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I was given this problem

Given an int array length 3, if there is a 2 in the array immediately followed by a 3, set the 3 element to 0. For Example ({1, 2, 3}) → {1, 2, 0} ({2, 3, 5}) → {2, 0, 5} ({1, 2, 1}) → {1, 2, 1}

And this is my implementation.

int[] x = { 1, 2, 1 };
            for (int i = 0; i < x.Length; i++)
            {
                if (x[i] == 2 && x[i + 1] == 3)
                {

                    for (int j = 0; j < x.Length; j++)
                    {
                        if (x[j]==3)
                        {
                            x[j] = 0;
                        }
                    }

                }
            }

            foreach (int i in x)
            {
                Console.Write(i);
            }

I got zero as result. Can you help me to find where I am at mistake. I can't figure it out because the lecturer didn't gave any explanation in details.

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3 Answers 3

up vote 4 down vote accepted

You do not need all these loops: with the length of 3, you need to perform only two checks, like this:

if (x[0]==2 && x[1]==3) x[1] = 0;
if (x[1]==2 && x[2]==3) x[2] = 0;

For arrays of arbitrary size, you could use a single loop:

for (var i = 0 ; i < x.Length-1 ; i++) {
    if (x[i]==2 && x[i+1]==3) x[i+1] = 0;
}
share|improve this answer
    
there was example also. I just edited it. –  Jasmine Appelblad Jan 10 '12 at 4:34
    
@JasmineAppelblad I would understand a single loop, but three nested loops for an array of three items is too much. One thing that is not correct about your three-loop program is for (int i = 0; i < x.Length; i++): it should be for (int i = 0; i < x.Length-1; i++), otherwise you'd get an index out of bounds exception. –  dasblinkenlight Jan 10 '12 at 4:40
    
This explains well, Thanks. At least I shouldn't be given 0/5. Anyways... –  Jasmine Appelblad Jan 10 '12 at 4:44

In your code, you have a proper check: if (x[i] == 2 && x[i + 1] == 3) However, there are 2 things you could improve on.

1) If you're going to do x[i + 1] you need to make sure that i can never be the last element of the array, because the + 1 will overflow the array. So instead of i < x.Length in the for loop, try i < x.Length - 1. It seems like duct taping, but there isn't really a better way (none I know of).

2) If the condition is true, you then have a for that will find and replace EVERY 3 in the array with a 0, regardless of if the 3 is preceded by a 2. You already know that x[i] is 2 and x[i + 1] is 3 (as determined by the if that we know at this point must be true), so the index of the 3 to be replaced is i + 1, thus: x[i + 1] = 0; No loop needed.

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Many Thanks for explanation Corey. –  Jasmine Appelblad Jan 10 '12 at 4:45

You can do it with one loop.

 // In the test part of the for loop, use ' i < x.Length - 1'
 // so you don't evaluate the last element + 1 and get an IndexOutOfRangeException
 for (int i = 0; i < x.Length - 1; i++) 
 {
    if (x[i] == 2 && x[i + 1] == 3)
       x[i + 1] = 0;
 }
share|improve this answer
    
Thanks agent-j, well noted in my book! :) –  Jasmine Appelblad Jan 10 '12 at 4:47

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