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So I have an Array A of N size containing positive Integers. the array could have many duplicates, and I want to find the shortest distance to travel the array and visit each number that occurs in the array

what is the best way to iterate the array starting at A[0] and so on.

So far I have come up with adding all the numbers to a set so I can compare if I have been there already.

for example in the following array the shortest distance to visit all numbers is 5

Integer[] nums = { 2, 6, 7, 2, 3, 3, 1, 2 };

so I add them to a hashset

Set<Integer> UniqueNums = new HashSet<>(Arrays.asList(nums));

this is where I get confused I know the following is wrong and its only psudocode but i would do something along the lines of

int count = 0;
   for(int i : nums )
   {
       if(UniqueNums.contains(i)
       {
       count ++;
       }

   }
  • 2
    That loop will return the length of Array nums – Ele Dec 3 '17 at 1:16
  • 2
    How do you get 5 as shortest distance of all numbers? – Luai Ghunim Dec 3 '17 at 1:17
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    How do you define "shortest distance"? It seems you're simply asking for the count of unique numbers (which is these five: 1, 2, 3, 6, 7), which is int count = new HashSet<>(Arrays.asList(nums)).size(); – Andreas Dec 3 '17 at 1:19
  • 2
    Using a HashSet defeats the purpose as @EleazarEnrique mentions. Basically you want to ignore duplicates at the end, but you will still have to travel through duplicates. – Meepo Dec 3 '17 at 1:20
  • 3
    starting at any point in the array changes things, put that in your question – Meepo Dec 3 '17 at 1:23
0

can you please try this .... It is just a pseudo code.

int count = 0;
int i =0;
while(i  < nums.lnegth  && UniqueNums.size() >0)
   {
    UniqueNums.remove (nums[i]);
    i++;
   }

Sysout("minimum length of array containing all unique element  from starting " + i);

What i am doing - > After putting unique element to set, I am iterating the array and started removing element which i visited in nums. when i have visited all unique element in nums at that time "UniqueNums" will be empty and it will terminate the loop

  • Yes basically that but I need to repeat that starting at index 1 then 2 and so on, store the cont values in a list and then get the smallest one. Thanks you have pointed me in the right direction anyway. – Michael Grinnell Dec 3 '17 at 1:45

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