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Hello there stackoverflow users, im trying to initialize and fill my arrays with numbers and then find the max value of it, but when i start to fill array i get zeros or samenumbers which i input or ArrayIndexOutOfBoundsException or array stops with fill, i tryed few days but i really dont know what to do now, i have logical mistakes, please help.

public class Solution
{
    public static void main(String[] args) throws Exception
    {
        int[] array = initializeArray();
        int max = max(array);
        System.out.println(max);
    }
    public static int[] initializeArray() throws IOException {


        Scanner in = new Scanner(System.in);

        int Numbers[] = new int[5];

        if (in.hasNext())
        {
        for(int NumCntr = 0 ; NumCntr< Numbers.length ;NumCntr++)
        {
            Numbers[NumCntr] = in.nextInt();


        }
            System.out.println(Numbers);

        }

        return Numbers;
    }


    public static int max(int[] array) {


        int maxt = 0;

        for(int i=0;i < 5;i++)
        {
            if(array[i] >  array[i+1])
                maxt = array[i];
        }


        return maxt;




    }
}
share|improve this question
    
Try to describe what each line of your code in max method is doing. –  Pshemo Feb 4 at 14:42
    
please have a look at naming conventions –  Philipp Sander Feb 4 at 14:43

3 Answers 3

up vote 3 down vote accepted

The array size is 5 but at below loop for max value of i you are incrementing it by 1, and so trying to access array[5] (array[4+1]), which causes your ArrayIndexOutOfBoundsException.

     for(int i=0;i < 5;i++)
            {
                if(array[i] >  array[i+1])
--------------------------------------^
                    maxt = array[i];
            }
share|improve this answer
    
Thank you, but how is possible that i get 1 2 3 4 5 [I@2f5e8a8f <<<<< this 5 –  Predict_it Feb 4 at 14:55
    
wlc @Predict_it,ur array size is 5 it mean you can access the array index[0-4] but in the loop you was trying to access index[5] for i=4 due to which exception arise –  Kick Feb 4 at 14:58
    
@Predict_it Take a look at the code i posted below, that should give you what you need from the 'max' method –  M21B8 Feb 4 at 14:59
    
YAY! i removed System.out.println(Numbers); and its ok now. –  Predict_it Feb 4 at 15:05

Change your 'max' method to this. You are comparing each row with the next one. e.g. 5,3,2,4,1 would end up as 4. You need to store the highest one, compare to that, and return the one you end up with.

public static int max(int[] array) {
 if(array.length == 0)
     return; //array should have elements

 int maxt = array[0]; 

 for(int i=1;i < array.length;i++)
 {
     if(array[i] >  maxt)
        maxt = array[i];
 }
 return maxt;
}
share|improve this answer
    
This should be array.length -1. –  Pat Feb 4 at 14:53
    
didn't even see that in the code! shouldn't be there at all. –  M21B8 Feb 4 at 14:55
    
array.length will give an out of array index bounds –  Pat Feb 4 at 14:55
    
nope. it doesn't. points at the < symbol –  M21B8 Feb 4 at 14:58

Array index starts from 0. Since your array size is defined as int Numbers[] = new int[5];, you can reach Numbers[0],Numbers[1]... and Numbers[4]. However, in your max function you are trying to reach Numbers[5], which is out of array index bounds and causes exception.

If you are trying to find max try following:

int maxt = array[0];
for(int i=0;i < 5;i++)
{
    if(array[i] >  maxt)
       maxt = array[i];
}
return maxt;
share|improve this answer
    
i < 5 is kind of a bad suggestion, as it's only going to end up causing problems when he increases the size of the array. Plus you can make it more efficient by starting the loop at 1, as you've already set the max to be element 0, so no need to compare it again –  M21B8 Feb 4 at 14:51
    
yes, i know. I tried to keep it with minimal changes that questioner can understand easily. but, thanks for notice, now he may optimize it if he wants. –  shyos Feb 4 at 14:53

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