54

I have a boolean array in java:

boolean[] myArray = new boolean[10];

What's the most elegant way to check if all the values are true?

  • 2
    if you really need a fast way to do that then you'd be better storing your flags in an int or a long (or even a long[]) and do the "math" yourself. Then you can check up to 32 or 64 values at once. However I doubt that that particular spot of yours would prove to be a bottleneck. – TacticalCoder Nov 24 '11 at 17:48
  • @donturner Do you mean fastest as in fast to compute, or fast as in fast to write (less code)? – whirlwin Nov 24 '11 at 17:50
  • 2
    Many thanks for the quick responses. I meant fastest as in 'fastest to write', not to execute. Perhaps I should have said 'most elegant'. – donturner Nov 24 '11 at 17:52
  • Loop and break when one doesnt. For speed, it would be better to use ints or hashmaps. – DGoiko Nov 14 '18 at 13:47

11 Answers 11

71
public static boolean areAllTrue(boolean[] array)
{
    for(boolean b : array) if(!b) return false;
    return true;
}
  • 14
    this might be personal preference, but I'd use isAllTrue(boolean... array) in case another input is wanted or required for that method in the future. It still accepts arrays, but we don't want to restrict possible future users. – Supuhstar Jan 22 '12 at 5:30
61
Arrays.asList(myArray).contains(false)
  • 3
    one liner, clear, concise, O(n) lookup, what's not to like here? – chrismarx Aug 28 '14 at 18:19
  • 22
    That does only work if it is a Boolean[], not a boolean[]. Because you can't have a List with a primitive, you will end up with Arrays.asList(boolean[]) with a List<boolean[]> which never contains false as it always contains arrays. – David Georg Reichelt Jan 19 '15 at 16:59
20

In Java 8, you could do:

boolean isAllTrue = Arrays.asList(myArray).stream().allMatch(val -> val == true);

Or even shorter:

boolean isAllTrue = Arrays.stream(myArray).allMatch(Boolean::valueOf);

Note: You need Boolean[] for this solution to work. Because you can't have a primitives List.

  • 5
    Arrays.asList(myArray).stream().allMatch(Boolean::booleanValue) will work for both all true and all false. – ccpizza Apr 8 '16 at 9:50
  • Ah great! Thanks. – Kapil Sharma Apr 11 '16 at 15:27
  • 1
    Arrays.asList(myArray).stream().allMatch(val -> Boolean.TRUE.equals(val)); this will also handle properly the case if there are null values in the array. – Ihor M. Feb 7 at 20:05
15

It depends how many times you're going to want to find this information, if more than once:

Set<Boolean> flags = new HashSet<Boolean>(myArray);
flags.contains(false);

Otherwise a short circuited loop:

for (i = 0; i < myArray.length; i++) {
  if (!myArray[i]) return false;
}
return true;
  • bool is not Java?! and accessing length each interaction - foreach is (minimally) faster. But the Set idea is cool - +1 for that – Carlos Heuberger Nov 24 '11 at 19:44
  • @CarlosHeuberger A good spot, have been C#ing recently and got my bools and booleans mixed up! – Rich O'Kelly Nov 24 '11 at 20:12
  • @CarlosHeuberger Wait for each should be faster than a simple loop? If the JIT can inline everything and optimize accordingly the iterator solution may be AS fast as the direct access, but certainly not faster (CSE on the array length on the other hand will happen almost certainly). Theoretically starting with length() - 1 and stopping at 0 may be marginally faster on x86 but that's not even a microoptimization anymore. – Voo Nov 24 '11 at 20:16
  • 3
    -1 because the top example doesn't compile: unexpected type required: reference found: boolean – Supuhstar Jan 22 '12 at 5:32
  • 1
    @AmirPashazadeh The original question was 'the fastest way to...', not 'the most elegant way to...'. Yes, creation would be slower, however lookups in a HashSet are O(1) whereas in an ArrayList they are O(n), hence my statement about how many times the OP wished to find out this information. Since java lacks reified generics it may also be worth mentioning the cost of boxing the boolean in the contains method, however on any recent JVM this would form a gen 0 collectible and the cost should be neglible. It could also be mitigated by passing Boolean.False instead. – Rich O'Kelly Jan 23 '12 at 15:56
11

I can't believe there's no BitSet solution.

A BitSet is an abstraction over a set of bits so we don't have to use boolean[] for more advanced interactions anymore, because it already contains most of the needed methods. It's also pretty fast in batch operations since it internally uses long values to store the bits and doesn't therefore check every bit separately like we do with boolean[].

BitSet myBitSet = new BitSet(10);
// fills the bitset with ten true values
myBitSet.set(0, 10);

For your particular case, I'd use cardinality():

if (myBitSet.cardinality() == myBitSet.size()) {
    // do something, there are no false bits in the bitset
}

Another alternative is using Guava:

return Booleans.contains(myArray, true);
  • 1
    I think using BitSet is a great idea. However care is needed on comparing cardinality (which counts the bits set to true) and length (which counts all positions, both true and false, up to the last one set to true). I ran into comparing a length of a BitSet correlated to a ListArray that had trailing falses - that is, I needed the ListArray length not the BitSet length. – KTys Aug 31 '15 at 19:47
  • 1
    That's why you should use .size() and not .length() – Mark Renouf Jun 13 '17 at 18:07
  • I can't believe there's no Apache Commons solution. Oh, wait, now there is one. ;) – Gerold Broser Nov 9 '18 at 15:59
5

That line should be sufficient:

BooleanUtils.and(boolean... array)

but to calm the link-only purists:

Performs an and on a set of booleans.

  • 1
    This is the right answer. – JoshuaD Oct 13 at 21:04
4

In Java 8+, you can create an IntStream in the range of 0 to myArray.length and check that all values are true in the corresponding (primitive) array with something like,

return IntStream.range(0, myArray.length).allMatch(i -> myArray[i]);
2

This is probably not faster, and definitely not very readable. So, for the sake of colorful solutions...

int i = array.length()-1;
for(; i > -1 && array[i]; i--);
return i==-1
1
boolean alltrue = true;
for(int i = 0; alltrue && i<booleanArray.length(); i++)
   alltrue &= booleanArray[i];

I think this looks ok and behaves well...

0

You can check all value items are true or false by compare your array with the other boolean array via Arrays.equal method like below example :

private boolean isCheckedAnswer(List<Answer> array) {
    boolean[] isSelectedChecks = new boolean[array.size()];
    for (int i = 0; i < array.size(); i++) {
        isSelectedChecks[i] = array.get(i).isChecked();
    }

    boolean[] isAllFalse = new boolean[array.size()];
    for (int i = 0; i < array.size(); i++) {
        isAllFalse[i] = false;
    }

    return !Arrays.equals(isSelectedChecks, isAllFalse);
}
  • While this might be a different way to solve the problem, it does not really seem useful, as it's less simple and less efficient than the two top-voted answers. – Dukeling Dec 28 '17 at 12:24
-1

OK. This is the "most elegant" solution I could come up with on the fly:

boolean allTrue = !Arrays.toString(myArray).contains("f");

Hope that helps!

  • 7
    "elegant"? I think not... it may be one line, but instead of checking n values of 8 bits each (knowing the size of a boolean in an array in memory), it checks a String representation of those, which will be anywhere from (n * 4) + 2 + ((n-1) * 2) and (n * 5) + 2 + ((n-1) * 2) values of 32 bits each, knowing how Arrays.toString methods work and the side of a char in memory. (for this particular example, that's 60 to 70 values) – Supuhstar Jan 22 '12 at 5:38

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