big into saying that there is a difference. If you search, there are several posts talking about how they're not the same. When myString gets converted into a char*, it's said to be "decayed" into a char* (with the implication that its lost some of its "array-ness" i guess). Anyway, I am not that pedantic, but there are some distinct differences. sizeof(myString) is 255. sizeof(&myString[0]) is 4 or 8 depending on your architecture. Also, myString can automatically decay into &myString[0], but the reverse isn't true... etc –  thang Feb 9 '13 at 4:12

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