Suppose I have an array A with n numbers, so that the first element of this array is even, and last one is odd- I would like to write an function which find index i , such that A[i] is even and A[i+1] is odd. The function is to return the found index; if there is not any such index, return -1.

The time complexity of that solution must be log(n).

I have been thinking of using binary search in that case.

Here is what I have done so far:

int findIndex(int A[], int n)
{
   int left=0,right=n-1,mid,i;

   while(left<=right)
    {
      mid=(left+right)\2;
      if (A[mid]%2==0 && A[mid+1]%2!=0)
        return mid;
      else if (A[mid]%2!=0)
        right=mid-1;
      else 
       left=mid+1;
    }
   return -1;
}

I am not sure...

What do you think about it? Any help would be very appreciated.

  • Why start in the middle? The first value is even, so that would be a more sensible place to start IMO. – Stratadox Sep 12 at 18:55
  • By "a[1+1]", do you mean "a[i +1]"? – Harris Sep 12 at 19:09
for(int i = 0; i < A.size()-1; i++){
    if((A[i]+A[i+1])%2 == 1){
        return i;
    }
}

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