53

I have been working on and off with Java/Python. Now in this situation I want to check if the element is in the list and do stuff...

Python says:

if "a" in ["a", "b", "c"]:
    print "It's there!"

Does Java provide any one liner for this rather than creating ArrayList / Set or similar data structure in steps and adding elements to it?

Thanks.

8 Answers 8

115

Use Arrays.asList:

if( Arrays.asList("a","b","c").contains("a") )
7
  • 3
    The List is just a wrapper around the array, so it's very lightweight. Of course, "contains" is just going to end up iterating through the array, so what's the point? Jan 25, 2010 at 20:33
  • 2
    @danben sure, but it's an appropriate one-liner. Jan 25, 2010 at 20:33
  • 8
    It is a one liner - and you don't have to instantiate collection types manually. +1 from me :) Jan 25, 2010 at 20:33
  • 1
    yeah, and for one-liners there's no advantage to using O(log n) techniques over O(n). If you're going to reuse checking for inclusion in a large set, use a HashSet, if that's what you're getting at.
    – Jason S
    Jan 25, 2010 at 20:33
  • 1
    @danben, he says "in multiple steps" Jan 25, 2010 at 20:47
19

There is a boolean contains(Object obj) method within the List interface.

You should be able to say:

if (list.contains("a")) {
    System.out.println("It's there");
}

According to the javadoc:

boolean contains(Object o)

Returns true if this list contains the specified element. More formally, returns true if and only if this list contains at least one element e such that (o==null ? e==null : o.equals(e)).

8

In JDK7:

if ({"a", "b", "c"}.contains("a")) {

Assuming the Project Coin collections literals project goes through.

Edit: It didn't.

3
  • It's about time. Hopefully this gets adopted. I'm tired of the verbosity of Java
    – I82Much
    Jan 25, 2010 at 22:13
  • 3
    The extra 13 characters probably wont kill you. Jan 25, 2010 at 22:24
  • 1
    @X_Trust Add your own static contains method with varargs if you're desperate. Feb 2, 2019 at 1:41
3

You could try using Strings with a separator which does not appear in any element.

if ("|a|b|c|".contains("|a|"))
0
3

I would use:

if (Stream.of("a","b","c").anyMatch("a"::equals)) {
    //Code to execute
};

or:

Stream.of("a","b","c")
    .filter("a"::equals)
    .findAny()
    .ifPresent(ignore -> /*Code to execute*/);
1

If he really wants a one liner without any collections, OK, he can have one:

for(String s:new String[]{"a", "b", "c")) if (s.equals("a")) System.out.println("It's there");

*smile*

(Isn't it ugly? Please, don't use it in real code)

1

You can use java.util.Arrays.binarySearch to find an element in an array or to check for its existence:

import java.util.Arrays;
...

char[] array = new char[] {'a', 'x', 'm'};
Arrays.sort(array); 
if (Arrays.binarySearch(array, 'm') >= 0) {
    System.out.println("Yes, m is there");
}

Be aware that for binarySearch to work correctly, the array needs to be sorted. Hence the call to Arrays.sort() in the example. If your data is already sorted, you don't need to do that. Thus, this isn't strictly a one-liner if you need to sort your array first. Unfortunately, Arrays.sort() does not return a reference to the array - thus it is not possible to combine sort and binarySearch (i.e. Arrays.binarySearch(Arrays.sort(myArray), key)) does not work).

If you can afford the extra allocation, using Arrays.asList() seems cleaner.

0
 public class Itemfound{ 
        public static void main(String args[]){

                if( Arrays.asList("a","b","c").contains("a"){
                      System.out.println("It is here");
         }
    }

}

This is what you looking for. The contains() method simply checks the index of element in the list. If the index is greater than '0' than element is present in the list.

public boolean contains(Object o) {
return indexOf(o) >= 0;
}

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