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There is an ArrayList which stores integer values. I need to find the maximum value in this list. E.g. suppose the arrayList stored values are : 10, 20, 30, 40, 50 and the max value would be 50.

What is the efficient way to find the maximum value?

@Edit : I just found one solution for which I am not very sure

ArrayList<Integer> arrayList = new ArrayList<Integer>();
arrayList.add(100); /* add(200), add(250) add(350) add(150) add(450)*/

Integer i = Collections.max(arrayList)

and this returns the highest value.

Another way to compare the each value e.g. selection sort or binaray sort algorithm

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Have you attempted to find the value? Where did you get stuck? Is your own solution perhaps too inefficient? –  Anthony Pegram Nov 29 '11 at 1:42
    
If it's something you do a lot Java will compile it to assembly so unless you do something silly your code will be quite efficient with just a simple iterator. –  Bill K Nov 29 '11 at 1:53
    
@AnthonyPegram : i mean which sort algorithm or is there any method in java? BTW check the gotomanners's answer. –  user1010399 Nov 29 '11 at 2:47

7 Answers 7

up vote 75 down vote accepted

Sort the array in either ascending or descending order and pick either the first or last item in the array depending on the order!

Collections.sort(arrayList); // Sort the arraylist
arrayList.get(arrayList.size() - 1); //gets the last item, largest for an ascending sort

EDIT

On second thought, you can use the Collections API to achieve what you want easily - read efficiently - enough Javadoc for Collection.max

Collections.max(arrayList);

Returns the maximum element of the given collection, according to the specified comparator.

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least efficient valid solution possible (Valid meaning that you could contrive a less efficient solution but it would have to be deliberately wasteful). On the other hand if it was an array it's theoretically possible that the built in Arrays.sort would be better than iterating, but almost certainly not. –  Bill K Nov 29 '11 at 1:40
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If you need a sorted list, that's one thing. If you only need the highest or lowest value, sorting is performing too much work for the given task. –  Anthony Pegram Nov 29 '11 at 1:41
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The question was "What is the eeficient way to find the maximum value?" Sorting may be more eeficient than the other solutions - depending on what eeficient is. –  emory Nov 29 '11 at 1:55
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If the array is close to sorted - or is constantly being extended - and many max() operations would be called, it could be more efficient to keep it sorted. –  Rhys van der Waerden Nov 29 '11 at 2:04
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Why is this the accepted answer? It's not the most efficient solution. Best case, it's O(n log(n)) and picking the max by checking them all is only O(n) –  Brendan Long Nov 29 '11 at 3:03

This question is almost a year old but I have found that if you make a custom comparator for objects you can use Collections.max for an array list of objects.

    import java.util.Comparator;
    public class compPopulation implements Comparator<Country>
    {
    public int compare(Country a, Country b)
    {
    if(a.getPopulation() > b.getPopulation()) return -1; // highest value first
    if(a.getPopulation() == b.Population()) return 0;
    return 1;
     }
    }
    ArrayList<Country> X = new ArrayList<Country>();
    // create some country objects and put in the list
    Country ZZ = Collections.max(X, new compPopulation());
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Thanks for sharing your knowledge about Comparators. Your post made me writing a blog article: fenon.de/kleinsten-und-groessten-wert-einer-arraylist-ermitteln –  R_User Nov 14 '13 at 17:18
public int getMax(ArrayList list){
    int max = Integer.MIN_VALUE;
    for(int i=0; i<list.size(); i++){
        if(list.get(i) > max){
            max = list.get(i);
        }
    }
    return max;
}

From my understanding, this is basically what Collections.max() does, though they use a comparator since lists are generic.

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There is no particularly efficient way to find the maximum value in an unsorted list -- you just need to check them all and return the highest value.

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what about this Integer i = Collections.max(arrayList). it returns the highest value in my case whether i am not very sure. what you say? –  user1010399 Nov 29 '11 at 2:37
    
@user1010399 - This does exactly what I'm saying -- It checks every value and returns the highest one. –  Brendan Long Nov 29 '11 at 3:04
    
ok, alright. thanks. i was bit confused between this collections method & sorting algorithm. –  user1010399 Nov 29 '11 at 3:16

We can simply use Collections.max() and Collections.min() method.

public class MaxList {
    public static void main(String[] args) {
        List l = new ArrayList();
        l.add(1);
        l.add(2);
        l.add(3);
        l.add(4);
        l.add(5);
        System.out.println(Collections.max(l)); // 5
        System.out.println(Collections.min(l)); // 1
    }
}
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In Java 8, Collections have been enhanced by using lambda so finding max and min can accomplish as follows

Code:

    List<Integer> ints = Stream.of(12, 72, 54, 83, 51).collect(Collectors.toList());
    System.out.println("the list: ");
    ints.forEach((i) -> {
        System.out.print(i + " ");
    });
    System.out.println("");
    Integer minNumber = ints.stream()
            .min(Comparator.comparing(i -> i)).get();
    Integer maxNumber = ints.stream()
            .max(Comparator.comparing(i -> i)).get();

    System.out.println("Min nuumber is " + minNumber);
    System.out.println("Max nuumber is " + maxNumber);

output:

 the list: 12 72 54 83 51  
 Min nuumber is 12 
 Max nuumber is 83
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depending on the size of your array a multithreaded solution might also speed up things

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This does not provide an answer to the question. To critique or request clarification from an author, leave a comment below their post. –  madth3 Nov 17 '12 at 4:15

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