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So I'm writing a simple struct to act like an Array of strings but with some handy operators and other functions that I've always wanted to see in strings. Specifically the method I'm working on right now is the / operator. The problem is, it won't add on any remainders at the end like I want it to.

What it's supposed to do, is take an array of strings, like {"Hello", "Test1", "Test2", "Goodbye", "More?", "Qwerty"} and, say I want to divide by 4, it should return { {"Hello", "Test1", "Test2", "Goodbye"}, {"More?", "Qwerty"} } but it doesn't.

The whole class (the method I want to improve is the / operator, but if you see anything else I can work on please point it out) (I know barely any of it is commented. Sorry about that, didn't expect anyone else to see this code aside from me.):

public struct StringCollection
{
    private String[] value;

    public StringCollection(params String[] s)
    {
        this.value = s;
    }

    public StringCollection(StringCollection current, String ad)
    {
        if (current.value == null) {
            current.value = new String[0] { };
        }
        this.value = new String[current.value.Length+1];
            for (int i=0; i<this.value.Length; i++)
            {
                try {
                    this.value[i] = current[i];
                } catch {
                    break;
                }
            }
            this.value[this.value.Length-1] = ad;
    }
    public StringCollection(StringCollection x, params StringCollection[] y)
    {
        this.value = x.value;
        for (int j=0;j<y.Length;j++)
        {
            for (int i=0;i<y[j].value.Length;i++)
            {
                this += y[j][i];
            }
        }
    }

    public static StringCollection[] operator /(StringCollection x, int y)
    {
        StringCollection[] result = null;
        if (((int)x.value.Length/y) == ((double)x.value.Length)/y)
            result = new StringCollection[y];
        else
            result = new StringCollection[y+1];
        for (int j=0;j<y;j++)
        {
            for (int i=0;i<((int)x.value.Length/y);i++)
            {
                result[j] += x.value[i+(int)((x.value.Length/y)*j)];
            }
        }
        if (((int)x.value.Length/y) != ((double)x.value.Length)/y)
        {
                            // This is the part that isn't working.
            for (int i=0;i<(((int)x.value.Length/y)*result[0].value.Length)-x.value.Length;i++) 
            {
                result[result.Length-1] += x.value[i+((result[0].value.Length)*result.Length-2)];
            }
        }
        return result;
    }
    public String this[int index]
    {
        get {
            return this.value[index];
        }
        set {
            this.value[index] = value;
        }
    }

}

What it does is basically takes your array (single array) and splits it into a bunch of arrays that are the same size, then it adds on the remainder in a new array at the end.

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closed as off topic by Michael Perrenoud, ThiefMaster Mar 28 '13 at 15:36

Questions on Stack Overflow are expected to relate to programming within the scope defined by the community. Consider editing the question or leaving comments for improvement if you believe the question can be reworded to fit within the scope. Read more about reopening questions here.If this question can be reworded to fit the rules in the help center, please edit the question.

1  
This is not the place for this particular question perhaps you are seeking a Code Review –  DJ KRAZE Mar 27 '13 at 20:11
2  
@DJKRAZE this might get closed at code review also, because he's asking about a specific problem. Code review generally presumes working code and asks how best to refactor. This code is not working, and he wants to know how to fix it. –  Joel Coehoorn Mar 27 '13 at 20:14
1  
That said, this question is also not suited for Stack Overflow as asked. To be a valid SO question, we need to see specifically what the problem is and how to reproduce it. –  Joel Coehoorn Mar 27 '13 at 20:15
2  
Whats the logic for your division? How can you ask the question "How many times will x go into y?" with strings the same as you do in integer division? –  kbzombie Mar 27 '13 at 20:50
2  
@Winderps: actually it's bad practice to swallow exceptions or use try-catch in control flow (just to give one reason, try-catch is a really expensive operation when catches an exception) so you should check the lengths of the arrays and avoid it ... –  digEmAll Mar 27 '13 at 21:13

1 Answer 1

up vote 1 down vote accepted

Firstly your question isn't really related to loops at all, or at least loops are only addressed in your code. You should have titled this differently.

Secondly your array adding/removing could be improved; i.e. adding 1 to array size every time and removing 1 then re-copying the entire array every time is a time-sink.

Now onto your question, your code should basically look like this:

//Make your return array
int retLen = x.Length / y;      

//Add space for the remainder
if(x.Length % y != 0)
  retLen++;

var ret = new StringCollection[retLen];

//Reusing variables is a good way to save memory, but watch naming conventions as this can be confusing
retLen = 0;

var tempCollection = new StringCollection();

for (int i = 0; i < x.Length; i++)
{
  tempCollection = new StringCollection(tempCollection, x[i]);

  if(i % y == 0 || i == x.Length - 1)
  {
    ret[retLen++] = tempCollection;
    tempCollection = new StringCollection();
    retLen = 0;
  }    
}

return ret;

I really don't like that you don't have a Add function in this struct, just so we're clear. the tempCollection = new StringCollection(tempCollection, x[i]); is f$*kin' TERRIBLE when it comes to time CPU time to create all those new objects.

Pretty sure you'll need to tweak that to make sure all items are entered properly, but that was a first attempt, so ... meh o.O Figured since no one was actually going to answer you I'd take the time.

EDIT: Found a bug, forgot to set retLen back to 0 when adding to ret

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Thank you for this! Wow, compared to your code, mine looks like spaghetti. I will use this from now on. :D –  Winderps Mar 27 '13 at 22:37

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