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In This Question A value is "everywhere" in an array if for every pair of adjacent elements in the array, at least one of the pair is that value. Return true if the given value is everywhere in the array.

isEverywhere({1, 2, 1, 3}, 1) → true,coz 1 is present in(1,2) and (1,3) isEverywhere({1, 2, 1, 3}, 2) → false,coz 2 is in (1,2) but not in (1,3) isEverywhere({1, 2, 1, 3, 4}, 1) → false,coz 1 is present in 2 pairs (1,2) and (1,3) but 4 is not having a pair of 1

My Partial working code is below,could you help me out with this problem,stuck up for a long time.

::Code::

public boolean isEverywhere(int[] nums, int val) {    
    boolean flag = false;    
    for(int i=0;i<nums.length;i++){    
      for(int j=i+2;j<nums.length;j++){    
            if(nums[i] == nums[j]){    
                 flag = true;    
            }    
      }    
    }      
  return flag;     
}         

Result expected:

                           `Expected` `This` `Run`       

isEverywhere({1, 2, 1, 3}, 1) → true true OK
isEverywhere({1, 2, 1, 3}, 2) → false true X
isEverywhere({1, 2, 1, 3, 4}, 1) → false true X

share|improve this question
1  
What's the problem? – Mark Peters Dec 21 '10 at 18:56
    
case 2 and Case 3 are failing – Deepak Dec 21 '10 at 18:57
1  
@Deepak: Why are they failing? – Mark Peters Dec 21 '10 at 18:58
1  
You don't need to nest for loops for this. Break down the problem. First try to enumerate through the pairs you are considering and doing a System.out.println to see that you are considering the right pairs. Even tiny problems can be taken step by step. – Dan Rosenstark Dec 21 '10 at 19:00
2  
@Yar,Thanks for that small sentence. – Deepak Dec 21 '10 at 19:19
up vote 3 down vote accepted

Try this:

boolean isEverywhere(int[] nums, int val) {    

        // use i+=2 to get start index of pair.
        for(int i=0;i<nums.length;i+=2) {

                // other index in the pair.
                int j = i + 1;

                // make sure the other index really exists.
                if(j < nums.length) { 

                        // if it exists..and val is not equal to 
                        // either in the pair..return false.
                        if(nums[i] != val && nums[j] != val) {
                                return false;
                        }       
                } else {
                        // no pair..one element case.
                        // return true if that element is val..else return false.
                        return nums[i] == val; 
                }       
        }

        // array has no unpaired element..and all pairs have val.
        return true;     
}    
share|improve this answer
    
@codaddict,i have one question,what the exception scenario isEverywhere({3}, 1) → true false X – Deepak Dec 21 '10 at 19:11
1  
@Deepak: ` isEverywhere({3}, 1)` returns false as expected as there is no 1. Is that not you want? – codaddict Dec 21 '10 at 19:13
    
yes,correct,probably i need to check my test cases once,Thanks once again,sorry for the trouble,@coaddict – Deepak Dec 21 '10 at 19:17
    
@Deepak: what about a case such as isEverywhere({1, 3, 4, 1}, 1) If I'm not mistaken this would be expected to return false, but this code would return true. This is because it would only check (1, 3) and (4, 1) isn't the pair (3, 4) considered? – Shaded Dec 21 '10 at 19:33
    
@shaded,only the adjacency pairs are considered and will return true.@codaddict is correct,i just checked the algorithm i have last clarification,why have u return nums[i] == val; – Deepak Dec 21 '10 at 19:44

The key is

for every pair of adjacent elements in the array

Print out i and j before if(nums[i] == nums[j]) and you'd see what's going on.

For an array of length 2, you need (0, 1), for array of length 3, you need (0, 1), (1, 2), and so on.

share|improve this answer

You never use val in your code
Try figuring out the logic for that first

And this can be done with a single loop, try to figure out how you would as a person apply an algorithm, then code it

share|improve this answer
    
-1..This should be comment not an answer ;-) – Omnipotent Apr 26 '11 at 18:53

Your code is failing because the flag does not turn off in the case that the second loop goes beyond the array length.

share|improve this answer
public class IE {
    static boolean isEverywhere(int[] a, int val) {   
      for (int i = 0; i < a.length; i++) {
        System.out.println("*** iteration: " + i);
        System.out.println("a[" + (i-1) + "]=" + (i > 0 ? a[i-1] : "n/a"));
        System.out.println("a[" + i + "]=" + a[i]);
        System.out.println("a[" + (i+1) + "]=" + (i < a.length -1 ? a[i+1] : "n/a"));
        if (a[i] != val && (i > 0 ? a[i-1] != val : true) && (i < a.length-1 ? a[i+1] != val : true)) {
          return false;
        }   
      }   
      return true; 
    }

    public static void main(String[] args) {
        int[] a = new int[] {1, 2, 1, 3};
        System.out.println(isEverywhere(a, 1));
        a = new int[] {1, 2, 1, 3};
        System.out.println(isEverywhere(a, 2));
        a = new int[] {1, 2, 1, 3, 4};
        System.out.println(isEverywhere(a, 1));
    }
}

basically, for a given element in the array, the test fails if the value isn't adjacent, either before or after it.

share|improve this answer
    
This doesn't solve the problem at all, and you shouldn't just be doing his homework for him. – Mark Peters Dec 21 '10 at 19:03
    
not working,still gives me the same problem – Deepak Dec 21 '10 at 19:03
    
he didn't say it was homework did he? and yes it does work for the given input (now that i edited it). – Jeffrey Blattman Dec 21 '10 at 19:20

Not a full solution, but if the length of the array is odd, check that the last value equals the target val

...
    if( !(nums.length % 2) == 0 ){
       if( nums[length-1] != val){
          return false;
       }
    }
...
share|improve this answer

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