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c++ return array in a function

I've tried the following:

char[10] testfunc()
{
    char[10] str;

    return str;
}
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marked as duplicate by Björn Pollex, DarkDust, Xeo, Naveen, liaK Apr 14 '11 at 8:48

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.

1  
So, you have tried one thing, it didn't work, and now you ask? Have you used the search function? Have you looked at the suggestions made when you asked the question? Have you looked at the Related list on the right side of this page? Questions like this have been asked a bajillion times here on SO, so with minimal effort, you should have been able to find a solution. –  Björn Pollex Apr 14 '11 at 8:35
1  
This question has been asked (and answered) many times. Take a look at: how to return an array in a c method –  razlebe Apr 14 '11 at 8:36
    
See also: C FAQ Chapter 19: Returning arrays. –  DarkDust Apr 14 '11 at 8:46

5 Answers 5

up vote 9 down vote accepted

Best as an out parameter:

void testfunc(char* outStr){
  char str[10];
  for(int i=0; i < 10; ++i){
    outStr[i] = str[i];
  }
}

Called with

int main(){
  char myStr[10];
  testfunc(myStr);
  // myStr is now filled
}
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7  
Please also pass the capacity as argument, it's too fragile this way. –  DarkDust Apr 14 '11 at 8:38
2  
Also, a strncpy or memcpy would be more efficient when copying out the result. –  DarkDust Apr 14 '11 at 8:40

With Boost:

boost::array<char, 10> testfunc()
{
    boost::array<char, 10> str;

    return str;
}

A normal char[10] (or any other array) can't be returned from a function.

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1  
This does a copy on exit, rather than pass a reference. May not be a problem but for large arrays this could be a substantial cost. However with use of the return value optimisation (en.wikipedia.org/wiki/Return_value_optimization) you could completely elide the copy. –  tenpn Apr 14 '11 at 8:41

As you're using C++ you could use std::string.

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a char array is returned by char*, but the function you wrote does not work because you are returning an automatic variable that disappear when the function exits. Use something like this:

char *testfunc() {
    char* arr = malloc(100);
    arr="xxxx";
    return arr;
}

This of course if you are returning an array in the C sense, not an std:: or boost:: or something else.

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You have to realize that char[10] is the same as char*. You are in fact returning a pointer. Now the pointer points to a variable (str) which is destroyed as soon as you exit the function, so the pointer points to... nothing!

Usually in C, you explicitly allocate memory in this case, which won't be destroyed when the function ends:

char* testfunc()
{
    char* str = malloc(10 * sizeof(char));
    return str;
}

Be aware though! The memory pointed at by str is now NEVER destroyed. This is know as a 'memory leak'. Be sure to free() the memory after you are done with it:

foo = testfunc();
// do something with your foo
free(foo); 
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1  
A char array is not the same as a char pointer. See the C FAQ question 6.2. –  DarkDust Apr 14 '11 at 8:45
    
hrm, interesting. I never realized that. Thanks! –  Rodin Apr 19 '11 at 11:54

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