6

I have an array containing numbers which are ranks.

Something like this :

0 4 2 0 1 0 4 2 0 4 0 2

Here 0 corresponds to the lowest rank and max number corresponds to highest rank. There may be multiple indexes containing highest rank.

I want to find index of all those highest rank in array. I have achieved with following code:

import java.util.*;

class Index{

    public static void main(String[] args){

        int[] data = {0,4,2,0,1,0,4,2,0,4,0,2};
        int max = Arrays.stream(data).max().getAsInt();
        ArrayList<Integer> indexes = new ArrayList<Integer>();

        for(int i=0;i<12;i++){
            if(data[i]==max){
               indexes.add(i);
            }
        }

        for(int j=0;j<indexes.size();j++){
            System.out.print(indexes.get(j)+" ");   
        }
        System.out.println();
    }
}

I have got result as : 1 6 9

Is there any better way than this ?

Because, In my case there may be an array containing millions of elements due to which I have some issue regarding performance.

So,

Any suggestion is appreciated.

  • Streaming a some overhead, so replace that stream line with a regular for loop, to find the max value, may improve performance a bit. Otherwise, probably not, but why don't you profile the code and see if anything pops out? – Andreas May 20 '17 at 9:11
  • Your problem is that you're iterating over the array twice - once to find what the maximum value is, and then once to find all the instances of it. You really only need to iterate over the array once. – Dawood ibn Kareem May 20 '17 at 9:15
  • This is the sample case. I've got array from a function that can have variable size usually large and this is part of whole execution and I want to improve – Sagar Gautam May 20 '17 at 9:16
11

One approach would be to simply make a single pass along the array and keep track of all indices of the highest number. If the current entry be less than the highest number seen so far, then no-op. If the current entry be the same as the highest number seen, then add that index. Otherwise, we have seen a new highest number and we should throw out our old list of highest numbers and start a new one.

int[] data = {0,4,2,0,1,0,4,2,0,4,0,2};
int max = Integer.MIN_VALUE;
List<Integer> vals = new ArrayList<>();

for (int i=0; i < data.length; ++i) {
    if (data[i] == max) {
        vals.add(i);
    }
    else if (data[i] > max) {
        vals.clear();
        vals.add(i);
        max = data[i];
    }
}
  • 2
    Exactly what I would have proposed, you were just a bit quicker! That is the fastest you can get, one pass over the entire array and you are done. – luk2302 May 20 '17 at 9:12
  • Yes, this is the correct solution. I think the question is a duplicate, and this was the correct answer last time too. – Dawood ibn Kareem May 20 '17 at 9:14
  • 1
    This will waste some time building up index values from max-so-far values, until the first instance of max value is found. Since that includes boxing the indexes, it's not entirely cheap, and a for loop is very fast, so is iterating twice more costly than building up and throwing away bad indexes? Only profiling can tell. But using HashSet is definitely worse than using ArrayList, since there will never be duplicate index values collected. – Andreas May 20 '17 at 9:15
  • will it be more efficiently if you try to pick elements from both head and rear in one loop? – Zedee.Chen May 20 '17 at 9:15
  • Why the HashSet? Indexes that are added to the index collection are always distinct. So a simple ArrayList should perform better, – Seelenvirtuose May 20 '17 at 9:15
3

You are on the Stream- way... I would suggest you to stay there :)

int[] data = { 0, 4, 2, 0, -1, 0, 4, 2, 0, 4, 0, 2 };
int max = Arrays.stream(data).max().getAsInt();
int[] indices = IntStream.range(0, data.length).filter(i -> data[i] == max).toArray();
-1

As i see your program goes through the array 2 times.You can try this: Run through the array finding the max of this array.When you find a max just save every other element that is equal to the current max and their values.This way you only go through the array only once. Here is an example: Let's say you have the following array {1,3,5,3,4,5} and you go through it.You will first save the 1 as max then the 3 then the 5 which is the max of this array.After saving 5 you won't save 3 or 4 but you will save 5 as it is equal to the max.Hope i helped.

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