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How does "return;" work?

I know that we can return anything(nearly) with "return" but I found this while I was surfing on the net and I do not know how does such a "return" statement.

void bubbleSort(int arr[], int n) {
   // Base case 
    if (n == 1) 
        return; 
    for (int i=0; i<n-1; i++) 
        if (arr[i] > arr[i+1]) 
            swap(arr[i], arr[i+1]); 
   return  bubbleSort(arr,n-1);
}
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    It's for void functions (like this one) that don't return a value. – 500 - Internal Server Error Nov 5 '19 at 15:52
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    1. Sort out the formatting. 2. Use braces to avoid confusion. 3. What does swap do? Got a feeling it is not working the way you are expecting – Ed Heal Nov 5 '19 at 15:53
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    The problem in this code is return bubbleSort(arr,n-1); . that return shouldn't be there; rather just the function call. And you said "ı know that we can return anything(nearly) with "return"" - you can return something of the same type as that declared as the return-type of the function itself; nothing more. In the case of void that means nothing, so return; is viable, the last line is not. – WhozCraig Nov 5 '19 at 15:56
  • Might be less confusing to replace the function body with this: if (n > 1) { for (int i=0; i<n-1; i++) if (arr[i] > arr[i+1]) swap(arr[i], arr[i+1]); bubbleSort(arr,n-1); }. – Lundin Nov 5 '19 at 16:02
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    I likewise concur with Ed. Your swap appears broken, as you're passing the values to swap by-value. Being C, that will ultimately accomplish nothing. Fixing that and doing what Lundin says looks like this. – WhozCraig Nov 5 '19 at 16:02
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Basicly this function is recursive and if its void it can't return value so it's just flag to stop function

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return means to stop execution of the current function and return to the caller.

If the function is defined as to return something, then the return statement must have an expression denoting the thing to return.

Your function is correct, except the last return statement. Instead of

return  bubbleSort(arr,n-1);

just write

bubbleSort(arr,n-1);
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In traditional C, functions with return type void could only use an empty return statement to simply exit the function "early".

Functions that have valued return types must return a value in the return statement. When you have a value return, you can call a function in the return statement that itself returns that value.

In traditional C this makes no sense - you should simply call a void function, not try to return it.

However, in C++ with templates it was discovered that it was incredibly convenient to be able to chain return void-returning functions, and it makes some crazy sort of sense.

So now, you see lines like the second return statement which I think is your actual confusion: return bubbleSort(arr,n-1); This doesn't actually return anything, it just exits the function!

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  • "Traditional C"? It seems like you just mean C? – klutt Nov 5 '19 at 16:03
  • @klutt he may mean older versions like c99 etc. – oguzhan arslan Nov 5 '19 at 16:42
  • @oguzhanarslan And how does it differ from modern C when it comes to this? – klutt Nov 5 '19 at 16:43
  • @klutt I'm not a expert on C language but as far as ı know , the compilers and also the libraries are optimised and also developed in time .Additionally, with the other languages' development new concepts may have come up so that the developers of C language make some changes to accept these new concepts – oguzhan arslan Nov 5 '19 at 16:51
  • @oguzhanarslan It may be so, and that's precisely what I'm asking Gem Taylor about. – klutt Nov 5 '19 at 17:28

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