19

I need to check if a map contains any of the keys from a list, and if it does then return the first matching value. The naive approach that comes to mind is to do it in two nested loops:

Map<String, String> fields = new HashMap<String, String>();
fields.put("a", "value a");
fields.put("z", "value z");
String[] candidates = "a|b|c|d".split("|");
for (String key : fields.keySet()){
    for (String candidate : candidates) {
        if (key.equals(candidate)){
            return fields.get(key);
        }
    }
}

Is there a nicer and more efficient way, possibly one relying on the Java standard library?

9 Answers 9

26
for(String candidate : candidates) {
 if(fields.containsKey(candidate)) {
  return fields.get(candidate)
 }
}

the best way if null values are possibly in map, and if only the first detected key is required.

0
24

Surely something like:

for (String candidate : candidates) {
     String result = fields.get(key);
     if (result != null) {
         return result;
     }
}

The above only performs one map lookup per candidate key. It avoids the separate test for presence plus extraction, since extracting a non-existant key will simply give you a null. Note (thanks Slanec) that a null value for a valid key is indistinguishable from a non-existant key for this solution.

I don't quite understand why you're performing the case conversion, btw.

8
  • 9
    This is as efficient as it can get, but it may get tricky if null is a permitted value in the Map. Dec 28, 2012 at 11:09
  • 4
    Interesting... Do I understand it correctly that the idea is to only use map.get() once instead of map.contains() + map.get() because that would avoid a second lookup? That's neat!
    – ccpizza
    Dec 28, 2012 at 11:11
  • 3
    @NimChimpsky retainAll is descructive. Dec 28, 2012 at 11:12
  • 2
    @ccpizza - that's correct. Note Slanec's caveat re. null values in the map, though Dec 28, 2012 at 11:13
  • 2
    @ccpizza Actually, yes, once, I think. In an application where we didn't have explicit control over the hashmap's content as it was user's configuration and we needed to capture a case where a setting was accessed (but not changed) or was reset to default. Anyway, there is a SO question for this. Dec 28, 2012 at 11:31
20

In Java 8 you can have this:

boolean exists = Arrays.stream(candidates).anyMatch(fields::containsKey);

If you just want to know if any of candidates is key to the map.

If you want to know the first or any you can use:

Arrays.stream(candidates).filter(fields::containsKey).findAny();

or

Arrays.stream(candidates).filter(fields::containsKey).findFirst();

As per @Klapsa2503 answer above

7

My take:

Map<String, String> fields = new HashMap<String, String>();
fields.put("a", "value a");
fields.put("z", "value z");
String[] candidates = "a|b|c|d".split("|");
for (String candidate : candidates) {
    if (fields.containsKey(candidate)) {
        return fields.get(candidate);
    }
}
7

In Java 8 you can use this:

return candidates.stream()
            .filter(fields::containsKey)
            .findFirst()
            .map(fields::get)
            .orElse(null);
5

Try

Set<String> keySet = new HashSet<String>(fields.keySet());    
keySet.retainAll(list);

so keySet is supposed to have all keys from HashMap which are mentioned in the list

2
  • 2
    This is, I believe, the shortest way. However, it may be not the fastest one since the looping ends at the first found result, but this continues its work till the end. Dec 28, 2012 at 11:12
  • 3
    @Slanec, yes it depends whether OP wants to get all keys or just first one. Dec 28, 2012 at 11:13
2

Try as

    List list= Arrays.asList(1, 2, 3);
    HashMap map = new HashMap();
    map.put(1, 1);
    map.put(3, 3);
    Set set = new HashSet(map.keySet());
    set.retainAll(list);
    System.out.println(set);
    Object e = set.isEmpty() ? null : set.iterator().next();
    System.out.println(e);

output

[1, 3]
1
1
Map<String, String> fields = new HashMap<String, String>();
fields.put("a", "value a");
fields.put("z", "value z");
String[] candidates = "a|b|c|d".split("|");
List<String> canList = Arrays.asList(candidates );
for (String key : fields.keySet()){

if (canList .contains(key)) {
return fields.get(key);
}

}
1
  • 1
    Note : canList.contains is linear in time.
    – Srinivas
    Dec 28, 2012 at 11:06
1

You can use a single loop if you assume the key of the map are already in lower case, in the same way you assume the lookup values are in lower case.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.