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I currently have a statement which reads

if(Arrays.asList(results).contains("Word"));

and I want to add at least several more terms to the .contains parameter however I am under the impression that it is bad programming practice to have a large number of terms on one line..

My question is, is there a more suitable way to store all the values I want to have in the .contains parameters?

Thanks

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To answer the bigger question, could you tell us. Why you have a list of words and why you want to check for 4-5 different ones? –  Blundell Mar 24 '12 at 17:38
    
What do you mean more terms to the parameter? Like, you'd be searching for an entire sentence or what? –  jpm Mar 24 '12 at 17:40
1  
@jpom he means if(Arrays.asList(results).contains("Word") || Arrays.asList(results).contains("Word2") || Arrays.asList(results).contains("Word3")) –  Blundell Mar 24 '12 at 17:44
    
Say I have a list of football players, and I would like to do, if(Arrays.asList(players).contains("tom","selleck","bill")); I am also only after realising that you cannot put an OR operator in the .contains() ... –  Tom celic Mar 24 '12 at 17:45

3 Answers 3

up vote 6 down vote accepted

You can use intersection of two lists:

String[] terms = {"Word", "Foo", "Bar"};
List<String> resultList = Arrays.asList(results);
resultList.retainAll(Arrays.asList(terms))
if(resultList.size() > 0)
{
         /// Do something
}

To improve performance though, it's better to use the intersection of two HashSets:

String[] terms = {"Word", "Foo", "Bar"};
Set<String> termSet = new HashSet<String>(Arrays.asList(terms));
Set<String> resultsSet = new HashSet<String>(Arrays.asList(results));
resultsSet.retainAll(termSet);
if(resultsSet.size() > 0)
{
         /// Do something
}

As a side note, the above code checks whether ANY of the terms appear in results. To check that ALL the terms appear in results, you simply make sure the intersection is the same size as your term list:

 resultsSet.retainAll(termSet);
 if(resultSet.size() == termSet.size())
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I am trying this method now however I am getting a "Cannot invoke size() on the primitive type boolean" error –  Tom celic Mar 24 '12 at 18:28
    
Oops. You are right. The method retainAll changes the original collection and returns a boolean. I edited the answer to fix this. –  Diego Mar 24 '12 at 21:47
    
It's really not necessary to create a temporary Set object. –  neevek Mar 25 '12 at 2:21

Why don't you just store your results in a HashSet? With a HashSet, you can benefit from hashing of the keys, and it will make your assertion much faster.

Arrays.asList(results).contains("Word") creates a temporary List object each time just to do linear search, it is not efficient use of memory and it's slow.

There's HashSet.containsAll(Collection collection) method you can use to do what you want, but again, it's not efficient use of memory if you want to create a temporary List of the parameters just to do an assertion.

I suggest the following:

HashSet hashSet = ....
public assertSomething(String[] params) {
    for(String s : params) {
       if(hashSet.contains(s)) {
           // do something
           break;
       }
    }
}
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You can utilize Android's java.util.Collections class to help you with this. In particular, disjoint will be useful:

Returns whether the specified collections have no elements in common.

Here's a code sample that should get you started.

In your Activity or wherever you are checking to see if your results contain a word that you are looking for:

    String[] results = {"dog", "cat"};
    String[] wordsWeAreLookingFor = {"foo", "dog"};
    boolean foundWordInResults = this.checkIfArrayContainsAnyStringsInAnotherArray(results, wordsWeAreLookingFor);
    Log.d("MyActivity", "foundWordInResults:" + foundWordInResults);

Also in your the same class, or perhaps a utility class:

private boolean checkIfArrayContainsAnyStringsInAnotherArray(String[] results, String[] wordsWeAreLookingFor) {
    List<String> resultsList = Arrays.asList(results);
    List<String> wordsWeAreLookingForList = Arrays.asList(wordsWeAreLookingFor);
    return !Collections.disjoint(resultsList, wordsWeAreLookingForList);
}

Note that this particular code sample will have contain true in foundWordInResults since "dog" is in both results and wordsWeAreLookingFor.

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