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I need to write a function int median(int d[], int size) in C that finds the median of an array. The function needs to call a function void selectsort(int d[], int size) that sorts the array for the median() function. Only the median() function is allowed to call the selectsort() function.

How can I get the sorted array from selectsort() to median() if I need to use a void return type? I though about using a pointer, but that also doesn't work because the pointer would need to be returned as well. I cannot nest selectsort() within median().

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Why doesn't the pointer workout to sort the original array on which the median function would work? –  Uchia Itachi Sep 12 '13 at 17:09
1  
Not sure why this was downvoted. It is a very reasonable (if fairly junior) question. –  Eric J. Sep 12 '13 at 17:09

3 Answers 3

up vote 2 down vote accepted

When you pass a non-const pointer to a function, you let that function modify the content to which the pointer points. So the solution in your case is to pass the same pointer to both functions:

int data[] = {1,11,2,12,3,13,4,14};
// Sort the data array
selectsort(data, 8);
// Find the median of the same data array
int m = median(data, size);

Only median() is allowed to call selectsort()

If that is the case, and assuming that you would like to keep the original ordering in place, you could make a copy of your array like this:

int median(int d[], int size) {
    int *data = malloc(sizeof(int)*size);
    memcpy(data, d, sizeof(int)*size));
    selectsort(data, 8);
    // Use data to find median
    int med = ...
    free(data);
    return med;
}

The idea is to preserve the content of the original array by sorting its copy.

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I'm still fairly new to C, so a couple follow-up questions, if I may. data is a pointer to the memory location of the array data, correct? If that's true, then I can pass a pointer to an array as a parameter as d[], sort using it as a normal array in selectsort(), then call the pointer back in median() which will reference the now-sorted array? –  Vaindil Sep 12 '13 at 17:28
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@StevenH Yes, exactly. Meantime, the d array passed from the caller of median() would remain unchanged, because you never write to it. –  dasblinkenlight Sep 12 '13 at 17:34
    
Makes perfect sense, and was exactly what I needed to understand what's going on. Thank you! –  Vaindil Sep 12 '13 at 17:35
    
One more question: Why is 8 passed to selectsort()? Shouldn't size be passed? –  Vaindil Sep 12 '13 at 23:49
    
@StevenH Absolutely! That's what happens when I copy/paste :-( –  dasblinkenlight Sep 13 '13 at 2:15

Presumably selectsort sorts the array in place, destroying the original ordering.

Simply pass d to median after calling selectsort.

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I apologize, I did not specify in my original post (now clarified): Only median() is allowed to call selectsort(). I cannot call selectsort() itself, so I wouldn't be able to pass d back to median() without a return type. I'm not terribly familiar with memory processes in C, however, so this may not be what you're saying at all. –  Vaindil Sep 12 '13 at 17:13
    
In C you are passing a pointer to the original array d to the functions median() and selectsort(). The array d will be modified and you can traverse it to find the median. No return value is required from selectsort() –  Justin Sep 12 '13 at 17:38

Selection sort is an 'in place' sorting algorithm. That means, that if you pass in the array to selectsort(), it will use that array as the working memory, and it will be sorted when the function returns.

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