183

I need to initialize a constant HashMap and would like to do it in one line statement. Avoiding sth like this:

  hashMap.put("One", new Integer(1)); // adding value into HashMap
  hashMap.put("Two", new Integer(2));      
  hashMap.put("Three", new Integer(3));

similar to this in objective C:

[NSDictionary dictionaryWithObjectsAndKeys:
@"w",[NSNumber numberWithInt:1],
@"K",[NSNumber numberWithInt:2],
@"e",[NSNumber numberWithInt:4],
@"z",[NSNumber numberWithInt:5],
@"l",[NSNumber numberWithInt:6],
nil] 

I have not found any example that shows how to do this having looked at so many.

11 Answers 11

332

You can use the Double Brace Initialization as shown below:

Map<String, Integer> hashMap = new HashMap<String, Integer>()
{{
     put("One", 1);
     put("Two", 2);
     put("Three", 3);
}};

As a piece of warning, please refer to the thread Efficiency of Java “Double Brace Initialization" for the performance implications that it might have.

9
  • 12
    @user387184 Yeah, they call it "double brace initializer". See this topic: stackoverflow.com/questions/924285/…
    – Eng.Fouad
    Nov 24, 2011 at 18:39
  • 43
    You should not use this method. It creates a new class for every time that you use it, which has much worse performance than just plainly creating a map. See stackoverflow.com/questions/924285/… Apr 26, 2016 at 13:59
  • 9
    The reason I downvoted this is because it didn't explain that this creates a new class for every time that you use it. I think that people should be aware of the tradeoffs of doing it this way. Nov 8, 2016 at 16:28
  • 9
    @TimoTürschmann Seems that if I ever needed static initialization of a map like this, that it would also be static, eliminating the every time you use it performance penalty - you'd have that penalty once. I can't see any other time that one would want this kind of initialization without the variable being static (e.g., would anyone ever use this in a loop?). I may be wrong though, programmers are inventive. Nov 27, 2016 at 23:41
  • 4
    Please don't use this anti-pattern, it's actively dangerous and there are reasonable alternatives.
    – dimo414
    Apr 3, 2018 at 20:59
89

Since Java 9, it is possible to use Map.of(...), like so:

Map<String, Integer> immutableMap = Map.of("One", 1, 
                                           "Two", 2, 
                                           "Three", 3);

This map is immutable. If you want the map to be mutable, you have to add:

Map<String, Integer> hashMap = new HashMap<>(immutableMap);

If you can't use Java 9, you're stuck with writing a similar helper method yourself or using a third-party library (like Guava) to add that functionality for you.

2
  • 2
    After adding 10 entries, it throws strange error "can not resolve method", is this bug with this method ?
    – vikramvi
    Apr 2, 2020 at 7:56
  • 7
    @vikramvi yes If you look at the documentation Map.of is only done up to 10 entries since it is quite laborious
    – jolivier
    Jun 18, 2020 at 14:45
73

You can use Google Guava's ImmutableMap. This works as long as you don't care about modifying the Map later (you can't call .put() on the map after constructing it using this method):

import com.google.common.collect.ImmutableMap;

// For up to five entries, use .of()
Map<String, Integer> littleMap = ImmutableMap.of(
    "One", Integer.valueOf(1),
    "Two", Integer.valueOf(2),
    "Three", Integer.valueOf(3)
);

// For more than five entries, use .builder()
Map<String, Integer> bigMap = ImmutableMap.<String, Integer>builder()
    .put("One", Integer.valueOf(1))
    .put("Two", Integer.valueOf(2))
    .put("Three", Integer.valueOf(3))
    .put("Four", Integer.valueOf(4))
    .put("Five", Integer.valueOf(5))
    .put("Six", Integer.valueOf(6))
    .build();

See also: http://docs.guava-libraries.googlecode.com/git/javadoc/com/google/common/collect/ImmutableMap.html

A somewhat related question: ImmutableMap.of() workaround for HashMap in Maps?

4
  • Guava is huge, I wouldn't use it for my Android app unless absolutely necessary
    – ericn
    May 3, 2017 at 7:29
  • 4
    Beware that ImmutableMap doesn't accept null keys or values.
    – Vadzim
    May 5, 2017 at 17:58
  • @ericn ProGuard lets you exclude any parts of a library you aren't using.
    – dimo414
    Apr 3, 2018 at 21:04
  • it should be Map<String, Integer> bigMap = new ImmutableMap.Builder<String, Integer>().put(...).put(...).build(); Mar 9, 2023 at 16:03
12

Maps have also had factory methods added in Java 9. For up to 10 entries Maps have overloaded constructors that take pairs of keys and values. For example we could build a map of various cities and their populations (according to google in October 2016) as follow:

Map<String, Integer> cities = Map.of("Brussels", 1_139000, "Cardiff", 341_000);

The var-args case for Map is a little bit harder, you need to have both keys and values, but in Java, methods can’t have two var-args parameters. So the general case is handled by taking a var-args method of Map.Entry<K, V> objects and adding a static entry() method that constructs them. For example:

Map<String, Integer> cities = Map.ofEntries(
    entry("Brussels", 1139000), 
    entry("Cardiff", 341000)
);

Collection Factory Methods in Java 9

1
  • Excellent if you could use Java 9+. Also these factory method returns immutable map.
    – Sourabh
    Oct 5, 2018 at 6:53
8

Java has no map literal, so there's no nice way to do exactly what you're asking.

If you need that type of syntax, consider some Groovy, which is Java-compatible and lets you do:

def map = [name:"Gromit", likes:"cheese", id:1234]
8

Here's a simple class that will accomplish what you want

import java.util.HashMap;

public class QuickHash extends HashMap<String, String> {
    public QuickHash(String... KeyValuePairs) {
        super(KeyValuePairs.length/2);
        for(int i=0; i<KeyValuePairs.length; i+=2)
            put(KeyValuePairs[i], KeyValuePairs[i+1]);
    }
}

And then to use it

Map<String, String> Foo=new QuickHash(
    "a", "1",
    "b", "2"
);

This yields {a:1, b:2}

0
4
    boolean x;
    for (x = false, 
        map.put("One", new Integer(1)), 
        map.put("Two", new Integer(2)),      
        map.put("Three", new Integer(3)); x;);

Ignoring the declaration of x (which is necessary to avoid an "unreachable statement" diagnostic), technically it's only one statement.

5
  • 21
    This is disgustingly hacky. Oct 3, 2016 at 12:35
  • 1
    @MicahStairs - But it's only one statement.
    – Hot Licks
    Oct 3, 2016 at 12:36
  • 3
    True, but this is the sort of code that I never hope to stumble across in production. Oct 3, 2016 at 12:39
  • @MicahStairs - I've seen worse.
    – Hot Licks
    Oct 3, 2016 at 13:13
  • 1
    Omg i have searched for this today,how this code works? I have added it into the code for testing but i can't figure it out how it works internally... :)
    – GOXR3PLUS
    Oct 19, 2016 at 9:50
2

You could add this utility function to a utility class:

public static <K, V> Map<K, V> mapOf(Object... keyValues) {
    Map<K, V> map = new HashMap<>(keyValues.length / 2);

    for (int index = 0; index < keyValues.length / 2; index++) {
        map.put((K)keyValues[index * 2], (V)keyValues[index * 2 + 1]);
    }

    return map;
}

Map<Integer, String> map1 = YourClass.mapOf(1, "value1", 2, "value2");
Map<String, String> map2 = YourClass.mapOf("key1", "value1", "key2", "value2");

Note: in Java 9 you can use Map.of

2
  • This method shouldn't be used since the implementation is not type safe! Example: Map<Integer, String> map1 = mapOf(1, "value1", "key", 2, 2L);
    – juls
    Aug 10, 2020 at 9:54
  • Well, I expect the programmer which defines Map<Integer, String>, to also supply those types... Aug 12, 2020 at 6:55
0

Based on solution, presented by @Dakusan (the class defining to extend the HashMap), I did it this way:

  public static HashMap<String,String> SetHash(String...pairs) {
     HashMap<String,String> rtn = new HashMap<String,String>(pairs.length/2);
     for ( int n=0; n < pairs.length; n+=2 ) rtn.put(pairs[n], pairs[n + 1]);
    return rtn; 
  }

.. and using it this way:

HashMap<String,String> hm = SetHash( "one","aa", "two","bb", "tree","cc");

(Not sure if there is any disadvantages in that way (I am not a java developer, just has to do some task in java), but it works and seems to me comfortable.)

0

We can use JSON to achieve this, like following using Gson

Map<String,Integer> hashMap = new Gson().fromJson("{'one':1,'two':2,'three':3}",HashMap.class);

Or using Jackson

Map<String,Integer> hashMap = new ObjectMapper().readValue("{'one':1,'two':2,'three':3}",HashMap.class);
-1

Another approach may be writing special function to extract all elements values from one string by regular-expression:

import java.util.HashMap;
import java.util.regex.Matcher;
import java.util.regex.Pattern;

public class Example {
    public static void main (String[] args){
        HashMap<String,Integer> hashMapStringInteger = createHashMapStringIntegerInOneStat("'one' => '1', 'two' => '2' , 'three'=>'3'  ");

        System.out.println(hashMapStringInteger); // {one=1, two=2, three=3}
    }

    private static HashMap<String, Integer> createHashMapStringIntegerInOneStat(String str) {
        HashMap<String, Integer> returnVar = new HashMap<String, Integer>();

        String currentStr = str;
        Pattern pattern1 = Pattern.compile("^\\s*'([^']*)'\\s*=\\s*>\\s*'([^']*)'\\s*,?\\s*(.*)$");

        // Parse all elements in the given string.
        boolean thereIsMore = true;
        while (thereIsMore){
            Matcher matcher = pattern1.matcher(currentStr);
            if (matcher.find()) {
                returnVar.put(matcher.group(1),Integer.valueOf(matcher.group(2)));
                currentStr = matcher.group(3);
            }
            else{
                thereIsMore = false;
            }
        }

        // Validate that all elements in the given string were parsed properly
        if (currentStr.length() > 0){
            System.out.println("WARNING: Problematic string format. given String: " + str);
        }

        return returnVar;
    }
}

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