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So I have another assignment to do and the task is to assort 3 strings alphabetically using the compareTo method. Basically the program receives 3 strings (a, b, and c) from a tester class and its supposed to return back the "getMin", "getMiddle", and "getMax".

I figured out the getmin and max, seemed easy but im having problems with the getMiddle. this is what i have for min and max:

        String min = "";
    if (a.compareTo(b) <= 0 && a.compareTo(c) <= 0) min = a;
    else if (b.compareTo(a) <= 0 && b.compareTo(c) <= 0) min = b;
    else if (c.compareTo(b) <= 0 && c.compareTo(a) <= 0) min = c;
    return min;

and similarly for get max only slightly different. How can I go about creating the getMiddle. Also we are not allowed to use arrays as we "haven't learned" them yet. and the prof said that the code for get middle should be around 5-6 lines.

Thanks

share|improve this question
    
why tagged as 'interview questions'? – Nitin Garg Oct 11 '11 at 16:53
up vote 6 down vote accepted

Multiply return values of compareTo method. If the value is middle, results of compareTo method have different signs. do multiply result is zero or has negative sign.

String getMiddle(String a,String b,String c)
{
    String middle = "";
    if (a.compareTo(b)*a.compareTo(c) <= 0) middle = a;
    else if (b.compareTo(a)*b.compareTo(c) <= 0) middle = b;
    else if (c.compareTo(b)*c.compareTo(a) <= 0) middle = c;
    return middle;
}
share|improve this answer
    
ahh thank you very much, thats actually quite brilliant, i didnt think that far :) – Cody Oct 11 '11 at 4:19
 String middle = "";
    if (a.compareTo(b) <= 0 && a.compareTo(c) >= 0) middle = a;
    else if (b.compareTo(a) <= 0 && b.compareTo(c) >= 0) middle = b;
    else if (c.compareTo(b) <= 0 && c.compareTo(a) >= 0) middle = c;
    return middle;
share|improve this answer
    
yah but its not that simple, i tried that except what if if (a.compareTo(c) <= 0 && a.compareTo(b) >= 0) middle = a; thats also a possibility, same for the other 2 variables :( – Cody Oct 11 '11 at 4:09

Doing it your way, it would look like this:

if      (a.compareTo(b) > 0 && a.compareTo(c) <= 0) middle = a;
else if (a.compareTo(c) > 0 && a.compareTo(b) <= 0) middle = a;
else if (b.compareTo(a) > 0 && b.compareTo(c) <= 0) middle = b;
else if (b.compareTo(c) > 0 && b.compareTo(a) <= 0) middle = b;
else middle = c;
return middle

Well, that's the general gist behind it. You could combine some of these together for fewer lines, but I'll leave that up to you.

share|improve this answer
    
yah i know, thats what i started doing but it ends up a little over the recommended lines of code. the way ivorycirrus did it is correct i think. – Cody Oct 11 '11 at 4:25

Why so complicated ? Just use TreeSet, it uses compareTo() internally :).

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yah but we haven't learned it yet so we cant really use it yet – Cody Oct 12 '11 at 2:26

this gives the mid..haven't tested it thorougly..and also, as for the number of lines prediction, i'm not sure i met it very well...anyway...

    String mid = "";
    if (a.compareTo(b) <= 0) {
        if (b.compareTo(c) <= 0) mid = b;
        else mid = c;}
    else if(a.compareTo(c) <= 0) mid = a;
    else mid = c; 
    return mid;
share|improve this answer

I will go with TreeSet only because it is sorting the data after adding to it.

share|improve this answer
    
yah but we haven't learned it yet so we cant really use it yet – Cody Oct 12 '11 at 2:26

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