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I have a very simple question:

How can I make this code more simple on Java:

ArrayList<String> s = new ArrayList<String>();
s.add("str1");
s.add("str hello");
s.add("str bye");
//...

Something like that:

ArrayList<String> s = {"a1", "str", "mystr"};

or that:

ArrayList<String> s = new ArrayList<String>("a1", "str", "mystr");

or that:

ArrayList<String> s = new ArrayList<String>();
s.addAll("a1", "str", "mystr");

or that:

ArrayList<String> s = new ArrayList<String>();
s.addAll(new ArrayElements("a1", "str", "mystr"));

I just want syntax hint. Thanks.

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stackoverflow.com/questions/2760995/… –  Vlad Oct 14 '11 at 12:22

5 Answers 5

up vote 8 down vote accepted

How about:

ArrayList<String> s = new ArrayList<String>();
Collections.addAll(s, "a1", "str", "mystr");
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List<String> s = Arrays.asList("a1", "str", "mystr");

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2  
This returns a fixed-size list not a java.util.ArrayList. So it is good when no more adding or removing of elements is needed. –  x22 Oct 14 '11 at 13:03
1  
This is true. It wasn't clear from the OP whether this would be an issue or not. –  dty Oct 14 '11 at 13:49
List<String> s = Arrays.asList(new String[] {"a1", "str", "mystr"});
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I dont believe thats the fastest method, you're creating alot of objects here.. –  Rob Oct 14 '11 at 12:20
    
@Rob: the OP asks for simple, not for fast –  amit Oct 14 '11 at 12:20
5  
List<String> s = Arrays.asList("a1", "str", "mystr"); is even better –  Eng.Fouad Oct 14 '11 at 12:22

I would use Guava and its wonderful Lists class:

List<String> list = Lists.newArrayList("a1", "str", "mystr");
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You can use double brace:

ArrayList<String> s = new ArrayList<String>()
{{
    add("str1");
    add("str hello");
    add("str bye");
    //...
}};
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2  
Rather than just producing esoteric syntax, wouldn't it be a good idea to explain to the OP what that is and how it works? –  dty Oct 14 '11 at 12:26
1  
dty, it is double brace initialization, it explained in c2.com/cgi/wiki?DoubleBraceInitialization in detail. –  SerCe Sep 3 at 17:03

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